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Ok, I can't figure this one out even though I have an idea what it's doing...

let t = ["APE", "MONKEY", "DONKEY"]

Now consider three cases:

map (length.group) t
(map length.group) t
map (map length.group) t

This returns these three answers:

[3,6,6]
[1,1,1]
[[1,1,1],[1,1,1,1,1,1],[1,1,1,1,1,1]]

Now, can someone explain to me in details what's going on. A crucial part of this question is that I assume that map needs a list to work on and I don't see two maps being passed in the third case for example.

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Hint: map (f . g) = map f . map g, so you should be able to figure out what is going on by looking at the result of group t and map group t. –  hammar Oct 3 '12 at 13:11
4  
Note that your 2nd one isn't parsed the way you've got it spaced out. It's actually parsed as ((map length) . group) t. –  Dax Fohl Oct 3 '12 at 13:37

2 Answers 2

up vote 4 down vote accepted
map (length.group) t

This composes the functions length and group. The result is a function that takes a list (string) and returns the number of "groups" in that list (where a group is a sequence of the same character repeating 1 or more times, so "abc" contains 3 groups and so does "aabbcc").

This function is then applied to each string in t using map.

(map length.group) t

Here the function map length (which takes the length of each sublist in a list of lists) is composed with the function group and the composed function is applied to t. In other words it's the same as map length (group t).

map (map length.group) t

Here the function map length . group is applied to each string in t, i.e. map length (group str) is calculated for each string str in t.

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Try removing the "length." from all your cases, and see if that helps answer your question. It'll simplify the problem and the answer might show you a little better what's going on.

Or, factoring the third one, it becomes

map (map length.group) ["APE", "MONKEY", "DONKEY"]
--make parse order explicit
map ((map length) . group) ["APE", "MONKEY", "DONKEY"]
--do mapping
[((map length) . group) "APE", ((map length) . group) "MONKEY", ((map length) . group) "DONKEY"]
--use (f.g) x == f (g x)
[(map length) (group "APE"), ...]
[(map length) ["A", "P", "E"], ...]
[[1, 1, 1], ...]

Also try using some animals like "EEL" or "BEE" or "LLAMA" to see anything other than 1's in the final result.

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Thanks! Good suggestion to stick with animals too ;) I get it sort of... if you remove "length" though, the last one doesn't work... how come? –  fast-reflexes Oct 3 '12 at 14:21
    
If you don't remove the dot after length, if you follow the reduction above, in the last line you get [(map) ["A", "P", "E"],...], which obviously doesn't mean anything. If you do remove the dot, you end up with [(map group) "APE",...]", which equals [[group 'A',group 'P',group 'E'],...], which doesn't mean anything either. –  Dax Fohl Oct 3 '12 at 15:05
    
I don't follow you... with length.group in the last one I end up with ["A","P","E"] which after length gives [1,1,1] which is passed along to the "outer" map and put in the resulting list... shouldnt just ["A","P","E"] be passed along in the same manner? Instead I get an error complaining about "expecting [[[a0]]] but finding [[Char]]... Sorry, this may seem unimportant but it's part of my understanding for all of this... –  fast-reflexes Oct 3 '12 at 15:46
    
No, you've still got that inner map in there, and so it's expecting to map something to ["A","P","E"], but there's no function to map to it. Hence, weird error. I think what you're imagining is the output of map (group) ["APE", "MONKEY", "DONKEY"], not map (map group) ["APE", "MONKEY", "DONKEY"] –  Dax Fohl Oct 3 '12 at 17:33
    
Ah, I think I got it now... that actually made a big difference, thanks a lot :) –  fast-reflexes Oct 3 '12 at 21:45

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