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How can I write human readable timestamp in linux kernel? I think do_gettimeofday returns epoch but I don't want to try to convert it to readable time. I just want a format like Hour:Min:Sec:Msec. Thanks

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do_gettimeofday is your best bet. You will have format it yourself. What is the exact use case anyhow? –  Ahmed Masud Dec 28 '11 at 10:38

2 Answers 2

Though I don't think there's a function for this, you can do it quite easily if you don't need the day.

struct timeval now;
unsinged int temp, second, minute, hour;
do_gettimeofday(&now);
temp = now.tv_sec;
second = temp%60;
temp /= 60;
minute = temp%60;
temp /= 60;
hour = temp%24;
printf("%02d:%02d:%02d:%06d\n", hour, minute, second, now.tv_usec);

Note that you get GMT time, not local time.

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Later kernels have a function time_to_tm to break epoch time into human readable format.

Here's an example:

struct timeval t;
struct tm broken;
do_gettimeofday(&t);
time_to_tm(t.tv_sec, 0, &broken);
printk("%d:%d:%d:%ld\n", broken.tm_hour, broken.tm_min, 
                         broken.tm_sec, t.tv_usec);

Again, this is only available in later kernels. The second parameter time_to_tm is an offset to the epoch time. In my local time is 0, I don't know which one you should use.

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