1

I was recently reading learn you a haskell and I came across the expression:

[1,2] >>= \n -> ['a', 'b'] >>= \ch -> return (n, ch)

This expressions returns the result

[(1,'a'),(1,'b'),(2,'a'),(2,'b')]

so i understand that the monadic bind for lists is implemented as follows

xs >>= f = concatMap f xs

Taking the first half of the expression namely the:

[1,2] >>= \n -> ['a', 'b']

it evaluates to ['a','b','a','b'], from what I understand this is then fed in to the function: (\ch -> return (n , ch)).

What I don't understand is how the values 1,2 from the list are assigned to n and then how the compiler keeps a record of it to then assign it to n in the last function?

  • Omitting explicit parentheses in learning material is Evil. Too harsh? Ask countless newbies who loose countless hours because of this. – Will Ness Aug 13 '16 at 20:45
7

The first half is not what you think, the parentheses are like this :

[1,2] >>= ( \n -> ['a', 'b'] >>= ( \ch -> return (n, ch) ) )
  • 1
    You might want to mention that this is because lambda expressions always go as far to the right as possible. – dfeuer Aug 13 '16 at 22:21

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