Array.LastIndexOf Metode
Definisi
Penting
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Overload
| LastIndexOf(Array, Object) |
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam seluruh satu dimensi Array. |
| LastIndexOf(Array, Object, Int32) |
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam satu dimensi Array yang meluas dari elemen pertama ke indeks yang ditentukan. |
| LastIndexOf(Array, Object, Int32, Int32) |
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam satu dimensi Array yang berisi jumlah elemen yang ditentukan dan berakhir pada indeks yang ditentukan. |
| LastIndexOf<T>(T[], T) |
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam seluruh Array. |
| LastIndexOf<T>(T[], T, Int32) |
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam Array yang meluas dari elemen pertama ke indeks yang ditentukan. |
| LastIndexOf<T>(T[], T, Int32, Int32) |
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam Array yang berisi jumlah elemen yang ditentukan dan berakhir pada indeks yang ditentukan. |
LastIndexOf(Array, Object)
- Sumber:
- Array.cs
- Sumber:
- Array.cs
- Sumber:
- Array.cs
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam seluruh satu dimensi Array.
public:
static int LastIndexOf(Array ^ array, System::Object ^ value);public static int LastIndexOf (Array array, object value);public static int LastIndexOf (Array array, object? value);static member LastIndexOf : Array * obj -> intPublic Shared Function LastIndexOf (array As Array, value As Object) As IntegerParameter
- value
- Object
Objek untuk ditemukan di array.
Mengembalikan
Indeks kemunculan terakhir dari value dalam seluruh array, jika ditemukan; jika tidak, batas bawah array dikurangi 1.
Pengecualian
arrayadalah null.
array bersifat multidimensi.
Contoh
Contoh kode berikut menunjukkan cara menentukan indeks kemunculan terakhir elemen tertentu dalam array.
using namespace System;
void PrintIndexAndValues( Array^ myArray );
void main()
{
// Creates and initializes a new Array instance with three elements of the same value.
Array^ myArray = Array::CreateInstance( String::typeid, 12 );
myArray->SetValue( "the", 0 );
myArray->SetValue( "quick", 1 );
myArray->SetValue( "brown", 2 );
myArray->SetValue( "fox", 3 );
myArray->SetValue( "jumps", 4 );
myArray->SetValue( "over", 5 );
myArray->SetValue( "the", 6 );
myArray->SetValue( "lazy", 7 );
myArray->SetValue( "dog", 8 );
myArray->SetValue( "in", 9 );
myArray->SetValue( "the", 10 );
myArray->SetValue( "barn", 11 );
// Displays the values of the Array.
Console::WriteLine( "The Array instance contains the following values:" );
PrintIndexAndValues( myArray );
// Searches for the last occurrence of the duplicated value.
String^ myString = "the";
int myIndex = Array::LastIndexOf( myArray, myString );
Console::WriteLine( "The last occurrence of \"{0}\" is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in the first section of the Array.
myIndex = Array::LastIndexOf( myArray, myString, 8 );
Console::WriteLine( "The last occurrence of \"{0}\" between the start and index 8 is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
myIndex = Array::LastIndexOf( myArray, myString, 10, 6 );
Console::WriteLine( "The last occurrence of \"{0}\" between index 5 and index 10 is at index {1}.", myString, myIndex );
}
void PrintIndexAndValues( Array^ myArray )
{
for ( int i = myArray->GetLowerBound( 0 ); i <= myArray->GetUpperBound( 0 ); i++ )
Console::WriteLine( "\t[{0}]:\t{1}", i, myArray->GetValue( i ) );
}
/*
This code produces the following output.
The Array instance contains the following values:
[0]: the
[1]: quick
[2]: brown
[3]: fox
[4]: jumps
[5]: over
[6]: the
[7]: lazy
[8]: dog
[9]: in
[10]: the
[11]: barn
The last occurrence of "the" is at index 10.
The last occurrence of "the" between the start and index 8 is at index 6.
The last occurrence of "the" between index 5 and index 10 is at index 10.
*/
let printIndexAndValues (arr: 'a []) =
for i = arr.GetLowerBound 0 to arr.GetUpperBound 0 do
printfn $"\t[{i}]:\t{arr[i]}"
// Creates and initializes a new Array with three elements of the same value.
let myArray =
[| "the"; "quick"; "brown"; "fox"
"jumps"; "over"; "the"; "lazy"
"dog"; "in"; "the"; "barn" |]
// Displays the values of the Array.
printfn "The Array contains the following values:"
printIndexAndValues myArray
// Searches for the last occurrence of the duplicated value.
let myString = "the"
let myIndex = Array.LastIndexOf(myArray, myString)
printfn $"The last occurrence of \"{myString}\" is at index {myIndex}."
// Searches for the last occurrence of the duplicated value in the first section of the Array.
let myIndex = Array.LastIndexOf(myArray, myString, 8)
printfn $"The last occurrence of \"{myString}\" between the start and index 8 is at index {myIndex}."
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
let myIndex = Array.LastIndexOf( myArray, myString, 10, 6 )
printfn $"The last occurrence of \"{myString}\" between index 5 and index 10 is at index {myIndex}."
// This code produces the following output.
//
// The Array contains the following values:
// [0]: the
// [1]: quick
// [2]: brown
// [3]: fox
// [4]: jumps
// [5]: over
// [6]: the
// [7]: lazy
// [8]: dog
// [9]: in
// [10]: the
// [11]: barn
// The last occurrence of "the" is at index 10.
// The last occurrence of "the" between the start and index 8 is at index 6.
// The last occurrence of "the" between index 5 and index 10 is at index 10.
// Creates and initializes a new Array with three elements of the same value.
Array myArray=Array.CreateInstance( typeof(string), 12 );
myArray.SetValue( "the", 0 );
myArray.SetValue( "quick", 1 );
myArray.SetValue( "brown", 2 );
myArray.SetValue( "fox", 3 );
myArray.SetValue( "jumps", 4 );
myArray.SetValue( "over", 5 );
myArray.SetValue( "the", 6 );
myArray.SetValue( "lazy", 7 );
myArray.SetValue( "dog", 8 );
myArray.SetValue( "in", 9 );
myArray.SetValue( "the", 10 );
myArray.SetValue( "barn", 11 );
// Displays the values of the Array.
