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I copied the Euler.11 solution given on ( http://www.haskell.org/haskellwiki/Euler_problems/11_to_20#Problem_11), but it fails with an indexing error: " (Array.!): undefined array element". Of course firstly I'd like a better error message(!), perhaps even giving the failed index, but failing that I tried to debug it.

The data is input correctly, and a print of it shows the right bounds, and data.

So I added a few trace messages, to both the result expression, and the body of the comprehension. I get lots of trace results from the final expression, but none from the body computations. Why?

prods :: Array (Int, Int) Int -> [Int]
-- trace ("xs: " ++ show xs) (product xs)
prods a = [trace ("xs: " ++ show xs) (product xs) | i <- range $ bounds a,
                        s <- senses,
                        let trace1 = check "i: " i,
                        let is = take 4 $ iterate s i,
                        let trace2 = check "is: " is,
                        all (inArray a) is,
                        let xs = map (a!) is]

-- Doit
-- euler = print . maximum . prods . input =<< getContents
euler eData = maximum . prods $ input eData

-- Debugging tracecheck :: String -> a -> a
check msg v | trace (msg ++ (show v)) True = v
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2 Answers 2

up vote 2 down vote accepted

First, making the error message include the failing index would require the Show constraint to be added to the array indices, which may be undesired.

Second, as Roman said, the messages are not printed because of lazy evaluation. Bang-patterns (let !trace = check "i: " i) may be the most convenient way to circumvent it, but I don't know exactly how those work inside of list comprehensions.

Next, the undefined array element message tells you that the array was constructed incorrectly (some elements were left undefined), so you need to debug the function constructing it rather than the function using it.

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Many thanks on all points; seems obvious (now!). I did print the array after constructing it, and it all looked good, with the expected bounds. I'll play with it a bit more to see if/how it got some undefined values. –  guthrie Sep 13 '11 at 4:11
    
You're right about the bad setup of data - I had misinterpreted the error message. –  guthrie Sep 13 '11 at 13:17

Haskell is a lazy language(*). You do not use trace1 and trace2 in your computation, hence they are not evaluated, and nothing gets printed.

For example, if you replace

let is = take 4 $ iterate s i

with

let is = take 4 $ iterate s trace1

then trace1 will be used and should lead to tracing messages.

(*) More precisely, GHC, the Haskell implementation most used today, uses lazy evaluation to achieve Haskell's non-strict semantics. Never mind if this doesn't make sense.

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