Array.Sort 方法

定义

对一维数组中的元素进行排序。

重载

Sort(Array, Array, Int32, Int32, IComparer)

基于第一个 Array 中的关键字,使用指定的 IComparer,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)的部分元素进行排序。

Sort(Array, Int32, Int32, IComparer)

使用指定的 IComparer,对一维 Array 中的部分元素进行排序。

Sort(Array, Array, Int32, Int32)

基于第一个 Array 中的关键字,使用每个关键字的 IComparable 实现,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)的部分元素进行排序。

Sort(Array, Int32, Int32)

使用 Array 中每个元素的 IComparable 实现,对一维 Array 中的部分元素进行排序。

Sort(Array, Array, IComparer)

基于第一个 Array 中的关键字,使用指定的 IComparer,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)进行排序。

Sort(Array, Array)

基于第一个 Array 中的关键字,使用每个关键字的 IComparable 实现,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)进行排序。

Sort(Array)

使用 Array 中每个元素的 IComparable 实现,对整个一维 Array 中的元素进行排序。

Sort(Array, IComparer)

使用指定的 IComparer,对一维 Array 中的元素进行排序。

Sort<T>(T[])

使用 Array 中每个元素的 IComparable<T> 泛型接口实现,对整个 Array 中的元素进行排序。

Sort<T>(T[], IComparer<T>)

使用指定的 IComparer<T> 泛型接口,对 Array 中的元素进行排序。

Sort<T>(T[], Comparison<T>)

使用指定的 Comparison<T>,对 Array 中的元素进行排序。

Sort<T>(T[], Int32, Int32)

使用 Array 中每个元素的 IComparable<T> 泛型接口实现,对 Array 中元素范围内的元素进行排序。

Sort<T>(T[], Int32, Int32, IComparer<T>)

使用指定的 IComparer<T> 泛型接口,对 Array 中的部分元素进行排序。

Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>)

基于第一个 Array 中的关键字,使用指定的 IComparer<T> 泛型接口,对两个 Array 对象(一个包含关键字,另一个包含对应的项)的部分元素进行排序。

Sort<TKey,TValue>(TKey[], TValue[])

基于第一个 Array 中的键,使用每个键的 IComparable<T> 泛型接口实现,对一对 Array 对象(一个包含键,另一个包含对应的项)进行排序。

Sort<TKey,TValue>(TKey[], TValue[], IComparer<TKey>)

基于第一个 Array 中的关键字,使用指定的 IComparer<T> 泛型接口,对两个 Array 对象(一个包含关键字,另一个包含对应的项)进行排序。

Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32)

基于第一个 Array 中的键,使用每个键的 IComparable<T> 泛型接口实现,对两个 Array 对象(一个包含键,另一个包含对应的项)的部分元素进行排序。

Sort(Array, Array, Int32, Int32, IComparer)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的关键字,使用指定的 IComparer,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)的部分元素进行排序。

public:
 static void Sort(Array ^ keys, Array ^ items, int index, int length, System::Collections::IComparer ^ comparer);
public static void Sort (Array keys, Array items, int index, int length, System.Collections.IComparer comparer);
public static void Sort (Array keys, Array? items, int index, int length, System.Collections.IComparer? comparer);
static member Sort : Array * Array * int * int * System.Collections.IComparer -> unit
Public Shared Sub Sort (keys As Array, items As Array, index As Integer, length As Integer, comparer As IComparer)

参数

keys
Array

一维 Array,其中包含要排序的关键字。

items
Array

一维 Array,其中包含与 keysArray 中每个关键字对应的项。

- 或 -

如果为 null,则只对 keysArray 进行排序。

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

comparer
IComparer

比较元素时要使用的 IComparer 实现。

- 或 -

若为 null,则使用每个元素的 IComparable 实现。

例外

keysnull

keysArray 是多维的。

- 或 -

itemsArray 是多维的。

index 小于 keys 的下限。

- 或 -

length 小于零。

items 不为 null,且 keys 的下限与 items 的下限不匹配。

- 或 -

items 不为 null,且 keys 的长度大于 items 的长度。

- 或 -

indexlength 未在 keysArray 中指定有效范围。

- 或 -

items 不为 null,且 indexlength 未在 itemsArray 中指定有效范围。

- 或 -

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

comparernull,且 keysArray 中的一个或多个元素未实现 IComparable 接口。

示例

下面的代码示例演示如何对两个关联的数组进行排序,其中第一个数组包含键,第二个数组包含值。 排序是使用默认比较器和反转排序顺序的自定义比较器完成的。 请注意,结果可能因当前 CultureInfo而异。

using namespace System;
using namespace System::Collections;

public ref class myReverserClass: public IComparer
{
private:

   // Calls CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare( Object^ x, Object^ y ) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare( y, x ));
   }
};

void PrintKeysAndValues( array<String^>^myKeys, array<String^>^myValues )
{
   for ( int i = 0; i < myKeys->Length; i++ )
   {
      Console::WriteLine( " {0, -10}: {1}", myKeys[ i ], myValues[ i ] );
   }
   Console::WriteLine();
}

int main()
{
   // Creates and initializes a new Array and a new custom comparer.
   array<String^>^myKeys = {"red","GREEN","YELLOW","BLUE","purple","black","orange"};
   array<String^>^myValues = {"strawberries","PEARS","LIMES","BERRIES","grapes","olives","cantaloupe"};
   IComparer^ myComparer = gcnew myReverserClass;

   // Displays the values of the Array.
   Console::WriteLine( "The Array initially contains the following values:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts a section of the Array using the default comparer.
   Array::Sort( myKeys, myValues, 1, 3 );
   Console::WriteLine( "After sorting a section of the Array using the default comparer:" );

   // Sorts a section of the Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, 1, 3, myComparer );
   Console::WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the default comparer.
   Array::Sort( myKeys, myValues );
   Console::WriteLine( "After sorting the entire Array using the default comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, myComparer );
   Console::WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );
}

/* 
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
using System;
using System.Collections;

public class SamplesArray  {

   public class myReverserClass : IComparer  {

      // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      int IComparer.Compare( Object x, Object y )  {
          return( (new CaseInsensitiveComparer()).Compare( y, x ) );
      }
   }

   public static void Main()  {

      // Creates and initializes a new Array and a new custom comparer.
      String[] myKeys = { "red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange" };
      String[] myValues = { "strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe" };
      IComparer myComparer = new myReverserClass();

      // Displays the values of the Array.
      Console.WriteLine( "The Array initially contains the following values:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the default comparer.
      Array.Sort( myKeys, myValues, 1, 3 );
      Console.WriteLine( "After sorting a section of the Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, 1, 3, myComparer );
      Console.WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the default comparer.
      Array.Sort( myKeys, myValues );
      Console.WriteLine( "After sorting the entire Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, myComparer );
      Console.WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );
   }

   public static void PrintKeysAndValues( String[] myKeys, String[] myValues )  {
      for ( int i = 0; i < myKeys.Length; i++ )  {
         Console.WriteLine( "   {0,-10}: {1}", myKeys[i], myValues[i] );
      }
      Console.WriteLine();
   }
}


/*
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
open System
open System.Collections

type MyReverserClass() = 
    interface IComparer with
        member _.Compare(x, y) =
            // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let printKeysAndValues (myKeys: string []) (myValues: string []) =
    for i = 0 to myKeys.Length - 1 do
        printfn $"   {myKeys[i],-10}: {myValues[i]}"
    printfn ""

// Creates and initializes a new Array and a new custom comparer.
let myKeys = [| "red"; "GREEN"; "YELLOW"; "BLUE"; "purple"; "black"; "orange" |]
let myValues = [| "strawberries"; "PEARS"; "LIMES"; "BERRIES"; "grapes"; "olives"; "cantaloupe" |]
let myComparer = MyReverserClass()

// Displays the values of the Array.
printfn "The Array initially contains the following values:"
printKeysAndValues myKeys myValues 

// Sorts a section of the Array using the default comparer.
Array.Sort(myKeys, myValues, 1, 3)
printfn "After sorting a section of the Array using the default comparer:" 
printKeysAndValues myKeys myValues

// Sorts a section of the Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, 1, 3, myComparer)
printfn "After sorting a section of the Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the default comparer.
Array.Sort(myKeys, myValues)
printfn "After sorting the entire Array using the default comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, myComparer)
printfn "After sorting the entire Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues


// This code produces the following output.
//     The Array initially contains the following values:
//        red       : strawberries
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the default comparer:
//        red       : strawberries
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the reverse case-insensitive comparer:
//        red       : strawberries
//        YELLOW    : LIMES
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting the entire Array using the default comparer:
//        black     : olives
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        orange    : cantaloupe
//        purple    : grapes
//        red       : strawberries
//        YELLOW    : LIMES
//     
//     After sorting the entire Array using the reverse case-insensitive comparer:
//        YELLOW    : LIMES
//        red       : strawberries
//        purple    : grapes
//        orange    : cantaloupe
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        black     : olives
Imports System.Collections

Public Class SamplesArray

   Public Class myReverserClass
      Implements IComparer

      ' Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      Function Compare(x As [Object], y As [Object]) As Integer _
         Implements IComparer.Compare
         Return New CaseInsensitiveComparer().Compare(y, x)
      End Function 'IComparer.Compare

   End Class


   Public Shared Sub Main()

      ' Creates and initializes a new Array and a new custom comparer.
      Dim myKeys As [String]() =  {"red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange"}
      Dim myValues As [String]() =  {"strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe"}
      Dim myComparer = New myReverserClass()

      ' Displays the values of the Array.
      Console.WriteLine("The Array initially contains the following values:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the default comparer.
      Array.Sort(myKeys, myValues, 1, 3)
      Console.WriteLine("After sorting a section of the Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, 1, 3, myComparer)
      Console.WriteLine("After sorting a section of the Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the default comparer.
      Array.Sort(myKeys, myValues)
      Console.WriteLine("After sorting the entire Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, myComparer)
      Console.WriteLine("After sorting the entire Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

   End Sub


   Public Shared Sub PrintKeysAndValues(myKeys() As [String], myValues() As [String])

      Dim i As Integer
      For i = 0 To myKeys.Length - 1
         Console.WriteLine("   {0,-10}: {1}", myKeys(i), myValues(i))
      Next i
      Console.WriteLine()

   End Sub

End Class


'This code produces the following output.
'
'The Array initially contains the following values:
'   red       : strawberries
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the default comparer:
'   red       : strawberries
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the reverse case-insensitive comparer:
'   red       : strawberries
'   YELLOW    : LIMES
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting the entire Array using the default comparer:
'   black     : olives
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   orange    : cantaloupe
'   purple    : grapes
'   red       : strawberries
'   YELLOW    : LIMES
'
'After sorting the entire Array using the reverse case-insensitive comparer:
'   YELLOW    : LIMES
'   red       : strawberries
'   purple    : grapes
'   orange    : cantaloupe
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   black     : olives

注解

中的每个键在 keysArrayitemsArray都有相应的项。 在排序过程中重新定位键时,中相应的项 itemsArray 同样会重新定位。 因此, itemsArray 根据 中相应键的排列方式对 keysArray进行排序。

如果 comparernull,则 中的指定元素 keysArray 范围内的每个键都必须实现 IComparable 接口,以便能够与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法进行排序;执行此操作会 ArgumentException引发 。

如果排序未成功完成,则结果未定义。

.NET 包括下表中列出的预定义 IComparer 实现。

实现 描述
System.Collections.CaseInsensitiveComparer 比较任意两个对象,但对字符串执行不区分大小写的比较。
Comparer.Default 使用当前区域性的排序约定比较任意两个对象。
Comparer.DefaultInvariant 使用固定区域性的排序约定比较任意两个对象。
Comparer<T>.Default 使用类型 T 的默认排序顺序比较类型的两个对象。

还可以通过向 参数提供自己的 IComparer 实现实例来支持 comparer 自定义比较。 该示例通过定义一个自定义 IComparer 实现来执行此操作,该实现反转默认排序顺序并执行不区分大小写的字符串比较。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort(Array, Int32, Int32, IComparer)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用指定的 IComparer,对一维 Array 中的部分元素进行排序。

public:
 static void Sort(Array ^ array, int index, int length, System::Collections::IComparer ^ comparer);
public static void Sort (Array array, int index, int length, System.Collections.IComparer comparer);
public static void Sort (Array array, int index, int length, System.Collections.IComparer? comparer);
static member Sort : Array * int * int * System.Collections.IComparer -> unit
Public Shared Sub Sort (array As Array, index As Integer, length As Integer, comparer As IComparer)

参数

array
Array

要排序的一维 Array

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

comparer
IComparer

比较元素时要使用的 IComparer 实现。

- 或 -

若为 null,则使用每个元素的 IComparable 实现。

例外

arraynull

array 是多维的。

index 小于 array 的下限。

- 或 -

length 小于零。

indexlength 未在 array 中指定有效范围。

- 或 -

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

comparernull,且 array 中的一个或多个元素未实现 IComparable 接口。

示例

下面的代码示例演示如何使用默认比较器和反转排序顺序的自定义比较器对 中的 Array 值进行排序。 请注意,结果可能因当前 CultureInfo而异。

using namespace System;
using namespace System::Collections;

public ref class ReverseComparer : IComparer
{
public:
   // Call CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare(Object^ x, Object^ y) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare(y, x));
   }
};

void DisplayValues(array<String^>^ arr)
{
   for (int i = arr->GetLowerBound(0); i <= arr->GetUpperBound(0); i++)
      Console::WriteLine( "   [{0}] : {1}", i, arr[ i ] );

   Console::WriteLine();
}

int main()
{
   // Create and initialize a new array. and a new custom comparer.
   array<String^>^ words = { "The","QUICK","BROWN","FOX","jumps",
                             "over","the","lazy","dog" };
   // Instantiate the reverse comparer.
   IComparer^ revComparer = gcnew ReverseComparer();
   
   // Display the values of the Array.
   Console::WriteLine( "The original order of elements in the array:" );
   DisplayValues(words);

   // Sort a section of the array using the default comparer.
   Array::Sort(words, 1, 3);
   Console::WriteLine( "After sorting elements 1-3 by using the default comparer:");
   DisplayValues(words);

   // Sort a section of the array using the reverse case-insensitive comparer.
   Array::Sort(words, 1, 3, revComparer);
   Console::WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
   DisplayValues(words);

   // Sort the entire array using the default comparer.
   Array::Sort(words);
   Console::WriteLine( "After sorting the entire array by using the default comparer:");
   DisplayValues(words);

   // Sort the entire array by using the reverse case-insensitive comparer.
   Array::Sort(words, revComparer);
   Console::WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
   DisplayValues(words);
}

/* 
This code produces the following output.

The Array initially contains the following values:
   [0] : The
   [1] : QUICK
   [2] : BROWN
   [3] : FOX
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the default comparer:
   [0] : The
   [1] : BROWN
   [2] : FOX
   [3] : QUICK
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the reverse case-insensitive comparer:
   [0] : The
   [1] : QUICK
   [2] : FOX
   [3] : BROWN
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting the entire Array using the default comparer:
   [0] : BROWN
   [1] : dog
   [2] : FOX
   [3] : jumps
   [4] : lazy
   [5] : over
   [6] : QUICK
   [7] : the
   [8] : The

After sorting the entire Array using the reverse case-insensitive comparer:
   [0] : the
   [1] : The
   [2] : QUICK
   [3] : over
   [4] : lazy
   [5] : jumps
   [6] : FOX
   [7] : dog
   [8] : BROWN

*/
using System;
using System.Collections;

public class ReverseComparer : IComparer
{
   // Call CaseInsensitiveComparer.Compare with the parameters reversed.
   public int Compare(Object x, Object y)
   {
       return (new CaseInsensitiveComparer()).Compare(y, x );
   }
}

public class Example
{
   public static void Main()
   {
      // Create and initialize a new array.
      String[] words = { "The", "QUICK", "BROWN", "FOX", "jumps",
                         "over", "the", "lazy", "dog" };
      // Instantiate the reverse comparer.
      IComparer revComparer = new ReverseComparer();

      // Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" );
      DisplayValues(words);

      // Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3);
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:");
      DisplayValues(words);

      // Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer);
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
      DisplayValues(words);

      // Sort the entire array using the default comparer.
      Array.Sort(words);
      Console.WriteLine( "After sorting the entire array by using the default comparer:");
      DisplayValues(words);

      // Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer);
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
      DisplayValues(words);
   }

   public static void DisplayValues(String[] arr)
   {
      for ( int i = arr.GetLowerBound(0); i <= arr.GetUpperBound(0);
            i++ )  {
         Console.WriteLine( "   [{0}] : {1}", i, arr[i] );
      }
      Console.WriteLine();
   }
}
// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
open System
open System.Collections

type ReverseComparer() =
    interface IComparer with
        member _.Compare(x, y) =
            // Call CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let displayValues (arr: string []) = 
    for i = 0 to arr.Length - 1 do
        printfn $"   [{i}] : {arr[i]}"
    printfn ""

// Create and initialize a new array.
let words = 
    [| "The"; "QUICK"; "BROWN"; "FOX"; "jumps"
       "over"; "the"; "lazy"; "dog" |]

// Instantiate the reverse comparer.
let revComparer = ReverseComparer()

// Display the values of the array.
printfn "The original order of elements in the array:" 
displayValues words

// Sort a section of the array using the default comparer.
Array.Sort(words, 1, 3)
printfn "After sorting elements 1-3 by using the default comparer:"
displayValues words

// Sort a section of the array using the reverse case-insensitive comparer.
Array.Sort(words, 1, 3, revComparer)
printfn "After sorting elements 1-3 by using the reverse case-insensitive comparer:"
displayValues words

// Sort the entire array using the default comparer.
Array.Sort words
printfn "After sorting the entire array by using the default comparer:"
displayValues words

// Sort the entire array by using the reverse case-insensitive comparer.
Array.Sort(words, revComparer)
printfn "After sorting the entire array using the reverse case-insensitive comparer:"
displayValues words

// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
Imports System.Collections

Public Class ReverseComparer : Implements IComparer
   ' Call CaseInsensitiveComparer.Compare with the parameters reversed.
   Function Compare(x As Object, y As Object) As Integer _
            Implements IComparer.Compare
      Return New CaseInsensitiveComparer().Compare(y, x)
   End Function 
End Class

Public Module Example
   Public Sub Main()
      ' Create and initialize a new array.
      Dim words() As String =  { "The", "QUICK", "BROWN", "FOX", "jumps", 
                                 "over", "the", "lazy", "dog" }
      ' Instantiate a new custom comparer.
      Dim revComparer As New ReverseComparer()

      ' Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" )
      DisplayValues(words)

      ' Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3)
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:")
      DisplayValues(words)

      ' Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer)
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:")
      DisplayValues(words)

      ' Sort the entire array using the default comparer.
      Array.Sort(words)
      Console.WriteLine( "After sorting the entire array by using the default comparer:")
      DisplayValues(words)

      ' Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer)
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:")
      DisplayValues(words)
   End Sub 

   Public Sub DisplayValues(arr() As String)
      For i As Integer = arr.GetLowerBound(0) To arr.GetUpperBound(0)
         Console.WriteLine("   [{0}] : {1}", i, arr(i))
      Next 
      Console.WriteLine()
   End Sub 
End Module 
' The example displays the following output:
'    The original order of elements in the array:
'       [0] : The
'       [1] : QUICK
'       [2] : BROWN
'       [3] : FOX
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the default comparer:
'       [0] : The
'       [1] : BROWN
'       [2] : FOX
'       [3] : QUICK
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the reverse case-insensitive comparer:
'       [0] : The
'       [1] : QUICK
'       [2] : FOX
'       [3] : BROWN
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting the entire array by using the default comparer:
'       [0] : BROWN
'       [1] : dog
'       [2] : FOX
'       [3] : jumps
'       [4] : lazy
'       [5] : over
'       [6] : QUICK
'       [7] : the
'       [8] : The
'    
'    After sorting the entire array using the reverse case-insensitive comparer:
'       [0] : the
'       [1] : The
'       [2] : QUICK
'       [3] : over
'       [4] : lazy
'       [5] : jumps
'       [6] : FOX
'       [7] : dog
'       [8] : BROWN

注解

如果 comparernull,则 中的 array 指定元素范围中的每个元素都必须实现 IComparable 接口,以便能够与 中的每个 array其他元素进行比较。

如果未成功完成排序,则结果为未定义。

.NET 包括下表中列出的预定义 IComparer 实现。

实现 描述
System.Collections.CaseInsensitiveComparer 比较任意两个对象,但对字符串执行不区分大小写的比较。
Comparer.Default 使用当前区域性的排序约定比较任意两个对象。
Comparer.DefaultInvariant 使用固定区域性的排序约定比较任意两个对象。
Comparer<T>.Default 使用类型的默认排序顺序比较 类型的 T 两个对象。

还可以通过向 参数提供自己的 IComparer 实现实例来支持 comparer 自定义比较。 该示例通过定义一个 ReverseComparer 类来执行此操作,该类反转类型实例的默认排序顺序并执行不区分大小写的字符串比较。

此方法使用 introsort) 算法 (自省排序,如下所示:

  • 如果分区大小小于或等于 16 个元素,则使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 Heapsort 算法。

  • 否则,它使用 Quicksort 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则它们的顺序可能不会保留。 相反,稳定的排序会保留相等的元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort(Array, Array, Int32, Int32)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的关键字,使用每个关键字的 IComparable 实现,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)的部分元素进行排序。

public:
 static void Sort(Array ^ keys, Array ^ items, int index, int length);
public static void Sort (Array keys, Array items, int index, int length);
public static void Sort (Array keys, Array? items, int index, int length);
static member Sort : Array * Array * int * int -> unit
Public Shared Sub Sort (keys As Array, items As Array, index As Integer, length As Integer)

参数

keys
Array

一维 Array,其中包含要排序的关键字。

items
Array

一维 Array,其中包含与 keysArray 中每个关键字对应的项。

- 或 -

如果为 null,则只对 keysArray 进行排序。

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

例外

keysnull

keysArray 是多维的。

- 或 -

itemsArray 是多维的。

index 小于 keys 的下限。

- 或 -

length 小于零。

items 不为 null,且 keys 的长度大于 items 的长度。

- 或 -

indexlength 未在 keysArray 中指定有效范围。

- 或 -

items 不为 null,且 indexlength 未在 itemsArray 中指定有效范围。

keysArray 中的一个或多个元素未实现 IComparable 接口。

示例

下面的代码示例演示如何对两个关联的数组进行排序,其中第一个数组包含键,第二个数组包含值。 排序是使用默认比较器和反转排序顺序的自定义比较器完成的。 请注意,结果可能因当前 CultureInfo而异。

using namespace System;
using namespace System::Collections;

public ref class myReverserClass: public IComparer
{
private:

   // Calls CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare( Object^ x, Object^ y ) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare( y, x ));
   }
};

void PrintKeysAndValues( array<String^>^myKeys, array<String^>^myValues )
{
   for ( int i = 0; i < myKeys->Length; i++ )
   {
      Console::WriteLine( " {0, -10}: {1}", myKeys[ i ], myValues[ i ] );
   }
   Console::WriteLine();
}

int main()
{
   // Creates and initializes a new Array and a new custom comparer.
   array<String^>^myKeys = {"red","GREEN","YELLOW","BLUE","purple","black","orange"};
   array<String^>^myValues = {"strawberries","PEARS","LIMES","BERRIES","grapes","olives","cantaloupe"};
   IComparer^ myComparer = gcnew myReverserClass;

   // Displays the values of the Array.
   Console::WriteLine( "The Array initially contains the following values:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts a section of the Array using the default comparer.
   Array::Sort( myKeys, myValues, 1, 3 );
   Console::WriteLine( "After sorting a section of the Array using the default comparer:" );

   // Sorts a section of the Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, 1, 3, myComparer );
   Console::WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the default comparer.
   Array::Sort( myKeys, myValues );
   Console::WriteLine( "After sorting the entire Array using the default comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, myComparer );
   Console::WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );
}

/* 
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
using System;
using System.Collections;

public class SamplesArray  {

   public class myReverserClass : IComparer  {

      // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      int IComparer.Compare( Object x, Object y )  {
          return( (new CaseInsensitiveComparer()).Compare( y, x ) );
      }
   }

   public static void Main()  {

      // Creates and initializes a new Array and a new custom comparer.
      String[] myKeys = { "red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange" };
      String[] myValues = { "strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe" };
      IComparer myComparer = new myReverserClass();

      // Displays the values of the Array.
      Console.WriteLine( "The Array initially contains the following values:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the default comparer.
      Array.Sort( myKeys, myValues, 1, 3 );
      Console.WriteLine( "After sorting a section of the Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, 1, 3, myComparer );
      Console.WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the default comparer.
      Array.Sort( myKeys, myValues );
      Console.WriteLine( "After sorting the entire Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, myComparer );
      Console.WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );
   }

   public static void PrintKeysAndValues( String[] myKeys, String[] myValues )  {
      for ( int i = 0; i < myKeys.Length; i++ )  {
         Console.WriteLine( "   {0,-10}: {1}", myKeys[i], myValues[i] );
      }
      Console.WriteLine();
   }
}


/*
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
open System
open System.Collections

type MyReverserClass() = 
    interface IComparer with
        member _.Compare(x, y) =
            // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let printKeysAndValues (myKeys: string []) (myValues: string []) =
    for i = 0 to myKeys.Length - 1 do
        printfn $"   {myKeys[i],-10}: {myValues[i]}"
    printfn ""

// Creates and initializes a new Array and a new custom comparer.
let myKeys = [| "red"; "GREEN"; "YELLOW"; "BLUE"; "purple"; "black"; "orange" |]
let myValues = [| "strawberries"; "PEARS"; "LIMES"; "BERRIES"; "grapes"; "olives"; "cantaloupe" |]
let myComparer = MyReverserClass()

// Displays the values of the Array.
printfn "The Array initially contains the following values:"
printKeysAndValues myKeys myValues 

// Sorts a section of the Array using the default comparer.
Array.Sort(myKeys, myValues, 1, 3)
printfn "After sorting a section of the Array using the default comparer:" 
printKeysAndValues myKeys myValues

// Sorts a section of the Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, 1, 3, myComparer)
printfn "After sorting a section of the Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the default comparer.
Array.Sort(myKeys, myValues)
printfn "After sorting the entire Array using the default comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, myComparer)
printfn "After sorting the entire Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues


// This code produces the following output.
//     The Array initially contains the following values:
//        red       : strawberries
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the default comparer:
//        red       : strawberries
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the reverse case-insensitive comparer:
//        red       : strawberries
//        YELLOW    : LIMES
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting the entire Array using the default comparer:
//        black     : olives
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        orange    : cantaloupe
//        purple    : grapes
//        red       : strawberries
//        YELLOW    : LIMES
//     
//     After sorting the entire Array using the reverse case-insensitive comparer:
//        YELLOW    : LIMES
//        red       : strawberries
//        purple    : grapes
//        orange    : cantaloupe
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        black     : olives
Imports System.Collections

Public Class SamplesArray

   Public Class myReverserClass
      Implements IComparer

      ' Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      Function Compare(x As [Object], y As [Object]) As Integer _
         Implements IComparer.Compare
         Return New CaseInsensitiveComparer().Compare(y, x)
      End Function 'IComparer.Compare

   End Class


   Public Shared Sub Main()

      ' Creates and initializes a new Array and a new custom comparer.
      Dim myKeys As [String]() =  {"red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange"}
      Dim myValues As [String]() =  {"strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe"}
      Dim myComparer = New myReverserClass()

      ' Displays the values of the Array.
      Console.WriteLine("The Array initially contains the following values:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the default comparer.
      Array.Sort(myKeys, myValues, 1, 3)
      Console.WriteLine("After sorting a section of the Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, 1, 3, myComparer)
      Console.WriteLine("After sorting a section of the Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the default comparer.
      Array.Sort(myKeys, myValues)
      Console.WriteLine("After sorting the entire Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, myComparer)
      Console.WriteLine("After sorting the entire Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

   End Sub


   Public Shared Sub PrintKeysAndValues(myKeys() As [String], myValues() As [String])

      Dim i As Integer
      For i = 0 To myKeys.Length - 1
         Console.WriteLine("   {0,-10}: {1}", myKeys(i), myValues(i))
      Next i
      Console.WriteLine()

   End Sub

End Class


'This code produces the following output.
'
'The Array initially contains the following values:
'   red       : strawberries
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the default comparer:
'   red       : strawberries
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the reverse case-insensitive comparer:
'   red       : strawberries
'   YELLOW    : LIMES
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting the entire Array using the default comparer:
'   black     : olives
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   orange    : cantaloupe
'   purple    : grapes
'   red       : strawberries
'   YELLOW    : LIMES
'
'After sorting the entire Array using the reverse case-insensitive comparer:
'   YELLOW    : LIMES
'   red       : strawberries
'   purple    : grapes
'   orange    : cantaloupe
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   black     : olives

注解

中的每个 keysArray 键在 中 itemsArray都有相应的项。 在排序过程中重新定位键时,中的 itemsArray 相应项同样会重新定位。 因此, itemsArray 根据 中 keysArray相应键的排列方式进行排序。

keysArray 指定元素范围内的每个键都必须实现 IComparable 接口,以便能够与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法排序;执行此操作会 ArgumentException引发 。

如果未成功完成排序,则结果为未定义。

此方法使用 introsort) 算法 (自省排序,如下所示:

  • 如果分区大小小于或等于 16 个元素,则使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 Heapsort 算法。

  • 否则,它使用 Quicksort 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则它们的顺序可能不会保留。 相反,稳定的排序会保留相等的元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

另请参阅

适用于

Sort(Array, Int32, Int32)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用 Array 中每个元素的 IComparable 实现,对一维 Array 中的部分元素进行排序。

public:
 static void Sort(Array ^ array, int index, int length);
public static void Sort (Array array, int index, int length);
static member Sort : Array * int * int -> unit
Public Shared Sub Sort (array As Array, index As Integer, length As Integer)

参数

array
Array

要排序的一维 Array

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

例外

arraynull

array 是多维的。

index 小于 array 的下限。

- 或 -

length 小于零。

indexlength 未在 array 中指定有效范围。

array 中的一个或多个元素未实现 IComparable 接口。

示例

下面的代码示例演示如何使用默认比较器和反转排序顺序的自定义比较器对 中的 Array 值进行排序。 请注意,结果可能因当前 CultureInfo而异。

using namespace System;
using namespace System::Collections;

public ref class ReverseComparer : IComparer
{
public:
   // Call CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare(Object^ x, Object^ y) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare(y, x));
   }
};

void DisplayValues(array<String^>^ arr)
{
   for (int i = arr->GetLowerBound(0); i <= arr->GetUpperBound(0); i++)
      Console::WriteLine( "   [{0}] : {1}", i, arr[ i ] );

   Console::WriteLine();
}

int main()
{
   // Create and initialize a new array. and a new custom comparer.
   array<String^>^ words = { "The","QUICK","BROWN","FOX","jumps",
                             "over","the","lazy","dog" };
   // Instantiate the reverse comparer.
   IComparer^ revComparer = gcnew ReverseComparer();
   
   // Display the values of the Array.
   Console::WriteLine( "The original order of elements in the array:" );
   DisplayValues(words);

   // Sort a section of the array using the default comparer.
   Array::Sort(words, 1, 3);
   Console::WriteLine( "After sorting elements 1-3 by using the default comparer:");
   DisplayValues(words);

   // Sort a section of the array using the reverse case-insensitive comparer.
   Array::Sort(words, 1, 3, revComparer);
   Console::WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
   DisplayValues(words);

   // Sort the entire array using the default comparer.
   Array::Sort(words);
   Console::WriteLine( "After sorting the entire array by using the default comparer:");
   DisplayValues(words);

   // Sort the entire array by using the reverse case-insensitive comparer.
   Array::Sort(words, revComparer);
   Console::WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
   DisplayValues(words);
}

/* 
This code produces the following output.

The Array initially contains the following values:
   [0] : The
   [1] : QUICK
   [2] : BROWN
   [3] : FOX
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the default comparer:
   [0] : The
   [1] : BROWN
   [2] : FOX
   [3] : QUICK
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the reverse case-insensitive comparer:
   [0] : The
   [1] : QUICK
   [2] : FOX
   [3] : BROWN
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting the entire Array using the default comparer:
   [0] : BROWN
   [1] : dog
   [2] : FOX
   [3] : jumps
   [4] : lazy
   [5] : over
   [6] : QUICK
   [7] : the
   [8] : The

After sorting the entire Array using the reverse case-insensitive comparer:
   [0] : the
   [1] : The
   [2] : QUICK
   [3] : over
   [4] : lazy
   [5] : jumps
   [6] : FOX
   [7] : dog
   [8] : BROWN

*/
using System;
using System.Collections;

public class ReverseComparer : IComparer
{
   // Call CaseInsensitiveComparer.Compare with the parameters reversed.
   public int Compare(Object x, Object y)
   {
       return (new CaseInsensitiveComparer()).Compare(y, x );
   }
}

public class Example
{
   public static void Main()
   {
      // Create and initialize a new array.
      String[] words = { "The", "QUICK", "BROWN", "FOX", "jumps",
                         "over", "the", "lazy", "dog" };
      // Instantiate the reverse comparer.
      IComparer revComparer = new ReverseComparer();

      // Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" );
      DisplayValues(words);

      // Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3);
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:");
      DisplayValues(words);

      // Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer);
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
      DisplayValues(words);

      // Sort the entire array using the default comparer.
      Array.Sort(words);
      Console.WriteLine( "After sorting the entire array by using the default comparer:");
      DisplayValues(words);

      // Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer);
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
      DisplayValues(words);
   }

   public static void DisplayValues(String[] arr)
   {
      for ( int i = arr.GetLowerBound(0); i <= arr.GetUpperBound(0);
            i++ )  {
         Console.WriteLine( "   [{0}] : {1}", i, arr[i] );
      }
      Console.WriteLine();
   }
}
// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
open System
open System.Collections

type ReverseComparer() =
    interface IComparer with
        member _.Compare(x, y) =
            // Call CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let displayValues (arr: string []) = 
    for i = 0 to arr.Length - 1 do
        printfn $"   [{i}] : {arr[i]}"
    printfn ""

// Create and initialize a new array.
let words = 
    [| "The"; "QUICK"; "BROWN"; "FOX"; "jumps"
       "over"; "the"; "lazy"; "dog" |]

// Instantiate the reverse comparer.
let revComparer = ReverseComparer()

// Display the values of the array.
printfn "The original order of elements in the array:" 
displayValues words

// Sort a section of the array using the default comparer.
Array.Sort(words, 1, 3)
printfn "After sorting elements 1-3 by using the default comparer:"
displayValues words

// Sort a section of the array using the reverse case-insensitive comparer.
Array.Sort(words, 1, 3, revComparer)
printfn "After sorting elements 1-3 by using the reverse case-insensitive comparer:"
displayValues words

// Sort the entire array using the default comparer.
Array.Sort words
printfn "After sorting the entire array by using the default comparer:"
displayValues words

// Sort the entire array by using the reverse case-insensitive comparer.
Array.Sort(words, revComparer)
printfn "After sorting the entire array using the reverse case-insensitive comparer:"
displayValues words

// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
Imports System.Collections

Public Class ReverseComparer : Implements IComparer
   ' Call CaseInsensitiveComparer.Compare with the parameters reversed.
   Function Compare(x As Object, y As Object) As Integer _
            Implements IComparer.Compare
      Return New CaseInsensitiveComparer().Compare(y, x)
   End Function 
End Class

Public Module Example
   Public Sub Main()
      ' Create and initialize a new array.
      Dim words() As String =  { "The", "QUICK", "BROWN", "FOX", "jumps", 
                                 "over", "the", "lazy", "dog" }
      ' Instantiate a new custom comparer.
      Dim revComparer As New ReverseComparer()

      ' Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" )
      DisplayValues(words)

      ' Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3)
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:")
      DisplayValues(words)

      ' Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer)
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:")
      DisplayValues(words)

      ' Sort the entire array using the default comparer.
      Array.Sort(words)
      Console.WriteLine( "After sorting the entire array by using the default comparer:")
      DisplayValues(words)

      ' Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer)
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:")
      DisplayValues(words)
   End Sub 

