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I need to modify a file in-place. So I planned to read file contents, process them, then write the output to the same file:

main = do
  input <- readFile "file.txt"
  let output = (map toUpper input) 
  -- putStrLn $ show $ length output
  writeFile "file.txt" output

But the problem is, it works as expected only if I uncomment the 4th line - where I just output number of characters to console. If I don't uncomment it, I get

openFile: resource busy (file is locked)

Is there a way to force reading of that file?

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1  
A standard expedient is to use the length, as your commented line did; thus you can write length output seq` writeFile "file.txt" output` See for example the strict package –  applicative Oct 27 '12 at 5:44
    
@applicative - Thanks, your suggestion works greatly! –  Rogach Oct 27 '12 at 5:51

1 Answer 1

up vote 5 down vote accepted

The simplest thing might be strict ByteString IO:

import qualified Data.ByteString.Char8 as B

main = do
  input <- B.readFile "file.txt"
  B.writeFile "file.txt" $ B.map toUpper input

As you can see, it's the same code -- but with some functions replaced with ByteString versions.

Lazy IO

The problem that you're running into is that some of Haskell's IO functions use "Lazy IO", which has surprising semantics. In almost every program I would avoid lazy IO.

These days, people are looking for replacements to Lazy IO like Conduit and the like, and lazy IO is seen as an ugly hack which unfortunately is stuck in the standard library.

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Well, but what if I need to do some processing on those strings, that I can't do on ByteString? –  Rogach Oct 27 '12 at 5:36
    
@Rogach: You can do anything with a ByteString except for the bizarre stuff like infinite strings. –  Dietrich Epp Oct 27 '12 at 5:42
    
I suspect so, but since these I my first steps using Haskell, I have some trouble. At the very least, I have several functions that work with String, and they don't seem to like ByteString. –  Rogach Oct 27 '12 at 5:44
    
Just call Data.ByteString.UTF8.fromString and toString. –  Dietrich Epp Oct 27 '12 at 5:48
2  
Rogach, how about input <- fmap Data.Text.unpack $ Data.Text.IO.readFile "file.txt" Here input is a lazily generated string, but it is coming from a completely evaluated Text value, so the rest of the block can continue as above. This is maybe slightly more humane than using bytestring... –  applicative Oct 27 '12 at 5:50

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