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#include<stdio.h>

int main()
{
    int i = 10;
    int *p = &i;

    printf("\n address of initialized pointer p: %u \n", p);
    p = &(*p);
    printf("\n modified address of initialized pointer p:%u value:%d valuez address: %d \n", p, *p, &(*p));

    return 0;
}

the code outputs:-

address of initialized pointer p: 3221221820

modified address of initialized pointer p:3221221820 value:10 valuez address: -1073745476

Why is "&(*p)", behaving differently when used in a assignment statement and in a printf statement ?

Update Sorry, just format specifier mistake in printf ;).Thanks for the replies and pointing out.

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3 Answers 3

up vote 4 down vote accepted

You are using incorrect format specifier in printf. Using %d for printing addresses won't work. Use %p rather. [%u for printing address isn't correct either.]

This works as per expectation.

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What difference does it make between %p and %u ?? –  Hemanth May 26 '11 at 12:17
    
%u is for printing unsigned integers, %p is for pointers. –  Prasoon Saurav May 26 '11 at 12:17
    
Thanks Prasoon, one more doubt, when i use %p i get 0x7fbffff1bc, but when i convert the value printed by %u - 3221221820 to hex i'm getting only bffff1bc. So what is this extra 0x7f appended when i use %p ? –  Hemanth May 26 '11 at 12:19
1  
@Saran, pointers and unsigned might not have the same width. –  Jens Gustedt May 26 '11 at 12:21
1  
@Prasoon, not just "0x" is added as prefix but, "0x7f" is added as prefix !!! whats this 7f ? –  Hemanth May 26 '11 at 12:23

The standard format specifier for pointers is %p. For safety you should always explicitly cast the pointer to (void*) in your call to printf. Any other format specifier is not guaranteed to work with pointer values.

e.g.

printf("p: %p; *p: %d; &(*p): %p \n", (void*)p, *p, (void*)&(*p));

The difference you are seeing is simply that the first format specifier is %u which prints the pointer value as an unsigned integer and the second time you are using %d which prints it as a signed integer.

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If the value is already a pointer, what difference does casting it to a void* make? I can see the problem with leaving it as is in C++ (inheritance and operator overloading can cause issues there), but what makes it dangerous in C? –  cHao May 26 '11 at 12:20
    
@cHao: Although not common, pointers to different types can have different representations in C. The %p format specifier requires the corresponding argument to have type "pointer to void" so if the variable you have is a pointer to something else then strictly you need to convert it to meet the requirements of printf. –  Charles Bailey May 26 '11 at 12:25

You have

%d instead of %u when you are trying to print the address second time.

Note the change in bold in the modified source below:

printf("\n modified address of initialized pointer p:%u value:%d valuez address: %u \n", p, *p, &(*p));

Most notably you should use %p for printing out a pointer value instead of %u as already pointed out in another answer on this thread.

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