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The strangest behavior happens when I'm timing the code shown below. It's long but it's just doing matrix multiplication with different ways of passing arguments. For matmul0 I use explicit shape, for matmul1 I use assumed shape, and for matmul2 I use assumed shape plus I use pointers inside the subroutine to point to the matrices (don't ask me why I do this, it doesn't matter). The thing is, when I time the three subroutines, I get something like:

Time explicit shape: 3.712099
Time assumed shape: 12.55620
Time assumed shape + pointer: 3.821299

Now, if I comment the third subroutine (the one with pointers), this time I get something like:

Time explicit shape: 3.712099
Time assumed shape: 3.824401
Time assumed shape + pointer: 0.00000

Why is this happening? And why doesn't it happen to the first subroutine too? I'm running on Intel Core i3, Intel compiler, no optimization flags, just ifort test.f90 -fpp (the fpp is for preprocessing the timer macro). Full code below.

#define timer(func, store) call system_clock(start_t, rate); call func; call system_clock(end_t); store  = store + real(end_t - start_t)/real(rate);
program test
    interface
        subroutine matmul1(A, B, C)
            real :: A(:,:), B(:,:), C(:,:)
        end subroutine
        subroutine matmul2(A, B, C)
            real, target :: A(:,:), B(:,:), C(:,:)
        end subroutine
    end interface
    real, allocatable, dimension(:,:) :: A, B, C
    integer, parameter :: m = 500, n = 500, o = 500
    integer, parameter :: loops = 100
    integer :: start_t, end_t, rate
    real :: time
    allocate(A(m,n), B(n,o), C(m,o))
    A(:,:) = 1; B(:,:) = 2; C(:,:) = 0

    time = 0
    do i = 1, loops
    timer(matmul0(A, B, C, m, n, o), time)
    end do
    print*, 'Time explicit shape:', time

    time = 0
    do i = 1, loops
    timer(matmul1(A, B, C), time)
    end do
    print*, 'Time assumed shape:', time

    time = 0
    do i = 1, loops
    ! timer(matmul2(A, B, C), time)
    end do
    print*, 'Time assumed shape + pointer:', time

end program

subroutine matmul0(A, B, C, m, n, o)
    integer :: m, n, o
    real :: A(m,n), B(n,o), C(m,o)
    do i = 1, m
        do j = 1, o
            do k = 1, n
                C(i,j) = C(i,j) + A(i,k)*B(k,j)
            end do
        end do
    end do
end subroutine

subroutine matmul1(A, B, C)
    real :: A(:,:), B(:,:), C(:,:)
    do i = 1, size(C,1)
        do j = 1, size(C,2)
            do k = 1, size(A,2)
                C(i,j) = C(i,j) + A(i,k)*B(k,j)
            end do
        end do
    end do
end subroutine

subroutine matmul2(A, B, C)
    real, target :: A(:,:), B(:,:), C(:,:)
    real, pointer :: A0(:,:), B0(:,:), C0(:,:)
    A0 => A; B0 => B; C0 => C
    do i = 1, size(C,1)
        do j = 1, size(C,2)
            do k = 1, size(A,2)
                C0(i,j) = C0(i,j) + A0(i,k)*B0(k,j)
            end do
        end do
    end do
end subroutine
share|improve this question
1  
Fortran is column-major‌​! You should better re-order your loops... – Alexander Vogt Aug 17 '14 at 21:05
    
I know that, I'm just doing a quick comparison of performances with different ways to pass arguments. I'm actually also comparing use of derived types for matrices. – Michael Aug 17 '14 at 21:10

This seems to be an issue with ifort and the size() function calls inside the loops...

On my machine, your code yields:

 Time explicit shape:   3.145800
 Time assumed shape:   14.98891
 Time assumed shape + pointer:   14.82460

I rewrote the subroutines to re-use the array shapes:

subroutine matmul1(A, B, C)
    real,intent(in) :: A(:,:), B(:,:)
    real,intent(out) :: C(:,:)
    integer :: m, n, o

    m = size(C,1)
    n = size(C,2)
    o = size(A,2)
    do i = 1, m
        do j = 1, n
            do k = 1, o
                C(i,j) = C(i,j) + A(i,k)*B(k,j)
            end do
        end do
    end do
end subroutine

[matmul2 was adjusted similarly...]

Now, I get:

 Time explicit shape:   3.159100
 Time assumed shape:   3.009802
 Time assumed shape + pointer:   3.567401

Interestingly, gfortran seems not to have this problem.

Commenting out the third subroutine call has no effect on either compilers on my machine, so I can't help you there :(

share|improve this answer
    
I tried what you did and I'm still getting the same results. Worse is that it happens in two different machines, though with the same compiler (ifort 14.0.2). – Michael Aug 18 '14 at 2:37
    
Mhm, I only have ifort 13.0.1 available on one machine. I tried it with gfortran (up to 4.9.1) on different machines, but no change. Can you try gfortran? – Alexander Vogt Aug 18 '14 at 6:41
    
Juts tried gfortran and the strange behavior doesn't appear. It's definitely an issue of Intel compiler. I think I'm going to have to post this to Intel forum. – Michael Aug 18 '14 at 13:32

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