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I am looking for a way to get all positions with the maximum value for an array and not just the first. As far as I understand MAXLOC will only return the first it finds. Is there a way to get all?

Thank you!

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2 Answers 2

Try something like

pack([(ix,ix=1,size(array))],array==maxval(array))
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Unfortunately, the compiler is complaining about "Incompatible ranks in arguments 'array' and 'mask' for intrinsic 'pack' (1 and 2) at (1)" –  clueless_programmer Feb 24 '14 at 10:58
1  
Well, without sight of your code I'd just be taking stabs in the dark. I'd probably stab myself in the foot. –  High Performance Mark Feb 24 '14 at 12:04
    
INTEGER, DIMENSION(233, 233) :: matrix INTEGER :: i OPEN(UNIT=4, file='test.txt', STATUS='unknown') ! matrix is an array containing scoring values between -20 and +7, too complex and irrelevant to post here WRITE(4,*) pack([(i,i=1,size(matrix))],matrix==maxval(matrix)) –  clueless_programmer Feb 24 '14 at 12:07
    
Ahh, you have a rank 2 array. My solution, based on a false assumption, probably isn't much help to you. –  High Performance Mark Feb 24 '14 at 12:43
1  
At some point clever tricks, such as using pack and reshape, become more difficult to code and to understand and you're better off just writing a loop or two. –  High Performance Mark Feb 25 '14 at 10:06

[To extend the answer by @HighPerformanceMark to your array of rank 2.]

The shapes of the two arrays in PACK (the indices and the mask) must match (except when the mask is a scalar - the term is conformable). As your mask matrix==MAXVAL(matrix) isn't scalar you can reshape the element selection array to be conformable:

PACK(RESHAPE([(ix, ix=1, SIZE(matrix))], SHAPE(matrix)), matrix==MAXVAL(matrix))

to give you the elements in array element order (that is, a single integer representing it as though there were a rank-1 array). This is essentially the same as the previous answer, but you then need to map array element order to your various dimensions. This mapping is trivial in the rank-1 case. [In general, if lower bounds are not 1 for some rank then you will also need to take that into account.]

Alternatively, you could loop over the various rows/columns of matrix and use the rank-1 slice approach individually.

Even, as @HighPerformanceMark further commented, when one has a higher rank array this array element order result is less intuitive and perhaps more tricky to handle. Unless the multi-rank indices are persistently useful one may be better off with a clearer looping approach:

do i2=1, SIZE(matrix,2)
  do i1=1, SIZE(matrix,1)
    if (matrix(i1,i2).ne.MAXVAL(matrix)) cycle
    ...
  end do
end do
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The problem with this approach was that it put the indexes for x and y into one integer. Like so: 3753 3809 3921 31713 31769 31881 44761 44817 44929 Where the first one would be 37, 53. This is easy for the first few but once I get higher in the index numbers I don't know whether it is 31, 881 or 318, 81. Maybe this has something to do with the way I am printing the values? I just use "WRITE(,)" –  clueless_programmer Feb 25 '14 at 9:03
    
I should perhaps have been clearer with the result you get. You aren't seeing (37, 53), for example, but it's element 3753 in order of memory storage. If matrix is 75x75, say, then your indices will be (3,51). –  francescalus Feb 25 '14 at 10:57

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