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This is my simple fortran program

program accel
    implicit none
    integer, dimension(5000) ::a,b,c
    integer i
    real t1,t2
    do i=1,5000
    a(i)=i+1
    b(i)=i+2
    end do

     call cpu_time(t1)
    do i=1,5000
    c(i)=a(i)*b(i)
    end do
     call cpu_time(t2)

    write (*,*)'Elapsed CPU time = ',t2-t1,'seconds'

end program accel

but cpu time shows 0.0000 sec. why?

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Because it's very fast! Note that 0.0000 is not actually zero. It's just < 0.00005 –  Simon Feb 29 '12 at 14:18
    
ok..so what i can do to measure very less time –  user991852 Feb 29 '12 at 16:40
    
lets say for above program if i want to calculate cpu time. –  user991852 Feb 29 '12 at 16:41
    
I replied in a full answer. –  Simon Mar 1 '12 at 2:54
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3 Answers

up vote 1 down vote accepted

Short answer

Use this to display your answer:

write(*,'(A,F12.10,A)')'Elapsed CPU time = ',t2-t1,' seconds.'

Longer answer

There can be at least two reasons why you get zero as suggested in the answers of @Ernest Friedman-Hill and @Klas Lindbäck:

  1. The computation is taking less than 0.00005 seconds
  2. The compiler optimizes away the whole loop

In the first case, you have a few options:

  1. You can display more digits of t2-t1 using a format like I gave you above, or alternatively you can print the result in milliseconds: 1000*(t2-t1)

  2. Add more iterations: if you do 50000 iterations instead of 5000, it should take ten times longer.

  3. Make each iteration longer: you can replace your multiplication by a sequence of complicated operations possibly using math functions

In the second case, you can:

  1. Disable optimization by passing the appropriate flag to your compiler (-O0 for gfortran)

  2. Use c somewhere in your program after the loop

I compiled your program using gfortran 4.2.1 on OS X Lion and it worked out of the box (displaying time in exponential notation) and the formatting (short answer) worked fine too. I tried enabling and disabling optimization and it worked fine too.

The accuracy of cpu_time is probably platform dependent so that may also explain different behaviors across different machines, but with all this you should be able to solve your problem.

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It doesn't take very long to do 5000 multiplications -- it may simply be taking less than one unit of cpu_time()'s resolution. Crank that 5000 up to 100000 or so, and then you'll likely see something.

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ok..so what i can do to measure very less time –  user991852 Feb 29 '12 at 16:42
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The optimiser has seen that c is never read, so the calculation of c can be skipped. If you print the value of c, the loop willnot be optimised away.

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