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How can I define a cluster in Haskell using list comprehension? I want to define a function for the cluster :

 ( a b c ) = [ a <- [1 .. 10],b<-[2 .. 10], c = (a, b)]
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What do you mean by cluster? You can't have c = (a,b) and also a b c. Did you mean (a,b,c) as the output? Can you give an example? –  AndrewC Mar 24 '13 at 20:50
    
a <- [1 .. 10],b<-[2 .. 10], b > a would be better as a <- [1 .. 10],b<-[a+1 .. 10] –  AndrewC Mar 24 '13 at 20:54
    
Here is an example of output :[(1,2,1),(1,3,1),(1,4,1),(1,5,1),(1,6,1),(1,7,1)] –  George Mar 24 '13 at 21:21
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1 Answer

In your comment you gave the example [(1,2,1),(1,3,1),(1,4,1),(1,5,1),(1,6,1),(1,7,1)].

In that example, only the middle number changes, the other two are always 1. You can do this particular one with

ones = [(1,a,1)| a<-[1..7]]

However, you might want to vary the other ones. Let's have a look at how that works, but I'll use letters instead to make it clearer:

> [(1,a,b)| a<-[1..3],b<-['a'..'c']]
[(1,1,'a'),(1,1,'b'),(1,1,'c'),(1,2,'a'),(1,2,'b'),(1,2,'c'),(1,3,'a'),(1,3,'b'),(1,3,'c')]

You can see that the letters are varying more frequently than the numbers - the b<-[1..3] is like an outer loop, with c<-['a'..'c'] being the inner loop.

You could copy the c into the first of the three elements of the tuple:

> [(b,a,b)| a<-[1..3],b<-['a'..'b']]
[('a',1,'a'),('b',1,'b'),('a',2,'a'),('b',2,'b'),('a',3,'a'),('b',3,'b')]

Or give each its own varying input

>  [(a,b,c)| a<-[1..2],b<-['a'..'b'],c<-[True,False]]
[(1,'a',True),(1,'a',False),(1,'b',True),(1,'b',False),(2,'a',True),(2,'a',False),(2,'b',True),(2,'b',False)]
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