Console.WriteLine( "The Array contains the following values:" );
PrintIndexAndValues( myArray );
// Searches for the last occurrence of the duplicated value.
string myString = "the";
int myIndex = Array.LastIndexOf( myArray, myString );
Console.WriteLine( "The last occurrence of \"{0}\" is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in the first section of the Array.
myIndex = Array.LastIndexOf( myArray, myString, 8 );
Console.WriteLine( "The last occurrence of \"{0}\" between the start and index 8 is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
myIndex = Array.LastIndexOf( myArray, myString, 10, 6 );
Console.WriteLine( "The last occurrence of \"{0}\" between index 5 and index 10 is at index {1}.", myString, myIndex );
void PrintIndexAndValues( Array anArray ) {
for ( int i = anArray.GetLowerBound(0); i <= anArray.GetUpperBound(0); i++ )
Console.WriteLine( "\t[{0}]:\t{1}", i, anArray.GetValue( i ) );
}
/*
This code produces the following output.
The Array contains the following values:
[0]: the
[1]: quick
[2]: brown
[3]: fox
[4]: jumps
[5]: over
[6]: the
[7]: lazy
[8]: dog
[9]: in
[10]: the
[11]: barn
The last occurrence of "the" is at index 10.
The last occurrence of "the" between the start and index 8 is at index 6.
The last occurrence of "the" between index 5 and index 10 is at index 10.
*/
Public Class SamplesArray
Public Shared Sub Main()
' Creates and initializes a new Array with three elements of
' the same value.
Dim myArray As Array = Array.CreateInstance(GetType(String), 12)
myArray.SetValue("the", 0)
myArray.SetValue("quick", 1)
myArray.SetValue("brown", 2)
myArray.SetValue("fox", 3)
myArray.SetValue("jumps", 4)
myArray.SetValue("over", 5)
myArray.SetValue("the", 6)
myArray.SetValue("lazy", 7)
myArray.SetValue("dog", 8)
myArray.SetValue("in", 9)
myArray.SetValue("the", 10)
myArray.SetValue("barn", 11)
' Displays the values of the Array.
Console.WriteLine("The Array contains the following values:")
PrintIndexAndValues(myArray)
' Searches for the last occurrence of the duplicated value.
Dim myString As String = "the"
Dim myIndex As Integer = Array.LastIndexOf(myArray, myString)
Console.WriteLine("The last occurrence of ""{0}"" is at index {1}.", _
myString, myIndex)
' Searches for the last occurrence of the duplicated value in the first
' section of the Array.
myIndex = Array.LastIndexOf(myArray, myString, 8)
Console.WriteLine("The last occurrence of ""{0}"" between the start " _
+ "and index 8 is at index {1}.", myString, myIndex)
' Searches for the last occurrence of the duplicated value in a section
' of the Array. Note that the start index is greater than the end
' index because the search is done backward.
myIndex = Array.LastIndexOf(myArray, myString, 10, 6)
Console.WriteLine("The last occurrence of ""{0}"" between index 5 " _
+ "and index 10 is at index {1}.", myString, myIndex)
End Sub
Public Shared Sub PrintIndexAndValues(myArray As Array)
Dim i As Integer
For i = myArray.GetLowerBound(0) To myArray.GetUpperBound(0)
Console.WriteLine(ControlChars.Tab + "[{0}]:" + ControlChars.Tab _
+ "{1}", i, myArray.GetValue(i))
Next i
End Sub
End Class
' This code produces the following output.
'
' The Array contains the following values:
' [0]: the
' [1]: quick
' [2]: brown
' [3]: fox
' [4]: jumps
' [5]: over
' [6]: the
' [7]: lazy
' [8]: dog
' [9]: in
' [10]: the
' [11]: barn
' The last occurrence of "the" is at index 10.
' The last occurrence of "the" between the start and index 8 is at index 6.
' The last occurrence of "the" between index 5 and index 10 is at index 10.
Keterangan
Satu dimensi Array dicari mundur mulai dari elemen terakhir dan berakhir pada elemen pertama.
Elemen dibandingkan dengan nilai yang ditentukan menggunakan Object.Equals metode . Jika jenis elemen adalah jenis nonintrinsic (ditentukan pengguna), implementasi jenis tersebut Equals digunakan.
Karena sebagian besar array akan memiliki batas nol yang lebih rendah, metode ini umumnya akan mengembalikan -1 ketika value tidak ditemukan. Dalam kasus yang jarang terjadi bahwa batas bawah array sama dengan Int32.MinValue dan value tidak ditemukan, metode ini mengembalikan Int32.MaxValue, yaitu System.Int32.MinValue - 1.
Metode ini adalah operasi O(n), di mana n adalah Length dari array.
Dalam .NET Framework 2.0 dan versi yang lebih baru, metode ini menggunakan Equals metode dan CompareTo untuk Array menentukan apakah Object yang ditentukan oleh value parameter ada. Dalam versi .NET Framework sebelumnya, penentuan ini dibuat dengan menggunakan Equals metode dan CompareTo dari itu valueObject sendiri.
CompareToitem metode parameter pada objek dalam koleksi.
Lihat juga
Berlaku untuk
LastIndexOf(Array, Object, Int32)
- Sumber:
- Array.cs
- Sumber:
- Array.cs
- Sumber:
- Array.cs
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam satu dimensi Array yang meluas dari elemen pertama ke indeks yang ditentukan.
public:
static int LastIndexOf(Array ^ array, System::Object ^ value, int startIndex);public static int LastIndexOf (Array array, object value, int startIndex);public static int LastIndexOf (Array array, object? value, int startIndex);static member LastIndexOf : Array * obj * int -> intPublic Shared Function LastIndexOf (array As Array, value As Object, startIndex As Integer) As IntegerParameter
- value
- Object
Objek untuk ditemukan di array.
- startIndex
- Int32
Indeks awal pencarian mundur.
Mengembalikan
Indeks kemunculan value terakhir dalam rentang elemen dalam array yang meluas dari elemen pertama ke startIndex, jika ditemukan; jika tidak, batas bawah array dikurangi 1.
