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I have been learning Haskell over the last few days, through Learn You A Haskell. I've been attempting to complete some Project Euler problems, some of which require primes. However the function I have written to try to generate some (in this case primes below 20000) isn't outputting correctly. When I run it, GHCi returns '[1, ' and seemingly doesn't terminate. The code I am using is:

sieve :: (Integral a) => a -> [a] -> [a]
sieve 20000 list = list
sieve n (x:xs) = sieve (n+1) $ x:(filter (\q -> q `mod` n /= 0) xs)

primesto20000 = sieve 2 [1..20000]

And then I am calling primesto20000. I understand that the function may be inefficient, I am mainly asking for help on syntactic/process errors that I must have made.
Thankyou

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I'm not sure why this function doesn't seem to terminate, but I can see why it outputs only 1, isn't it because you filter out the prime numbers along with their derivatives? –  Kimitsu Desu Feb 5 '13 at 9:05
    
I was intending to append the prime (i.e. the first number in the list) using the x: before the filter function, which was only acting on the rest of the list, xs. How would I do that? @KimitsuDesu –  bennybdbc Feb 5 '13 at 9:09
    
As a side note, this is not a sieve. It's simply a trial division prime generator. –  ertes Feb 5 '13 at 10:53
    
BTW, you might want to check this great article if you care about performance latter on. The algorithm you are using is worse then trial division. –  hugomg Feb 5 '13 at 13:47

2 Answers 2

up vote 2 down vote accepted

You're filtering out multiples of every number, not just prime numbers. You want to check divisibility by x, not by n. (In fact, I'm not sure you need n in the sieve function at all; just make your primesto20000 function generate the appropriate input list, and pass that.)

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I just tried using q mod x, and it resulted in the function terminating, but only returning [1] –  bennybdbc Feb 5 '13 at 9:12
2  
Try passing it the list [2..20000] as input instead. I think the 1 step is filtering out everything. –  MathematicalOrchid Feb 5 '13 at 9:14
    
That worked perfectly, thankyou –  bennybdbc Feb 5 '13 at 9:17

There are two problems in your code:

  • Because its time complexity (quadratic I guess), it doesn't finish in a reasonable time and it seems that it just hangs. If you replace 20000 with 200, it'll finish, but the result will be [1].
  • The other problem is that for each n you want to filter all numbers divisible by n that are larger than n. Without this condition, you filter n itself, which has the result that you filter out all numbers.

A corrected version could look like (with a parametrized limit):

limit :: Integral a => a
limit = 20000

sieve :: (Integral a) => a -> [a] -> [a]
sieve n list | n == limit
    = list
sieve n (x:xs)
    = sieve (n+1) $ x : (filter filt xs)
  where
    -- filter everything divisible by `n`, but not `n` itself.
    filt q = (q <= n) || (q `mod` n /= 0)

primesto20000 = sieve 2 [1..limit]
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Thankyou for this, its very helpful seeing good examples of Haskell code –  bennybdbc Feb 5 '13 at 9:19

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