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I would like to preserve array bounds in associate block as:

integer a(2:4,2)
associate (b => a(:,1))
    print *, lbound(b), ubound(b)
end associate

I expect the bounds of b is 2 and 4, but in fact they are 1 and 3. How to do this? Thanks in advance!

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2 Answers 2

up vote 4 down vote accepted

You are associating to a subarray, its boundaries always start at 1. Try

 print *, lbound(a(:,1),1)

AFAIK you can not use the pointer remapping trick in associate construct. Specifically: "If the selector is an array, the associating entity is an array with a lower bound for each dimension equal to the value of the intrinsic LBOUND(selector)."

But you can of course use pointers

integer,target :: a(2:4,2)

integer,pointer :: c(:)


associate (b => a(:,1))
    print *, lbound(b), ubound(b)
end associate

c(2:4) => a(:,1)
print *, lbound(c), ubound(c)

end
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Thanks Vladimir! The reason why I use ASSOCIATE block is to avoid extra declaration (e.g. pointer). Hope this can be supported in future. –  Li Dong Nov 27 '12 at 13:19

I think that more elegant way to preserve array bounds will be to do the following:

integer,target  :: a(2:4,2)
integer,pointer :: b(:)

b(lbound(a,1):) => a(:,1)
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