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Is there a simple function I can copy and paste to make this conversion? The Ruby equivalent would be

bytes.unpack("n*")
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You can use optional p instead of fmap Just p <|> return Nothing. –  Gabriel Gonzalez Jul 11 '13 at 1:10
    
Thank you. optional is better! –  dan Jul 11 '13 at 1:19

2 Answers 2

up vote 3 down vote accepted

Use the cereal or binary package, decode into a 16 bit unsigned int (Word16) then convert that value to a full Integer:

import Data.Serialize
...
someFunction = ...
    let intVal = runGet (fromIntegral `fmap` getWord16be) bytes

Edit:

As with any monad in haskell, you can use higher level function such as replciateM along with the above code to get a list of int values (untested code follows):

import Data.Serialize
...
someFunction = ...
    let intVals = runGet (do n <- get
                             replicateM n (fromIntegral `fmap` getWord16be)) bs
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How would I run runGet to produce a list of [Integer], and not just a single parsed value? –  dan Jul 10 '13 at 22:33
    
Have you heard of replicateM? –  Thomas M. DuBuisson Jul 10 '13 at 22:44
    
OK the replicateM strategy works if you know how many times you want to iterate, but what if you don't? n <- get doesn't return that number. –  dan Jul 10 '13 at 23:04
    
OK I figured out a way using Control.Applicative.(<|>) I copied my solution above. –  dan Jul 10 '13 at 23:22

EDIT:

Based on Thomas M. DuBuisson's suggestions, here's my solution:

eitherIntVal :: B.ByteString -> Either String [Integer]
eitherIntVal = runGet (do 
    xs <- replicateM 5 (Just `fmap` getWord16be <|> return Nothing)
    return $ map fromIntegral $ catMaybes xs) 
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