   Public Sub DisplayValues(arr() As String)
      For i As Integer = arr.GetLowerBound(0) To arr.GetUpperBound(0)
         Console.WriteLine("   [{0}] : {1}", i, arr(i))
      Next 
      Console.WriteLine()
   End Sub 
End Module 
' The example displays the following output:
'    The original order of elements in the array:
'       [0] : The
'       [1] : QUICK
'       [2] : BROWN
'       [3] : FOX
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the default comparer:
'       [0] : The
'       [1] : BROWN
'       [2] : FOX
'       [3] : QUICK
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the reverse case-insensitive comparer:
'       [0] : The
'       [1] : QUICK
'       [2] : FOX
'       [3] : BROWN
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting the entire array by using the default comparer:
'       [0] : BROWN
'       [1] : dog
'       [2] : FOX
'       [3] : jumps
'       [4] : lazy
'       [5] : over
'       [6] : QUICK
'       [7] : the
'       [8] : The
'    
'    After sorting the entire array using the reverse case-insensitive comparer:
'       [0] : the
'       [1] : The
'       [2] : QUICK
'       [3] : over
'       [4] : lazy
'       [5] : jumps
'       [6] : FOX
'       [7] : dog
'       [8] : BROWN

注解

array 指定元素范围内的每个元素都必须实现 IComparable 接口,以便能够与 中的每个 array其他元素进行比较。

如果未成功完成排序,则结果为未定义。

此方法使用 introsort) 算法 (自省排序,如下所示:

  • 如果分区大小小于或等于 16 个元素,则使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 Heapsort 算法。

  • 否则,它使用 Quicksort 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则它们的顺序可能不会保留。 相反,稳定的排序会保留相等的元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

另请参阅

适用于

Sort(Array, Array, IComparer)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的关键字,使用指定的 IComparer,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)进行排序。

public:
 static void Sort(Array ^ keys, Array ^ items, System::Collections::IComparer ^ comparer);
public static void Sort (Array keys, Array items, System.Collections.IComparer comparer);
public static void Sort (Array keys, Array? items, System.Collections.IComparer? comparer);
static member Sort : Array * Array * System.Collections.IComparer -> unit
Public Shared Sub Sort (keys As Array, items As Array, comparer As IComparer)

参数

keys
Array

一维 Array,其中包含要排序的关键字。

items
Array

一维 Array,其中包含与 keysArray 中每个关键字对应的项。

- 或 -

如果为 null,则只对 keysArray 进行排序。

comparer
IComparer

比较元素时要使用的 IComparer 实现。

- 或 -

若为 null,则使用每个元素的 IComparable 实现。

例外

keysnull

keysArray 是多维的。

- 或 -

itemsArray 是多维的。

items 不为 null,且 keys 的长度大于 items 的长度。

- 或 -

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

comparernull,且 keysArray 中的一个或多个元素未实现 IComparable 接口。

示例

以下示例演示如何对两个关联的数组进行排序,其中第一个数组包含键,第二个数组包含值。 排序是使用默认比较器和反转排序顺序的自定义比较器完成的。 请注意,结果可能因当前 CultureInfo而异。

using namespace System;
using namespace System::Collections;

public ref class myReverserClass: public IComparer
{
private:

   // Calls CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare( Object^ x, Object^ y ) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare( y, x ));
   }
};

void PrintKeysAndValues( array<String^>^myKeys, array<String^>^myValues )
{
   for ( int i = 0; i < myKeys->Length; i++ )
   {
      Console::WriteLine( " {0, -10}: {1}", myKeys[ i ], myValues[ i ] );
   }
   Console::WriteLine();
}

int main()
{
   // Creates and initializes a new Array and a new custom comparer.
   array<String^>^myKeys = {"red","GREEN","YELLOW","BLUE","purple","black","orange"};
   array<String^>^myValues = {"strawberries","PEARS","LIMES","BERRIES","grapes","olives","cantaloupe"};
   IComparer^ myComparer = gcnew myReverserClass;

   // Displays the values of the Array.
   Console::WriteLine( "The Array initially contains the following values:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts a section of the Array using the default comparer.
   Array::Sort( myKeys, myValues, 1, 3 );
   Console::WriteLine( "After sorting a section of the Array using the default comparer:" );

   // Sorts a section of the Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, 1, 3, myComparer );
   Console::WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the default comparer.
   Array::Sort( myKeys, myValues );
   Console::WriteLine( "After sorting the entire Array using the default comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, myComparer );
   Console::WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );
}

/* 
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
using System;
using System.Collections;

public class SamplesArray  {

   public class myReverserClass : IComparer  {

      // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      int IComparer.Compare( Object x, Object y )  {
          return( (new CaseInsensitiveComparer()).Compare( y, x ) );
      }
   }

   public static void Main()  {

      // Creates and initializes a new Array and a new custom comparer.
      String[] myKeys = { "red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange" };
      String[] myValues = { "strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe" };
      IComparer myComparer = new myReverserClass();

      // Displays the values of the Array.
      Console.WriteLine( "The Array initially contains the following values:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the default comparer.
      Array.Sort( myKeys, myValues, 1, 3 );
      Console.WriteLine( "After sorting a section of the Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, 1, 3, myComparer );
      Console.WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the default comparer.
      Array.Sort( myKeys, myValues );
      Console.WriteLine( "After sorting the entire Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, myComparer );
      Console.WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );
   }

   public static void PrintKeysAndValues( String[] myKeys, String[] myValues )  {
      for ( int i = 0; i < myKeys.Length; i++ )  {
         Console.WriteLine( "   {0,-10}: {1}", myKeys[i], myValues[i] );
      }
      Console.WriteLine();
   }
}


/*
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
open System
open System.Collections

type MyReverserClass() = 
    interface IComparer with
        member _.Compare(x, y) =
            // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let printKeysAndValues (myKeys: string []) (myValues: string []) =
    for i = 0 to myKeys.Length - 1 do
        printfn $"   {myKeys[i],-10}: {myValues[i]}"
    printfn ""

// Creates and initializes a new Array and a new custom comparer.
let myKeys = [| "red"; "GREEN"; "YELLOW"; "BLUE"; "purple"; "black"; "orange" |]
let myValues = [| "strawberries"; "PEARS"; "LIMES"; "BERRIES"; "grapes"; "olives"; "cantaloupe" |]
let myComparer = MyReverserClass()

// Displays the values of the Array.
printfn "The Array initially contains the following values:"
printKeysAndValues myKeys myValues 

// Sorts a section of the Array using the default comparer.
Array.Sort(myKeys, myValues, 1, 3)
printfn "After sorting a section of the Array using the default comparer:" 
printKeysAndValues myKeys myValues

// Sorts a section of the Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, 1, 3, myComparer)
printfn "After sorting a section of the Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the default comparer.
Array.Sort(myKeys, myValues)
printfn "After sorting the entire Array using the default comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, myComparer)
printfn "After sorting the entire Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues


// This code produces the following output.
//     The Array initially contains the following values:
//        red       : strawberries
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the default comparer:
//        red       : strawberries
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the reverse case-insensitive comparer:
//        red       : strawberries
//        YELLOW    : LIMES
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting the entire Array using the default comparer:
//        black     : olives
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        orange    : cantaloupe
//        purple    : grapes
//        red       : strawberries
//        YELLOW    : LIMES
//     
//     After sorting the entire Array using the reverse case-insensitive comparer:
//        YELLOW    : LIMES
//        red       : strawberries
//        purple    : grapes
//        orange    : cantaloupe
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        black     : olives
Imports System.Collections

Public Class SamplesArray

   Public Class myReverserClass
      Implements IComparer

      ' Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      Function Compare(x As [Object], y As [Object]) As Integer _
         Implements IComparer.Compare
         Return New CaseInsensitiveComparer().Compare(y, x)
      End Function 'IComparer.Compare

   End Class


   Public Shared Sub Main()

      ' Creates and initializes a new Array and a new custom comparer.
      Dim myKeys As [String]() =  {"red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange"}
      Dim myValues As [String]() =  {"strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe"}
      Dim myComparer = New myReverserClass()

      ' Displays the values of the Array.
      Console.WriteLine("The Array initially contains the following values:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the default comparer.
      Array.Sort(myKeys, myValues, 1, 3)
      Console.WriteLine("After sorting a section of the Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, 1, 3, myComparer)
      Console.WriteLine("After sorting a section of the Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the default comparer.
      Array.Sort(myKeys, myValues)
      Console.WriteLine("After sorting the entire Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, myComparer)
      Console.WriteLine("After sorting the entire Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

   End Sub


   Public Shared Sub PrintKeysAndValues(myKeys() As [String], myValues() As [String])

      Dim i As Integer
      For i = 0 To myKeys.Length - 1
         Console.WriteLine("   {0,-10}: {1}", myKeys(i), myValues(i))
      Next i
      Console.WriteLine()

   End Sub

End Class


'This code produces the following output.
'
'The Array initially contains the following values:
'   red       : strawberries
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the default comparer:
'   red       : strawberries
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the reverse case-insensitive comparer:
'   red       : strawberries
'   YELLOW    : LIMES
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting the entire Array using the default comparer:
'   black     : olives
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   orange    : cantaloupe
'   purple    : grapes
'   red       : strawberries
'   YELLOW    : LIMES
'
'After sorting the entire Array using the reverse case-insensitive comparer:
'   YELLOW    : LIMES
'   red       : strawberries
'   purple    : grapes
'   orange    : cantaloupe
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   black     : olives

注解

中的每个键在 keysArrayitemsArray都有相应的项。 在排序过程中重新定位键时,中相应的项 itemsArray 同样会重新定位。 因此, itemsArray 根据 中相应键的排列方式对 keysArray进行排序。

如果 comparernull,则 中的每个 keysArray 键都必须实现 IComparable 接口,以便能够与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法进行排序;执行此操作会 ArgumentException引发 。

如果排序未成功完成,则结果未定义。

.NET 包括下表中列出的预定义 IComparer 实现。

实现 描述
System.Collections.CaseInsensitiveComparer 比较任意两个对象,但对字符串执行不区分大小写的比较。
Comparer.Default 使用当前区域性的排序约定比较任意两个对象。
Comparer.DefaultInvariant 使用固定区域性的排序约定比较任意两个对象。
Comparer<T>.Default 使用类型 T 的默认排序顺序比较类型的两个对象。

还可以通过向 参数提供自己的 IComparer 实现实例来支持 comparer 自定义比较。 该示例通过定义一个 IComparer 实现来执行此操作,该实现将反转默认排序顺序并执行不区分大小写的字符串比较。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengthkeys

调用方说明

.NET Framework 4 及更早版本仅使用 Quicksort 算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort(Array, Array)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的关键字,使用每个关键字的 IComparable 实现,对两个一维 Array 对象(一个包含关键字,另一个包含对应的项)进行排序。

public:
 static void Sort(Array ^ keys, Array ^ items);
public static void Sort (Array keys, Array items);
public static void Sort (Array keys, Array? items);
static member Sort : Array * Array -> unit
Public Shared Sub Sort (keys As Array, items As Array)

参数

keys
Array

一维 Array,其中包含要排序的关键字。

items
Array

一维 Array,其中包含与 keysArray 中每个关键字对应的项。

- 或 -

如果为 null,则只对 keysArray 进行排序。

例外

keysnull

keysArray 是多维的。

- 或 -

itemsArray 是多维的。

items 不为 null,且 keys 的长度大于 items 的长度。

keysArray 中的一个或多个元素未实现 IComparable 接口。

示例

以下示例演示如何对两个关联的数组进行排序,其中第一个数组包含键,第二个数组包含值。 排序是使用默认比较器和反转排序顺序的自定义比较器完成的。 请注意,结果可能因当前 CultureInfo而异。

using namespace System;
using namespace System::Collections;

public ref class myReverserClass: public IComparer
{
private:

   // Calls CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare( Object^ x, Object^ y ) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare( y, x ));
   }
};

void PrintKeysAndValues( array<String^>^myKeys, array<String^>^myValues )
{
   for ( int i = 0; i < myKeys->Length; i++ )
   {
      Console::WriteLine( " {0, -10}: {1}", myKeys[ i ], myValues[ i ] );
   }
   Console::WriteLine();
}

int main()
{
   // Creates and initializes a new Array and a new custom comparer.
   array<String^>^myKeys = {"red","GREEN","YELLOW","BLUE","purple","black","orange"};
   array<String^>^myValues = {"strawberries","PEARS","LIMES","BERRIES","grapes","olives","cantaloupe"};
   IComparer^ myComparer = gcnew myReverserClass;

   // Displays the values of the Array.
   Console::WriteLine( "The Array initially contains the following values:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts a section of the Array using the default comparer.
   Array::Sort( myKeys, myValues, 1, 3 );
   Console::WriteLine( "After sorting a section of the Array using the default comparer:" );

   // Sorts a section of the Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, 1, 3, myComparer );
   Console::WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the default comparer.
   Array::Sort( myKeys, myValues );
   Console::WriteLine( "After sorting the entire Array using the default comparer:" );
   PrintKeysAndValues( myKeys, myValues );

   // Sorts the entire Array using the reverse case-insensitive comparer.
   Array::Sort( myKeys, myValues, myComparer );
   Console::WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
   PrintKeysAndValues( myKeys, myValues );
}

/* 
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
using System;
using System.Collections;

public class SamplesArray  {

   public class myReverserClass : IComparer  {

      // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      int IComparer.Compare( Object x, Object y )  {
          return( (new CaseInsensitiveComparer()).Compare( y, x ) );
      }
   }

   public static void Main()  {

      // Creates and initializes a new Array and a new custom comparer.
      String[] myKeys = { "red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange" };
      String[] myValues = { "strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe" };
      IComparer myComparer = new myReverserClass();

      // Displays the values of the Array.
      Console.WriteLine( "The Array initially contains the following values:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the default comparer.
      Array.Sort( myKeys, myValues, 1, 3 );
      Console.WriteLine( "After sorting a section of the Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, 1, 3, myComparer );
      Console.WriteLine( "After sorting a section of the Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the default comparer.
      Array.Sort( myKeys, myValues );
      Console.WriteLine( "After sorting the entire Array using the default comparer:" );
      PrintKeysAndValues( myKeys, myValues );

      // Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort( myKeys, myValues, myComparer );
      Console.WriteLine( "After sorting the entire Array using the reverse case-insensitive comparer:" );
      PrintKeysAndValues( myKeys, myValues );
   }

   public static void PrintKeysAndValues( String[] myKeys, String[] myValues )  {
      for ( int i = 0; i < myKeys.Length; i++ )  {
         Console.WriteLine( "   {0,-10}: {1}", myKeys[i], myValues[i] );
      }
      Console.WriteLine();
   }
}


/*
This code produces the following output.

The Array initially contains the following values:
   red       : strawberries
   GREEN     : PEARS
   YELLOW    : LIMES
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the default comparer:
   red       : strawberries
   BLUE      : BERRIES
   GREEN     : PEARS
   YELLOW    : LIMES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting a section of the Array using the reverse case-insensitive comparer:
   red       : strawberries
   YELLOW    : LIMES
   GREEN     : PEARS
   BLUE      : BERRIES
   purple    : grapes
   black     : olives
   orange    : cantaloupe

After sorting the entire Array using the default comparer:
   black     : olives
   BLUE      : BERRIES
   GREEN     : PEARS
   orange    : cantaloupe
   purple    : grapes
   red       : strawberries
   YELLOW    : LIMES

After sorting the entire Array using the reverse case-insensitive comparer:
   YELLOW    : LIMES
   red       : strawberries
   purple    : grapes
   orange    : cantaloupe
   GREEN     : PEARS
   BLUE      : BERRIES
   black     : olives

*/
open System
open System.Collections

type MyReverserClass() = 
    interface IComparer with
        member _.Compare(x, y) =
            // Calls CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let printKeysAndValues (myKeys: string []) (myValues: string []) =
    for i = 0 to myKeys.Length - 1 do
        printfn $"   {myKeys[i],-10}: {myValues[i]}"
    printfn ""

// Creates and initializes a new Array and a new custom comparer.
let myKeys = [| "red"; "GREEN"; "YELLOW"; "BLUE"; "purple"; "black"; "orange" |]
let myValues = [| "strawberries"; "PEARS"; "LIMES"; "BERRIES"; "grapes"; "olives"; "cantaloupe" |]
let myComparer = MyReverserClass()

// Displays the values of the Array.
printfn "The Array initially contains the following values:"
printKeysAndValues myKeys myValues 

// Sorts a section of the Array using the default comparer.
Array.Sort(myKeys, myValues, 1, 3)
printfn "After sorting a section of the Array using the default comparer:" 
printKeysAndValues myKeys myValues

// Sorts a section of the Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, 1, 3, myComparer)
printfn "After sorting a section of the Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the default comparer.
Array.Sort(myKeys, myValues)
printfn "After sorting the entire Array using the default comparer:"
printKeysAndValues myKeys myValues

// Sorts the entire Array using the reverse case-insensitive comparer.
Array.Sort(myKeys, myValues, myComparer)
printfn "After sorting the entire Array using the reverse case-insensitive comparer:"
printKeysAndValues myKeys myValues


// This code produces the following output.
//     The Array initially contains the following values:
//        red       : strawberries
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the default comparer:
//        red       : strawberries
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        YELLOW    : LIMES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting a section of the Array using the reverse case-insensitive comparer:
//        red       : strawberries
//        YELLOW    : LIMES
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        purple    : grapes
//        black     : olives
//        orange    : cantaloupe
//     
//     After sorting the entire Array using the default comparer:
//        black     : olives
//        BLUE      : BERRIES
//        GREEN     : PEARS
//        orange    : cantaloupe
//        purple    : grapes
//        red       : strawberries
//        YELLOW    : LIMES
//     
//     After sorting the entire Array using the reverse case-insensitive comparer:
//        YELLOW    : LIMES
//        red       : strawberries
//        purple    : grapes
//        orange    : cantaloupe
//        GREEN     : PEARS
//        BLUE      : BERRIES
//        black     : olives
Imports System.Collections

Public Class SamplesArray

   Public Class myReverserClass
      Implements IComparer

      ' Calls CaseInsensitiveComparer.Compare with the parameters reversed.
      Function Compare(x As [Object], y As [Object]) As Integer _
         Implements IComparer.Compare
         Return New CaseInsensitiveComparer().Compare(y, x)
      End Function 'IComparer.Compare

   End Class


   Public Shared Sub Main()

      ' Creates and initializes a new Array and a new custom comparer.
      Dim myKeys As [String]() =  {"red", "GREEN", "YELLOW", "BLUE", "purple", "black", "orange"}
      Dim myValues As [String]() =  {"strawberries", "PEARS", "LIMES", "BERRIES", "grapes", "olives", "cantaloupe"}
      Dim myComparer = New myReverserClass()

