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import Data.List.Split
import Data.List(nub, groupBy)

z = splitOn "+" "x^2+2*x^3+x^2"

y = map (splitOn "*") z

x = map head y

toInt :: [String] -> [Int]
toInt = map read

u1 = filter ((< 2) . length) y
u2 = filter ((> 1) . length) y

v = map ("1" :) u1

q = u2 ++ v
q2 = zip toInt(map head q) (map last q)
q6 = groupBy nub(map tail q) q
q3 = map tail q
q5 = nub(q3)

q1 = map head q

1. For

zip toInt(map head q) (map last q)

I would like to add back the head to the tail after convert head into integer result should be [[1,"x^3"],[2,"x^2"],[1,"x^2"]]

I can do

*Main Data.List> zip [2,1,1] ["x^3","x^2","x^2"]
[(2,"x^3"),(1,"x^2"),(1,"x^2")]

but above can not, and there is a difference I noticed is, this is (), not []

2. How to write groupBy on a list, I have passed distinct elements for groupBy After grouping, it is for adding their head

groupBy (nub(map tail q)) q

:1:10: Couldn't match expected type a0 -> a0 -> Bool' with actual type[a1]' In the return type of a call of nub' In the first argument ofgroupBy', namely `(nub (map tail q))' In the expression: groupBy (nub (map tail q)) q

q is like a hash table, it seems that it can not group by second element

share|improve this question
4  
[[1,"x^3"],[2,"x^2"],[1,"x^2"]] is impossible in Haskell: You can't mix different types in a list, but here the inner lists contain both Ints and Strings. The usual solution for this is to use a tuple. Another solution would be heterogenous lists, but I guess that would be over-the-top here. –  Landei Apr 19 '11 at 14:10
    
it can, the result is [(1, "a"),(2, "b")] –  Jo0o0 Apr 20 '11 at 3:02
    
In Haskell () denote tuples, [] denote lists, and both are fundamentally different. If you understand this, then please change your question accordingly. –  Landei Apr 21 '11 at 13:11

1 Answer 1

up vote 5 down vote accepted

One issue is that zip toInt(map q) (map last q) isn't getting parsed the way you think it is.

Unlike languages with C-style syntax, haskell parses the above as

 zip toInt (map head q) (map last q)

(Note the space).

That is, it's not applying toInt to the result of map head q the way you want it to. Instead, it's attempting to do zip toInt (map head q), which will give you a type error, since you're zipping a function and a list.

What you want instead is

 zip (toInt (map head q)) (map last q)

Or slightly more succinctly

 zip (toInt $ map head q) (map last q)

As for your second issue, you're having a similar issue with syntax. Also, the first argument to groupBy needs to be a function that determines equality for the purposes of creating groups.

share|improve this answer
    
after added a bracket, i try second question, can this writing style group by second element? –  Jo0o0 Apr 19 '11 at 13:58
1  
Your issue with the groupBy (nub(map tail q)) q is that groupBy takes a function argument, which you're not giving it. –  rampion Apr 19 '11 at 14:39
    
does you mean i should write groupBy (=nub(map tail q)) q –  Jo0o0 Apr 20 '11 at 1:36

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