Pengecualian
arrayadalah null.
startIndex berada di luar rentang indeks yang valid untuk array.
array bersifat multidimensi.
Contoh
Contoh kode berikut menunjukkan cara menentukan indeks kemunculan terakhir elemen tertentu dalam array.
using namespace System;
void PrintIndexAndValues( Array^ myArray );
void main()
{
// Creates and initializes a new Array instance with three elements of the same value.
Array^ myArray = Array::CreateInstance( String::typeid, 12 );
myArray->SetValue( "the", 0 );
myArray->SetValue( "quick", 1 );
myArray->SetValue( "brown", 2 );
myArray->SetValue( "fox", 3 );
myArray->SetValue( "jumps", 4 );
myArray->SetValue( "over", 5 );
myArray->SetValue( "the", 6 );
myArray->SetValue( "lazy", 7 );
myArray->SetValue( "dog", 8 );
myArray->SetValue( "in", 9 );
myArray->SetValue( "the", 10 );
myArray->SetValue( "barn", 11 );
// Displays the values of the Array.
Console::WriteLine( "The Array instance contains the following values:" );
PrintIndexAndValues( myArray );
// Searches for the last occurrence of the duplicated value.
String^ myString = "the";
int myIndex = Array::LastIndexOf( myArray, myString );
Console::WriteLine( "The last occurrence of \"{0}\" is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in the first section of the Array.
myIndex = Array::LastIndexOf( myArray, myString, 8 );
Console::WriteLine( "The last occurrence of \"{0}\" between the start and index 8 is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
myIndex = Array::LastIndexOf( myArray, myString, 10, 6 );
Console::WriteLine( "The last occurrence of \"{0}\" between index 5 and index 10 is at index {1}.", myString, myIndex );
}
void PrintIndexAndValues( Array^ myArray )
{
for ( int i = myArray->GetLowerBound( 0 ); i <= myArray->GetUpperBound( 0 ); i++ )
Console::WriteLine( "\t[{0}]:\t{1}", i, myArray->GetValue( i ) );
}
/*
This code produces the following output.
The Array instance contains the following values:
[0]: the
[1]: quick
[2]: brown
[3]: fox
[4]: jumps
[5]: over
[6]: the
[7]: lazy
[8]: dog
[9]: in
[10]: the
[11]: barn
The last occurrence of "the" is at index 10.
The last occurrence of "the" between the start and index 8 is at index 6.
The last occurrence of "the" between index 5 and index 10 is at index 10.
*/
let printIndexAndValues (arr: 'a []) =
for i = arr.GetLowerBound 0 to arr.GetUpperBound 0 do
printfn $"\t[{i}]:\t{arr[i]}"
// Creates and initializes a new Array with three elements of the same value.
let myArray =
[| "the"; "quick"; "brown"; "fox"
"jumps"; "over"; "the"; "lazy"
"dog"; "in"; "the"; "barn" |]
// Displays the values of the Array.
printfn "The Array contains the following values:"
printIndexAndValues myArray
// Searches for the last occurrence of the duplicated value.
let myString = "the"
let myIndex = Array.LastIndexOf(myArray, myString)
printfn $"The last occurrence of \"{myString}\" is at index {myIndex}."
// Searches for the last occurrence of the duplicated value in the first section of the Array.
let myIndex = Array.LastIndexOf(myArray, myString, 8)
printfn $"The last occurrence of \"{myString}\" between the start and index 8 is at index {myIndex}."
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
let myIndex = Array.LastIndexOf( myArray, myString, 10, 6 )
printfn $"The last occurrence of \"{myString}\" between index 5 and index 10 is at index {myIndex}."
// This code produces the following output.
//
// The Array contains the following values:
// [0]: the
// [1]: quick
// [2]: brown
// [3]: fox
// [4]: jumps
// [5]: over
// [6]: the
// [7]: lazy
// [8]: dog
// [9]: in
// [10]: the
// [11]: barn
// The last occurrence of "the" is at index 10.
// The last occurrence of "the" between the start and index 8 is at index 6.
// The last occurrence of "the" between index 5 and index 10 is at index 10.
// Creates and initializes a new Array with three elements of the same value.
Array myArray=Array.CreateInstance( typeof(string), 12 );
myArray.SetValue( "the", 0 );
myArray.SetValue( "quick", 1 );
myArray.SetValue( "brown", 2 );
myArray.SetValue( "fox", 3 );
myArray.SetValue( "jumps", 4 );
myArray.SetValue( "over", 5 );
myArray.SetValue( "the", 6 );
myArray.SetValue( "lazy", 7 );
myArray.SetValue( "dog", 8 );
myArray.SetValue( "in", 9 );
myArray.SetValue( "the", 10 );
myArray.SetValue( "barn", 11 );
// Displays the values of the Array.
Console.WriteLine( "The Array contains the following values:" );
PrintIndexAndValues( myArray );
// Searches for the last occurrence of the duplicated value.
string myString = "the";
int myIndex = Array.LastIndexOf( myArray, myString );
Console.WriteLine( "The last occurrence of \"{0}\" is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in the first section of the Array.
myIndex = Array.LastIndexOf( myArray, myString, 8 );
Console.WriteLine( "The last occurrence of \"{0}\" between the start and index 8 is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
myIndex = Array.LastIndexOf( myArray, myString, 10, 6 );
Console.WriteLine( "The last occurrence of \"{0}\" between index 5 and index 10 is at index {1}.", myString, myIndex );
void PrintIndexAndValues( Array anArray ) {
for ( int i = anArray.GetLowerBound(0); i <= anArray.GetUpperBound(0); i++ )
Console.WriteLine( "\t[{0}]:\t{1}", i, anArray.GetValue( i ) );
}
/*
This code produces the following output.
The Array contains the following values:
[0]: the
[1]: quick
[2]: brown
[3]: fox
[4]: jumps
[5]: over
[6]: the
[7]: lazy
[8]: dog
[9]: in
[10]: the
[11]: barn
The last occurrence of "the" is at index 10.
The last occurrence of "the" between the start and index 8 is at index 6.
The last occurrence of "the" between index 5 and index 10 is at index 10.
*/
Public Class SamplesArray
Public Shared Sub Main()
' Creates and initializes a new Array with three elements of
' the same value.
