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After all, both these statements do the same thing...

int a = 10;
int *b = &a;
printf("%p\n",b);
printf("%08X\n",b);

For example (with different addresses):

0012FEE0
0012FEE0

It is trivial to format the pointer as desired with %x, so is there some good use of the %p option?

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1  
By using '%p' you print the address of the variable in question, "The void * pointer argument is printed in hexadecimal (as if by %#x or %#lx)." –  Mustafah Abiola Mar 3 '10 at 10:26
    
In C++, you can use (void *) typecast: see stackoverflow.com/questions/5657123/… –  kagali-san Apr 14 '11 at 0:21

6 Answers 6

up vote 60 down vote accepted

They do not do the same thing. The latter printf statement interprets b as an unsigned int, which is wrong, as b is a pointer.

Pointers and unsigned ints are not always the same size, so these are not interchangeable. When they aren't the same size (an increasingly common case, as 64-bit CPUs and operating systems become more common), %x will only print half of the address. On a Mac (and probably some other systems), that will ruin the address; the output will be wrong.

Always use %p for pointers.

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8  
%p will also use an adequate textural representation for pointer for the platform. On platforms where it is common to represent pointer in hex, this won't make a difference as long as the size is correct but for a segmented architecture (do you remember DOS?) it may use a segment:offset representation. –  AProgrammer Mar 3 '10 at 8:23
5  
One also needs to cast b to void * with the %p format - this is one of the few instances in C where one needs a cast. –  Alok Singhal Mar 3 '10 at 11:25
1  
"All the world's a VAX!" syndrome. –  David Cary Aug 22 '11 at 20:30

x is Unsigned hexadecimal integer ( 32 Bit )

p is Pointer address

See printf on the C++ Reference. Even if both of them would write the same, I would use %p to print a pointer.

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yeah, I already went through that page. What I wanted to know was why would you use %p to print a pointer. Anyways, Peter Hosey's answer answers my doubt. –  Moeb Mar 3 '10 at 8:06

The size of the pointer may be something different than that of int. Also an implementation could produce better than simple hex value representation of the address when you use %p.

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x is used to print t pointer argument in hexadecimal.

A typical address when printed using %x would look like bfffc6e4 and the sane address printed using %p would be 0xbfffc6e4

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At least on one system that is not very uncommon, they do not print the same:

~/src> uname -m
i686
~/src> gcc -v
Using built-in specs.
Target: i686-pc-linux-gnu
[some output snipped]
gcc version 4.1.2 (Gentoo 4.1.2)
~/src> gcc -o printfptr printfptr.c
~/src> ./printfptr
0xbf8ce99c
bf8ce99c

Notice how the pointer version adds a 0x prefix, for instance. Always use %p since it knows about the size of pointers, and how to best represent them as text.

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You cannot depend on "%p" displaying a "0x" prefix. On Visual C++, it does not. Use "%#p" to be portable.

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1  
Is this documented somewhere? I cannot find anything about # used in conjunction with %p. I have checked: msdn.microsoft.com/en-us/library/8aky45ct(v=vs.71).aspx cplusplus.com/reference/clibrary/cstdio/printf –  Suma Sep 25 '12 at 10:24

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