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I'd like to convert an int to a string in Objective-C. How can I do this?

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Primitives can be converted to objects with @() expression. So the shortest way is to transform int to NSNumber and pick up string representation with stringValue method:

NSString *strValue = [@(myInt) stringValue];

or

NSString *strValue = @(myInt).stringValue;
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    Slightly less verbose: NSString *strValue = @(myInt).stringValue; – Distortum May 24 '14 at 13:28
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    I think this is the best solution, since it's both future-proof and cross-architecture compatible! – Ben Leggiero Jul 15 '15 at 15:22
  • @SteveTaylor slightly safer would be @(myInt).description – Islam Q. Nov 19 '15 at 8:01
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    @IslamQ. @(myInt) is a boxed expression for [NSNumber numberWithInt:] and it will always return an NSNumber when given an int. [NSNumber stringValue] will always return an NSString. In the code of your comment, force casting with (id) and assigning to a different type is a clear programming mistake: you should never do that. It's like swizzling a method and then making an argument about that method not doing what it was originally doing. – Cœur Apr 3 at 3:51
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    @IslamQ. Try converting your comment to Swift without using the crash operator (!) and you'll figure out that you were doing it wrongly in Objective-C. If the object test wasn't created by you, then it's not your responsibility. You may attempt to call isKindOfClass: for all your received parameters, but even that can be fooled (by passing a struct instead of an NSObject for instance). So don't do it: just document explicitly the expected types. – Cœur Apr 3 at 3:58
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NSString *string = [NSString stringWithFormat:@"%d", theinteger];
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    I like @(myInt).stringValue better since you don't need to care about the actual primitive type. – Elist Jul 24 '17 at 8:32
  • @Elist when you know the primitive type, I wonder if there may be slightly less overhead by avoiding the intermediate NSNumber from your code? @(myInt) is a boxed expression, it returns an NSNumber. – Cœur Apr 3 at 4:01
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int i = 25;
NSString *myString = [NSString stringWithFormat:@"%d",i];

This is one of many ways.

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If this string is for presentation to the end user, you should use NSNumberFormatter. This will add thousands separators, and will honor the localization settings for the user:

NSInteger n = 10000;
NSNumberFormatter *formatter = [[NSNumberFormatter alloc] init];
formatter.numberStyle = NSNumberFormatterDecimalStyle;
NSString *string = [formatter stringFromNumber:@(n)];

In the US, for example, that would create a string 10,000, but in Germany, that would be 10.000.

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