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size_t is declared as unsigned int so it can't represent negative value.
So there is ssize_t which is the signed type of size_t right?
Here's my problem:

#include <stdio.h>
#include <sys/types.h>

int main(){
size_t a = -25;
ssize_t b = -30;
printf("%zu\n%zu\n", a, b);
return 0;

why i got:


as result?
I know that with size_t this could be possible because it is an unsigned type but why i got a wrong result also with ssize_t??

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You're using the wrong format specifier. – Mysticial Aug 29 '12 at 10:01
ssize_t isn't in standard C, it comes from POSIX. The closes in standard C that comes to ssize_t is ptrdiff_t. – Jens Gustedt Aug 29 '12 at 11:18

1 Answer 1

In the first case you're assigning to an unsigned type - a. In the second case you're using the wrong format specifier. The second specifier should be %zd instead of %zu.

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Oh dear! You're right...i'm sorry!!!! – polslinux Aug 29 '12 at 10:03
@cnicutar Not familiar with POSIX details. Since printf("%zu", b) expects a integer of sizeof(size_t), is sizeof(size_t) always the same as sizeof(ssize_t) as not to cause mischief? Or is printf("%zu", (size_t) b) needed? – chux Nov 25 '13 at 23:28
Is ssize_t defined to be the same size as size_t? If not, "%zd" is not a portable answer. Suggest printf("%jd\n", (intmax_t) b); – chux Apr 22 '14 at 20:26
@chux %zd is the specifier prescribed for ssize_t. A following integer conversion corresponds to a size_t or ssize_t argument. – cnicutar Apr 22 '14 at 21:26
@chux I quoted a linux man page on printf. The standard also mentions it, though not as clearly. – cnicutar Apr 22 '14 at 23:25

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