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I am writing a Haskell program where I want to write to an already existing file. The program needs to generate each string before appending it to the file. So rather than do the entire calculation first and then append to the file, I would like the program to append each line as it is calculated.

Here is the code I attempted:

-- line in my do-notation of interet
-- filename = valid filename
-- records = list of record data types
appendFile fileName (map recordToString records)

recordToString :: Record -> String
recordToString r = club r ++ "," ++  mapName r ++ "," ++ nearestTown r ++ "," ++ terrain r ++ "," ++ mapGrade r ++ "," ++ gridRefOfSWCorner r ++ "," ++ gridRefOfNECorner r ++ "," ++ expectedCompletionDate r ++ "," ++ sizeSqKm r ++ ",\n"

I am interested in solving this problem with lazy evaluation

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Isn't that already lazy? I don't see anything that would force the result of the recordToString calls ahead of time. –  C. A. McCann Dec 22 '11 at 15:47
3  
Side note: you should take a look at intercalate function. –  Matvey Aksenov Dec 22 '11 at 16:10

2 Answers 2

up vote 4 down vote accepted

As C. A. McCann said, this should already be lazy; however, appendFile will most likely open the file in block-buffered mode by default, which means that lines won't be flushed as they are created; instead, data will be written to the file a few thousand bytes at a time. To solve this problem, just roll your own function:

import System.IO

appendFileLines :: FilePath -> String -> IO ()
appendFileLines fileName text =
  withFile fileName AppendMode $ \h -> do
    hSetBuffering h LineBuffering
    hPutStr h text

Then you can use appendFileLines instead of appendFile, and the file will be written to one record at a time.

What you might be thinking of, in terms of performing IO operations with lazy results, is called "lazy IO"; it's generally frowned upon, but it's not required to achieve the effect you want here. (If you know how readFile or getContents operate, for instance, that's lazy IO.)

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This in and of itself is not lazy IO. Output functions like hPutStr and appendFile block until they are finished. However, it is lazy IO if input is being read lazily (e.g. with getContents or readFile). –  Joey Adams Dec 22 '11 at 16:01
    
In a sense, I would say it is lazy IO: the flow of IO operations and their effect on the system is being controlled by evaluation order. However, I agree it's substantially different to standard lazy IO, and my original mention of it was based on a slight misreading of the question. I'll try and clarify my answer. –  ehird Dec 22 '11 at 16:03

Haskell is lazy as a consumer, but not as a producer. appendFile is lazy on input, meaning it doesn't wait until all of your content has been calculated before producing any output. However, it is "strict" on output, in that appendFile will not yield the flow of execution until the entire operation has completed.

Note that if appendFile is using buffered or line output, it will hold off on writing anything until it has computed a chunk of output. If buffering is disabled, it has to make a system call for every character you append, which is very slow.

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