Dim myArray As Array = Array.CreateInstance(GetType(String), 12)
myArray.SetValue("the", 0)
myArray.SetValue("quick", 1)
myArray.SetValue("brown", 2)
myArray.SetValue("fox", 3)
myArray.SetValue("jumps", 4)
myArray.SetValue("over", 5)
myArray.SetValue("the", 6)
myArray.SetValue("lazy", 7)
myArray.SetValue("dog", 8)
myArray.SetValue("in", 9)
myArray.SetValue("the", 10)
myArray.SetValue("barn", 11)
' Displays the values of the Array.
Console.WriteLine("The Array contains the following values:")
PrintIndexAndValues(myArray)
' Searches for the last occurrence of the duplicated value.
Dim myString As String = "the"
Dim myIndex As Integer = Array.LastIndexOf(myArray, myString)
Console.WriteLine("The last occurrence of ""{0}"" is at index {1}.", _
myString, myIndex)
' Searches for the last occurrence of the duplicated value in the first
' section of the Array.
myIndex = Array.LastIndexOf(myArray, myString, 8)
Console.WriteLine("The last occurrence of ""{0}"" between the start " _
+ "and index 8 is at index {1}.", myString, myIndex)
' Searches for the last occurrence of the duplicated value in a section
' of the Array. Note that the start index is greater than the end
' index because the search is done backward.
myIndex = Array.LastIndexOf(myArray, myString, 10, 6)
Console.WriteLine("The last occurrence of ""{0}"" between index 5 " _
+ "and index 10 is at index {1}.", myString, myIndex)
End Sub
Public Shared Sub PrintIndexAndValues(myArray As Array)
Dim i As Integer
For i = myArray.GetLowerBound(0) To myArray.GetUpperBound(0)
Console.WriteLine(ControlChars.Tab + "[{0}]:" + ControlChars.Tab _
+ "{1}", i, myArray.GetValue(i))
Next i
End Sub
End Class
' This code produces the following output.
'
' The Array contains the following values:
' [0]: the
' [1]: quick
' [2]: brown
' [3]: fox
' [4]: jumps
' [5]: over
' [6]: the
' [7]: lazy
' [8]: dog
' [9]: in
' [10]: the
' [11]: barn
' The last occurrence of "the" is at index 10.
' The last occurrence of "the" between the start and index 8 is at index 6.
' The last occurrence of "the" between index 5 and index 10 is at index 10.
Keterangan
Satu dimensi Array dicari mundur mulai dari startIndex dan berakhir pada elemen pertama.
Elemen dibandingkan dengan nilai yang ditentukan menggunakan Object.Equals metode . Jika jenis elemen adalah jenis nonintrinsic (ditentukan pengguna), implementasi jenis tersebut Equals digunakan.
Karena sebagian besar array akan memiliki batas nol yang lebih rendah, metode ini umumnya akan mengembalikan -1 ketika value tidak ditemukan. Dalam kasus yang jarang terjadi bahwa batas bawah array sama dengan Int32.MinValue dan value tidak ditemukan, metode ini mengembalikan Int32.MaxValue, yaitu System.Int32.MinValue - 1.
Metode ini adalah operasi O(n), di mana n adalah jumlah elemen dari awal array hingga startIndex.
Dalam .NET Framework 2.0 dan versi yang lebih baru, metode ini menggunakan Equals metode dan CompareTo untuk Array menentukan apakah Object yang ditentukan oleh value parameter ada. Dalam versi .NET Framework sebelumnya, penentuan ini dibuat dengan menggunakan Equals metode dan CompareTo dari itu valueObject sendiri.
Lihat juga
Berlaku untuk
LastIndexOf(Array, Object, Int32, Int32)
- Sumber:
- Array.cs
- Sumber:
- Array.cs
- Sumber:
- Array.cs
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam satu dimensi Array yang berisi jumlah elemen yang ditentukan dan berakhir pada indeks yang ditentukan.
public:
static int LastIndexOf(Array ^ array, System::Object ^ value, int startIndex, int count);public static int LastIndexOf (Array array, object value, int startIndex, int count);public static int LastIndexOf (Array array, object? value, int startIndex, int count);static member LastIndexOf : Array * obj * int * int -> intPublic Shared Function LastIndexOf (array As Array, value As Object, startIndex As Integer, count As Integer) As IntegerParameter
- value
- Object
Objek untuk ditemukan di array.
- startIndex
- Int32
Indeks awal pencarian mundur.
- count
- Int32
Jumlah elemen di bagian untuk dicari.
Mengembalikan
Indeks kemunculan value terakhir dalam rentang elemen dalam array yang berisi jumlah elemen yang ditentukan di count dan berakhir pada startIndex, jika ditemukan; jika tidak, batas bawah array dikurangi 1.
Pengecualian
arrayadalah null.
startIndex berada di luar rentang indeks yang valid untuk array.
-atau-
count kurang dari nol.
-atau-
startIndex dan count jangan tentukan bagian yang valid di array.
array bersifat multidimensi.
Contoh
Contoh kode berikut menunjukkan cara menentukan indeks kemunculan terakhir elemen tertentu dalam array. Perhatikan bahwa LastIndexOf metode ini adalah pencarian mundur; oleh karena itu, count harus kurang dari atau sama dengan (startIndex dikurangi batas bawah array ditambah 1).
using namespace System;
void PrintIndexAndValues( Array^ myArray );
void main()
{
// Creates and initializes a new Array instance with three elements of the same value.
Array^ myArray = Array::CreateInstance( String::typeid, 12 );
myArray->SetValue( "the", 0 );
myArray->SetValue( "quick", 1 );
myArray->SetValue( "brown", 2 );
myArray->SetValue( "fox", 3 );
myArray->SetValue( "jumps", 4 );
myArray->SetValue( "over", 5 );
myArray->SetValue( "the", 6 );
myArray->SetValue( "lazy", 7 );
myArray->SetValue( "dog", 8 );
myArray->SetValue( "in", 9 );
myArray->SetValue( "the", 10 );
myArray->SetValue( "barn", 11 );
// Displays the values of the Array.
