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I want to create a type that stores name and value of a variable,so I did this:

type Variable = String
type Val = Int    
type Store = Variable -> Val

now, how can I use this Store?

for example I want to write a function(fetch) that returns value of a variable according to its Store or a function(initial) to initial all the variables( assign a default value,like 0):

fetch:: Store -> Variable -> Val
initial:: Store

how can I do this?

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2  
Looks to me like you want something like records. Note that type is only for aliasing types. You want perhaps data –  Ingo Jan 13 at 17:32

2 Answers 2

up vote 7 down vote accepted

Your Store type is just an alias for a specific kind of function, I could write one as

constStore :: Store
constStore _ = 1

You could make a more complex one:

lenStore :: Store
lenStore var = length var
-- or
-- lenStore = length

Then fetch is just function application

fetch :: Store -> Variable -> Val
fetch store var = store var
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thanks,wish i could "vote up". –  DMST Jan 13 at 19:07

Stores are functions, so you can just apply the store to the variable:

fetch :: Store -> Variable -> Val

so

fetch :: (Variable -> Val) -> Variable -> Val

thus

fetch store var = store var

but that would be simpler written

fetch = id

or omitted altogether, so if myStore :: Store, I can do

myStore "myVariable"

and I'll get the appropriate value.

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Shouldn't it be fetch = ($), not fetch = id. –  Aadit M Shah Jan 13 at 18:21
    
thanks though i didn't get "id" part :D –  DMST Jan 13 at 19:09
2  
@DMST The type of id is t -> t, all it does is return its argument. If we look at the type of Store, it's (Variable -> Val). If you have a store s :: Store, then if you let t ~ Store, that's the same as saying t ~ (Variable -> Val). Then you get id :: Store -> Store is the same as id :: (Variable -> Val) -> (Variable -> Val), and the second set of parens can be removed, leaving just id :: (Variable -> Val) -> Variable -> Val. Substituting back, we get id :: Store -> Variable -> Val, which is the signature of fetch. (~ is type equality) –  bheklilr Jan 13 at 19:17
    
@bheklilr thanks dude! –  DMST Jan 13 at 19:26
2  
@AaditMShah Both will work, ($) is basically just id as an infix operator with a different precedence. –  bheklilr Jan 13 at 19:48

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