      ' Displays the values of the Array.
      Console.WriteLine("The Array initially contains the following values:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the default comparer.
      Array.Sort(myKeys, myValues, 1, 3)
      Console.WriteLine("After sorting a section of the Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts a section of the Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, 1, 3, myComparer)
      Console.WriteLine("After sorting a section of the Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the default comparer.
      Array.Sort(myKeys, myValues)
      Console.WriteLine("After sorting the entire Array using the default comparer:")
      PrintKeysAndValues(myKeys, myValues)

      ' Sorts the entire Array using the reverse case-insensitive comparer.
      Array.Sort(myKeys, myValues, myComparer)
      Console.WriteLine("After sorting the entire Array using the reverse case-insensitive comparer:")
      PrintKeysAndValues(myKeys, myValues)

   End Sub


   Public Shared Sub PrintKeysAndValues(myKeys() As [String], myValues() As [String])

      Dim i As Integer
      For i = 0 To myKeys.Length - 1
         Console.WriteLine("   {0,-10}: {1}", myKeys(i), myValues(i))
      Next i
      Console.WriteLine()

   End Sub

End Class


'This code produces the following output.
'
'The Array initially contains the following values:
'   red       : strawberries
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the default comparer:
'   red       : strawberries
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   YELLOW    : LIMES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting a section of the Array using the reverse case-insensitive comparer:
'   red       : strawberries
'   YELLOW    : LIMES
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   purple    : grapes
'   black     : olives
'   orange    : cantaloupe
'
'After sorting the entire Array using the default comparer:
'   black     : olives
'   BLUE      : BERRIES
'   GREEN     : PEARS
'   orange    : cantaloupe
'   purple    : grapes
'   red       : strawberries
'   YELLOW    : LIMES
'
'After sorting the entire Array using the reverse case-insensitive comparer:
'   YELLOW    : LIMES
'   red       : strawberries
'   purple    : grapes
'   orange    : cantaloupe
'   GREEN     : PEARS
'   BLUE      : BERRIES
'   black     : olives

注解

中的每个键在 keysArrayitemsArray都有相应的项。 在排序过程中重新定位键时,中相应的项 itemsArray 同样会重新定位。 因此, itemsArray 根据 中相应键的排列方式对 keysArray进行排序。

中的每个 keysArray 键都必须实现 接口, IComparable 以便能够与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法进行排序;执行此操作会 ArgumentException引发 。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengthkeys

另请参阅

适用于

Sort(Array)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用 Array 中每个元素的 IComparable 实现,对整个一维 Array 中的元素进行排序。

public:
 static void Sort(Array ^ array);
public static void Sort (Array array);
static member Sort : Array -> unit
Public Shared Sub Sort (array As Array)

参数

array
Array

要排序的一维 Array

例外

arraynull

array 是多维的。

array 中的一个或多个元素未实现 IComparable 接口。

示例

下面的代码示例演示如何使用默认比较器和反转排序顺序的自定义比较器对 中的 Array 值进行排序。 请注意,结果可能因当前 CultureInfo而异。

using namespace System;
using namespace System::Collections;

public ref class ReverseComparer : IComparer
{
public:
   // Call CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare(Object^ x, Object^ y) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare(y, x));
   }
};

void DisplayValues(array<String^>^ arr)
{
   for (int i = arr->GetLowerBound(0); i <= arr->GetUpperBound(0); i++)
      Console::WriteLine( "   [{0}] : {1}", i, arr[ i ] );

   Console::WriteLine();
}

int main()
{
   // Create and initialize a new array. and a new custom comparer.
   array<String^>^ words = { "The","QUICK","BROWN","FOX","jumps",
                             "over","the","lazy","dog" };
   // Instantiate the reverse comparer.
   IComparer^ revComparer = gcnew ReverseComparer();
   
   // Display the values of the Array.
   Console::WriteLine( "The original order of elements in the array:" );
   DisplayValues(words);

   // Sort a section of the array using the default comparer.
   Array::Sort(words, 1, 3);
   Console::WriteLine( "After sorting elements 1-3 by using the default comparer:");
   DisplayValues(words);

   // Sort a section of the array using the reverse case-insensitive comparer.
   Array::Sort(words, 1, 3, revComparer);
   Console::WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
   DisplayValues(words);

   // Sort the entire array using the default comparer.
   Array::Sort(words);
   Console::WriteLine( "After sorting the entire array by using the default comparer:");
   DisplayValues(words);

   // Sort the entire array by using the reverse case-insensitive comparer.
   Array::Sort(words, revComparer);
   Console::WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
   DisplayValues(words);
}

/* 
This code produces the following output.

The Array initially contains the following values:
   [0] : The
   [1] : QUICK
   [2] : BROWN
   [3] : FOX
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the default comparer:
   [0] : The
   [1] : BROWN
   [2] : FOX
   [3] : QUICK
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the reverse case-insensitive comparer:
   [0] : The
   [1] : QUICK
   [2] : FOX
   [3] : BROWN
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting the entire Array using the default comparer:
   [0] : BROWN
   [1] : dog
   [2] : FOX
   [3] : jumps
   [4] : lazy
   [5] : over
   [6] : QUICK
   [7] : the
   [8] : The

After sorting the entire Array using the reverse case-insensitive comparer:
   [0] : the
   [1] : The
   [2] : QUICK
   [3] : over
   [4] : lazy
   [5] : jumps
   [6] : FOX
   [7] : dog
   [8] : BROWN

*/
using System;
using System.Collections;

public class ReverseComparer : IComparer
{
   // Call CaseInsensitiveComparer.Compare with the parameters reversed.
   public int Compare(Object x, Object y)
   {
       return (new CaseInsensitiveComparer()).Compare(y, x );
   }
}

public class Example
{
   public static void Main()
   {
      // Create and initialize a new array.
      String[] words = { "The", "QUICK", "BROWN", "FOX", "jumps",
                         "over", "the", "lazy", "dog" };
      // Instantiate the reverse comparer.
      IComparer revComparer = new ReverseComparer();

      // Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" );
      DisplayValues(words);

      // Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3);
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:");
      DisplayValues(words);

      // Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer);
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
      DisplayValues(words);

      // Sort the entire array using the default comparer.
      Array.Sort(words);
      Console.WriteLine( "After sorting the entire array by using the default comparer:");
      DisplayValues(words);

      // Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer);
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
      DisplayValues(words);
   }

   public static void DisplayValues(String[] arr)
   {
      for ( int i = arr.GetLowerBound(0); i <= arr.GetUpperBound(0);
            i++ )  {
         Console.WriteLine( "   [{0}] : {1}", i, arr[i] );
      }
      Console.WriteLine();
   }
}
// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
open System
open System.Collections

type ReverseComparer() =
    interface IComparer with
        member _.Compare(x, y) =
            // Call CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let displayValues (arr: string []) = 
    for i = 0 to arr.Length - 1 do
        printfn $"   [{i}] : {arr[i]}"
    printfn ""

// Create and initialize a new array.
let words = 
    [| "The"; "QUICK"; "BROWN"; "FOX"; "jumps"
       "over"; "the"; "lazy"; "dog" |]

// Instantiate the reverse comparer.
let revComparer = ReverseComparer()

// Display the values of the array.
printfn "The original order of elements in the array:" 
displayValues words

// Sort a section of the array using the default comparer.
Array.Sort(words, 1, 3)
printfn "After sorting elements 1-3 by using the default comparer:"
displayValues words

// Sort a section of the array using the reverse case-insensitive comparer.
Array.Sort(words, 1, 3, revComparer)
printfn "After sorting elements 1-3 by using the reverse case-insensitive comparer:"
displayValues words

// Sort the entire array using the default comparer.
Array.Sort words
printfn "After sorting the entire array by using the default comparer:"
displayValues words

// Sort the entire array by using the reverse case-insensitive comparer.
Array.Sort(words, revComparer)
printfn "After sorting the entire array using the reverse case-insensitive comparer:"
displayValues words

// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
Imports System.Collections

Public Class ReverseComparer : Implements IComparer
   ' Call CaseInsensitiveComparer.Compare with the parameters reversed.
   Function Compare(x As Object, y As Object) As Integer _
            Implements IComparer.Compare
      Return New CaseInsensitiveComparer().Compare(y, x)
   End Function 
End Class

Public Module Example
   Public Sub Main()
      ' Create and initialize a new array.
      Dim words() As String =  { "The", "QUICK", "BROWN", "FOX", "jumps", 
                                 "over", "the", "lazy", "dog" }
      ' Instantiate a new custom comparer.
      Dim revComparer As New ReverseComparer()

      ' Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" )
      DisplayValues(words)

      ' Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3)
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:")
      DisplayValues(words)

      ' Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer)
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:")
      DisplayValues(words)

      ' Sort the entire array using the default comparer.
      Array.Sort(words)
      Console.WriteLine( "After sorting the entire array by using the default comparer:")
      DisplayValues(words)

      ' Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer)
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:")
      DisplayValues(words)
   End Sub 

   Public Sub DisplayValues(arr() As String)
      For i As Integer = arr.GetLowerBound(0) To arr.GetUpperBound(0)
         Console.WriteLine("   [{0}] : {1}", i, arr(i))
      Next 
      Console.WriteLine()
   End Sub 
End Module 
' The example displays the following output:
'    The original order of elements in the array:
'       [0] : The
'       [1] : QUICK
'       [2] : BROWN
'       [3] : FOX
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the default comparer:
'       [0] : The
'       [1] : BROWN
'       [2] : FOX
'       [3] : QUICK
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the reverse case-insensitive comparer:
'       [0] : The
'       [1] : QUICK
'       [2] : FOX
'       [3] : BROWN
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting the entire array by using the default comparer:
'       [0] : BROWN
'       [1] : dog
'       [2] : FOX
'       [3] : jumps
'       [4] : lazy
'       [5] : over
'       [6] : QUICK
'       [7] : the
'       [8] : The
'    
'    After sorting the entire array using the reverse case-insensitive comparer:
'       [0] : the
'       [1] : The
'       [2] : QUICK
'       [3] : over
'       [4] : lazy
'       [5] : jumps
'       [6] : FOX
'       [7] : dog
'       [8] : BROWN

注解

的每个元素 array 都必须实现 IComparable 接口,以便能够与 中的每个 array其他元素进行比较。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengtharray

另请参阅

适用于

Sort(Array, IComparer)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用指定的 IComparer,对一维 Array 中的元素进行排序。

public:
 static void Sort(Array ^ array, System::Collections::IComparer ^ comparer);
public static void Sort (Array array, System.Collections.IComparer comparer);
public static void Sort (Array array, System.Collections.IComparer? comparer);
static member Sort : Array * System.Collections.IComparer -> unit
Public Shared Sub Sort (array As Array, comparer As IComparer)

参数

array
Array

要排序的一维数组。

comparer
IComparer

比较元素时要使用的实现。

- 或 -

若为 null,则使用每个元素的 IComparable 实现。

例外

arraynull

array 是多维的。

comparernull,且 array 中的一个或多个元素未实现 IComparable 接口。

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

示例

以下示例使用默认比较器对字符串数组中的值进行排序。 它还定义了一个名为 ReverseComparer 的自定义IComparer实现,该实现可反转对象的默认排序顺序,同时执行不区分大小写的字符串比较。 请注意,输出可能因当前区域性而异。

using namespace System;
using namespace System::Collections;

public ref class ReverseComparer : IComparer
{
public:
   // Call CaseInsensitiveComparer::Compare with the parameters reversed.
   virtual int Compare(Object^ x, Object^ y) = IComparer::Compare
   {
      return ((gcnew CaseInsensitiveComparer)->Compare(y, x));
   }
};

void DisplayValues(array<String^>^ arr)
{
   for (int i = arr->GetLowerBound(0); i <= arr->GetUpperBound(0); i++)
      Console::WriteLine( "   [{0}] : {1}", i, arr[ i ] );

   Console::WriteLine();
}

int main()
{
   // Create and initialize a new array. and a new custom comparer.
   array<String^>^ words = { "The","QUICK","BROWN","FOX","jumps",
                             "over","the","lazy","dog" };
   // Instantiate the reverse comparer.
   IComparer^ revComparer = gcnew ReverseComparer();
   
   // Display the values of the Array.
   Console::WriteLine( "The original order of elements in the array:" );
   DisplayValues(words);

   // Sort a section of the array using the default comparer.
   Array::Sort(words, 1, 3);
   Console::WriteLine( "After sorting elements 1-3 by using the default comparer:");
   DisplayValues(words);

   // Sort a section of the array using the reverse case-insensitive comparer.
   Array::Sort(words, 1, 3, revComparer);
   Console::WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
   DisplayValues(words);

   // Sort the entire array using the default comparer.
   Array::Sort(words);
   Console::WriteLine( "After sorting the entire array by using the default comparer:");
   DisplayValues(words);

   // Sort the entire array by using the reverse case-insensitive comparer.
   Array::Sort(words, revComparer);
   Console::WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
   DisplayValues(words);
}

/* 
This code produces the following output.

The Array initially contains the following values:
   [0] : The
   [1] : QUICK
   [2] : BROWN
   [3] : FOX
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the default comparer:
   [0] : The
   [1] : BROWN
   [2] : FOX
   [3] : QUICK
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting a section of the Array using the reverse case-insensitive comparer:
   [0] : The
   [1] : QUICK
   [2] : FOX
   [3] : BROWN
   [4] : jumps
   [5] : over
   [6] : the
   [7] : lazy
   [8] : dog

After sorting the entire Array using the default comparer:
   [0] : BROWN
   [1] : dog
   [2] : FOX
   [3] : jumps
   [4] : lazy
   [5] : over
   [6] : QUICK
   [7] : the
   [8] : The

After sorting the entire Array using the reverse case-insensitive comparer:
   [0] : the
   [1] : The
   [2] : QUICK
   [3] : over
   [4] : lazy
   [5] : jumps
   [6] : FOX
   [7] : dog
   [8] : BROWN

*/
using System;
using System.Collections;

public class ReverseComparer : IComparer
{
   // Call CaseInsensitiveComparer.Compare with the parameters reversed.
   public int Compare(Object x, Object y)
   {
       return (new CaseInsensitiveComparer()).Compare(y, x );
   }
}

public class Example
{
   public static void Main()
   {
      // Create and initialize a new array.
      String[] words = { "The", "QUICK", "BROWN", "FOX", "jumps",
                         "over", "the", "lazy", "dog" };
      // Instantiate the reverse comparer.
      IComparer revComparer = new ReverseComparer();

      // Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" );
      DisplayValues(words);

      // Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3);
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:");
      DisplayValues(words);

      // Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer);
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:");
      DisplayValues(words);

      // Sort the entire array using the default comparer.
      Array.Sort(words);
      Console.WriteLine( "After sorting the entire array by using the default comparer:");
      DisplayValues(words);

      // Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer);
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:");
      DisplayValues(words);
   }

   public static void DisplayValues(String[] arr)
   {
      for ( int i = arr.GetLowerBound(0); i <= arr.GetUpperBound(0);
            i++ )  {
         Console.WriteLine( "   [{0}] : {1}", i, arr[i] );
      }
      Console.WriteLine();
   }
}
// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
open System
open System.Collections

type ReverseComparer() =
    interface IComparer with
        member _.Compare(x, y) =
            // Call CaseInsensitiveComparer.Compare with the parameters reversed.
            CaseInsensitiveComparer().Compare(y, x)

let displayValues (arr: string []) = 
    for i = 0 to arr.Length - 1 do
        printfn $"   [{i}] : {arr[i]}"
    printfn ""

// Create and initialize a new array.
let words = 
    [| "The"; "QUICK"; "BROWN"; "FOX"; "jumps"
       "over"; "the"; "lazy"; "dog" |]

// Instantiate the reverse comparer.
let revComparer = ReverseComparer()

// Display the values of the array.
printfn "The original order of elements in the array:" 
displayValues words

// Sort a section of the array using the default comparer.
Array.Sort(words, 1, 3)
printfn "After sorting elements 1-3 by using the default comparer:"
displayValues words

// Sort a section of the array using the reverse case-insensitive comparer.
Array.Sort(words, 1, 3, revComparer)
printfn "After sorting elements 1-3 by using the reverse case-insensitive comparer:"
displayValues words

// Sort the entire array using the default comparer.
Array.Sort words
printfn "After sorting the entire array by using the default comparer:"
displayValues words

// Sort the entire array by using the reverse case-insensitive comparer.
Array.Sort(words, revComparer)
printfn "After sorting the entire array using the reverse case-insensitive comparer:"
displayValues words

// The example displays the following output:
//    The original order of elements in the array:
//       [0] : The
//       [1] : QUICK
//       [2] : BROWN
//       [3] : FOX
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the default comparer:
//       [0] : The
//       [1] : BROWN
//       [2] : FOX
//       [3] : QUICK
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting elements 1-3 by using the reverse case-insensitive comparer:
//       [0] : The
//       [1] : QUICK
//       [2] : FOX
//       [3] : BROWN
//       [4] : jumps
//       [5] : over
//       [6] : the
//       [7] : lazy
//       [8] : dog
//
//    After sorting the entire array by using the default comparer:
//       [0] : BROWN
//       [1] : dog
//       [2] : FOX
//       [3] : jumps
//       [4] : lazy
//       [5] : over
//       [6] : QUICK
//       [7] : the
//       [8] : The
//
//    After sorting the entire array using the reverse case-insensitive comparer:
//       [0] : the
//       [1] : The
//       [2] : QUICK
//       [3] : over
//       [4] : lazy
//       [5] : jumps
//       [6] : FOX
//       [7] : dog
//       [8] : BROWN
Imports System.Collections

Public Class ReverseComparer : Implements IComparer
   ' Call CaseInsensitiveComparer.Compare with the parameters reversed.
   Function Compare(x As Object, y As Object) As Integer _
            Implements IComparer.Compare
      Return New CaseInsensitiveComparer().Compare(y, x)
   End Function 
End Class

Public Module Example
   Public Sub Main()
      ' Create and initialize a new array.
      Dim words() As String =  { "The", "QUICK", "BROWN", "FOX", "jumps", 
                                 "over", "the", "lazy", "dog" }
      ' Instantiate a new custom comparer.
      Dim revComparer As New ReverseComparer()

      ' Display the values of the array.
      Console.WriteLine( "The original order of elements in the array:" )
      DisplayValues(words)

      ' Sort a section of the array using the default comparer.
      Array.Sort(words, 1, 3)
      Console.WriteLine( "After sorting elements 1-3 by using the default comparer:")
      DisplayValues(words)

      ' Sort a section of the array using the reverse case-insensitive comparer.
      Array.Sort(words, 1, 3, revComparer)
      Console.WriteLine( "After sorting elements 1-3 by using the reverse case-insensitive comparer:")
      DisplayValues(words)