Console::WriteLine( "The Array instance contains the following values:" );
PrintIndexAndValues( myArray );
// Searches for the last occurrence of the duplicated value.
String^ myString = "the";
int myIndex = Array::LastIndexOf( myArray, myString );
Console::WriteLine( "The last occurrence of \"{0}\" is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in the first section of the Array.
myIndex = Array::LastIndexOf( myArray, myString, 8 );
Console::WriteLine( "The last occurrence of \"{0}\" between the start and index 8 is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
myIndex = Array::LastIndexOf( myArray, myString, 10, 6 );
Console::WriteLine( "The last occurrence of \"{0}\" between index 5 and index 10 is at index {1}.", myString, myIndex );
}
void PrintIndexAndValues( Array^ myArray )
{
for ( int i = myArray->GetLowerBound( 0 ); i <= myArray->GetUpperBound( 0 ); i++ )
Console::WriteLine( "\t[{0}]:\t{1}", i, myArray->GetValue( i ) );
}
/*
This code produces the following output.
The Array instance contains the following values:
[0]: the
[1]: quick
[2]: brown
[3]: fox
[4]: jumps
[5]: over
[6]: the
[7]: lazy
[8]: dog
[9]: in
[10]: the
[11]: barn
The last occurrence of "the" is at index 10.
The last occurrence of "the" between the start and index 8 is at index 6.
The last occurrence of "the" between index 5 and index 10 is at index 10.
*/
let printIndexAndValues (arr: 'a []) =
for i = arr.GetLowerBound 0 to arr.GetUpperBound 0 do
printfn $"\t[{i}]:\t{arr[i]}"
// Creates and initializes a new Array with three elements of the same value.
let myArray =
[| "the"; "quick"; "brown"; "fox"
"jumps"; "over"; "the"; "lazy"
"dog"; "in"; "the"; "barn" |]
// Displays the values of the Array.
printfn "The Array contains the following values:"
printIndexAndValues myArray
// Searches for the last occurrence of the duplicated value.
let myString = "the"
let myIndex = Array.LastIndexOf(myArray, myString)
printfn $"The last occurrence of \"{myString}\" is at index {myIndex}."
// Searches for the last occurrence of the duplicated value in the first section of the Array.
let myIndex = Array.LastIndexOf(myArray, myString, 8)
printfn $"The last occurrence of \"{myString}\" between the start and index 8 is at index {myIndex}."
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
let myIndex = Array.LastIndexOf( myArray, myString, 10, 6 )
printfn $"The last occurrence of \"{myString}\" between index 5 and index 10 is at index {myIndex}."
// This code produces the following output.
//
// The Array contains the following values:
// [0]: the
// [1]: quick
// [2]: brown
// [3]: fox
// [4]: jumps
// [5]: over
// [6]: the
// [7]: lazy
// [8]: dog
// [9]: in
// [10]: the
// [11]: barn
// The last occurrence of "the" is at index 10.
// The last occurrence of "the" between the start and index 8 is at index 6.
// The last occurrence of "the" between index 5 and index 10 is at index 10.
// Creates and initializes a new Array with three elements of the same value.
Array myArray=Array.CreateInstance( typeof(string), 12 );
myArray.SetValue( "the", 0 );
myArray.SetValue( "quick", 1 );
myArray.SetValue( "brown", 2 );
myArray.SetValue( "fox", 3 );
myArray.SetValue( "jumps", 4 );
myArray.SetValue( "over", 5 );
myArray.SetValue( "the", 6 );
myArray.SetValue( "lazy", 7 );
myArray.SetValue( "dog", 8 );
myArray.SetValue( "in", 9 );
myArray.SetValue( "the", 10 );
myArray.SetValue( "barn", 11 );
// Displays the values of the Array.
Console.WriteLine( "The Array contains the following values:" );
PrintIndexAndValues( myArray );
// Searches for the last occurrence of the duplicated value.
string myString = "the";
int myIndex = Array.LastIndexOf( myArray, myString );
Console.WriteLine( "The last occurrence of \"{0}\" is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in the first section of the Array.
myIndex = Array.LastIndexOf( myArray, myString, 8 );
Console.WriteLine( "The last occurrence of \"{0}\" between the start and index 8 is at index {1}.", myString, myIndex );
// Searches for the last occurrence of the duplicated value in a section of the Array.
// Note that the start index is greater than the end index because the search is done backward.
myIndex = Array.LastIndexOf( myArray, myString, 10, 6 );
Console.WriteLine( "The last occurrence of \"{0}\" between index 5 and index 10 is at index {1}.", myString, myIndex );
void PrintIndexAndValues( Array anArray ) {
for ( int i = anArray.GetLowerBound(0); i <= anArray.GetUpperBound(0); i++ )
Console.WriteLine( "\t[{0}]:\t{1}", i, anArray.GetValue( i ) );
}
/*
This code produces the following output.
The Array contains the following values:
[0]: the
[1]: quick
[2]: brown
[3]: fox
[4]: jumps
[5]: over
[6]: the
[7]: lazy
[8]: dog
[9]: in
[10]: the
[11]: barn
The last occurrence of "the" is at index 10.
The last occurrence of "the" between the start and index 8 is at index 6.
The last occurrence of "the" between index 5 and index 10 is at index 10.
*/
Public Class SamplesArray
Public Shared Sub Main()
' Creates and initializes a new Array with three elements of
' the same value.
Dim myArray As Array = Array.CreateInstance(GetType(String), 12)
myArray.SetValue("the", 0)
myArray.SetValue("quick", 1)
myArray.SetValue("brown", 2)
myArray.SetValue("fox", 3)
myArray.SetValue("jumps", 4)
myArray.SetValue("over", 5)
myArray.SetValue("the", 6)
myArray.SetValue("lazy", 7)
myArray.SetValue("dog", 8)
myArray.SetValue("in", 9)
myArray.SetValue("the", 10)
myArray.SetValue("barn", 11)
' Displays the values of the Array.
Console.WriteLine("The Array contains the following values:")
PrintIndexAndValues(myArray)
' Searches for the last occurrence of the duplicated value.
