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I've a problem with implementing the last function using foldr1. I assume that it takes the right most element and treats it like the accumulator value, then applies binary function to the accumulator and its neighbor until it reaches the beginning of a given list. However, the code shown below doesn't work. Could someone tell me what's wrong with it? Instead of returning the last element it prints out the first one

last' list = foldr1 (\acc _ -> acc) list
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You need to return the second argument, not the first. –  Lee Jun 20 '14 at 20:01
    
but why? i'm using foldr1 not foldl1 –  mcjkwlczk Jun 20 '14 at 20:02
    
the second element is the accumulated value - the order of traversal changes and order of the parameters change too ... –  underrun Jun 20 '14 at 20:06
    
oh, thank you very much –  mcjkwlczk Jun 20 '14 at 20:11

1 Answer 1

foldr :: (a -> b -> b) -> b -> [a] -> b

As you can see, foldr makes the accumulator the second argument, while the value from the list is the first. foldr1 behaves the same way. So, as Lee said, you need to have your lamdba return the second argument rather than the first. Alternatively, you could say foldr1 (flip const)

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flip const not seq, it'd be very weird to force elements just to get the last one. –  jozefg Jun 20 '14 at 21:01
    
foldr1 seq and foldr1 (\_ acc -> acc) have different semantics though. All of the thunks in the list will be forced if you use foldr1 seq but that's not the case with foldr1 (\_ acc -> acc). This could be an important difference if it takes a very long time to evaluate each element of the list. Also, if there are any bottoms in xs, foldr1 seq xs is bottom as well (which could be bad). –  David Young Jun 20 '14 at 21:02
    
Good points, I edited my answer. –  genisage Jun 20 '14 at 21:07

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