Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

A table is a list of lists, where the data is set up as follows:

data Position = CEO | Manager| Programmer | Intern deriving (Eq, Show)

data Field = EmployeeID Int | T Position | Name String | Salary Int deriving (Eq)

instance Show Field where
    show (EmployeeID k) = show k
    show (T p) = show p
    show (Name s) = s
    show (Salary k) = show k

type Column = Int
type Row = [Field]
type Table = [Row]

An example table would look like this:

employees = [[EmployeeID 1, Name "Shoo"],
    [EmployeeID 2, Name "Barney"],
    [EmployeeID 3, Name "Brown"],
    [EmployeeID 4, Name "Gold"],
    [EmployeeID 5, Name "Sky"]]

How would I go about using a list comprehension to create a function that removes a column from the table? I do not know how to operate on lists of lists. I need to have the function have a type of delete :: Column -> Row -> Row

share|improve this question
    
Shouldn't that be Column -> Table -> Table? Otherwise you don't need to worry about nested lists. –  Jonas Duregård Sep 26 '11 at 22:30
    
No, the professor of this class has a tenancy to make things difficult –  fotg Sep 26 '11 at 22:33
    
If having this function is part of the assignment, your professor probably intends you to implement the function for tables by mapping the function for rows. You can do that using list comprehension.. –  Jonas Duregård Sep 26 '11 at 22:56

3 Answers 3

up vote 1 down vote accepted

If I were to implement this without list comprehensions, I'd use map and filter.

Happily, you can easily do both of those with list comprehensions.

I'm going to avoid using your code, but as an example, suppose I had the list of lists:

nameSets = [[ "dave", "john", "steve"]
           ,[ "mary", "beth", "joan" ]
           ,[ "daren", "edward" ]
           ,[ "riley"]
           ]

And I wanted to get excited versions of all the lists with three elements:

[ [ name ++ "!" | name <- nameSet ] | nameSet <- nameSets, length nameSet == 3 ]
-- [[ "dave!", "john!", "steve!"]
-- ,[ "mary!", "beth!", "joan!" ]
-- ]

Edit: Just noticed that your column is specified by index. In that case, a zip is useful, which can also be done with list comprehensions, but a language extension is needed.

In a source file, put {-# LANGUAGE ParallelListComp #-} at the top to do zips in list comprehensions.

Here's how they work:

% ghci -XParallelListComp
ghci> [ (x,y) | x <- "abcdef" | y <- [0..5] ]
[('a',0),('b',1),('c',2),('d',3),('e',4),('f',5)]

Or, without the extension

% ghci
ghci> [ (x,y) | (x,y) <- zip "abcdef" [0..5] ]
[('a',0),('b',1),('c',2),('d',3),('e',4),('f',5)]
share|improve this answer

List comprehension does not work very well for removing by index, but here's a try (homework adjusted):

deleteAt :: Column -> Row -> Row
deleteAt n r = [e|(i,e) <- zip (a list of all indexes) r, test i] where
  test i = (True if index i should be kept and False otherwise)

If you want to make a list comprehension that operates on lists of lists, you can just nest the comprehensions:

operate :: Table -> Table
operate t = [[myFunction field|field <- row, myPredicate field]| row <- t]

myFunction :: Field -> Field
myPredicate :: Field -> Bool
share|improve this answer

Hmm, this isn't an answer since you requested using list comprehensions. But I think list comprehensions are quite ill-suited to this task. You only need take and drop.

ghci> take 2 [1,2,3,4,5]
[1,2]
ghci> drop 2 [1,2,3,4,5]
[3,4,5]

To delete an element at index i, append together the first i elements and the list with the first i+1 elements dropped.

share|improve this answer

Your Answer

 
discard

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.