      ' Sort the entire array using the default comparer.
      Array.Sort(words)
      Console.WriteLine( "After sorting the entire array by using the default comparer:")
      DisplayValues(words)

      ' Sort the entire array by using the reverse case-insensitive comparer.
      Array.Sort(words, revComparer)
      Console.WriteLine( "After sorting the entire array using the reverse case-insensitive comparer:")
      DisplayValues(words)
   End Sub 

   Public Sub DisplayValues(arr() As String)
      For i As Integer = arr.GetLowerBound(0) To arr.GetUpperBound(0)
         Console.WriteLine("   [{0}] : {1}", i, arr(i))
      Next 
      Console.WriteLine()
   End Sub 
End Module 
' The example displays the following output:
'    The original order of elements in the array:
'       [0] : The
'       [1] : QUICK
'       [2] : BROWN
'       [3] : FOX
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the default comparer:
'       [0] : The
'       [1] : BROWN
'       [2] : FOX
'       [3] : QUICK
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting elements 1-3 by using the reverse case-insensitive comparer:
'       [0] : The
'       [1] : QUICK
'       [2] : FOX
'       [3] : BROWN
'       [4] : jumps
'       [5] : over
'       [6] : the
'       [7] : lazy
'       [8] : dog
'    
'    After sorting the entire array by using the default comparer:
'       [0] : BROWN
'       [1] : dog
'       [2] : FOX
'       [3] : jumps
'       [4] : lazy
'       [5] : over
'       [6] : QUICK
'       [7] : the
'       [8] : The
'    
'    After sorting the entire array using the reverse case-insensitive comparer:
'       [0] : the
'       [1] : The
'       [2] : QUICK
'       [3] : over
'       [4] : lazy
'       [5] : jumps
'       [6] : FOX
'       [7] : dog
'       [8] : BROWN

注解

如果 comparernull,则 的每个 array 元素都必须实现 IComparable 接口,以便能够与 中 array其他元素进行比较。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengtharray

.NET 包括下表中列出的预定义 IComparer 实现。

实现 描述
System.Collections.CaseInsensitiveComparer 比较任意两个对象,但对字符串执行不区分大小写的比较。
Comparer.Default 使用当前区域性的排序约定比较任意两个对象。
Comparer.DefaultInvariant 使用固定区域性的排序约定比较任意两个对象。
Comparer<T>.Default 使用类型 T 的默认排序顺序比较类型的两个对象。

还可以通过向 参数提供自己的 IComparer 实现实例来支持 comparer 自定义比较。 该示例通过定义一个 ReverseComparer 类来执行此操作,该类反转类型实例的默认排序顺序并执行不区分大小写的字符串比较。

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort<T>(T[])

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用 Array 中每个元素的 IComparable<T> 泛型接口实现,对整个 Array 中的元素进行排序。

public:
generic <typename T>
 static void Sort(cli::array <T> ^ array);
public static void Sort<T> (T[] array);
static member Sort : 'T[] -> unit
Public Shared Sub Sort(Of T) (array As T())

类型参数

T

数组元素的类型。

参数

array
T[]

要排序的从零开始的一维 Array

例外

arraynull

array 中的一个或多个元素未实现 IComparable<T> 泛型接口。

示例

下面的代码示例演示泛 Sort<T>(T[]) 型方法重载和 BinarySearch<T>(T[], T) 泛型方法重载。 创建字符串数组,不按特定顺序创建。

数组将再次显示、排序和显示。

注意

SortBinarySearch 泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从第一个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

然后,泛 BinarySearch<T>(T[], T) 型方法重载用于搜索两个字符串,一个不在数组中,一个字符串。 方法的 BinarySearch 数组和返回值将 ShowWhere 传递给泛型方法,如果找到该字符串,则泛型方法显示索引值;否则,如果搜索字符串位于数组中,则搜索字符串之间的元素将位于其中。 如果字符串不是 n 数组,则索引为负值,因此该方法 ShowWhere 采用 C# 中的 ~运算符和 Visual C++ Xor 中的 -1 (位补码,在 Visual Basic) 中获取大于搜索字符串的列表的第一个元素的索引。

using namespace System;
using namespace System::Collections::Generic;

generic<typename T> void ShowWhere(array<T>^ arr, int index)
{
    if (index<0)
    {
        // If the index is negative, it represents the bitwise
        // complement of the next larger element in the array.
        //
        index = ~index;

        Console::Write("Not found. Sorts between: ");

        if (index == 0)
            Console::Write("beginning of array and ");
        else
            Console::Write("{0} and ", arr[index-1]);

        if (index == arr->Length)
            Console::WriteLine("end of array.");
        else
            Console::WriteLine("{0}.", arr[index]);
    }
    else
    {
        Console::WriteLine("Found at index {0}.", index);
    }
};

void main()
{
    array<String^>^ dinosaurs = {"Pachycephalosaurus", 
                                 "Amargasaurus", 
                                 "Tyrannosaurus", 
                                 "Mamenchisaurus", 
                                 "Deinonychus", 
                                 "Edmontosaurus"};

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    Console::WriteLine("\nSort");
    Array::Sort(dinosaurs);

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    Console::WriteLine("\nBinarySearch for 'Coelophysis':");
    int index = Array::BinarySearch(dinosaurs, "Coelophysis");
    ShowWhere(dinosaurs, index);

    Console::WriteLine("\nBinarySearch for 'Tyrannosaurus':");
    index = Array::BinarySearch(dinosaurs, "Tyrannosaurus");
    ShowWhere(dinosaurs, index);
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Tyrannosaurus
Mamenchisaurus
Deinonychus
Edmontosaurus

Sort

Amargasaurus
Deinonychus
Edmontosaurus
Mamenchisaurus
Pachycephalosaurus
Tyrannosaurus

BinarySearch for 'Coelophysis':
Not found. Sorts between: Amargasaurus and Deinonychus.

BinarySearch for 'Tyrannosaurus':
Found at index 5.
 */
using System;
using System.Collections.Generic;

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {"Pachycephalosaurus",
                              "Amargasaurus",
                              "Tyrannosaurus",
                              "Mamenchisaurus",
                              "Deinonychus",
                              "Edmontosaurus"};

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        Console.WriteLine("\nSort");
        Array.Sort(dinosaurs);

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        Console.WriteLine("\nBinarySearch for 'Coelophysis':");
        int index = Array.BinarySearch(dinosaurs, "Coelophysis");
        ShowWhere(dinosaurs, index);

        Console.WriteLine("\nBinarySearch for 'Tyrannosaurus':");
        index = Array.BinarySearch(dinosaurs, "Tyrannosaurus");
        ShowWhere(dinosaurs, index);
    }

    private static void ShowWhere<T>(T[] array, int index)
    {
        if (index<0)
        {
            // If the index is negative, it represents the bitwise
            // complement of the next larger element in the array.
            //
            index = ~index;

            Console.Write("Not found. Sorts between: ");

            if (index == 0)
                Console.Write("beginning of array and ");
            else
                Console.Write("{0} and ", array[index-1]);

            if (index == array.Length)
                Console.WriteLine("end of array.");
            else
                Console.WriteLine("{0}.", array[index]);
        }
        else
        {
            Console.WriteLine("Found at index {0}.", index);
        }
    }
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Tyrannosaurus
Mamenchisaurus
Deinonychus
Edmontosaurus

Sort

Amargasaurus
Deinonychus
Edmontosaurus
Mamenchisaurus
Pachycephalosaurus
Tyrannosaurus

BinarySearch for 'Coelophysis':
Not found. Sorts between: Amargasaurus and Deinonychus.

BinarySearch for 'Tyrannosaurus':
Found at index 5.
 */
open System

let showWhere (array: 'a []) index =
    if index < 0 then
        // If the index is negative, it represents the bitwise
        // complement of the next larger element in the array.
        let index = ~~~index

        printf "Not found. Sorts between: "

        if index = 0 then
            printf "beginning of array and "
        else
            printf $"{array[index - 1]} and "

        if index = array.Length then
            printfn "end of array."
        else
            printfn $"{array[index]}."
    else
        printfn $"Found at index {index}."

let dinosaurs =
    [| "Pachycephalosaurus"
       "Amargasaurus"
       "Tyrannosaurus"
       "Mamenchisaurus"
       "Deinonychus"
       "Edmontosaurus" |]

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

printfn "\nSort"
Array.Sort dinosaurs

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

printfn "\nBinarySearch for 'Coelophysis':"
let index = Array.BinarySearch(dinosaurs, "Coelophysis")
showWhere dinosaurs index

printfn "\nBinarySearch for 'Tyrannosaurus':"
Array.BinarySearch(dinosaurs, "Tyrannosaurus")
|> showWhere dinosaurs


// This code example produces the following output:
//
//     Pachycephalosaurus
//     Amargasaurus
//     Tyrannosaurus
//     Mamenchisaurus
//     Deinonychus
//     Edmontosaurus
//
//     Sort
//
//     Amargasaurus
//     Deinonychus
//     Edmontosaurus
//     Mamenchisaurus
//     Pachycephalosaurus
//     Tyrannosaurus
//
//     BinarySearch for 'Coelophysis':
//     Not found. Sorts between: Amargasaurus and Deinonychus.
//
//     BinarySearch for 'Tyrannosaurus':
//     Found at index 5.
Imports System.Collections.Generic

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Pachycephalosaurus", _
            "Amargasaurus", _
            "Tyrannosaurus", _
            "Mamenchisaurus", _
            "Deinonychus", _
            "Edmontosaurus"  }

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Console.WriteLine(vbLf & "Sort")
        Array.Sort(dinosaurs)

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Console.WriteLine(vbLf & _
            "BinarySearch for 'Coelophysis':")
        Dim index As Integer = _
            Array.BinarySearch(dinosaurs, "Coelophysis")
        ShowWhere(dinosaurs, index)

        Console.WriteLine(vbLf & _
            "BinarySearch for 'Tyrannosaurus':")
        index = Array.BinarySearch(dinosaurs, "Tyrannosaurus")
        ShowWhere(dinosaurs, index)

    End Sub

    Private Shared Sub ShowWhere(Of T) _
        (ByVal array() As T, ByVal index As Integer) 

        If index < 0 Then
            ' If the index is negative, it represents the bitwise
            ' complement of the next larger element in the array.
            '
            index = index Xor -1

            Console.Write("Not found. Sorts between: ")

            If index = 0 Then
                Console.Write("beginning of array and ")
            Else
                Console.Write("{0} and ", array(index - 1))
            End If 

            If index = array.Length Then
                Console.WriteLine("end of array.")
            Else
                Console.WriteLine("{0}.", array(index))
            End If 
        Else
            Console.WriteLine("Found at index {0}.", index)
        End If

    End Sub

End Class

' This code example produces the following output:
'
'Pachycephalosaurus
'Amargasaurus
'Tyrannosaurus
'Mamenchisaurus
'Deinonychus
'Edmontosaurus
'
'Sort
'
'Amargasaurus
'Deinonychus
'Edmontosaurus
'Mamenchisaurus
'Pachycephalosaurus
'Tyrannosaurus
'
'BinarySearch for 'Coelophysis':
'Not found. Sorts between: Amargasaurus and Deinonychus.
'
'BinarySearch for 'Tyrannosaurus':
'Found at index 5.

注解

的每个元素 array 都必须实现 IComparable<T> 泛型接口,才能与 中 array其他元素进行比较。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengtharray

另请参阅

适用于

Sort<T>(T[], IComparer<T>)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用指定的 IComparer<T> 泛型接口,对 Array 中的元素进行排序。

public:
generic <typename T>
 static void Sort(cli::array <T> ^ array, System::Collections::Generic::IComparer<T> ^ comparer);
public static void Sort<T> (T[] array, System.Collections.Generic.IComparer<T> comparer);
public static void Sort<T> (T[] array, System.Collections.Generic.IComparer<T>? comparer);
static member Sort : 'T[] * System.Collections.Generic.IComparer<'T> -> unit
Public Shared Sub Sort(Of T) (array As T(), comparer As IComparer(Of T))

类型参数

T

数组元素的类型。

参数

array
T[]

要排序的一维零基 Array

comparer
IComparer<T>

比较元素时使用的 IComparer<T> 泛型接口实现;如果为 null,则使用每个元素的 IComparable<T> 泛型接口实现。

例外

arraynull

comparernull,且 array 中的一个或多个元素未实现 IComparable<T> 泛型接口。

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

示例

下面的代码示例演示泛 Sort<T>(T[], IComparer<T>) 型方法重载和 BinarySearch<T>(T[], T, IComparer<T>) 泛型方法重载。

该代码示例为字符串ReverseCompare定义一个名为 的替代比较器,该比较器在 Visual C++ 中实现 IComparer<string> visual CIComparer<String^>++ 中的 (IComparer(Of String)) 泛型接口。 比较器调用 CompareTo(String) 方法,并反转比较值的顺序,使字符串按从高到低的顺序排序,而不是从低到高排序。

数组将再次显示、排序和显示。 必须对数组进行排序才能使用 BinarySearch 方法。

注意

Sort<T>(T[], IComparer<T>)BinarySearch<T>(T[], T, IComparer<T>) 泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从第一个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

然后,泛 BinarySearch<T>(T[], T, IComparer<T>) 型方法重载用于搜索两个字符串,一个不在数组中,一个字符串。 方法的 BinarySearch<T>(T[], T, IComparer<T>) 数组和返回值将 ShowWhere 传递给泛型方法,如果找到该字符串,则泛型方法显示索引值;否则,如果搜索字符串位于数组中,则搜索字符串之间的元素将位于其中。 如果字符串不是 n 数组,则索引为负值,因此该方法 ShowWhere 采用 C# 中的 ~运算符和 Visual C++ Xor 中的 -1 (位补码,在 Visual Basic) 中获取大于搜索字符串的列表的第一个元素的索引。

using namespace System;
using namespace System::Collections::Generic;

public ref class ReverseComparer: IComparer<String^>
{
public:
    virtual int Compare(String^ x, String^ y)
    {
        // Compare y and x in reverse order.
        return y->CompareTo(x);
    }
};

generic<typename T> void ShowWhere(array<T>^ arr, int index)
{
    if (index<0)
    {
        // If the index is negative, it represents the bitwise
        // complement of the next larger element in the array.
        //
        index = ~index;

        Console::Write("Not found. Sorts between: ");

        if (index == 0)
            Console::Write("beginning of array and ");
        else
            Console::Write("{0} and ", arr[index-1]);

        if (index == arr->Length)
            Console::WriteLine("end of array.");
        else
            Console::WriteLine("{0}.", arr[index]);
    }
    else
    {
        Console::WriteLine("Found at index {0}.", index);
    }
};

void main()
{
    array<String^>^ dinosaurs = {"Pachycephalosaurus", 
                                 "Amargasaurus", 
                                 "Tyrannosaurus", 
                                 "Mamenchisaurus", 
                                 "Deinonychus", 
                                 "Edmontosaurus"};

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    ReverseComparer^ rc = gcnew ReverseComparer();

    Console::WriteLine("\nSort");
    Array::Sort(dinosaurs, rc);

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    Console::WriteLine("\nBinarySearch for 'Coelophysis':");
    int index = Array::BinarySearch(dinosaurs, "Coelophysis", rc);
    ShowWhere(dinosaurs, index);

    Console::WriteLine("\nBinarySearch for 'Tyrannosaurus':");
    index = Array::BinarySearch(dinosaurs, "Tyrannosaurus", rc);
    ShowWhere(dinosaurs, index);
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Tyrannosaurus
Mamenchisaurus
Deinonychus
Edmontosaurus

Sort

Tyrannosaurus
Pachycephalosaurus
Mamenchisaurus
Edmontosaurus
Deinonychus
Amargasaurus

BinarySearch for 'Coelophysis':
Not found. Sorts between: Deinonychus and Amargasaurus.

BinarySearch for 'Tyrannosaurus':
Found at index 0.
 */
using System;
using System.Collections.Generic;

public class ReverseComparer: IComparer<string>
{
    public int Compare(string x, string y)
    {
        // Compare y and x in reverse order.
        return y.CompareTo(x);
    }
}

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {"Pachycephalosaurus",
                              "Amargasaurus",
                              "Tyrannosaurus",
                              "Mamenchisaurus",
                              "Deinonychus",
                              "Edmontosaurus"};

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        ReverseComparer rc = new ReverseComparer();

        Console.WriteLine("\nSort");
        Array.Sort(dinosaurs, rc);

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        Console.WriteLine("\nBinarySearch for 'Coelophysis':");
        int index = Array.BinarySearch(dinosaurs, "Coelophysis", rc);
        ShowWhere(dinosaurs, index);

        Console.WriteLine("\nBinarySearch for 'Tyrannosaurus':");
        index = Array.BinarySearch(dinosaurs, "Tyrannosaurus", rc);
        ShowWhere(dinosaurs, index);
    }

    private static void ShowWhere<T>(T[] array, int index)
    {
        if (index<0)
        {
            // If the index is negative, it represents the bitwise
            // complement of the next larger element in the array.
            //
            index = ~index;

            Console.Write("Not found. Sorts between: ");

            if (index == 0)
                Console.Write("beginning of array and ");
            else
                Console.Write("{0} and ", array[index-1]);

            if (index == array.Length)
                Console.WriteLine("end of array.");
            else
                Console.WriteLine("{0}.", array[index]);
        }
        else
        {
            Console.WriteLine("Found at index {0}.", index);
        }
    }
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Tyrannosaurus
Mamenchisaurus
Deinonychus
Edmontosaurus

Sort

Tyrannosaurus
Pachycephalosaurus
Mamenchisaurus
Edmontosaurus
Deinonychus
Amargasaurus

BinarySearch for 'Coelophysis':
Not found. Sorts between: Deinonychus and Amargasaurus.