Dim myString As String = "the"
Dim myIndex As Integer = Array.LastIndexOf(myArray, myString)
Console.WriteLine("The last occurrence of ""{0}"" is at index {1}.", _
myString, myIndex)
' Searches for the last occurrence of the duplicated value in the first
' section of the Array.
myIndex = Array.LastIndexOf(myArray, myString, 8)
Console.WriteLine("The last occurrence of ""{0}"" between the start " _
+ "and index 8 is at index {1}.", myString, myIndex)
' Searches for the last occurrence of the duplicated value in a section
' of the Array. Note that the start index is greater than the end
' index because the search is done backward.
myIndex = Array.LastIndexOf(myArray, myString, 10, 6)
Console.WriteLine("The last occurrence of ""{0}"" between index 5 " _
+ "and index 10 is at index {1}.", myString, myIndex)
End Sub
Public Shared Sub PrintIndexAndValues(myArray As Array)
Dim i As Integer
For i = myArray.GetLowerBound(0) To myArray.GetUpperBound(0)
Console.WriteLine(ControlChars.Tab + "[{0}]:" + ControlChars.Tab _
+ "{1}", i, myArray.GetValue(i))
Next i
End Sub
End Class
' This code produces the following output.
'
' The Array contains the following values:
' [0]: the
' [1]: quick
' [2]: brown
' [3]: fox
' [4]: jumps
' [5]: over
' [6]: the
' [7]: lazy
' [8]: dog
' [9]: in
' [10]: the
' [11]: barn
' The last occurrence of "the" is at index 10.
' The last occurrence of "the" between the start and index 8 is at index 6.
' The last occurrence of "the" between index 5 and index 10 is at index 10.
Keterangan
Satu dimensi Array dicari mundur mulai dari startIndex dan berakhir pada startIndex minus count plus 1, jika count lebih besar dari 0.
Elemen dibandingkan dengan nilai yang ditentukan menggunakan Object.Equals metode . Jika jenis elemen adalah jenis nonintrinsic (ditentukan pengguna), implementasi jenis tersebutEquals digunakan.
Karena sebagian besar array akan memiliki batas nol yang lebih rendah, metode ini umumnya akan mengembalikan -1 ketika value tidak ditemukan. Dalam kasus yang jarang terjadi bahwa batas bawah array sama dengan Int32.MinValue dan value tidak ditemukan, metode ini mengembalikan Int32.MaxValue, yaitu System.Int32.MinValue - 1.
Metode ini adalah operasi O(n), di mana n adalah count.
Dalam .NET Framework 2.0 dan versi yang lebih baru, metode ini menggunakan Equals metode dan CompareTo untuk Array menentukan apakah Object yang ditentukan oleh value parameter ada. Dalam versi .NET Framework sebelumnya, penentuan ini dibuat dengan menggunakan Equals metode dan CompareTo dari itu valueObject sendiri.
Lihat juga
Berlaku untuk
LastIndexOf<T>(T[], T)
- Sumber:
- Array.cs
- Sumber:
- Array.cs
- Sumber:
- Array.cs
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam seluruh Array.
public:
generic <typename T>
static int LastIndexOf(cli::array <T> ^ array, T value);public static int LastIndexOf<T> (T[] array, T value);static member LastIndexOf : 'T[] * 'T -> intPublic Shared Function LastIndexOf(Of T) (array As T(), value As T) As IntegerJenis parameter
- T
Jenis elemen array.
Parameter
- array
- T[]
Berbasis satu dimensi, nol Array untuk dicari.
- value
- T
Objek untuk ditemukan di array.
Mengembalikan
Indeks berbasis nol dari kemunculan terakhir dari value dalam seluruh array, jika ditemukan; jika tidak, -1.
Pengecualian
arrayadalah null.
Contoh
Contoh kode berikut menunjukkan ketiga kelebihan beban LastIndexOf umum metode. Array string dibuat, dengan satu entri yang muncul dua kali, di lokasi indeks 0 dan lokasi indeks 5. Metode LastIndexOf<T>(T[], T) kelebihan beban mencari seluruh array dari akhir, dan menemukan kemunculan kedua string. Metode LastIndexOf<T>(T[], T, Int32) kelebihan beban digunakan untuk mencari array mundur dimulai dengan lokasi indeks 3 dan melanjutkan ke awal array, dan menemukan kemunculan pertama string. Akhirnya, LastIndexOf<T>(T[], T, Int32, Int32) metode kelebihan beban digunakan untuk mencari rentang empat entri, dimulai di lokasi indeks 4 dan memperluas mundur (yaitu, mencari item di lokasi 4, 3, 2, dan 1); pencarian ini mengembalikan -1 karena tidak ada contoh string pencarian dalam rentang tersebut.
using namespace System;
void main()
{
array<String^>^ dinosaurs = { "Tyrannosaurus",
"Amargasaurus",
"Mamenchisaurus",
"Brachiosaurus",
"Deinonychus",
"Tyrannosaurus",
"Compsognathus" };
Console::WriteLine();
for each(String^ dinosaur in dinosaurs )
{
Console::WriteLine(dinosaur);
}
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus"));
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus", 3));
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4));
}
/* This code example produces the following output:
Tyrannosaurus
Amargasaurus
Mamenchisaurus
Brachiosaurus
Deinonychus
Tyrannosaurus
Compsognathus
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
*/
string[] dinosaurs = { "Tyrannosaurus",
"Amargasaurus",
"Mamenchisaurus",
"Brachiosaurus",
"Deinonychus",
"Tyrannosaurus",
"Compsognathus" };
Console.WriteLine();
foreach(string dinosaur in dinosaurs)
{
Console.WriteLine(dinosaur);
}
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"));
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3));
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4));
/* This code example produces the following output:
Tyrannosaurus
Amargasaurus
Mamenchisaurus
Brachiosaurus
Deinonychus
Tyrannosaurus
Compsognathus
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
*/
open System
let dinosaurs =
[| "Tyrannosaurus"
"Amargasaurus"
"Mamenchisaurus"
"Brachiosaurus"
"Deinonychus"
"Tyrannosaurus"
"Compsognathus" |]
printfn ""
for dino in dinosaurs do
printfn $"{dino}"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus")
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): %i"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3)
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): %i"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4)
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): %i"
// This code example produces the following output:
//
// Tyrannosaurus
// Amargasaurus
// Mamenchisaurus
// Brachiosaurus
// Deinonychus
// Tyrannosaurus
// Compsognathus
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
Public Class Example
Public Shared Sub Main()
Dim dinosaurs() As String = { "Tyrannosaurus", _
"Amargasaurus", _
"Mamenchisaurus", _
"Brachiosaurus", _
"Deinonychus", _
"Tyrannosaurus", _
"Compsognathus" }
Console.WriteLine()
For Each dinosaur As String In dinosaurs
Console.WriteLine(dinosaur)
Next
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus""): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"))
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus"", 3): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3))
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus"", 4, 4): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4))
End Sub
End Class
' This code example produces the following output:
'
'Tyrannosaurus
'Amargasaurus
'Mamenchisaurus
'Brachiosaurus
'Deinonychus
'Tyrannosaurus
'Compsognathus
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
Keterangan
Array dicari mundur mulai dari elemen terakhir dan berakhir pada elemen pertama.
