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I have taken this answer from SO:

http://stackoverflow.com/a/2409054/997112

so that I can print timeval structs in a friendly format. I had to change "%s.%06d" for "%s.%06ld" because I was getting compiler warnings:

void printTimeval(struct timeval& tv){

    time_t nowtime;
    struct tm *nowtm;
    char tmbuf[64], buf[64];

    nowtime = tv.tv_sec;
    nowtm = localtime(&nowtime);

    strftime(tmbuf, sizeof tmbuf, "%Y-%m-%d %H:%M:%S", nowtm);
    snprintf(buf, sizeof buf, "%s.%06ld", tmbuf, tv.tv_usec);
}

However, when I pass a valid time nothing prints.

I checked the number of seconds in the timeval I passed-in, before calling my function and it returns 1404120855, so I am confident my timeval is correct and the problem lies with the function?

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1 Answer 1

up vote 1 down vote accepted

All snprintf() does is format a string. You never actually print out the resulting string in buf. Add something like:

printf("%s\n", buf);

or

puts(buf);

Also, you should have a cast to long for that tv_usec field, since you can't know the type of the typedef to be long.

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Hi- thanks! Did you mean snprintf(buf, sizeof buf, "%s.%06ld", tmbuf, (long)tv.tv_usec); ? –  user997112 Jun 30 '14 at 10:20
    
@user997112 Yes, that's exactly what I meant. –  unwind Jun 30 '14 at 10:47

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