BinarySearch for 'Tyrannosaurus':
Found at index 0.
 */
open System
open System.Collections.Generic

type ReverseComparer() =
    interface IComparer<string> with
        member _.Compare(x, y) =
            // Compare y and x in reverse order.
            y.CompareTo x

let showWhere (array: 'a []) index =
    if index < 0 then
        // If the index is negative, it represents the bitwise
        // complement of the next larger element in the array.
        let index = ~~~index

        printf "Not found. Sorts between: "

        if index = 0 then
            printf "beginning of array and "
        else
            printf $"{array[index - 1]} and "

        if index = array.Length then
            printfn "end of array."
        else
            printfn $"{array[index]}."
    else
        printfn $"Found at index {index}."

let dinosaurs =
    [| "Pachycephalosaurus"
       "Amargasaurus"
       "Tyrannosaurus"
       "Mamenchisaurus"
       "Deinonychus"
       "Edmontosaurus" |]

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

let rc = ReverseComparer()

printfn "\nSort"
Array.Sort(dinosaurs, rc)

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

printfn "\nBinarySearch for 'Coelophysis':"
Array.BinarySearch(dinosaurs, "Coelophysis", rc)
|> showWhere dinosaurs

printfn "\nBinarySearch for 'Tyrannosaurus':"
Array.BinarySearch(dinosaurs, "Tyrannosaurus", rc)
|> showWhere dinosaurs


// This code example produces the following output:
//     Pachycephalosaurus
//     Amargasaurus
//     Tyrannosaurus
//     Mamenchisaurus
//     Deinonychus
//     Edmontosaurus
//
//     Sort
//
//     Tyrannosaurus
//     Pachycephalosaurus
//     Mamenchisaurus
//     Edmontosaurus
//     Deinonychus
//     Amargasaurus
//
//     BinarySearch for 'Coelophysis':
//     Not found. Sorts between: Deinonychus and Amargasaurus.
//
//     BinarySearch for 'Tyrannosaurus':
//     Found at index 0.
Imports System.Collections.Generic

Public Class ReverseComparer
    Implements IComparer(Of String)

    Public Function Compare(ByVal x As String, _
        ByVal y As String) As Integer _
        Implements IComparer(Of String).Compare

        ' Compare y and x in reverse order.
        Return y.CompareTo(x)

    End Function
End Class

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Pachycephalosaurus", _
            "Amargasaurus", _
            "Tyrannosaurus", _
            "Mamenchisaurus", _
            "Deinonychus", _
            "Edmontosaurus"  }

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Dim rc As New ReverseComparer()

        Console.WriteLine(vbLf & "Sort")
        Array.Sort(dinosaurs, rc)

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Console.WriteLine(vbLf & _
            "BinarySearch for 'Coelophysis':")
        Dim index As Integer = _
            Array.BinarySearch(dinosaurs, "Coelophysis", rc)
        ShowWhere(dinosaurs, index)

        Console.WriteLine(vbLf & _
            "BinarySearch for 'Tyrannosaurus':")
        index = Array.BinarySearch(dinosaurs, "Tyrannosaurus", rc)
        ShowWhere(dinosaurs, index)

    End Sub

    Private Shared Sub ShowWhere(Of T) _
        (ByVal array() As T, ByVal index As Integer) 

        If index < 0 Then
            ' If the index is negative, it represents the bitwise
            ' complement of the next larger element in the array.
            '
            index = index Xor -1

            Console.Write("Not found. Sorts between: ")

            If index = 0 Then
                Console.Write("beginning of array and ")
            Else
                Console.Write("{0} and ", array(index - 1))
            End If 

            If index = array.Length Then
                Console.WriteLine("end of array.")
            Else
                Console.WriteLine("{0}.", array(index))
            End If 
        Else
            Console.WriteLine("Found at index {0}.", index)
        End If

    End Sub

End Class

' This code example produces the following output:
'
'Pachycephalosaurus
'Amargasaurus
'Tyrannosaurus
'Mamenchisaurus
'Deinonychus
'Edmontosaurus
'
'Sort
'
'Tyrannosaurus
'Pachycephalosaurus
'Mamenchisaurus
'Edmontosaurus
'Deinonychus
'Amargasaurus
'
'BinarySearch for 'Coelophysis':
'Not found. Sorts between: Deinonychus and Amargasaurus.
'
'BinarySearch for 'Tyrannosaurus':
'Found at index 0.

注解

如果 comparernull,则 的每个 array 元素都必须实现 IComparable<T> 泛型接口,以便能够与 中的每个 array其他元素进行比较。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengtharray

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort<T>(T[], Comparison<T>)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用指定的 Comparison<T>,对 Array 中的元素进行排序。

public:
generic <typename T>
 static void Sort(cli::array <T> ^ array, Comparison<T> ^ comparison);
public static void Sort<T> (T[] array, Comparison<T> comparison);
static member Sort : 'T[] * Comparison<'T> -> unit
Public Shared Sub Sort(Of T) (array As T(), comparison As Comparison(Of T))

类型参数

T

数组元素的类型。

参数

array
T[]

要排序的从零开始的一维 Array

comparison
Comparison<T>

比较元素时要使用的 Comparison<T>

例外

arraynull

comparisonnull

comparison 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparison 可能不返回 0。

示例

下面的代码示例演示方法 Sort(Comparison<T>) 重载。

代码示例为名为 CompareDinosByLength的字符串定义了替代比较方法。 此方法的工作方式如下:首先,对比较值进行测试null,空引用被视为小于非 null。 其次,比较字符串长度,较长的字符串被认为更大。 第三,如果长度相等,则使用普通字符串比较。

创建字符串数组并使用四个字符串填充,没有特定顺序。 该列表还包括一个空字符串和一个 null 引用。 显示列表,使用表示 CompareDinosByLength 方法的Comparison<T>泛型委托进行排序,然后再次显示。

using namespace System;
using namespace System::Collections::Generic;

int CompareDinosByLength(String^ x, String^ y)
{
    if (x == nullptr)
    {
        if (y == nullptr)
        {
            // If x is null and y is null, they're
            // equal. 
            return 0;
        }
        else
        {
            // If x is null and y is not null, y
            // is greater. 
            return -1;
        }
    }
    else
    {
        // If x is not null...
        //
        if (y == nullptr)
            // ...and y is null, x is greater.
        {
            return 1;
        }
        else
        {
            // ...and y is not null, compare the 
            // lengths of the two strings.
            //
            int retval = x->Length.CompareTo(y->Length);

            if (retval != 0)
            {
                // If the strings are not of equal length,
                // the longer string is greater.
                //
                return retval;
            }
            else
            {
                // If the strings are of equal length,
                // sort them with ordinary string comparison.
                //
                return x->CompareTo(y);
            }
        }
    }
};

void Display(array<String^>^ arr)
{
    Console::WriteLine();
    for each(String^ s in arr)
    {
        if (s == nullptr)
            Console::WriteLine("(null)");
        else
            Console::WriteLine("\"{0}\"", s);
    }
};

void main()
{
    array<String^>^ dinosaurs = { 
        "Pachycephalosaurus",
        "Amargasaurus",
        "",
        nullptr,
        "Mamenchisaurus",
        "Deinonychus" };
    Display(dinosaurs);

    Console::WriteLine("\nSort with generic Comparison<String^> delegate:");
    Array::Sort(dinosaurs,
        gcnew Comparison<String^>(CompareDinosByLength));
    Display(dinosaurs);

}

/* This code example produces the following output:

"Pachycephalosaurus"
"Amargasaurus"
""
(null)
"Mamenchisaurus"
"Deinonychus"

Sort with generic Comparison<String^> delegate:

(null)
""
"Deinonychus"
"Amargasaurus"
"Mamenchisaurus"
"Pachycephalosaurus"
 */
using System;
using System.Collections.Generic;

public class Example
{
    private static int CompareDinosByLength(string x, string y)
    {
        if (x == null)
        {
            if (y == null)
            {
                // If x is null and y is null, they're
                // equal.
                return 0;
            }
            else
            {
                // If x is null and y is not null, y
                // is greater.
                return -1;
            }
        }
        else
        {
            // If x is not null...
            //
            if (y == null)
                // ...and y is null, x is greater.
            {
                return 1;
            }
            else
            {
                // ...and y is not null, compare the
                // lengths of the two strings.
                //
                int retval = x.Length.CompareTo(y.Length);

                if (retval != 0)
                {
                    // If the strings are not of equal length,
                    // the longer string is greater.
                    //
                    return retval;
                }
                else
                {
                    // If the strings are of equal length,
                    // sort them with ordinary string comparison.
                    //
                    return x.CompareTo(y);
                }
            }
        }
    }

    public static void Main()
    {
        string[] dinosaurs = {
            "Pachycephalosaurus",
            "Amargasaurus",
            "",
            null,
            "Mamenchisaurus",
            "Deinonychus" };
        Display(dinosaurs);

        Console.WriteLine("\nSort with generic Comparison<string> delegate:");
        Array.Sort(dinosaurs, CompareDinosByLength);
        Display(dinosaurs);
    }

    private static void Display(string[] arr)
    {
        Console.WriteLine();
        foreach( string s in arr )
        {
            if (s == null)
                Console.WriteLine("(null)");
            else
                Console.WriteLine("\"{0}\"", s);
        }
    }
}

/* This code example produces the following output:

"Pachycephalosaurus"
"Amargasaurus"
""
(null)
"Mamenchisaurus"
"Deinonychus"

Sort with generic Comparison<string> delegate:

(null)
""
"Deinonychus"
"Amargasaurus"
"Mamenchisaurus"
"Pachycephalosaurus"
 */
open System

let compareDinosByLength (x: string) (y: string) =
    match x with
    // If x is null and y is null, they're equal.
    | null when isNull y -> 0 
    // If x is null and y is not null, y is greater.
    | null -> -1
    // If x is not null and y is null, x is greater.
    | _ when isNull y -> 1    
    // If x is not null and y is not null, compare the lengths of the two strings.
    | _ ->
        let retval = x.Length.CompareTo y.Length
        if retval <> 0 then
            // If the strings are not of equal length, the longer string is greater.
            retval
        else
            // If the strings are of equal length, sort them with ordinary string comparison.
            x.CompareTo y

let display arr =
    printfn ""
    for s in arr do
        if isNull s then
            printfn "(null)"
        else
            printfn $"\"{s}\""

let dinosaurs =
    [| "Pachycephalosaurus"
       "Amargasaurus"
       ""
       null
       "Mamenchisaurus"
       "Deinonychus" |]
       
display dinosaurs

printfn "\nSort with generic Comparison<string> delegate:"
Array.Sort(dinosaurs, compareDinosByLength)
display dinosaurs

// This code example produces the following output:
//
//    "Pachycephalosaurus"
//    "Amargasaurus"
//    ""
//    (null)
//    "Mamenchisaurus"
//    "Deinonychus"
//    
//    Sort with generic Comparison<string> delegate:
//    
//    (null)
//    ""
//    "Deinonychus"
//    "Amargasaurus"
//    "Mamenchisaurus"
//    "Pachycephalosaurus"
//
Imports System.Collections.Generic

Public Class Example

    Private Shared Function CompareDinosByLength( _
        ByVal x As String, ByVal y As String) As Integer

        If x Is Nothing Then
            If y Is Nothing Then 
                ' If x is Nothing and y is Nothing, they're
                ' equal. 
                Return 0
            Else
                ' If x is Nothing and y is not Nothing, y
                ' is greater. 
                Return -1
            End If
        Else
            ' If x is not Nothing...
            '
            If y Is Nothing Then
                ' ...and y is Nothing, x is greater.
                Return 1
            Else
                ' ...and y is not Nothing, compare the 
                ' lengths of the two strings.
                '
                Dim retval As Integer = _
                    x.Length.CompareTo(y.Length)

                If retval <> 0 Then 
                    ' If the strings are not of equal length,
                    ' the longer string is greater.
                    '
                    Return retval
                Else
                    ' If the strings are of equal length,
                    ' sort them with ordinary string comparison.
                    '
                    Return x.CompareTo(y)
                End If
            End If
        End If

    End Function

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Pachycephalosaurus", _
            "Amargasaurus", _
            "", _
            Nothing, _
            "Mamenchisaurus", _
            "Deinonychus" }
        Display(dinosaurs)

        Console.WriteLine(vbLf & "Sort with generic Comparison(Of String) delegate:")
        Array.Sort(dinosaurs, AddressOf CompareDinosByLength)
        Display(dinosaurs)

    End Sub

    Private Shared Sub Display(ByVal arr() As String)
        Console.WriteLine()
        For Each s As String In arr
            If s Is Nothing Then
                Console.WriteLine("(Nothing)")
            Else
                Console.WriteLine("""{0}""", s)
            End If
        Next
    End Sub
End Class

' This code example produces the following output:
'
'"Pachycephalosaurus"
'"Amargasaurus"
'""
'(Nothing)
'"Mamenchisaurus"
'"Deinonychus"
'
'Sort with generic Comparison(Of String) delegate:
'
'(Nothing)
'""
'"Deinonychus"
'"Amargasaurus"
'"Mamenchisaurus"
'"Pachycephalosaurus"

注解

如果排序未成功完成,则结果未定义。

此方法使用自省排序 (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengtharray

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 6 个元素的数组。

另请参阅

适用于

Sort<T>(T[], Int32, Int32)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用 Array 中每个元素的 IComparable<T> 泛型接口实现,对 Array 中元素范围内的元素进行排序。

public:
generic <typename T>
 static void Sort(cli::array <T> ^ array, int index, int length);
public static void Sort<T> (T[] array, int index, int length);
static member Sort : 'T[] * int * int -> unit
Public Shared Sub Sort(Of T) (array As T(), index As Integer, length As Integer)

类型参数

T

数组元素的类型。

参数

array
T[]

要排序的从零开始的一维 Array

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

例外

arraynull

index 小于 array 的下限。

- 或 -

length 小于零。

indexlength 未在 array 中指定有效范围。

array 中的一个或多个元素未实现 IComparable<T> 泛型接口。

示例

下面的代码示例演示泛 Sort<T>(T[], Int32, Int32) 型方法重载和 Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 泛型方法重载,以便对数组中的区域进行排序。

该代码示例为字符串ReverseCompare定义一个名为 的替代比较器,该比较器在 Visual C++ 中实现 IComparer<string> visual CIComparer<String^>++ 中的 (IComparer(Of String)) 泛型接口。 比较器调用 CompareTo(String) 方法,并反转比较值的顺序,使字符串按从高到低的顺序排序,而不是从低到高排序。

代码示例创建并显示一个恐龙名称数组,该数组由三个食草动物组成,后跟三只食肉动物 (暴食者,确切地说是) 。 泛 Sort<T>(T[], Int32, Int32) 型方法重载用于对数组的最后三个元素进行排序,然后显示该元素。 泛 Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 型方法重载与 一起使用 ReverseCompare ,以反向顺序对最后三个元素进行排序。 完全混乱的恐龙再次展示。

注意

Sort<T>(T[], IComparer<T>)BinarySearch<T>(T[], T, IComparer<T>) 泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从第一个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

using namespace System;
using namespace System::Collections::Generic;

public ref class ReverseComparer: IComparer<String^>
{
public:
    virtual int Compare(String^ x, String^ y)
    {
        // Compare y and x in reverse order.
        return y->CompareTo(x);
    }
};

void main()
{
    array<String^>^ dinosaurs = {"Pachycephalosaurus", 
                                 "Amargasaurus", 
                                 "Mamenchisaurus",
                                 "Tarbosaurus",
                                 "Tyrannosaurus", 
                                 "Albertasaurus"};

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    Console::WriteLine("\nSort(dinosaurs, 3, 3)");
    Array::Sort(dinosaurs, 3, 3);

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    ReverseComparer^ rc = gcnew ReverseComparer();

    Console::WriteLine("\nSort(dinosaurs, 3, 3, rc)");
    Array::Sort(dinosaurs, 3, 3, rc);

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tarbosaurus
Tyrannosaurus
Albertasaurus

Sort(dinosaurs, 3, 3)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Albertasaurus
Tarbosaurus
Tyrannosaurus

Sort(dinosaurs, 3, 3, rc)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tyrannosaurus
Tarbosaurus
Albertasaurus
 */
using System;
using System.Collections.Generic;

public class ReverseComparer: IComparer<string>
{
    public int Compare(string x, string y)
    {
        // Compare y and x in reverse order.
        return y.CompareTo(x);
    }
}

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {"Pachycephalosaurus",
                              "Amargasaurus",
                              "Mamenchisaurus",
                              "Tarbosaurus",
                              "Tyrannosaurus",
                              "Albertasaurus"};

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        Console.WriteLine("\nSort(dinosaurs, 3, 3)");
        Array.Sort(dinosaurs, 3, 3);

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        ReverseComparer rc = new ReverseComparer();

        Console.WriteLine("\nSort(dinosaurs, 3, 3, rc)");
        Array.Sort(dinosaurs, 3, 3, rc);

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }
    }
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tarbosaurus
Tyrannosaurus
Albertasaurus

Sort(dinosaurs, 3, 3)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Albertasaurus
Tarbosaurus
Tyrannosaurus

Sort(dinosaurs, 3, 3, rc)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tyrannosaurus
Tarbosaurus
Albertasaurus
 */
open System
open System.Collections.Generic

type ReverseComparer() =
    interface  IComparer<string> with
        member _.Compare(x, y) =
            y.CompareTo x

let dinosaurs = 
    [| "Pachycephalosaurus"
       "Amargasaurus"
       "Mamenchisaurus"
       "Tarbosaurus"
       "Tyrannosaurus"
       "Albertasaurus" |]

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

printfn "\nSort(dinosaurs, 3, 3)"
Array.Sort(dinosaurs, 3, 3)

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

let rc = ReverseComparer()

printfn "\nSort(dinosaurs, 3, 3, rc)"
Array.Sort(dinosaurs, 3, 3, rc)

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"


// This code example produces the following output:
//
//    Pachycephalosaurus
//    Amargasaurus
//    Mamenchisaurus
//    Tarbosaurus
//    Tyrannosaurus
//    Albertasaurus
//    
//    Sort(dinosaurs, 3, 3)
//    
//    Pachycephalosaurus
//    Amargasaurus
//    Mamenchisaurus
//    Albertasaurus
//    Tarbosaurus
//    Tyrannosaurus
//    
//    Sort(dinosaurs, 3, 3, rc)
//    
//    Pachycephalosaurus
//    Amargasaurus
//    Mamenchisaurus
//    Tyrannosaurus
//    Tarbosaurus
//    Albertasaurus
Imports System.Collections.Generic

Public Class ReverseComparer
    Implements IComparer(Of String)

    Public Function Compare(ByVal x As String, _
        ByVal y As String) As Integer _
        Implements IComparer(Of String).Compare

        ' Compare y and x in reverse order.
        Return y.CompareTo(x)

    End Function
End Class

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Pachycephalosaurus", _
            "Amargasaurus", _
            "Mamenchisaurus", _
            "Tarbosaurus", _
            "Tyrannosaurus", _
            "Albertasaurus"  }

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Console.WriteLine(vbLf & "Sort(dinosaurs, 3, 3)")
        Array.Sort(dinosaurs, 3, 3)