Elemen dibandingkan dengan nilai yang ditentukan menggunakan Object.Equals metode . Jika jenis elemen adalah jenis nonintrinsic (ditentukan pengguna), implementasi jenis tersebut Equals digunakan.
Metode ini adalah operasi O(n), di mana n adalah Length dari array.
Lihat juga
Berlaku untuk
LastIndexOf<T>(T[], T, Int32)
- Sumber:
- Array.cs
- Sumber:
- Array.cs
- Sumber:
- Array.cs
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam Array yang meluas dari elemen pertama ke indeks yang ditentukan.
public:
generic <typename T>
static int LastIndexOf(cli::array <T> ^ array, T value, int startIndex);public static int LastIndexOf<T> (T[] array, T value, int startIndex);static member LastIndexOf : 'T[] * 'T * int -> intPublic Shared Function LastIndexOf(Of T) (array As T(), value As T, startIndex As Integer) As IntegerJenis parameter
- T
Jenis elemen array.
Parameter
- array
- T[]
Berbasis satu dimensi, nol Array untuk dicari.
- value
- T
Objek untuk ditemukan di array.
- startIndex
- Int32
Indeks awal berbasis nol dari pencarian mundur.
Mengembalikan
Indeks berbasis nol dari kemunculan value terakhir dalam rentang elemen yang array meluas dari elemen pertama ke startIndex, jika ditemukan; jika tidak, -1.
Pengecualian
arrayadalah null.
startIndex berada di luar rentang indeks yang valid untuk array.
Contoh
Contoh kode berikut menunjukkan ketiga kelebihan beban LastIndexOf umum metode. Array string dibuat, dengan satu entri yang muncul dua kali, di lokasi indeks 0 dan lokasi indeks 5. Metode LastIndexOf<T>(T[], T) kelebihan beban mencari seluruh array dari akhir, dan menemukan kemunculan kedua string. Metode LastIndexOf<T>(T[], T, Int32) kelebihan beban digunakan untuk mencari array mundur dimulai dengan lokasi indeks 3 dan melanjutkan ke awal array, dan menemukan kemunculan pertama string. Akhirnya, LastIndexOf<T>(T[], T, Int32, Int32) metode kelebihan beban digunakan untuk mencari rentang empat entri, dimulai di lokasi indeks 4 dan memperluas mundur (yaitu, mencari item di lokasi 4, 3, 2, dan 1); pencarian ini mengembalikan -1 karena tidak ada contoh string pencarian dalam rentang tersebut.
using namespace System;
void main()
{
array<String^>^ dinosaurs = { "Tyrannosaurus",
"Amargasaurus",
"Mamenchisaurus",
"Brachiosaurus",
"Deinonychus",
"Tyrannosaurus",
"Compsognathus" };
Console::WriteLine();
for each(String^ dinosaur in dinosaurs )
{
Console::WriteLine(dinosaur);
}
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus"));
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus", 3));
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4));
}
/* This code example produces the following output:
Tyrannosaurus
Amargasaurus
Mamenchisaurus
Brachiosaurus
Deinonychus
Tyrannosaurus
Compsognathus
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
*/
string[] dinosaurs = { "Tyrannosaurus",
"Amargasaurus",
"Mamenchisaurus",
"Brachiosaurus",
"Deinonychus",
"Tyrannosaurus",
"Compsognathus" };
Console.WriteLine();
foreach(string dinosaur in dinosaurs)
{
Console.WriteLine(dinosaur);
}
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"));
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3));
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4));
/* This code example produces the following output:
Tyrannosaurus
Amargasaurus
Mamenchisaurus
Brachiosaurus
Deinonychus
Tyrannosaurus
Compsognathus
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
*/
open System
let dinosaurs =
[| "Tyrannosaurus"
"Amargasaurus"
"Mamenchisaurus"
"Brachiosaurus"
"Deinonychus"
"Tyrannosaurus"
"Compsognathus" |]
printfn ""
for dino in dinosaurs do
printfn $"{dino}"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus")
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): %i"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3)
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): %i"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4)
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): %i"
// This code example produces the following output:
//
// Tyrannosaurus
// Amargasaurus
// Mamenchisaurus
// Brachiosaurus
// Deinonychus
// Tyrannosaurus
// Compsognathus
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
Public Class Example
Public Shared Sub Main()
Dim dinosaurs() As String = { "Tyrannosaurus", _
"Amargasaurus", _
"Mamenchisaurus", _
"Brachiosaurus", _
"Deinonychus", _
"Tyrannosaurus", _
"Compsognathus" }
Console.WriteLine()
For Each dinosaur As String In dinosaurs
Console.WriteLine(dinosaur)
Next
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus""): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"))
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus"", 3): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3))
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus"", 4, 4): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4))
End Sub
End Class
' This code example produces the following output:
'
'Tyrannosaurus
'Amargasaurus
'Mamenchisaurus
'Brachiosaurus
'Deinonychus
'Tyrannosaurus
'Compsognathus
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
Keterangan
Array dicari mundur mulai dari startIndex dan berakhir pada elemen pertama.
Elemen dibandingkan dengan nilai yang ditentukan menggunakan Object.Equals metode . Jika jenis elemen adalah jenis nonintrinsic (ditentukan pengguna), implementasi jenis tersebut Equals digunakan.
