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Suppose I have a list like this one:

list= [["a","123","b"],["h","435","t"],["w","234","j"]]

What I need is to convert each second member of that list of lists into an Integer because it will serve as a size indicator after that so I can sort my list by size.

I've came up with a function for conversion:

charToInt c = ord (chr c)

but I dont know how to convert each second member of the list.

share|improve this question
    
What are you trying to achieve here? The uniformity of the inner lists makes it look like they are really some kind of structure in disguise. The fact that you want to sort by the length of the second element makes this seem even more likely. So I wonder if you are thinking of these lists as a kind of dynamically typed structure? –  Paul Johnson Jan 8 '12 at 16:59
    
Hey Paul, what i'm trying to achiev is a progam that will give me all meta data of some files in a list of lists, something lihe this: list=[["music_A","size_A","artist_A",...],["music_B","size_B","artist_B",...]..‌​.] all meta data comes in String and as after i want to give the user the oportunity to sort all the data by size i need to convert the size to an Int –  seph Jan 8 '12 at 17:13
3  
As I suspected, you are trying to use a list as a data structure. This is a bad idea. You need to create a data structure to hold your data using native types (like Integer for the size), and then define a function such as mkMetaData :: [String] -> MetaData. then you can have a list of that data type and sort it however you like. –  Paul Johnson Jan 8 '12 at 17:23
    
I see your point, i'll give it a try mate, thanks. –  seph Jan 8 '12 at 17:29

2 Answers 2

up vote 6 down vote accepted

To expand on what Paul Johnson said, you need to define a datatype for the data you're trying to hold.

data MusicFile = MusicFile {music :: String,
                            size :: Integer,
                            artist :: String}
    deriving Show

musicFileFromStrings :: [String] -> MusicFile
musicFileFromStrings [sMusic, sSize, sArtist]
   = MusicFile sMusic (read sSize) sArtist

Then if you have

list = [["a","123","b"],["h","435","t"],["w","234","j"]]

you can say

anotherList = map musicFileFromStrings list

and then

map music anotherList   -- ["a", "h", "w"]
map artist anotherList  -- ["b", "t", "j"]

(EDIT)

If you want to sort the list by a particular field you can use "sortBy" and "comparing".

import Data.List
import Data.Ord

sizeOrderList = sortBy (comparing size) anotherList

The "comparing" function turns a function on a value (in this case "size") into a comparison function between two values. The only requirement is that the output of "size" (in this case) be a type that is an instance of "Ord".

If you want descending order than use

sizeOrderList = sortBy (comparing (flip size)) anotherList
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Hey mate, thanks for the help. I've follow what you said but when i try to run anotherList i get this error: No instance for (Show MusicFile) arising from a use of print' Possible fix: add an instance declaration for (Show MusicFile) In a stmt of an interactive GHCi command: print it` –  seph Jan 8 '12 at 17:44
    
ok i got it to work just adding deriving Show but now i have the same problem i had at the bigining, instead of having this [["ad",23,"fd"],["g",54,"gs"],["yt",67,"fh"]], i have this: [MusicFile {music = "ad", size = 23, artist = "fd"},MusicFile {music = "g", size = 54, artist = "gs"},MusicFile {music = "yt", size = 67, artist = "fh"}] –  seph Jan 8 '12 at 17:48
    
See my edits. Do you need a tutorial on how to use records in Haskell? –  dave4420 Jan 8 '12 at 17:53
    
I think u didnt understand me, you just created two lists with all the music and all the artists, but i don't want to have it that way, i want all meta data from one file toghether, because later i will have to transform that info to pdf so the user will see all the information from each file on the screen. –  seph Jan 8 '12 at 18:00
1  
So now you need to define a prettyprint function that generates the text for each record. You can use "sortBy" and "comparing" to shuffle the list into whatever order you want. E.g. "sortBy (comparing sSize) listOfMusic" will do what you want. –  Paul Johnson Jan 8 '12 at 18:18

You cannot convert the second element of the inner lists to an Integer without changing the type from a list to something like a tuple. The reason is that lists are homogeneous in Haskell, so you need a tuple to represent mixed types.

Converting a String into an Integer is done like this:

read "123" :: Integer

You need to add the type directly since the type of read is Read a => String -> a, meaning that it'll return something of a type that can be "read". Luckily, Integer is a member of that type class, so we can convert String into Integer.

Now it's just a simple matter of converting the second element of each inner list:

convert :: [[String]] -> [(String, Integer, String)]
convert lists = map (\[a, b, c] -> (a, read b, c)) lists
share|improve this answer
    
That's a very nice solution mate, but i was in need of keeping the same structure, there's no way to that u say? –  seph Jan 8 '12 at 16:20
    
Right, there's no way. Except if you transform it to lists of another type, say data D = S String | I Integer, then map ((x:y:xs) -> S x : I (read y) : map S xs) list gives you a [[D]] which you can then treat as you desired. –  Daniel Fischer Jan 8 '12 at 16:27
    
I like this way more: convert = map ([a,b,c] -> (a, (read b), c)) –  ondra Jan 8 '12 at 16:29
    
Daniel i've tried as u said, to transform the type of the list but when i run this code: map ((x:y:xs) -> S x : I (read y) : map S xs) [["sd","45","b"],["j","54","g"],["a","33","d"]] i get this error Pattern syntax in expression context: (x : y : xs) -> S x : I (read y) : map S xs but if this works, it's perfect, totally what i need –  seph Jan 8 '12 at 16:46
1  
Should be map (\(x:y:xs) -> S x : I (read y) : map S xs) list or convert = map (\[a,b,c] -> (a, (read b), c)). –  dave4420 Jan 8 '12 at 17:55

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