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Dim rc As New ReverseComparer()

        Console.WriteLine(vbLf & "Sort(dinosaurs, 3, 3, rc)")
        Array.Sort(dinosaurs, 3, 3, rc)

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

    End Sub

End Class

' This code example produces the following output:
'
'Pachycephalosaurus
'Amargasaurus
'Mamenchisaurus
'Tarbosaurus
'Tyrannosaurus
'Albertasaurus
'
'Sort(dinosaurs, 3, 3)
'
'Pachycephalosaurus
'Amargasaurus
'Mamenchisaurus
'Albertasaurus
'Tarbosaurus
'Tyrannosaurus
'
'Sort(dinosaurs, 3, 3, rc)
'
'Pachycephalosaurus
'Amargasaurus
'Mamenchisaurus
'Tyrannosaurus
'Tarbosaurus
'Albertasaurus

注解

array 指定元素范围内的每个元素都必须实现 IComparable<T> 泛型接口,以便能够与 中的每个 array其他元素进行比较。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

另请参阅

适用于

Sort<T>(T[], Int32, Int32, IComparer<T>)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

使用指定的 IComparer<T> 泛型接口,对 Array 中的部分元素进行排序。

public:
generic <typename T>
 static void Sort(cli::array <T> ^ array, int index, int length, System::Collections::Generic::IComparer<T> ^ comparer);
public static void Sort<T> (T[] array, int index, int length, System.Collections.Generic.IComparer<T> comparer);
public static void Sort<T> (T[] array, int index, int length, System.Collections.Generic.IComparer<T>? comparer);
static member Sort : 'T[] * int * int * System.Collections.Generic.IComparer<'T> -> unit
Public Shared Sub Sort(Of T) (array As T(), index As Integer, length As Integer, comparer As IComparer(Of T))

类型参数

T

数组元素的类型。

参数

array
T[]

要排序的从零开始的一维 Array

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

comparer
IComparer<T>

比较元素时使用的 IComparer<T> 泛型接口实现;如果为 null,则使用每个元素的 IComparable<T> 泛型接口实现。

例外

arraynull

index 小于 array 的下限。

- 或 -

length 小于零。

indexlength 未在 array 中指定有效范围。

- 或 -

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

comparernull,且 array 中的一个或多个元素未实现 IComparable<T> 泛型接口。

示例

下面的代码示例演示泛 Sort<T>(T[], Int32, Int32) 型方法重载和 Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 泛型方法重载,以便对数组中的区域进行排序。

该代码示例为字符串ReverseCompare定义一个名为 的替代比较器,该比较器在 Visual C++ 中实现 IComparer<string> visual CIComparer<String^>++ 中的 (IComparer(Of String)) 泛型接口。 比较器调用 CompareTo(String) 方法,并反转比较值的顺序,使字符串按从高到低的顺序排序,而不是从低到高排序。

代码示例创建并显示一个恐龙名称数组,该数组由三个食草动物组成,后跟三只食肉动物 (暴食者,确切地说是) 。 泛 Sort<T>(T[], Int32, Int32) 型方法重载用于对数组的最后三个元素进行排序,然后显示该元素。 泛 Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 型方法重载与 一起使用 ReverseCompare ,以反向顺序对最后三个元素进行排序。 完全混乱的恐龙再次展示。

注意

Sort<T>(T[], IComparer<T>)BinarySearch<T>(T[], T, IComparer<T>) 泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从第一个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

using namespace System;
using namespace System::Collections::Generic;

public ref class ReverseComparer: IComparer<String^>
{
public:
    virtual int Compare(String^ x, String^ y)
    {
        // Compare y and x in reverse order.
        return y->CompareTo(x);
    }
};

void main()
{
    array<String^>^ dinosaurs = {"Pachycephalosaurus", 
                                 "Amargasaurus", 
                                 "Mamenchisaurus",
                                 "Tarbosaurus",
                                 "Tyrannosaurus", 
                                 "Albertasaurus"};

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    Console::WriteLine("\nSort(dinosaurs, 3, 3)");
    Array::Sort(dinosaurs, 3, 3);

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }

    ReverseComparer^ rc = gcnew ReverseComparer();

    Console::WriteLine("\nSort(dinosaurs, 3, 3, rc)");
    Array::Sort(dinosaurs, 3, 3, rc);

    Console::WriteLine();
    for each(String^ dinosaur in dinosaurs)
    {
        Console::WriteLine(dinosaur);
    }
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tarbosaurus
Tyrannosaurus
Albertasaurus

Sort(dinosaurs, 3, 3)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Albertasaurus
Tarbosaurus
Tyrannosaurus

Sort(dinosaurs, 3, 3, rc)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tyrannosaurus
Tarbosaurus
Albertasaurus
 */
using System;
using System.Collections.Generic;

public class ReverseComparer: IComparer<string>
{
    public int Compare(string x, string y)
    {
        // Compare y and x in reverse order.
        return y.CompareTo(x);
    }
}

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {"Pachycephalosaurus",
                              "Amargasaurus",
                              "Mamenchisaurus",
                              "Tarbosaurus",
                              "Tyrannosaurus",
                              "Albertasaurus"};

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        Console.WriteLine("\nSort(dinosaurs, 3, 3)");
        Array.Sort(dinosaurs, 3, 3);

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }

        ReverseComparer rc = new ReverseComparer();

        Console.WriteLine("\nSort(dinosaurs, 3, 3, rc)");
        Array.Sort(dinosaurs, 3, 3, rc);

        Console.WriteLine();
        foreach( string dinosaur in dinosaurs )
        {
            Console.WriteLine(dinosaur);
        }
    }
}

/* This code example produces the following output:

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tarbosaurus
Tyrannosaurus
Albertasaurus

Sort(dinosaurs, 3, 3)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Albertasaurus
Tarbosaurus
Tyrannosaurus

Sort(dinosaurs, 3, 3, rc)

Pachycephalosaurus
Amargasaurus
Mamenchisaurus
Tyrannosaurus
Tarbosaurus
Albertasaurus
 */
open System
open System.Collections.Generic

type ReverseComparer() =
    interface  IComparer<string> with
        member _.Compare(x, y) =
            y.CompareTo x

let dinosaurs = 
    [| "Pachycephalosaurus"
       "Amargasaurus"
       "Mamenchisaurus"
       "Tarbosaurus"
       "Tyrannosaurus"
       "Albertasaurus" |]

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

printfn "\nSort(dinosaurs, 3, 3)"
Array.Sort(dinosaurs, 3, 3)

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"

let rc = ReverseComparer()

printfn "\nSort(dinosaurs, 3, 3, rc)"
Array.Sort(dinosaurs, 3, 3, rc)

printfn ""
for dino in dinosaurs do
    printfn $"{dino}"


// This code example produces the following output:
//
//    Pachycephalosaurus
//    Amargasaurus
//    Mamenchisaurus
//    Tarbosaurus
//    Tyrannosaurus
//    Albertasaurus
//    
//    Sort(dinosaurs, 3, 3)
//    
//    Pachycephalosaurus
//    Amargasaurus
//    Mamenchisaurus
//    Albertasaurus
//    Tarbosaurus
//    Tyrannosaurus
//    
//    Sort(dinosaurs, 3, 3, rc)
//    
//    Pachycephalosaurus
//    Amargasaurus
//    Mamenchisaurus
//    Tyrannosaurus
//    Tarbosaurus
//    Albertasaurus
Imports System.Collections.Generic

Public Class ReverseComparer
    Implements IComparer(Of String)

    Public Function Compare(ByVal x As String, _
        ByVal y As String) As Integer _
        Implements IComparer(Of String).Compare

        ' Compare y and x in reverse order.
        Return y.CompareTo(x)

    End Function
End Class

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Pachycephalosaurus", _
            "Amargasaurus", _
            "Mamenchisaurus", _
            "Tarbosaurus", _
            "Tyrannosaurus", _
            "Albertasaurus"  }

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Console.WriteLine(vbLf & "Sort(dinosaurs, 3, 3)")
        Array.Sort(dinosaurs, 3, 3)

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

        Dim rc As New ReverseComparer()

        Console.WriteLine(vbLf & "Sort(dinosaurs, 3, 3, rc)")
        Array.Sort(dinosaurs, 3, 3, rc)

        Console.WriteLine()
        For Each dinosaur As String In dinosaurs
            Console.WriteLine(dinosaur)
        Next

    End Sub

End Class

' This code example produces the following output:
'
'Pachycephalosaurus
'Amargasaurus
'Mamenchisaurus
'Tarbosaurus
'Tyrannosaurus
'Albertasaurus
'
'Sort(dinosaurs, 3, 3)
'
'Pachycephalosaurus
'Amargasaurus
'Mamenchisaurus
'Albertasaurus
'Tarbosaurus
'Tyrannosaurus
'
'Sort(dinosaurs, 3, 3, rc)
'
'Pachycephalosaurus
'Amargasaurus
'Mamenchisaurus
'Tyrannosaurus
'Tarbosaurus
'Albertasaurus

注解

如果 comparernull,则 中的 array 指定元素范围内的每个元素都必须实现 IComparable<T> 泛型接口,以便能够与 中 array每个其他元素进行比较。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的关键字,使用指定的 IComparer<T> 泛型接口,对两个 Array 对象(一个包含关键字,另一个包含对应的项)的部分元素进行排序。

public:
generic <typename TKey, typename TValue>
 static void Sort(cli::array <TKey> ^ keys, cli::array <TValue> ^ items, int index, int length, System::Collections::Generic::IComparer<TKey> ^ comparer);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[] items, int index, int length, System.Collections.Generic.IComparer<TKey> comparer);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[]? items, int index, int length, System.Collections.Generic.IComparer<TKey>? comparer);
static member Sort : 'Key[] * 'Value[] * int * int * System.Collections.Generic.IComparer<'Key> -> unit
Public Shared Sub Sort(Of TKey, TValue) (keys As TKey(), items As TValue(), index As Integer, length As Integer, comparer As IComparer(Of TKey))

类型参数

TKey

关键字数组元素的类型。

TValue

项数组元素的类型。

参数

keys
TKey[]

从零开始的一维 Array,其中包含要排序的关键字。

items
TValue[]

从零开始的一维 Array,其中包含与 keys 中的关键字对应的项;如果为 null,则只对 keys 进行排序。

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

comparer
IComparer<TKey>

比较元素时使用的 IComparer<T> 泛型接口实现;如果为 null,则使用每个元素的 IComparable<T> 泛型接口实现。

例外

keysnull

index 小于 keys 的下限。

- 或 -

length 小于零。

items 不为 null,且 keys 的下限与 items 的下限不匹配。

- 或 -

items 不为 null,且 keys 的长度大于 items 的长度。

- 或 -

indexlength 未在 keysArray 中指定有效范围。

- 或 -

items 不为 null,且 indexlength 未在 itemsArray 中指定有效范围。

- 或 -

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

comparernull,且 keysArray 中的一个或多个元素未实现 IComparable<T> 泛型接口。

示例

下面的代码示例演示了 Sort<TKey,TValue>(TKey[], TValue[])Sort<TKey,TValue>(TKey[], TValue[], IComparer<TKey>)Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32)Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 泛型方法重载,用于对表示键和值的数组对进行排序。

代码示例为名为 ReverseCompare的字符串定义了一个替代比较器,该比较器在 Visual C++ 中实现 IComparer<string> visual CIComparer<String^>++ 中的 (IComparer(Of String)) 泛型接口。 比较器调用 CompareTo(String) 方法,并反转比较值的顺序,使字符串按从高到低的顺序排序,而不是从低到高排序。

该代码示例创建并显示一个恐龙名称数组, (键) 和一个整数数组,表示每个恐龙的最大长度(以米为单位), () 的值。 然后,对数组进行排序并显示多次:

注意

对泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从前两个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

using namespace System;
using namespace System::Collections::Generic;

public ref class ReverseComparer: IComparer<String^>
{
public:
    virtual int Compare(String^ x, String^ y)
    {
        // Compare y and x in reverse order.
        return y->CompareTo(x);
    }
};

void main()
{
    array<String^>^ dinosaurs = {
            "Seismosaurus", 
            "Chasmosaurus", 
            "Coelophysis", 
            "Mamenchisaurus", 
            "Caudipteryx", 
            "Cetiosaurus"  };

    array<int>^ dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes)");
    Array::Sort(dinosaurs, dinosaurSizes);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    ReverseComparer^ rc = gcnew ReverseComparer();

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
using System;
using System.Collections.Generic;

public class ReverseComparer: IComparer<string>
{
    public int Compare(string x, string y)
    {
        // Compare y and x in reverse order.
        return y.CompareTo(x);
    }
}

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {
            "Seismosaurus",
            "Chasmosaurus",
            "Coelophysis",
            "Mamenchisaurus",
            "Caudipteryx",
            "Cetiosaurus"  };

        int[] dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes)");
        Array.Sort(dinosaurs, dinosaurSizes);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        ReverseComparer rc = new ReverseComparer();

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
open System
open System.Collections.Generic

type ReverseComparer() =
    interface IComparer<string> with
        member _.Compare(x, y) =
            y.CompareTo x

let dinosaurs =
    [| "Seismosaurus"
       "Chasmosaurus"
       "Coelophysis"
       "Mamenchisaurus"
       "Caudipteryx"
       "Cetiosaurus" |]

let dinosaurSizes = [| 40; 5; 3; 22; 1; 18 |]

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes)"
Array.Sort(dinosaurs, dinosaurSizes)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

let rc = ReverseComparer()

printfn "\nSort(dinosaurs, dinosaurSizes, rc)"
Array.Sort(dinosaurs, dinosaurSizes, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

// This code example produces the following output:
//
//    Seismosaurus: up to 40 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes)
//    
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Seismosaurus: up to 40 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
Imports System.Collections.Generic

Public Class ReverseComparer
    Implements IComparer(Of String)

    Public Function Compare(ByVal x As String, _
        ByVal y As String) As Integer _
        Implements IComparer(Of String).Compare

        ' Compare y and x in reverse order.
        Return y.CompareTo(x)

    End Function
End Class

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Seismosaurus", _
            "Chasmosaurus", _
            "Coelophysis", _
            "Mamenchisaurus", _
            "Caudipteryx", _
            "Cetiosaurus"  }

        Dim dinosaurSizes() As Integer = { 40, 5, 3, 22, 1, 18 }

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes)")
        Array.Sort(dinosaurs, dinosaurSizes)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Dim rc As New ReverseComparer()

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

    End Sub

End Class

' This code example produces the following output:
'
'Seismosaurus: up to 40 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'
'Sort(dinosaurs, dinosaurSizes)
'
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Seismosaurus: up to 40 meters long.
'
'Sort(dinosaurs, dinosaurSizes, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.

注解

中的每个键在 keysArrayitemsArray都有相应的项。 在排序过程中重新定位键时,中相应的项 itemsArray 同样会重新定位。 因此, itemsArray 根据 中相应键的排列方式对 keysArray进行排序。

如果 comparernull,则 中的指定元素 keysArray 范围内的每个键都必须实现 IComparable<T> 泛型接口,以便能够与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法进行排序;执行此操作会 ArgumentException引发 。

如果排序未成功完成,则结果未定义。

此方法使用自省排序 (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort<TKey,TValue>(TKey[], TValue[])

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的键,使用每个键的 IComparable<T> 泛型接口实现,对一对 Array 对象(一个包含键,另一个包含对应的项)进行排序。

public:
generic <typename TKey, typename TValue>
 static void Sort(cli::array <TKey> ^ keys, cli::array <TValue> ^ items);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[] items);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[]? items);
static member Sort : 'Key[] * 'Value[] -> unit
Public Shared Sub Sort(Of TKey, TValue) (keys As TKey(), items As TValue())

类型参数

TKey

关键字数组元素的类型。

TValue

项数组元素的类型。

参数

keys
TKey[]

从零开始的一维 Array,其中包含要排序的关键字。

items
TValue[]

从零开始的一维 Array,其中包含与 keys 中的关键字对应的项;如果为 null,则只对 keys 进行排序。

例外

keysnull

items 不为 null,且 keys 的下限与 items 的下限不匹配。

- 或 -

items 不为 null,且 keys 的长度大于 items 的长度。

keysArray 中的一个或多个元素不实现 IComparable<T> 泛型接口。

示例

下面的代码示例演示了 Sort<TKey,TValue>(TKey[], TValue[])Sort<TKey,TValue>(TKey[], TValue[], IComparer<TKey>)Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32)Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 泛型方法重载,用于对表示键和值的数组对进行排序。

该代码示例为字符串ReverseCompare定义一个名为 的替代比较器,该比较器在 Visual C++ 中实现 IComparer<string> visual CIComparer<String^>++ 中的 (IComparer(Of String)) 泛型接口。 比较器调用 CompareTo(String) 方法,并反转比较值的顺序,使字符串按从高到低的顺序排序,而不是从低到高排序。

该代码示例创建并显示一个恐龙名称数组, (键) 和一个整数数组,表示每个恐龙的最大长度(以米为单位), () 的值。 然后,对数组进行排序并显示多次:

注意

对泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从前两个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

using namespace System;
using namespace System::Collections::Generic;

public ref class ReverseComparer: IComparer<String^>
{
public:
    virtual int Compare(String^ x, String^ y)
    {
        // Compare y and x in reverse order.
        return y->CompareTo(x);
    }
};

void main()
{
    array<String^>^ dinosaurs = {
            "Seismosaurus", 
            "Chasmosaurus", 
            "Coelophysis", 
            "Mamenchisaurus", 
            "Caudipteryx", 
            "Cetiosaurus"  };

    array<int>^ dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes)");
    Array::Sort(dinosaurs, dinosaurSizes);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    ReverseComparer^ rc = gcnew ReverseComparer();

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
using System;
using System.Collections.Generic;

public class ReverseComparer: IComparer<string>
{
    public int Compare(string x, string y)
    {
        // Compare y and x in reverse order.
        return y.CompareTo(x);
    }
}

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {
            "Seismosaurus",
            "Chasmosaurus",
            "Coelophysis",
            "Mamenchisaurus",
            "Caudipteryx",
            "Cetiosaurus"  };

        int[] dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes)");
        Array.Sort(dinosaurs, dinosaurSizes);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        ReverseComparer rc = new ReverseComparer();

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
open System
open System.Collections.Generic

type ReverseComparer() =
    interface IComparer<string> with
        member _.Compare(x, y) =
            y.CompareTo x

let dinosaurs =
    [| "Seismosaurus"
       "Chasmosaurus"
       "Coelophysis"
       "Mamenchisaurus"
       "Caudipteryx"
       "Cetiosaurus" |]

let dinosaurSizes = [| 40; 5; 3; 22; 1; 18 |]

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes)"
Array.Sort(dinosaurs, dinosaurSizes)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

let rc = ReverseComparer()

printfn "\nSort(dinosaurs, dinosaurSizes, rc)"
Array.Sort(dinosaurs, dinosaurSizes, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

// This code example produces the following output:
//
//    Seismosaurus: up to 40 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes)
//    
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Seismosaurus: up to 40 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
Imports System.Collections.Generic

Public Class ReverseComparer
    Implements IComparer(Of String)

    Public Function Compare(ByVal x As String, _
        ByVal y As String) As Integer _
        Implements IComparer(Of String).Compare

        ' Compare y and x in reverse order.
        Return y.CompareTo(x)

    End Function
End Class

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Seismosaurus", _
            "Chasmosaurus", _
            "Coelophysis", _
            "Mamenchisaurus", _
            "Caudipteryx", _
            "Cetiosaurus"  }

        Dim dinosaurSizes() As Integer = { 40, 5, 3, 22, 1, 18 }

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes)")
        Array.Sort(dinosaurs, dinosaurSizes)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Dim rc As New ReverseComparer()

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

    End Sub

End Class

' This code example produces the following output:
'
'Seismosaurus: up to 40 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'
'Sort(dinosaurs, dinosaurSizes)
'
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Seismosaurus: up to 40 meters long.
'
'Sort(dinosaurs, dinosaurSizes, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.

