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I implemented myPrintf function:

int myPrintf(const char* format,...)
    va_list args;
    va_start(args, format);
    int ret = vprintf (format, args);
    va_end (args);
    return ret;

When I run the function with format = "%ld,%ld" and the args representation as set of chars is 78,97,188,0,0,0,0,0,120,10,227,5,0,0,0,0 the output printed to stdout is 12345678,0.Instead of 12345678,98765432. What could be the problem?And how could it be solved?

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Show your code. The args cannot be a set of chars (which has no sense). you should pass a variadic argument list. You can call myprintf("%ld,%ld", 2L, 3L); –  Basile Starynkevitch Nov 13 '11 at 10:02
Please show the code where you call myPrintf. Note that %ld expects you to pass long's, not chars. –  nos Nov 13 '11 at 10:02
It is impossible to show how I call it - it is difficult procedure .....I just showed the stack(memory) layout for the call –  Yakov Nov 13 '11 at 10:46
Huh? Why would it be impossible to show how you call it? It's just a C function call, right? If the first argument to myPrintf is "%ld,%ld", the second and third arguments need to be of type long. If they aren't, then that's your problem. –  Keith Thompson Nov 13 '11 at 11:07

1 Answer 1

up vote 2 down vote accepted

Because, like on ideone, your longs are 32 bits

If you use "%lld" for 64-bit values, it works as you expect

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just to be clear: "%ld" is the correct printf-format for long int whatever its size. –  J.F. Sebastian Nov 14 '11 at 3:41
Thanks @JF, as Yakov's using C99, he'd be better of using the macros in <inttypes.h> anyway. myPrintf("%" PRId64 " %" PRId64 "\n", data); –  pmg Nov 14 '11 at 11:29

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