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In C, I'd like to use printf to display pointers, and so that they line up properly, I'd like to pad them with 0s.

My guess was that the proper way to do this was:

printf("%016p", ptr);

This works, but this gcc complains with the following message:

warning: '0' flag used with ‘%p’ gnu_printf format

I've googled a bit for it, and the following thread is on the same topic, but doesn't really give a solution.

http://gcc.gnu.org/ml/gcc-bugs/2003-05/msg00484.html

Reading it, it seems that the reason why gcc complains is that the syntax I suggested is not defined in C99. But I can't seem to find any other way to do the same thing in a standard approved way.

So here is the double question:

  • Is my understanding correct that this behavior is not defined by the C99 standard?
  • If so, is there a standard approved, portable way of doing this?
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1  
Worst warning ever. Should be removed from gcc IMHO. – Mike Dec 11 '12 at 2:22
up vote 29 down vote accepted

#include <inttypes.h>

#include <stdint.h>

printf("%016" PRIxPTR "\n", (uintptr_t)ptr);

but it won't print the pointer in the implementation defined way (says DEAD:BEEF for 8086 segmented mode).

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2  
Interesting. This is the first time I see this PRIxPTR notation. Is this standard, or gcc specific? If standard, which standard? C89 or C99? – Florian Aug 10 '09 at 14:50
1  
Let me make sure I got this straight. The reason what I tried to do is not portable is because not all platforms display pointers as 0x..... Because of this padding with 0s is not portable. On the other hand, printf("%016"PRIxPTR", (uintptr_t)ptr); will on all platforms print my pointer with the right lenght, formated as a 0x... number, padded with 0s, without unsafe casting. – Florian Aug 10 '09 at 15:16
1  
But what is BEAF? – Artelius Sep 3 '09 at 22:59
1  
@Artelius, one of the words writable using only letters which are hexadecimal digit (see nedbatchelder.com/text/hexwords.html). – AProgrammer Sep 4 '09 at 7:46
1  
Shouldn't have be DEAD:BEEF? – Mike Mar 18 '13 at 18:15

Use:

#include <inttypes.h>

printf("0x%016" PRIXPTR "\n", (uintptr_t) pointer);

Or use another variant of the macros from that header.

Also note that some implementations of printf() print a '0x' in front of the pointer; others do not (and both are correct according to the C standard).

share|improve this answer
    
Note that formally you need to cast to uintptr_t. – AProgrammer Aug 10 '09 at 15:55
    
Yup - thanks for the reminder. Fixed in the answer. – Jonathan Leffler Aug 10 '09 at 15:57
    
Or you could use "%#016" PRIxPTR instead, the # says to display the base for octal and hexadecimal. – Joe D Jul 23 '10 at 15:57
    
@Joe: you are right - you could use the '#', but that prints 0x01ab or 0X01AB and I don't like either of those notations: I like 0x01AB. What I wrote gets me what I like and not what I dislike. – Jonathan Leffler Jul 23 '10 at 19:28

The only portable way to print pointer values is to use the "%p" specifier, which produces implementation-defined output. (Converting to uintptr_t and using PRIxPTR is likely to work, but (a) uintptr_t was introduced in C99, so some compilers may not support it, and (b) it's not guaranteed to exist even in C99 (there might not be an integer type big enough to hold all possible pointer values.

So use "%p" with sprintf() (or snprintf(), if you have it) to print to a string, and then print the string padding with leading blanks.

One problem is that there's no really good way to determine the maximum length of the string produced by "%p".

This is admittedly inconvenient (though of course you can wrap it in a function). If you don't need 100% portability, I've never used a system were casting the pointer to unsigned long and printing the result using "0x%16lx" wouldn't work. (Or you can use "0x%*lx" and compute the width, probably something like sizeof (void*) * 2. If you're really paranoid, you can account for systems where CHAR_BIT > 8, so you'll get more than 2 hex digits per byte.)

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The problem I find with this suggestion: casting the pointer to unsigned long and print... using "0x%16x" is that you're trading one warning for another. At least for me this gets rid of the warning of the 0 flag used with %p but then I get a warning: cast from pointer to integer of different size [-Wpointer-to-int-cast] instead. – Mike Mar 18 '13 at 19:16
    
@Mike: I suggested that only for the case where neither "%p" nor uintptr_t is available. – Keith Thompson Mar 18 '13 at 19:20
    
There IS a standards compliant way, which is to use PRIxPTR. If you choose to use a compiler that doesn't conform to C99, like MSVC 2011, it's up to you to find out how to do it, probably with an #ifdef. I don't even think MSVC conforms to C89 fully. – cmccabe Oct 28 '13 at 2:09

This answer is similar to the one given earlier in http://stackoverflow.com/a/1255185/1905491 but also takes the possible widths into account (as outlined by http://stackoverflow.com/a/6904396/1905491 which I did not recognize until my answer was rendered below it ;). The following snipped will print pointers as 8 0-passed hex characters on sane* machines where they can be represented by 32 bits, 16 on 64b and 4 on 16b systems.