注解

中的每个键在 keysArrayitemsArray都有相应的项。 在排序过程中重新定位键时,中相应的项 itemsArray 同样会重新定位。 因此, itemsArray 根据 中相应键的排列方式对 keysArray进行排序。

中的每个 keysArray 键都必须实现 IComparable<T> 泛型接口,才能与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法进行排序;执行此操作会 ArgumentException引发 。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengtharray

另请参阅

适用于

Sort<TKey,TValue>(TKey[], TValue[], IComparer<TKey>)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的关键字,使用指定的 IComparer<T> 泛型接口,对两个 Array 对象(一个包含关键字,另一个包含对应的项)进行排序。

public:
generic <typename TKey, typename TValue>
 static void Sort(cli::array <TKey> ^ keys, cli::array <TValue> ^ items, System::Collections::Generic::IComparer<TKey> ^ comparer);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[] items, System.Collections.Generic.IComparer<TKey> comparer);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[]? items, System.Collections.Generic.IComparer<TKey>? comparer);
static member Sort : 'Key[] * 'Value[] * System.Collections.Generic.IComparer<'Key> -> unit
Public Shared Sub Sort(Of TKey, TValue) (keys As TKey(), items As TValue(), comparer As IComparer(Of TKey))

类型参数

TKey

关键字数组元素的类型。

TValue

项数组元素的类型。

参数

keys
TKey[]

从零开始的一维 Array,其中包含要排序的关键字。

items
TValue[]

从零开始的一维 Array,其中包含与 keys 中的关键字对应的项;如果为 null,则只对 keys 进行排序。

comparer
IComparer<TKey>

比较元素时使用的 IComparer<T> 泛型接口实现;如果为 null,则使用每个元素的 IComparable<T> 泛型接口实现。

例外

keysnull

items 不为 null,且 keys 的下限与 items 的下限不匹配。

- 或 -

items 不为 null,且 keys 的长度大于 items 的长度。

- 或 -

comparer 的实现导致排序时出现错误。 例如,将某个项与其自身比较时,comparer 可能不返回 0。

comparernull,且 keysArray 中的一个或多个元素未实现 IComparable<T> 泛型接口。

示例

下面的代码示例演示了Sort<TKey,TValue>(TKey[], TValue[])用于对表示键和值的数组对进行排序的 、[]Sort<TKey,TValue>(TKey[], TValue[], IComparer<TKey>)Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32)、、 和 Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 泛型方法重载。

该代码示例为字符串ReverseCompare定义一个名为 的替代比较器,该比较器在 Visual C++ 中实现 IComparer<string> visual CIComparer<String^>++ 中的 (IComparer(Of String)) 泛型接口。 比较器调用 CompareTo(String) 方法,并反转比较值的顺序,使字符串按从高到低的顺序排序,而不是从低到高排序。

该代码示例创建并显示一个恐龙名称数组, (键) 和一个整数数组,表示每个恐龙的最大长度(以米为单位), () 的值。 然后,对数组进行排序并显示多次:

注意

对泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从前两个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

using namespace System;
using namespace System::Collections::Generic;

public ref class ReverseComparer: IComparer<String^>
{
public:
    virtual int Compare(String^ x, String^ y)
    {
        // Compare y and x in reverse order.
        return y->CompareTo(x);
    }
};

void main()
{
    array<String^>^ dinosaurs = {
            "Seismosaurus", 
            "Chasmosaurus", 
            "Coelophysis", 
            "Mamenchisaurus", 
            "Caudipteryx", 
            "Cetiosaurus"  };

    array<int>^ dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes)");
    Array::Sort(dinosaurs, dinosaurSizes);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    ReverseComparer^ rc = gcnew ReverseComparer();

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
using System;
using System.Collections.Generic;

public class ReverseComparer: IComparer<string>
{
    public int Compare(string x, string y)
    {
        // Compare y and x in reverse order.
        return y.CompareTo(x);
    }
}

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {
            "Seismosaurus",
            "Chasmosaurus",
            "Coelophysis",
            "Mamenchisaurus",
            "Caudipteryx",
            "Cetiosaurus"  };

        int[] dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes)");
        Array.Sort(dinosaurs, dinosaurSizes);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        ReverseComparer rc = new ReverseComparer();

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
open System
open System.Collections.Generic

type ReverseComparer() =
    interface IComparer<string> with
        member _.Compare(x, y) =
            y.CompareTo x

let dinosaurs =
    [| "Seismosaurus"
       "Chasmosaurus"
       "Coelophysis"
       "Mamenchisaurus"
       "Caudipteryx"
       "Cetiosaurus" |]

let dinosaurSizes = [| 40; 5; 3; 22; 1; 18 |]

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes)"
Array.Sort(dinosaurs, dinosaurSizes)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

let rc = ReverseComparer()

printfn "\nSort(dinosaurs, dinosaurSizes, rc)"
Array.Sort(dinosaurs, dinosaurSizes, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

// This code example produces the following output:
//
//    Seismosaurus: up to 40 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes)
//    
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Seismosaurus: up to 40 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
Imports System.Collections.Generic

Public Class ReverseComparer
    Implements IComparer(Of String)

    Public Function Compare(ByVal x As String, _
        ByVal y As String) As Integer _
        Implements IComparer(Of String).Compare

        ' Compare y and x in reverse order.
        Return y.CompareTo(x)

    End Function
End Class

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Seismosaurus", _
            "Chasmosaurus", _
            "Coelophysis", _
            "Mamenchisaurus", _
            "Caudipteryx", _
            "Cetiosaurus"  }

        Dim dinosaurSizes() As Integer = { 40, 5, 3, 22, 1, 18 }

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes)")
        Array.Sort(dinosaurs, dinosaurSizes)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Dim rc As New ReverseComparer()

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

    End Sub

End Class

' This code example produces the following output:
'
'Seismosaurus: up to 40 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'
'Sort(dinosaurs, dinosaurSizes)
'
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Seismosaurus: up to 40 meters long.
'
'Sort(dinosaurs, dinosaurSizes, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.

注解

中的每个键在 keysArrayitemsArray都有相应的项。 在排序过程中重新定位键时,中相应的项 itemsArray 同样会重新定位。 因此, itemsArray 根据 中相应键的排列方式对 keysArray进行排序。

如果 comparernull,则 中的每个 keysArray 键都必须实现 IComparable<T> 泛型接口,以便能够与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法进行排序;执行此操作会 ArgumentException引发 。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nLengtharray

调用方说明

.NET Framework 4 及更早版本仅使用快速排序算法。 在排序操作引发异常并向调用方引发IndexOutOfRangeExceptionArgumentException异常时,Quicksort 标识无效的比较器。 从 .NET Framework 4.5 开始,以前引发ArgumentException的排序操作可能不会引发异常,因为插入排序和堆排序算法未检测到无效比较器。 在大多数情况下,这适用于少于或等于 16 个元素的数组。

另请参阅

适用于

Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32)

Source:
Array.cs
Source:
Array.cs
Source:
Array.cs

基于第一个 Array 中的键,使用每个键的 IComparable<T> 泛型接口实现,对两个 Array 对象(一个包含键,另一个包含对应的项)的部分元素进行排序。

public:
generic <typename TKey, typename TValue>
 static void Sort(cli::array <TKey> ^ keys, cli::array <TValue> ^ items, int index, int length);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[] items, int index, int length);
public static void Sort<TKey,TValue> (TKey[] keys, TValue[]? items, int index, int length);
static member Sort : 'Key[] * 'Value[] * int * int -> unit
Public Shared Sub Sort(Of TKey, TValue) (keys As TKey(), items As TValue(), index As Integer, length As Integer)

类型参数

TKey

关键字数组元素的类型。

TValue

项数组元素的类型。

参数

keys
TKey[]

从零开始的一维 Array,其中包含要排序的关键字。

items
TValue[]

从零开始的一维 Array,其中包含与 keys 中的关键字对应的项;如果为 null,则只对 keys 进行排序。

index
Int32

排序范围的起始索引。

length
Int32

排序范围内的元素数。

例外

keysnull

index 小于 keys 的下限。

- 或 -

length 小于零。

items 不为 null,且 keys 的下限与 items 的下限不匹配。

- 或 -

items 不为 null,且 keys 的长度大于 items 的长度。

- 或 -

indexlength 未在 keysArray 中指定有效范围。

- 或 -

items 不为 null,且 indexlength 未在 itemsArray 中指定有效范围。

keysArray 中的一个或多个元素不实现 IComparable<T> 泛型接口。

示例

下面的代码示例演示了 Sort<TKey,TValue>(TKey[], TValue[])Sort<TKey,TValue>(TKey[], TValue[], IComparer<TKey>)Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32)Sort<TKey,TValue>(TKey[], TValue[], Int32, Int32, IComparer<TKey>) 泛型方法重载,用于对表示键和值的数组对进行排序。

该代码示例为字符串ReverseCompare定义一个名为 的替代比较器,该比较器在 Visual C++ 中实现 IComparer<string> visual CIComparer<String^>++ 中的 (IComparer(Of String)) 泛型接口。 比较器调用 CompareTo(String) 方法,并反转比较值的顺序,使字符串按从高到低的顺序排序,而不是从低到高排序。

该代码示例创建并显示一个恐龙名称数组, (键) 和一个整数数组,表示每个恐龙的最大长度(以米为单位), () 的值。 然后,对数组进行排序并显示多次:

注意

对泛型方法的调用看起来与对非泛型方法的调用没有任何不同,因为 Visual Basic、C# 和 C++ 从前两个参数的类型推断泛型类型参数的类型。 如果使用 Ildasm.exe (IL 反汇编程序) 来检查 Microsoft 中间语言 (MSIL) ,则可以看到正在调用泛型方法。

using namespace System;
using namespace System::Collections::Generic;

public ref class ReverseComparer: IComparer<String^>
{
public:
    virtual int Compare(String^ x, String^ y)
    {
        // Compare y and x in reverse order.
        return y->CompareTo(x);
    }
};

void main()
{
    array<String^>^ dinosaurs = {
            "Seismosaurus", 
            "Chasmosaurus", 
            "Coelophysis", 
            "Mamenchisaurus", 
            "Caudipteryx", 
            "Cetiosaurus"  };

    array<int>^ dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes)");
    Array::Sort(dinosaurs, dinosaurSizes);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    ReverseComparer^ rc = gcnew ReverseComparer();

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }

    Console::WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
    Array::Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

    Console::WriteLine();
    for (int i = 0; i < dinosaurs->Length; i++)
    {
        Console::WriteLine("{0}: up to {1} meters long.", 
            dinosaurs[i], dinosaurSizes[i]);
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
using System;
using System.Collections.Generic;

public class ReverseComparer: IComparer<string>
{
    public int Compare(string x, string y)
    {
        // Compare y and x in reverse order.
        return y.CompareTo(x);
    }
}

public class Example
{
    public static void Main()
    {
        string[] dinosaurs = {
            "Seismosaurus",
            "Chasmosaurus",
            "Coelophysis",
            "Mamenchisaurus",
            "Caudipteryx",
            "Cetiosaurus"  };

        int[] dinosaurSizes = { 40, 5, 3, 22, 1, 18 };

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes)");
        Array.Sort(dinosaurs, dinosaurSizes);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        ReverseComparer rc = new ReverseComparer();

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }

        Console.WriteLine("\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)");
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc);

        Console.WriteLine();
        for (int i = 0; i < dinosaurs.Length; i++)
        {
            Console.WriteLine("{0}: up to {1} meters long.",
                dinosaurs[i], dinosaurSizes[i]);
        }
    }
}

/* This code example produces the following output:

Seismosaurus: up to 40 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.

Sort(dinosaurs, dinosaurSizes)

Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.
Coelophysis: up to 3 meters long.
Mamenchisaurus: up to 22 meters long.
Seismosaurus: up to 40 meters long.

Sort(dinosaurs, dinosaurSizes, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Caudipteryx: up to 1 meters long.
Cetiosaurus: up to 18 meters long.
Chasmosaurus: up to 5 meters long.

Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

Seismosaurus: up to 40 meters long.
Mamenchisaurus: up to 22 meters long.
Coelophysis: up to 3 meters long.
Chasmosaurus: up to 5 meters long.
Cetiosaurus: up to 18 meters long.
Caudipteryx: up to 1 meters long.
 */
open System
open System.Collections.Generic

type ReverseComparer() =
    interface IComparer<string> with
        member _.Compare(x, y) =
            y.CompareTo x

let dinosaurs =
    [| "Seismosaurus"
       "Chasmosaurus"
       "Coelophysis"
       "Mamenchisaurus"
       "Caudipteryx"
       "Cetiosaurus" |]

let dinosaurSizes = [| 40; 5; 3; 22; 1; 18 |]

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes)"
Array.Sort(dinosaurs, dinosaurSizes)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

let rc = ReverseComparer()

printfn "\nSort(dinosaurs, dinosaurSizes, rc)"
Array.Sort(dinosaurs, dinosaurSizes, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

printfn "\nSort(dinosaurs, dinosaurSizes, 3, 3, rc)"
Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

printfn ""
for i = 0 to dinosaurs.Length - 1 do
    printfn $"{dinosaurs[i]}: up to {dinosaurSizes[i]} meters long."

// This code example produces the following output:
//
//    Seismosaurus: up to 40 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes)
//    
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Coelophysis: up to 3 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Seismosaurus: up to 40 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Caudipteryx: up to 1 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Chasmosaurus: up to 5 meters long.
//    
//    Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
//    
//    Seismosaurus: up to 40 meters long.
//    Mamenchisaurus: up to 22 meters long.
//    Coelophysis: up to 3 meters long.
//    Chasmosaurus: up to 5 meters long.
//    Cetiosaurus: up to 18 meters long.
//    Caudipteryx: up to 1 meters long.
Imports System.Collections.Generic

Public Class ReverseComparer
    Implements IComparer(Of String)

    Public Function Compare(ByVal x As String, _
        ByVal y As String) As Integer _
        Implements IComparer(Of String).Compare

        ' Compare y and x in reverse order.
        Return y.CompareTo(x)

    End Function
End Class

Public Class Example

    Public Shared Sub Main()

        Dim dinosaurs() As String = { _
            "Seismosaurus", _
            "Chasmosaurus", _
            "Coelophysis", _
            "Mamenchisaurus", _
            "Caudipteryx", _
            "Cetiosaurus"  }

        Dim dinosaurSizes() As Integer = { 40, 5, 3, 22, 1, 18 }

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes)")
        Array.Sort(dinosaurs, dinosaurSizes)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Dim rc As New ReverseComparer()

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

        Console.WriteLine(vbLf & _
            "Sort(dinosaurs, dinosaurSizes, 3, 3, rc)")
        Array.Sort(dinosaurs, dinosaurSizes, 3, 3, rc)

        Console.WriteLine()
        For i As Integer = 0 To dinosaurs.Length - 1
            Console.WriteLine("{0}: up to {1} meters long.", _
                dinosaurs(i), dinosaurSizes(i))
        Next

    End Sub

End Class

' This code example produces the following output:
'
'Seismosaurus: up to 40 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'
'Sort(dinosaurs, dinosaurSizes)
'
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'Coelophysis: up to 3 meters long.
'Mamenchisaurus: up to 22 meters long.
'Seismosaurus: up to 40 meters long.
'
'Sort(dinosaurs, dinosaurSizes, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Caudipteryx: up to 1 meters long.
'Cetiosaurus: up to 18 meters long.
'Chasmosaurus: up to 5 meters long.
'
'Sort(dinosaurs, dinosaurSizes, 3, 3, rc)
'
'Seismosaurus: up to 40 meters long.
'Mamenchisaurus: up to 22 meters long.
'Coelophysis: up to 3 meters long.
'Chasmosaurus: up to 5 meters long.
'Cetiosaurus: up to 18 meters long.
'Caudipteryx: up to 1 meters long.

注解

中的每个键在 keysArrayitemsArray都有相应的项。 在排序过程中重新定位键时,中相应的项 itemsArray 同样会重新定位。 因此, itemsArray 根据 中相应键的排列方式对 keysArray进行排序。

中指定元素范围中的每个 keysArray 键都必须实现 IComparable<T> 泛型接口,以便能够与其他每个键进行比较。

如果项多于键,则可以进行排序,但不会对没有相应键的项进行排序。 如果键数多于项,则无法进行排序;执行此操作会 ArgumentException引发 。

如果排序未成功完成,则结果未定义。

此方法使用 introsort (introsort) 算法,如下所示:

  • 如果分区大小小于或等于 16 个元素,则它使用 插入排序 算法。

  • 如果分区数超过 2 * LogN,其中 N 是输入数组的范围,则它使用 堆排序 算法。

  • 否则,它使用 快速排序 算法。

此实现执行不稳定排序;也就是说,如果两个元素相等,则可能不会保留其顺序。 相比之下,稳定排序会保留相等元素的顺序。

此方法是 O (n 日志 n) 操作,其中 nlength

另请参阅

适用于