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If I have an array of ints, and I want to quickly check if a certain int value is in that array, is there a method to do that?

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7 Answers 7

up vote 9 down vote accepted

If the array is sorted, then this is quickest:

Array.BinarySearch(myArray, value) >= 0;

If the array is searched a lot and rarely modified, then you may find it worthwhile to sort the array after modification (using Array.Sort) and use the above. Otherwise, use the option you prefer:

Array.IndexOf(myArray, value) >= 0; //.Net 1

Array.Exists(array, delegate(int x) { return x == value; }); //.Net 2

myArray.Contains(value); //.Net 3

IndexOf has the best performance for unsorted arrays. The second option uses a predicate delegate, and the third requires the creation of an enumerator object.

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This new Contains method is not well publicized. – I. J. Kennedy Jan 7 '10 at 3:31

Use for example this, if you want to check if your array contains the int 0:

if (your_int_array.Contains(0))
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The Enumerable.Contains() Method is your friend in .NET-Framework 3.5...

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Providing you are using .NET 3.5 – RichardOD Nov 27 '09 at 9:06
@RichardOD: You are right. Editing the answer... – EricSchaefer Nov 27 '09 at 12:23

Enumerable.Contains if you're using C# 3.0 or later.


var contained = myArray.Contains(4);
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var myArray = new []  { 1, 2};
if myArray.Contains(1)
do something

You may need a using System.Linq;



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You could use the IndexOf method:

int[] array = new int[] { 1, 2, 3 };
bool isArrayContains17 = Array.IndexOf(array, 17) > -1;
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Try this function:

public static bool FindValueFromArray(object[] Values,object valueToSearch){
    bool retVal = false;
    Array myArray = (Array)Values;
    int found = Array.BinarySearch(myArray, valueToSearch);
    if (found != -1){
        retVal = true;
    return retVal;

Hope this helps.

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Binary search only works if array is sorted – yu_sha Nov 27 '09 at 8:58
And you vote my comment down based on this? – Mick Walker Nov 27 '09 at 9:00
I've +1. But I'd add that sorting is required and it is only really worth it if you are doing repeated searches. – RichardOD Nov 27 '09 at 9:05

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