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how do I change the list of pair[("aabb", 12), ("eegg", 9)]

into

["aabb 12", "eegg 9"] list of string

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3 Answers 3

up vote 1 down vote accepted

A for comprehension seems to be the most readable solution here:

 [x ++ " " ++ show y | (x,y) <- [("aabb", 12), ("eegg", 9)]]
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This solution is great and easy to understandable, thanks :) –  Janni Nevill Feb 3 at 17:32

As easy as that:

map (\(str, i) -> str ++ ' ':show i) [("aabb", 12), ("eegg", 9)]
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1  
Perhaps str ++ ' ':show i instead, to add the space in the question output, and perhaps defining the lambda expression as a separate function would be more beginner friendly. –  enough rep to comment Feb 3 at 8:09
    
Yes thats right. Edited it in my answer –  markusw Feb 3 at 8:20
1  
Why do you add so many parens? As chunksof50 says, str ++ ' ' : show i works and is just fine. The less obvious parsing is irrelevant here, since concatenations are associative (and any way you'd misparse the expression would result in a type error). In particular, you never need parens around something like show i as an infix argument, since function application has higher precedence than any infix. –  leftaroundabout Feb 3 at 9:07
    
ok edited it... –  markusw Feb 3 at 9:33

An more pointfree alternative style would be:

map (uncurry (++) . fmap (' ':) . fmap show) $ [("aabb", 12), ("eegg", 9)]

I'm reporting this as a curiosity. I find markusw answer simpler and more readable.

EDIT: Update from Nikita's comment.

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2  
1. No need for arrow, since a pair is a Functor over the second item. 2. Zipping-unzipping looks like overkill. I suggest map (uncurry (++) . fmap (' ':) . fmap show) list –  Nikita Volkov Feb 3 at 11:32
    
@NikitaVolkov, I didn't notice until now that (,) is a Functor instance. Thanks, til. –  Danny Navarro Feb 3 at 12:07

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