Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My code is below,

time_t t;
struct tm tm;
struct tm * tmp;
time( &t ); 
tmp = gmtime(&t);

char buf[100];
strftime(buf, 42, "%F", tmp); // assertion failure

It says `expression:("Invalid format directive",0). I wanted to convert the time to Short YYYY-MM-DD date, equivalent to %Y-%m-%d format.

Same thing happens when I try this,

const char* fmt = "%a, %d %b %y %T %z";

if (strftime(buf, sizeof(buf), fmt, tmp) == 0) // assertion failure
{ 
    fprintf(stderr, "strftime returned 0");
    exit(EXIT_FAILURE); 
} 
share|improve this question
    
%F, %T and %z are C99/C++11. Are you compiling as c99 or c++11, or as something else? –  Dave May 23 at 6:50
    
How do I find that out? Thanks. –  Tahlil May 23 at 6:52
    
What command are you running to compile it? –  Dave May 23 at 6:53
    
I am using visual studio 2010. Its a windows console application. I just press Ctrl+ F5. –  Tahlil May 23 at 6:54
    
No experience with visual studio, but somewhere in the project settings you should be able to set compiler options. One of them will be the language you're using. It's also possible that you may need to update to a later version of the IDE. –  Dave May 23 at 6:57

2 Answers 2

up vote 1 down vote accepted

%F, %T and %z were introduced by C99, and only came to C++ in C++11. From the comments on your question, it appears you're using Microsoft's partial implementation of C++11 in VisualStudio 2010. Unfortunately your only options are:

  • update your IDE (I don't know if later versions support this, but I'd imagine they do)
  • switch to a different IDE (anything which uses GCC for its compiler will certainly support this)
  • avoid using the newer formatting flags (you can find a list here: http://www.cplusplus.com/reference/ctime/strftime/ anything yellow is new)
share|improve this answer

The following worked for me:

#include <stdio.h>
#include <time.h>

int main(int argc, char **argv)
{
    time_t t;
    struct tm tm;
    struct tm * tmp;
    time( &t ); 
    tmp = gmtime(&t);

    const char* fmt = "%a, %d %b %y %T %z";
    char buf[100];
    if (strftime(buf, sizeof(buf), fmt, tmp) == 0) // assertion failure
    { 
        fprintf(stderr, "strftime returned 0");
        return 1; 
    }
    printf("%s\n", buf);

    return 0;
}    

The output is:

Fri, 23 May 14 06:48:27 +0000
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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