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I needed to calculate the time it takes to run a certain function and ran into the following code (source: http://snippets.dzone.com/posts/show/4254 ) with the claim that "...record & output the execution time of a piece of code in microseconds"

/* Put this line at the top of the file: */
#include <sys/time.h>

/* Put this right before the code you want to time: */
struct timeval timer_start, timer_end;
gettimeofday(&timer_start, NULL);

/* Put this right after the code you want to time: */
gettimeofday(&timer_end, NULL);
double timer_spent = timer_end.tv_sec - timer_start.tv_sec + (timer_end.tv_usec - timer_start.tv_usec) / 1000000.0;
printf("Time spent: %.6f\n", timer_spent);

but my personal experience with the piece of code shows that the output 'time' is in seconds instead of microseconds. I need some input on whether I am right or wrong (I need to clarify this once and for all).

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3 Answers

up vote 2 down vote accepted

You are right.

The tv_sec member of the structure stores seconds, and the tv_usec member (microseconds) is converted to seconds by dividing by 10^6.

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It provides the time difference in seconds and microseconds (with the following term: (timer_end.tv_usec - timer_start.tv_usec)). So you should be ok :)

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The unit is seconds though. –  sje397 Jun 30 '11 at 14:37
    
Yes I guess you are right. Seems like I misconceived the question. –  Constantinius Jun 30 '11 at 14:39
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Modify like this:

double timer_spent = (timer_end.tv_sec - timer_start.tv_sec)*1e6 + (timer_end.tv_usec - timer_start.tv_usec);
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No, you would also have to multiply the first part by 10^6 to convert seconds to microseconds. –  sje397 Jun 30 '11 at 14:37
    
@sje397 indeed. Fixed, thanks. –  hexa Jun 30 '11 at 14:40
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