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The Linux printf renders %p arguments as hex digits with a leading 0x. Is there a way to make it not print the 0x? (Needs to work on both 32 and 64 bit.)

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Try %x in place of %p... Well, %x is for unsigned int and %p for pointers... –  Mayank May 18 '11 at 6:14
    
That will fail on 64 bit, won't it? –  rwallace May 18 '11 at 6:16
    
You can also do a %lx. –  Claris May 18 '11 at 6:19
    
Yes, it will. Does "%llx." exist? –  Mayank May 18 '11 at 6:42

3 Answers 3

up vote 3 down vote accepted

You can use the format specifier for uintptr_t from <inttypes.h>:

#include <inttypes.h>
[...]
printf("%"PRIxPTR"\n", (uintptr_t) p);

This works like %x for the uintptr_t type, which is an integer type capable of roundtrip conversion from/to any pointer type.

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Use %llx, it will work on 64-bit for sure. Tried and tested.

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Use %lx or %08lx. It works for both 32 and 64 bit linux gcc, because long int is always the same width as void *. Doesn't work for MSVC, because long int is always 32 bit in MSVC.

If you want it to work on all compilers, you can use %llx and cast your pointer to unsigned long long int, it's not efficient in 32 bit though.

If you want efficiency as well, define different macro for different cases.

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