#include <inttypes.h>
#define PRIxPTR_WIDTH ((int)(sizeof(uintptr_t)*2))

printf("0x%0*" PRIxPTR, PRIxPTR_WIDTH, (uintptr_t)pointer);

Note the usage of the asterisk character to fetch the width by the next argument, which is in C99 (probably before?), but which is quite seldom seen "in the wild". This is way better than using the p conversion because the latter is implementation-defined.

* The standard allows uintptr_t to be larger than the minimum, but I assume there is no implementation that does not use the minimum.

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Naive question: wouldn't #define PRIxPTR_WIDTH ((int)(sizeof(void*)*2)) work even if uintptr_t is larger than the minimum? – Ciro Santilli 六四事件 法轮功 包卓轩 Aug 14 '13 at 9:19

It's easy to solve if you cast the pointer to a long type. The problem is this won't work on all platforms as it assumes a pointer can fit inside a long, and that a pointer can be displayed in 16 characters (64 bits). This is however true on most platforms.

so it would become:

printf("%016lx", (unsigned long) ptr);
share|improve this answer
    
I do not have the right machine / OS at hand to confirm, but I think that under 64-bit windows, pointers are 64bit while long are 32 bits, breaking your assumption. So, unless I am mistaken, what you suggest would break on at least one major platform. – Florian Aug 10 '09 at 14:33
    
If portability to windows is important, relying on C99 features is probably not the thing to do. – AProgrammer Aug 10 '09 at 14:39
    
typically on a 64 bit platform, ints are 32 bits and longs are 64 bits. If this is a problem on your platform use a long long. – AnthonyLambert Aug 11 '09 at 8:35
    
Actually, I think pointers a guaranteed to fit inside a long. The only implementation that doesn't conform to this is MSVC (64-bit). – Joe D Jul 23 '10 at 15:58

As your link suggests already, the behaviour is undefined. I don't think there's a portable way of doing this as %p itself depends on the platform you're working on. You could of course just cast the pointer to an int and display it in hex:

printf("0x%016lx", (unsigned long)ptr);
share|improve this answer

Maybe this will be interesting (from a 32-bit windows machine, using mingw):

rjeq@RJEQXPD /u
$ cat test.c
#include <stdio.h>

int main()
{
    char c;

    printf("p: %016p\n", &c);
    printf("x: %016llx\n", (unsigned long long) (unsigned long) &c);

    return 0;
}

rjeq@RJEQXPD /u
$ gcc -Wall -o test test.c
test.c: In function `main':
test.c:7: warning: `0' flag used with `%p' printf format

rjeq@RJEQXPD /u
$ ./test.exe
p:         0022FF77
x: 000000000022ff77

As you can see, the %p version pads with zeros to the size of a pointer, and then spaces to the specified size, whereas using %x and casts (the casts and format specifier are highly unportable) uses only zeros.

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Interesting. It confirms that %016p" isn't portable, since on my machine (64-bit linux) it pads purely with 0s, not with spaces. – Florian Aug 10 '09 at 14:39
    
That's not a bug, just an unexpected feature. ;-) He's casting it to a 64-bit value on a 32-bit architecture. – Mike Dec 11 '12 at 2:26

Note that if the pointer prints with the "0x" prefix, you would need to substitute "%018p" to compensate.

share|improve this answer

I usually use %x to display pointers. I suppose that isn't portable to 64-bit systems, but it works fine for 32-bitters.

I'll be interested in seeing what answers there are for portable solutions, since pointer representation isn't exactly portable.

share|improve this answer
    
My main system is actually a 64-bit one, so %x doesn't really cut it. Avoiding this kind of problem is why I want to use %p. – Florian Aug 10 '09 at 14:18
    
%#016lx should work on whatever system your on, a pointer is guaranteed to fit inside a long. (I think) BTW that is the letter 'l' not 1 the number before the 'x'. – Joe D Jul 23 '10 at 15:59
    
@Joe D - VS2005 disagrees. It gives me warnings about possible lost data unless I use something like ULONG_PTR instead. Also see the comment left by AProgrammer on the accepted answer. Of course VS isn't exactly known as a paragon of compliance... – T.E.D. Jul 23 '10 at 17:15
    
Oh, I forgot to mention the fact that it doesn't work on 64-bit MSVC. I think the both the 32-bit and 64-bit version warn about it. – Joe D Jul 23 '10 at 18:41

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