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Here is a part of Apple code.

I don't understand the first line. Why is there a "void" with a return ?

// forward declaration of our utility functions
static NSUInteger _ImageCount(void);

static NSUInteger _ImageCount(void)
{
    static NSUInteger count = 0;
    static dispatch_once_t onceToken;
    dispatch_once(&onceToken, ^{
        count = [_ImageData() count];
    });
return count;
}
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    The first declaration is just a function prototype. The void part of the declaration/definition just states that there are no function parameters. The return type is NSUInteger. – Paul R Jan 29 '13 at 10:06
  • You are right. I used to see "void" at the beginning of line. – user1056113 Jan 29 '13 at 10:15
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foo(void) means that the function does not expect any parameter. But it does return and NSUInteger.

static NSUInteger _ImageCount(void)
^      ^          ^           ^
|      |          |           parameter list
|      |          function name
|      return type
visibility (may be referenced only from this module)
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  • static NSUInteger _ImageCount is good ? Or should I add "(void)" every time there is no parameter ? – user1056113 Jan 29 '13 at 10:13
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I think you conceived the function wrongly, since function should return "NSUInteger".

"void" is the parameter type which comes from the c/c++, which specifies the "no parameter".

static NSUInteger _ImageCount(void);

"NSUInteger" is the return type "void" specifies no-parameter

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  • Yes, I inverted "void" place (in my head). It changed meaning Binyamin Sharet showed a good explanation to it like yours. – user1056113 Jan 29 '13 at 10:21

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