17

I am having following code. output of second %d in sprintf is always shown as zero. I think i am specifying wrong specifiers. Can any one help me in getting write string with right values. And this has to achieved in posix standard. Thanks for inputs

void main() {
    unsigned _int64 dbFileSize = 99;
    unsigned _int64 fileSize = 100;
    char buf[128];
    memset(buf, 0x00, 128);
    sprintf(buf, "\nOD DB File Size = %d bytes \t XML file size = %d bytes", fileSize, dbFileSize);
    printf("The string is %s ", buf);
    }

Output:

The string is
OD DB File Size = 100 bytes      XML file size = 0 bytes 
  • 2
    The C99 printf prefix for long long is ll, thus %lld, but your use of _int64 makes me fear you are using a windows extension and IIRC, it was using a non standard prefix. – AProgrammer Feb 28 '11 at 10:41
  • There is no _int64 in the POSIX standard. – Fred Foo Feb 28 '11 at 10:46
  • See also stackoverflow.com/questions/2844/… – hippietrail Apr 3 '11 at 9:52
15

I don't know what POSIX has to say about this, but this is nicely handled by core C99:

#include <stdio.h>
#include <inttypes.h>

int main(void) {
    uint64_t dbFileSize = 99;
    uint64_t fileSize = 100;
    char buf[128];
    memset(buf, 0x00, 128);
    sprintf( buf, "\nOD DB File Size = %" PRIu64 " bytes \t"
                  " XML file size = %" PRIu64 " bytes\n"
                  , fileSize, dbFileSize );
    printf( "The string is %s\n", buf );
}

If your compiler isn't C99 compliant, get a different compiler. (Yes, I'm looking at you, Visual Studio.)

PS: If you are worried about portability, don't use %lld. That's for long long, but there are no guarantees that long long actually is the same as _int64 (POSIX) or int64_t (C99).

Edit: Mea culpa - I more or less brainlessly "search & replace"d the _int64 with int64_t without really looking at what I am doing. Thanks for the comments pointing out that it's uint64_t, not unsigned int64_t. Corrected.

  • 2
    You mean PRIu64 for unsigned? – Rup Feb 28 '11 at 10:52
  • 1
    You can portably use %lld if you cast the argument to (long long int) (or just (long long)) because no integer can be bigger than that. – Jim Balter Feb 28 '11 at 10:52
  • I think your code doesn't even compile, no? You can't prefix a typedef name by unsigned. The correct C99 typedef here would be uint64_t. Also using memset instead of just initializing the buf correctly is bad style, char buf[128] = { 0 } would do it. – Jens Gustedt Feb 28 '11 at 11:01
  • 1
    @Jim Balter: Implementations are at liberty to define additional types in the intX_t form, including but not limited to types bigger than 64 bit. There is no guarantee that intmax_t and long long are identical. – DevSolar Feb 28 '11 at 11:53
  • 1
    @Jim Balter: Yes, 6.7.2 lists the required types. But note that 7.1.3 reserves identifiers for the implementation, and both 7.8 and 7.18 allow for additional, optional types. An implementation might define _Long128, int128_t and uint128_t (plus the necessary print / scan macros in <inttypes.h>). But that is neither here nor there: Assuming that long long is 64bit is exactly the type of assumption that made generations of C programs break on major updates. – DevSolar Feb 28 '11 at 14:18
14

You need to use %I64u with Visual C++.

However, on most C/C++ compiler, 64 bit integer is long long. Therefore, adopt to using long long and use %llu.

  • 5
    Not on Linux. On LP64, a 64-bit integer is a long! – fpmurphy Aug 28 '11 at 1:44
11

If you are looking for a portable solution, then use printf macros from <inttypes.h>. You may need to define __STDC_FORMAT_MACROS to make these available in C++.

  • 2
    Yes you may have to. The C standard says that the macro is needed for C++, and the C++0x draft says that you don't have to use it. Wonder which standard the header conforms to. :-) – Bo Persson Feb 28 '11 at 17:28
  • The more current one (C++0x). I'm wondering if the C committee will again make a new version of the C standard one year after the C++ standard comes out, just to spite them. :-\ – DevSolar Feb 28 '11 at 17:38

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.