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What is the difference between initializing array with

NSArray * array = [NSArray array];

and

NSArray * array = @[];
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2 Answers 2

up vote 6 down vote accepted

NSArray * array = @[]; is the new way of doing NSArray * array = [NSArray array];

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1  
1. Unrelated to the version of Xcode (rather related to the version of the language/standard/compiler used, of which Xcode is neither one). 2. "It's the same as NSString *string = @"";" - I don't think so. The former creates an array, the latter creates a string. –  user529758 Jan 23 '13 at 15:56
    
A good guess, but mostly incorrect. First statement is correct, rest is wrong. –  bbum Jan 23 '13 at 16:03
    
yes, that is correct. Wrote my answer to quickly. Edited my answer. My bad. –  Mikael Jan 23 '13 at 16:10
    
Upvoted @bbum answer, better explained. –  Mikael Jan 23 '13 at 16:14

@[] is shorthand for:

id a = nil;
NSArray* array = [NSArray arrayWithObjects:&a count:0];

Which is really just shorthand for [NSArray array], for all intents and purposes.

This is a feature added in a particular version of the compiler (and doesn't actually require runtime support for this particular syntax).

It is not at all like the @"" shorthand in that @"" produces a compile time constant and will cause no messaging at runtime. In fact, @"" (any @"sequence") is a special case in that it emits a compile time constant that is realized in the runtime with zero messaging; zero dynamism. A @"..." is more similar to an Objective-C class than it is to a regular instance of an object.

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I think @"" produces an NSString object not a compile time constant. –  Basem Saadawy Jan 23 '13 at 16:17
3  
Nope; it really is a compile time constant that is loaded via the dynamic linker just like classes and other compile time emitted data. There is no messaging involved. –  bbum Jan 23 '13 at 16:40

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