Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

My questions is if I put in a string containing such as Hello, today is a Nice Day!! How could I get rid of spaces and punctuation and also replacing the uppercase letters with lowercase?

I know how to delete them but not how to replace them.

Also to get rid of the punctuation.

Sorry I don't know how to mess around with strings, only numbers.

testList xs = [if x = [,|.|?|!] then " "  | x<-xs] 
share|improve this question

5 Answers 5

up vote 7 down vote accepted
import Data.Char

If you want convert the punctuation to space and the characters from upper case to lower case:

testList xs = [if x `elem` ",.?!" then ' ' else toLower x | x<-xs]

Example: testList "TeST,LiST!" == "test list "

If you want to delete the punctuation and convert the characters from upper case to lower case:

testList2 xs = [toLower x | x<-xs, not (x `elem` ",.?!")]

Example: testList2 "Te..S,!t LiS?T" == "test list"

If you don't want or can not import Data.Char, this is an implementation of toLower:

toLower' :: Char -> Char
toLower' char 
    | isNotUppercase = char -- no change required
    | otherwise = toEnum (codeChar + diffLowerUpperChar) -- char lowered
      codeChar = fromEnum char -- each character has a numeric code
      code_A = 65
      code_Z = 90
      code_a = 97
      isNotUppercase = codeChar < code_A || codeChar > code_Z
      diffLowerUpperChar = code_a - code_A
share|improve this answer
This should have been a comment in my answer. Did you already take a look at it? – Oscar Mederos Mar 10 '13 at 8:31
This helps so much. Thank you. The power point that the professor gave us only had examples with numbers but this clears up a lot of my questions for manipulating letters. – Bob Bobington Mar 10 '13 at 22:02
But how would I implement the toLower? It gives me Not in scope and I tried adding the import data.char, but that also gives me an error. EDIT: I got it to work nvm. – Bob Bobington Mar 10 '13 at 22:08

I've been without writing a code in Haskell for a long time, but the following should remove the invalid characters (replace them by a space) and also convert the characters from Uppercase to Lowercase:

import Data.Char

replace invalid xs = [if elem x invalid then ' ' else toLower x | x <- xs]

Another way of doing the same:

repl invalid [] = []
repl invalid (x:xs) | elem x invalid = ' ' : repl invalid xs
                    | otherwise      = toLower x : repl invalid xs

You can call the replace (or repl) function like this:

replace ",.?!" "Hello, today is a Nice Day!!"

The above code will return:

"hello  today is a nice day  "

Edit: I'm using the toLower function from Data.Char in Haskell, but if you want to write it by yourself, check here on Stack Overflow. That question has been asked before.

share|improve this answer

You will find the functions you need in Data.Char:

import Data.Char

process str = [toLower c | c <- str , isAlpha c]

Though personally, I think the function compositional approach is clearer:

process = map toLower . filter isAlpha
share|improve this answer
This does not solve the problem -- OP wants to replace invalid characters by space, not delete them. See @OscarMederos's answer. – luqui Mar 10 '13 at 8:23
"How could I get rid of spaces and punctuation and also replacing the uppercase letters with lowercase?" That sounds to me like the OP wants to delete spaces. – Chris Barrett Mar 10 '13 at 8:51
Perhaps the OP could edit the question for clarity if he means something else. – Chris Barrett Mar 10 '13 at 8:53

To get rid of the punctuation you can use a filter like this one

[x | x<-[1..10], x `mod` 2 == 0]

The "if" you are using won't filter. Putting an if in the "map" part of a list comprehension will only seve to choose between two options but you can't filter them out there.

As for converting things to lowercase, its the same trick as you can already pull off in numbers:

[x*2 | x <- [1..10]]
share|improve this answer
So would it be something like [x|x<-xs, x mod 2 == 0]? – Bob Bobington Mar 10 '13 at 4:32
@BobBobington No you use mod x 2 or x ``mod`` 2 which is easyer to read. It is almost the same like 1 + 2 or (+) 1 2 – kyticka Mar 10 '13 at 8:42
How do I write backticks in code? – kyticka Mar 10 '13 at 8:44
@BobBobington: You are right. This is what I get for coding too much in Python :P – hugomg Mar 10 '13 at 16:46
@kyticka: In a question you can just use indentation. In a comment you can escape the backticks with a backslash: `\`` -> ` – hugomg Mar 10 '13 at 16:47

Here's a version without importing modules, using fromEnum and toEnum to choose which characters to allow:

testList xs = 
  filter (\x -> elem (fromEnum x) ([97..122] ++ [32] ++ [48..57])) $ map toLower' xs 
    where toLower' x = if elem (fromEnum x) [65..90] 
                          then toEnum (fromEnum x + 32)::Char 
                          else x

*Main> testList "Hello, today is a Nice Day!!"
"hello today is a nice day"

For a module-less replace function, something like this might work:

myReplace toReplace xs = map myReplace' xs where
  myReplace' x
    | elem (fromEnum x) [65..90] = toEnum (fromEnum x + 32)::Char
    | elem x toReplace           = ' '
    | otherwise                  = x

*Main> myReplace "!," "Hello, today is a Nice Day!! 123"
"hello  today is a nice day   123"
share|improve this answer
Remember that OP wants to replace some characters by a space too. – Oscar Mederos Mar 10 '13 at 4:41

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.