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I have a very specific question that I need answered for a very specific performance test. I will simplify the code, to make it easier understandable.

I do many calculations (a few ten million), all done in loops that are themselves not too long and I need the total calculation time. However, all the calculations are not done directly one after another and some extra code "comes inbetween" every loop.

What I need, is quite exactly the total time of all loops (including declaring and initializing i, incrementing it, and comparison with 100 in exmaple). To measure the time I start a Stopwatch directly before every loop and stop it directly after the loop. But do those two actions need some time that might be relevant?

Example:

Stopwatch sw = new Stopwatch();

sw.Start();
//how long does it now take until for loop is reached?
for(int i = 0; i < 100; i++)
{
    //some calculations
}
//how much time does it take to stop sw?
sw.Stop();

Of course it wouldn't really matter if all the loops were done directly one after another, I could just start at the beginning of the first loop and stop at the end of the last one, but that is not possible here.

I know the question is very specific, but I hope someone can help me here, as a significant time coming from around fifty million loops, could in a way affect my results.

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2 Answers 2

up vote 2 down vote accepted

Well, you could try this and check it on your own, on my (lousy performing ) computer it's about 0.0006 milliseconds for the first execution and 0.0001 milliseconds for next executions. Try it yourself:

Stopwatch sw = new Stopwatch();
sw.Start();
sw.Stop();
TimeSpan ts = TimeSpan.FromTicks(sw.ElapsedTicks);
string elapsed = ts.TotalMilliseconds.ToString();
share|improve this answer
    
Thanks for mentioning the StopWatch-Stopwatch typo. I am just used to use Stopwatch StopWatch = new Stopwatch(); and somehow used capital W. To your answer: Thanks, I have thought of doing it this way but thought, it might be "a different situation". However, as a checking, I will probably run your code a few thousand times and average over the time. –  phil13131 Nov 18 '12 at 18:56

What I need, is quite exactly the total time of all loops. To measure the time I start a StopWatch directly before every loop and stop it directly after the loop. But do those two actions need some time that might be relevant?

They take some time - as does the initialization of i, and the increment, and the comparison with 100 in each loop iteration. Almost nothing is instantaneous in computing.

Whether it's relevant or not is another matter. Unless your calculation is utterly trivial, it's unlikely that this will be significant in your timing. You could try timing an empty loop, but it's possible that the JIT compiler will get rid of the loop itself entirely.

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Everything is relevant (initialization of i, increment, comparison) except for the actual time to reach the for-loop. The calculations are quite trivial (sometimes just a couple of additions) and sometimes the loops are very short (around 10 iterations). I thought that was implied, I will update my question. –  phil13131 Nov 18 '12 at 18:47
    
@phil13131: At that point, it becomes very hard to get any genuine measure of performance. As I say, you could try the empty loop - or try the smallest non-trivial operation which avoids the JIT compiler optimizing it away - to find a base result. But fundamentally, it sounds like the answer is, "Yes, the actions take some time." Note that it would help if you'd call the Start and Stop methods (possibly on a different instance) beforehand, so they'll be JIT-compiled. (Otherwise that JIT-compilation could be part of what you measure...) –  Jon Skeet Nov 18 '12 at 18:49
    
Thanks, for mentioning the JIT-compilation, but when you reach the method sw.Start() shouldn't at that point the code be already compiled? –  phil13131 Nov 18 '12 at 18:51
    
@phil13131: Not necessarily. I wouldn't like to say without checking. (The method you're running in will have been compiled, but Start and Stop might not have been...) –  Jon Skeet Nov 18 '12 at 18:53

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