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This matrix transposition function works, but I'm trying to understand its step by step execurtion and I don't get it.

    transpose:: [[a]]->[[a]]
    transpose ([]:_) = []
    transpose x = (map head x) : transpose (map tail x)

with

transpose [[1,2,3],[4,5,6],[7,8,9]]

it returns:

 [[1,4,7],[2,5,8],[3,6,9]]

I don't get how the concatenation operator is working with map. It is concatenating each head of x in the same function call? How?

is this

(map head x)

creating a list of the head elements of each list?

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7  
This isn't an answer, but generally when I'm trying to wrap my head around something in Haskell, I'll spend some time playing around with it in GHCi. Try "map head" or "map tail" on a few lists of lists and you'll see for yourself how they work. If you're coming from an imperative world, maps and folds can be a little tough to grok. They're your main looping constructs -- essentially replacing "for" and "while" -- so you'll soon learn to love them. –  rtperson Apr 5 '10 at 14:59
1  
+1 Grok (blahh) –  Thomas Eding Apr 8 '10 at 23:01

5 Answers 5

up vote 16 down vote accepted

Let's look at what the function does for your example input:

transpose [[1,2,3],[4,5,6],[7,8,9]]
<=>
(map head [[1,2,3],[4,5,6],[7,8,9]]) : (transpose (map tail [[1,2,3],[4,5,6],[7,8,9]]))
<=>
[1,4,7] : (transpose [[2,3],[5,6],[8,9]])
<=>
[1,4,7] : (map head [[2,3],[5,6],[8,9]]) : (transpose (map tail [[2,3],[5,6],[8,9]]))
<=>
[1,4,7] : [2,5,8] : (transpose [[3],[6],[9]])
<=>
[1,4,7] : [2,5,8] : (map head [[3],[6],[9]]) : (transpose (map tail [[3],[6],[9]]))
<=>
[1,4,7] : [2,5,8] : [3, 6, 9] : (transpose [[], [], []])
<=>
[1,4,7] : [2,5,8] : [3, 6, 9] : [] -- because transpose ([]:_) = []
<=>
[[1,4,7],[2,5,8],[3,6,9]]

Note that the order in which I chose to reduce the terms, is not the same as the evaluation order haskell will use, but that does not change the result.

Edit: In response to your edited question:

is this

(map head x)

creating a list of the head elements of each list?

Yes, it is.

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2  
How do you make ghc show this? –  andandandand Apr 5 '10 at 14:51
    
I don't think you can. –  sepp2k Apr 5 '10 at 14:53
    
Why is () creating a list? –  andandandand Apr 5 '10 at 14:53
    
were you using a debugger then? –  andandandand Apr 5 '10 at 14:54
4  
() is not creating a list. map which is inside () and transpose both create lists. –  ZyX Apr 5 '10 at 14:55

The cons operator : attach an object of type a to a list of type [a]. In

(map head x) : transpose (map tail x)

The LHS is a list (a = [b]), while the RHS is a list of list ([a] = [[b]]), so such a construction is valid. The result is

[x,y,z,...] : [[a,b,...],[d,e,...],...] = [[x,y,z,...], [a,b,...],[d,e,...],...]

In your case, map head x and map tail x splits the matrix

x = [[1,2,3],[4,5,6],[7,8,9]]

into

map head x = [1,4,7]
map tail x = [[2,3],[5,6],[8,9]]

(and yes, map head x is a list of the head elements of each list.) The 2nd part is transposed (for detail steps see @sepp2k's answer) to form

transpose (map tail x) = [[2,5,8],[3,6,9]]

so cons-ing [1,4,7] to this gives

map head x : transpose (map tail x) =  [1,4,7] : [[2,5,8],[3,6,9]]
                                    = [[1,4,7] ,  [2,5,8],[3,6,9]]
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ghci is your friend:

*Main> :t map head
map head :: [[a]] -> [a]
*Main> :t map tail
map tail :: [[a]] -> [[a]]

Even if you don't understand map (a problem you'd want to correct quickly!), the types of these expressions tell much about how they work. The first is a single list taken from a list of lists, so let's feed a simple vector to it to see what happens.

You might want to write

*Main> map head [1,2,3]

but that fails to typecheck:

<interactive>:1:14:
    No instance for (Num [a])
      arising from the literal `3' at :1:14
    Possible fix: add an instance declaration for (Num [a])
    In the expression: 3
    In the second argument of `map', namely `[1, 2, 3]'
    In the expression: map head [1, 2, 3]

Remember, the argument's type is a list of lists, so

*Main> map head [[1,2,3]]
[1]

Getting a bit more complex

*Main> map head [[1,2,3],[4,5,6]]
[1,4]

Doing the same but with tail instead of head gives

*Main> map tail [[1,2,3],[4,5,6]]
[[2,3],[5,6]]

As you can see, the definition of transpose is repeatedly slicing off the first “row” with map head x and transposing the rest, which is map tail x.

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These things are the same:

map head xxs
map (\xs -> head xs) xxs

It's lambda-expression, which means i return the head of xs for every xs Example:

   map head [[1,2,3],[4,5,6],[7,8,9]]
-> map (\xs -> head xs) [[1,2,3],[4,5,6],[7,8,9]]
-> [head [1,2,3], head [4,5,6], head [7,8,9]]
-> [1,4,7]

It's simple

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By the way, this function doesn't work when given an input like [[1,2,3], [], [1,2]]. However, the transpose function from Data.List will accept this input, and return [[1,1], [2,2], [3]].

When we are calling the recursive transpose code, we need to get rid of the [].

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It would be better to put this into the comments of the actual answer; the poster is not just trying to call transpose, but rather figure out why it works. –  MattoxBeckman Sep 22 '12 at 1:16

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