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What does

squares xs = [x*x|x<-xs]

Means

Like i understand [x*x|x<-[1,2,3]]

To be precise where does the 's' come from

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marked as duplicate by Frank Schmitt, Antal S-Z, stonemetal, Alexey Romanov, Daniel Wagner Oct 5 '13 at 0:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
same as squares argument = [x*x|x<-argument] –  wit Oct 4 '13 at 20:45
    
I do not know why the moderators have issue with the questions. They just know that if they can criticise a question, they will get some points. They do not recognise that we are asking coz we are desperate and could not find the answer. –  Ahmmad Ismail Mar 13 at 3:14

3 Answers 3

up vote 3 down vote accepted

xs is a list argument passed to the squares function. Typically an s is used after a variable name in haskell to denote a list (IE, to pluralize the name to denote multiple values in the argument).

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According to Philip Walder the list is a strange animal which has a head and a tail only. And the tail consists of a head and a tail and so on till it is null.

for example for the function:

squareRec :: [Integer] -> [Integer]
squareRec [] = []
squareRec (x:xs) = x*x : squareRec xs

The solution works like:

squareRec[1,2,3]
= squareRec(1 : (2 : (3 : [])))
= 1*1 : squareRec(2 : (3 : []))
= 1*1 : (2*2 : squareRec(3 : []))
= 1*1 : (2*2 : (3*3 : squareRec []))
= 1*1 : (2*2 : (3*3 : []))
= 1 : (4 : (9 : []))

here the head is x (an element) and the tail is the rest of the list (which is a list). The returned list is passed in the squareRec function, while we get an empty list which is define as squareRec [] = []

And we know that 1:(4:(9:[])) = [1,4,9]

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If this problem as solved, consider marking your answer as accepted (this is also known as self-accepting). Refer to this post for more details. –  Amal Murali Oct 4 '13 at 19:06

xs is just a variable (argument passed to squares). In your second example you just substituted xs with [1,2,3].

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1  
Perhaps it becomes obvious if we rewrite the function to read squares someList = [x*x | x <- someList] –  Thomas M. DuBuisson Oct 4 '13 at 14:00

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