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I'm trying to check if my arrays are returning nonsense by accessing out of bounds elements, in fortran. And I want to check these values are less than one, and if they are, change them to one.

This is the piece of my code causing issues:

lastNeighLabel=(/clusterLabel(jj-1,kk,ll), clusterLabel(jj,kk-1,ll), clusterLabel(jj,kk,ll-1)/) LastNeighLabel contains the cluster label (between 1 and n, where n isthe total number of unique seperate clusters found) for the last neighbour in the x,y,z direction respectively.

When jj or kk or ll are 1, they try and access the 0th element in the array, and as FORTRAN counts from 1 in arrays, it tries to destroy the universe. I'm currently in a tangled mess of about 8 if/elseif statements trying to code for every eventuality. But I was hoping there was a way of operating on each element. So basically I'd like to say where((/jj-1,kk-1,ll-1/).lt.1) do clusterLabel(jj-1,kk,ll)=0 etc depending on which element is causing the problem.

But I can't think of a way to do that because where will only manipulate the variables passed to it, not a different array at the same index. Or am I wrong?

Will gladly edit if this doesn't make sense.

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Do you want to have for example lastNeighLabel=(/0, clusterLabel(jj,kk-1,ll), clusterLabel(jj,kk,ll-1)/) if jj==0 ? –  Vladimir F Dec 2 '11 at 11:46
    
Yes that's what I'm after. –  Pureferret Dec 2 '11 at 11:47

3 Answers 3

up vote 2 down vote accepted

Maybe you could use a function?

  real function f(A,i,j,k)  
   real :: A(:,:,:)
   integer :: i,j,k

   if (i==0.or.j==0.or.k==0) then
    f=0
   else
    f=A(i,j,k)
   endif

  end function f

and then use f(clusterLabel,jj-1,kk,ll) etc.

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Ah I think I follow. So if any of the elements of clusterLabel are 0 return 0? How do I put that function into the programme? Will it return the array? –  Pureferret Dec 2 '11 at 11:57
    
Yes I meant that. And of course something similar for the upper bounds, you could pass the upper bound to the function or use UBOUND intrinsic. –  Vladimir F Dec 2 '11 at 12:01
    
The way I designed the code it only looks at the neighbours before (thus the -1) it should never look at the upper bound. If it does that, I'll follow your advice. Otherwise thanks. Going to try it now. –  Pureferret Dec 2 '11 at 12:04
1  
Should the else block be: f=A(i,j,k) Else I can't see how it works. –  Pureferret Dec 2 '11 at 12:14
    
I've made the else block as I stated above, now I get this error: fortcom: Error: percolation.f90, line 53: The number of subscripts is incorrect. [CORRECTNEIGHLABEL] print *, correctNeighLabel(clusterLabel(jj,kk,ll),jj,kk,ll-1) This is the case if I declare correctNeighLabel as having a dimension 3 or 4. And with or without passing the elements of clusterLabel. the function is definitely declared as having 4 inputs. I'm not sure whats wrong really. –  Pureferret Dec 2 '11 at 12:42

It is not obligatory that Fortran accesses arrays starting from one. Any starting value is allowed. If it more convenient to you to have a zero indexed array, declare the array as:

real, dimension (0:N-1, 0:M-1) :: array

Or

real, dimension (0:N, 0:M) :: array

and have the 0 indices be extra to catch special cases.

This might be another solution to your problem, since zero index values would be legal.

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Certainly true. It would be better choice in many situations. –  Vladimir F Dec 2 '11 at 20:50

Another possible way to approach this, is to create an extended cluster label array (with index bounds starting at 0), which is equal to the cluster label array with a layer of zeroes tacked on the outside. You can then let your loop run safely over all values of jj, kk, and ll. It depends on the size of the array if this is a feasible solution.

integer :: extended_cluster_label(0:size(cluster_label,1),   &
                                  0:size(cluster_label,2),   &
                                  0:size(cluster_label,3)    &
                                 )

extended_cluster_label(0,:,:) = 0
extended_cluster_label(:,0,:) = 0
extended_cluster_label(:,:,0) = 0

extended_cluster_label(1:, 1:, 1:) = cluster_label
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