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I can use let inside other expression.

foo n = (let a = True in (\x -> a)) 3

foo' n | n == 1 = let a = True in a
       | n /= 1 = False

But I can't do the same with where

foo n = ((\x -> a) where a = True) 3

foo' n | n == 1 = a where a = True
       | n /= 1 = False

1:20: parse error on input `where'

Is it really impossible in haskell or just my mistake?

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4 Answers 4

up vote 10 down vote accepted

let is an expression while where is a clause. where is bound to syntactic constructs, let can be used anywhere expressions can.

You could of course write it like this:

foo n = ((\x -> a)) 3 where a = True

foo' n | n == 1 = a
       | n /= 1 = False
       where a = True

or like this:

foo n = (\a -> (\x -> a) 3) True
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You need to put the where clause at the end:

foo n = ((\x -> a)) 3
  where a = True

foo' n | n == 1 = a
       | n /= 1 = False
  where a = True

The difference is that let is an expression, whereas where requires some other construct to be bound to. See let vs where

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let ... in ... is for introducing name bindings in an expression.

where is convenience syntax for giving local auxiliary definitions along with an equation. You can only use it as part of an equation (at the end), not in the middle of an arbitrary expression.

Their usage is not the same.

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This is a bit inaccurate. You can have where clauses on local definitions in a let or where, or on the alternatives of a case expression, not only on top level definitions. –  hammar Oct 9 '12 at 21:14
    
where clauses aren't limited to top-level definitions--they're also valid inside let, where, instance, or anything else that lets you write definitions in that style. (EDIT: And now I see that hammar just made the same remark. Oh well.) –  C. A. McCann Oct 9 '12 at 21:17
    
@C.A.McCann Rats. I was trying to avoid saying "function definition", since such definitions aren't necessarily functions, and functions don't have to be defined with that syntax. What's the name for that definition syntax then? "Equation" I guess? –  Ben Oct 9 '12 at 22:19
    
I'm too lazy to check right now, but I'd go with whatever term the Haskell Report uses. Equation sounds reasonable, though. –  C. A. McCann Oct 9 '12 at 22:26

The claim that let is an expression is a bit off, it seems to me; in a do block it is a statement, though we say that there it abbreviates let ... in. The thing to say, I think, is

 let_in_ :: Statement -> Expression -> Expression
 _where_ :: Statement -> Statement  -> Statement

Thus the first part of a let is a statement and can be modified by a where. So for example

 foo n = (let a = b where b = True in (\x -> a)) 3

 bip = do 
     let a = b where b = let c = d where d = True in c
     return a

Similarly we can maybe say something like this:

 case_of_ :: Expression -> [Statement] -> Expression

so that e.g.

z x = case even x of 
   True -> d where d = x + 1
   False -> w - 1 where w = let a = x in a + 1 
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