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I have to parse a file, and indeed a have to read it first, here is my program :

import qualified Data.ByteString.Char8 as B
import System.Environment    

main = do
 args      <- getArgs
 let path  =  args !! 0
 content   <- B.readFile path
 let lines = B.lines content
 foobar lines 

 foobar :: [B.ByteString] -> IO()
 foobar _ = return ()

but, after the compilation

> ghc --make -O2 tmp.hs 

the execution goes through the following error when called with a 7Gigabyte file.

> ./tmp  big_big_file.dat
> tmp: {handle: big_big_file.dat}: hGet: illegal ByteString size (-1501792951): illegal operation

thanks for any reply!

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What platform are you on? –  Daniel Fischer Apr 4 '12 at 13:35
    
@DanielFischer what do you call platform ? if It is the Operating system, then I'm using Linux ubuntu 10.4. Thanks –  Fopa Léon Constantin Apr 4 '12 at 13:37
    
32 bit or 64? In general a 32bit OS is going to have problems with files that big. –  Tyler Eaves Apr 4 '12 at 13:39
    
32 bits or 64 bits? –  Daniel Fischer Apr 4 '12 at 13:39
    
@DanielFischer, 32 bits. –  Fopa Léon Constantin Apr 4 '12 at 13:42
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2 Answers

up vote 5 down vote accepted

Strict ByteStrings only support up to 2 GiB of memory. You need to use lazy ByteStrings for it to work.

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Whaou ! Thank @dflemstr It work, just by changing Data.ByteString.Char8 to Data.Bytestring.Lazy.Char8 as you said. –  Fopa Léon Constantin Apr 4 '12 at 13:49
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The length of ByteStrings are Int. If Int is 32 bits, a 7GB file will exceed the range of Int and the buffer request will be for a wrong size and can easily request a negative size.

The code for readFile converts the file size to Int for the buffer request

readFile :: FilePath -> IO ByteString
readFile f = bracket (openBinaryFile f ReadMode) hClose
    (\h -> hFileSize h >>= hGet h . fromIntegral)

and if that overflows, an "illegal ByteString size" error or a segmentation fault are the most likely outcomes.

If at all possible, use lazy ByteStrings to handle files that big. In your case, you pretty much have to make it possible, since with 32 bit Ints, a 7GB ByteString is impossible to create.

If you need the lines to be strict ByteStrings for the processing, and no line is exceedingly long, you can go through lazy ByteStrings to achieve that

import qualified Data.ByteString.Lazy.Char8 as LC
import qualified Data.ByteString.Char8 as C

main = do
    ...
    content <- LC.readFile path
    let llns = LC.lines content
        slns = map (C.concat . LC.toChunks) llns
    foobar slns

but if you can modify your processing to deal with lazy ByteStrings, that will probably be better overall.

share|improve this answer
    
Thanks @DanielFischer! It is clear to me now, but what can I do to parse my file ? –  Fopa Léon Constantin Apr 4 '12 at 13:45
    
Since you split it into lines, if you are sure that no line is longer than 2GB, you can read the file as a lazy ByteString, split that into lines and if necessary, make a strict ByteString from each line. Or you can read the file line-by-line. Needs more info to determine the best approach (but probably going through lazy it is). –  Daniel Fischer Apr 4 '12 at 13:48
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