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i am working on an encryption algorithm and i have a type problem

i don't understand what's the problem with the types here:

multien :: [(Integer , Integer)] -> Integer
multien [] = 1
multien ((x,y):z) = y* multien z

enchelper2 :: [(Integer, Integer)] -> Integer -> Integer

the problem is here in enchelper in the (z:((mod x y),y)) expression:

Couldn't match expected type (Integer , Integer) with actual Type [(Integer, Integer)]

the z in the enchelper method here i passed it as [] (empty set) the ERROR IS IN COLUMN 40 exactly

enchelper :: Integer -> [Integer] -> [(Integer, Integer)] -> [(Integer, Integer)]
enchelper x (y:ys) z = if((enchelper2 (z:((mod x y),y)) (multien z:((mod x y),y))) == x) then z:[] else (z:((mod x y),y):(enchelper x ys z:((mod x y),y)))
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and the error is reported where? (or is that blindingly obvious to a haskell programmer?) –  KevinDTimm Jan 3 '12 at 18:52
    
in the (z:((mod x y),y)) expression –  Anonymous Jan 3 '12 at 19:03
    
Could you use Haskell-style comments instead of C++-style comments please. I edited the post and my edit got overwritten. –  dave4420 Jan 3 '12 at 19:10
2  
No offense, but this code is a mess. I suggest you look into using more higher-order functions. For example, multien can be defined much more clearly as multien = product . map snd. It's also a good idea to learn some of the basic precedence rules so you don't have to use so many parentheses. –  hammar Jan 3 '12 at 20:48
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2 Answers 2

up vote 1 down vote accepted

The problem appears to be in your use of the cons operator. z is a list of tuples of two Integers, so if you really want z before ((mod x y),y), what you want to use instead is the ++ operator, followed by a list.

Try this on for size:

enchelper :: Integer -> [Integer] -> [(Integer, Integer)] -> [(Integer, Integer)]
enchelper x (y:ys) z = if((enchelper2 (z++[((mod x y),y)]) (multien (z++[((mod x y),y)]))) == x) then z else (z++[((mod x y),y)])++(enchelper x ys (z++[((mod x y),y)]))

Or, a bit more readable:

enchelper :: Integer -> [Integer] -> [(Integer, Integer)] -> [(Integer, Integer)]
enchelper x (y:ys) z =
    if ((enchelper2 foo (multien foo)) == x)
    then z
    else foo++(enchelper x ys foo)
    where foo = z++[((mod x y),y)]
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In this piece of code

z : (mod x y, y)

The types are

x :: Integer
y :: Integer
z :: [(Integer, Integer)]
(mod x y, y) :: (Integer, Integer)

And note that

(:) :: a -> [a] -> [a]

So perhaps you should have instead

(mod x y, y) : z

There are then similar errors later in the line.

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