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Ok, I'm attempting to make a function to determine if a list of tuples is transitive, i.e. if (x,y) and (y,z) is in the list, then (x,z) is also in the list.

For example, [(1,2), (2,3), (1,3)] is transitive.

Now, coming from a Prolog background, the following makes sense to me:

transitive xs = and [elem (x, z) xs | (x, y) <- xs , (y, z) <- xs ]

HOWEVER, it doesn't work. It appears that the 'y' does not get the single value as I would expect, but is 'reassigned' when it comes to the second tuple. Instead, we must use:

transitive xs = and [elem (x, z) xs | (x, y1) <- xs , (y2, z) <- xs, y1 == y2 ]

Why is this so? Why does the first example not cause an error, and doesn't this go against functional programming languages' principle of 'referential transparency?'

"However, in pure functional and logic languages, variables are bound to expressions and keep a single value during their entire lifetime due to the requirements of referential transparency." - Wikipedia

Thanks!

share|improve this question
    
Please learn to format your code. – Marcin Apr 16 '12 at 17:09
    
Will do, my apologies – Jarmex Apr 16 '12 at 17:11
    
No need to apologise - SO doesn't really do a good job of warning new users that they need to do that, so almost every single new user has to be told at some point. – Marcin Apr 16 '12 at 17:14
    
possible duplicate of Variables in Haskell – ehird Apr 16 '12 at 17:35
up vote 8 down vote accepted

Even in functional languages, there is name shadowing. Sometimes that is useful. In the first code, the (y,z) <- xs shadows the y bound by the (x,y) <- xs before.

Compile with warnings turned on to be alerted of such things.

share|improve this answer
3  
Thanks for that, after your use of the phrase 'shadowing', I found a very similar question has already been answered. stackoverflow.com/questions/4053789/variables-in-haskell. Thanks for your time :) – Jarmex Apr 16 '12 at 17:18

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