Metode ini adalah operasi O(n), di mana n adalah jumlah elemen dari awal array hingga startIndex.
Lihat juga
Berlaku untuk
LastIndexOf<T>(T[], T, Int32, Int32)
- Sumber:
- Array.cs
- Sumber:
- Array.cs
- Sumber:
- Array.cs
Mencari objek yang ditentukan dan mengembalikan indeks kemunculan terakhir dalam rentang elemen dalam Array yang berisi jumlah elemen yang ditentukan dan berakhir pada indeks yang ditentukan.
public:
generic <typename T>
static int LastIndexOf(cli::array <T> ^ array, T value, int startIndex, int count);public static int LastIndexOf<T> (T[] array, T value, int startIndex, int count);static member LastIndexOf : 'T[] * 'T * int * int -> intPublic Shared Function LastIndexOf(Of T) (array As T(), value As T, startIndex As Integer, count As Integer) As IntegerJenis parameter
- T
Jenis elemen array.
Parameter
- array
- T[]
Berbasis satu dimensi, nol Array untuk dicari.
- value
- T
Objek untuk ditemukan di array.
- startIndex
- Int32
Indeks awal berbasis nol dari pencarian mundur.
- count
- Int32
Jumlah elemen di bagian untuk dicari.
Mengembalikan
Indeks berbasis nol dari kemunculan value terakhir dalam rentang elemen yang array berisi jumlah elemen yang ditentukan di count dan berakhir pada startIndex, jika ditemukan; jika tidak, -1.
Pengecualian
arrayadalah null.
startIndex berada di luar rentang indeks yang valid untuk array.
-atau-
count kurang dari nol.
-atau-
startIndex dan count jangan tentukan bagian yang valid di array.
Contoh
Contoh kode berikut menunjukkan ketiga kelebihan beban LastIndexOf umum metode. Array string dibuat, dengan satu entri yang muncul dua kali, di lokasi indeks 0 dan lokasi indeks 5. Metode LastIndexOf<T>(T[], T) kelebihan beban mencari seluruh array dari akhir, dan menemukan kemunculan kedua string. Metode LastIndexOf<T>(T[], T, Int32) kelebihan beban digunakan untuk mencari array mundur dimulai dengan lokasi indeks 3 dan melanjutkan ke awal array, dan menemukan kemunculan pertama string. Akhirnya, LastIndexOf<T>(T[], T, Int32, Int32) metode kelebihan beban digunakan untuk mencari rentang empat entri, dimulai pada lokasi indeks 4 dan memanjang mundur (yaitu, mencari item di lokasi 4, 3, 2, dan 1); pencarian ini mengembalikan -1 karena tidak ada instans string pencarian dalam rentang tersebut.
using namespace System;
void main()
{
array<String^>^ dinosaurs = { "Tyrannosaurus",
"Amargasaurus",
"Mamenchisaurus",
"Brachiosaurus",
"Deinonychus",
"Tyrannosaurus",
"Compsognathus" };
Console::WriteLine();
for each(String^ dinosaur in dinosaurs )
{
Console::WriteLine(dinosaur);
}
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus"));
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus", 3));
Console::WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): {0}",
Array::LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4));
}
/* This code example produces the following output:
Tyrannosaurus
Amargasaurus
Mamenchisaurus
Brachiosaurus
Deinonychus
Tyrannosaurus
Compsognathus
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
*/
string[] dinosaurs = { "Tyrannosaurus",
"Amargasaurus",
"Mamenchisaurus",
"Brachiosaurus",
"Deinonychus",
"Tyrannosaurus",
"Compsognathus" };
Console.WriteLine();
foreach(string dinosaur in dinosaurs)
{
Console.WriteLine(dinosaur);
}
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"));
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3));
Console.WriteLine(
"\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): {0}",
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4));
/* This code example produces the following output:
Tyrannosaurus
Amargasaurus
Mamenchisaurus
Brachiosaurus
Deinonychus
Tyrannosaurus
Compsognathus
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
*/
open System
let dinosaurs =
[| "Tyrannosaurus"
"Amargasaurus"
"Mamenchisaurus"
"Brachiosaurus"
"Deinonychus"
"Tyrannosaurus"
"Compsognathus" |]
printfn ""
for dino in dinosaurs do
printfn $"{dino}"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus")
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\"): %i"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3)
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 3): %i"
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4)
|> printfn "\nArray.LastIndexOf(dinosaurs, \"Tyrannosaurus\", 4, 4): %i"
// This code example produces the following output:
//
// Tyrannosaurus
// Amargasaurus
// Mamenchisaurus
// Brachiosaurus
// Deinonychus
// Tyrannosaurus
// Compsognathus
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
//
// Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
Public Class Example
Public Shared Sub Main()
Dim dinosaurs() As String = { "Tyrannosaurus", _
"Amargasaurus", _
"Mamenchisaurus", _
"Brachiosaurus", _
"Deinonychus", _
"Tyrannosaurus", _
"Compsognathus" }
Console.WriteLine()
For Each dinosaur As String In dinosaurs
Console.WriteLine(dinosaur)
Next
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus""): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus"))
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus"", 3): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3))
Console.WriteLine(vbLf & _
"Array.LastIndexOf(dinosaurs, ""Tyrannosaurus"", 4, 4): {0}", _
Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4))
End Sub
End Class
' This code example produces the following output:
'
'Tyrannosaurus
'Amargasaurus
'Mamenchisaurus
'Brachiosaurus
'Deinonychus
'Tyrannosaurus
'Compsognathus
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus"): 5
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 3): 0
'
'Array.LastIndexOf(dinosaurs, "Tyrannosaurus", 4, 4): -1
Keterangan
Array dicari mundur mulai dari startIndex dan berakhir pada startIndex minus count plus 1, jika count lebih besar dari 0.
Elemen dibandingkan dengan nilai yang ditentukan menggunakan Object.Equals metode . Jika jenis elemen adalah jenis nonintrinsic (ditentukan pengguna), implementasi jenis tersebut Equals digunakan.
Metode ini adalah operasi O(n), di mana n adalah count.
Lihat juga
Berlaku untuk
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