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char str[] = " http://www.ibegroup.com/";

char *p = str ;

void Foo ( char str[100]){

}

void *p = malloc( 100 );

What's the sizeof str,p,str,p in the above 4 case in turn?

I've tested it under my machine(which seems to be 64bit) with these results:

25 8 8 8

But don't understand the reason yet.

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4 Answers 4

up vote 3 down vote accepted

sizeof(char[]) returns the number of bytes in the string, i.e. strlen()+1 for null-terminated C strings filling the entire array. Arrays don't decay to pointers in sizeof. str is an array, and the string has 25 characters plus a null byte, so sizeof(str) should be 26. Did you add a space to the value?

The size of a pointer is of course always determined just by the machine architecture, so both instances of p are 8 bytes on 64-bit architectures and 4 bytes on 32-bit architectures.

In function arguments, arrays do decay to pointers, so you're getting the same result that you get for a pointer. Therefore, the following definitions are equivalent:

void foo(char s[42]) {};
void foo(char s[100]) {};
void foo(char* s) {};
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@phihag,what's the rationale for In function arguments, arrays do decay to pointers? –  Je Rog Jun 25 '11 at 14:31
    
array(char []) and pointers(char *) are essentially the same thing,why treated differently? I'm expecting both are the same value... –  Je Rog Jun 25 '11 at 14:33
    
@Je Rog arrays and pointers are not the same thing. Please follow the links to the C FAQ, the whole chapter discusses this in detail. In short, arrays become (or "decay" to) pointers in all contexts except sizeof, & and array initialization. –  phihag Jun 25 '11 at 14:34
    
@Je Rog A char* and a char[] cannot ever have the same value, since they are of different types. They can, however, refer to the same position in memory. –  phihag Jun 25 '11 at 14:38
    
sizeof STRING_LITERAL is not necessarily equal to strlen(STRING_LITERAL) + 1: imagine #define STRING_LITERAL "foo\x00bar" –  pmg Jun 25 '11 at 14:38

str is an array of 8-bit characters, including null terminator.

p is a pointer, which is typically the size of the machine's native word size (32 bit or 64 bit).

The size taken up by a pointer stays constant, regardless of the size of the memory to which it points.

EDIT

In c++, arguments that are arrays are passed by reference (which internally is a pointer type), that's why the second instance of str has sizeof 8.

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why the sizeof the 2nd str is not 100, like the 1st str? –  Je Rog Jun 25 '11 at 14:27
    
@Je Rog: Because arrays get "promoted" to pointers when they appear as argument to a function. –  DarkDust Jun 25 '11 at 14:29
    
@DarkDust: The promotion to pointer causes all info of the 100 to be lost so all sizeof can do is count out to the first null, right? –  grok12 Jun 25 '11 at 19:46

The first is the sizeof of an built-in array, which is the amount of elements (24 + null on the end of the string).

The second is the sizeof of a pointer which is the native word size of your system, in your case 64 bit or 8 bytes.

The third is the sizeof of a pointer to the first element of an array which has the same size as any other pointer, the native word size of your system. Why a pointer to the first element of an array? Because size information of an array goes lost when passed to a function and it gets implicitly converted to a pointer to the first element instead.

The fourth is the sizeof of a pointer which has the same size as any other pointer.

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Pedantically speaking, not all pointers are necessarily the same size. –  pmg Jun 25 '11 at 14:39
    
pmg: Dang, stackoverflow.com/questions/1241205/…. Should I edit my answer or does this go out of the scope of the question? –  nightcracker Jun 25 '11 at 14:57
    
I'd edit the answer (lol). Point is, there is wrong information in the answer. I'd sleep bad at night knowing I left (confirmed) wrong information hanging around. –  pmg Jun 25 '11 at 15:01

in the cases the size of

char str[] = “ http://www.ibegroup.com/”

is known to be 25 (24+1), because that much memory is actually allocated.

In the case of

void Foo ( char str[100]){

no memory is allocated

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