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How can I create an array of length n, all zeroes, except for some index i being equal to 1.0?

For example, if my magic function is foo it would work as follows:

foo:: Int -> Int -> [Double]
> foo 3 0
[1.0, 0.0, 0.0]
> foo 2 1
[0.0, 1.0]
> foo 1 1
** Exception: index greater than length! 

Having a brain freeze...any help appreciated.

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2  
Using run-time exceptions for partial functions is generally considered un-idiomatic Haskell (Prelude.head notwithstanding). You might consider changing the type to unitList :: Int -> Int -> Maybe [Double]. –  John L Mar 2 '12 at 15:37
    
Good idea, thanks! –  drozzy Mar 2 '12 at 15:38

3 Answers 3

up vote 4 down vote accepted
unitList :: Int -> Int -> [Double]
unitList len index
    | index < len  = replicate index 0 ++ 1 : replicate (len - 1 - index) 0
    | otherwise    = error "index out of range"

Note that that's a list, not an array. Lists have O(i) indexing, arrays O(1), so one shouldn't confuse the names of the datatypes.

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Yap, I meant list. sorry. Wouldn't your code produce Ints though? You use 0 and 1 vs 0.0 and 1.0... –  drozzy Mar 2 '12 at 14:15
    
The code would produce whatever Num type is in the type signature - if I made it polymorphic, whatever Num type the caller wants. Integer literals have type 1 :: Num a => a, they stand for fromInteger integer_with_literal_value, so if a Double is required, 1 will be a Double, if a different type is required, it will have that. –  Daniel Fischer Mar 2 '12 at 14:24

To create a list (as your type signature and examples suggest), you can use range syntax to create a list of indices and then call map to go over the indices, compare each index to the index the user supplied and map it to 1.0 or 0.0 accordingly.

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foo n k | n < 0 || n >= k = error "not in range"
        | otherwise = map (fromIntegral.fromEnum.(==k))[0..(n-1)]
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