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What's an idiomatic way of treating a bytestring nibblewise and pretty printing its hexadecimal (0-F) representation?

putStrLn . show . B.unpack
-- [1,126]

Which, upon further work

putStrLn . show . map (\x -> N.showIntAtBase 16 (DC.intToDigit) x "") . B.unpack
["1","7e"]

But what I really want is

["1","7","e"]

Or better yet

['1','7','e']

I could munge up ["1","7e"] but that string manipulation whereas I'd rather do numeric manipulation. Do I need to drop down to shifting and masking numeric values?

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3 Answers 3

up vote 5 down vote accepted

I'd like to elaborate on max taldykin's answer (that I have upvoted), which I think is over-complicated. There is no need for NoMonomorphismRestriction, printf or Data.List.

Here is my version:

import qualified Data.ByteString as B
import Numeric (showHex)

prettyPrint :: B.ByteString -> String
prettyPrint = concat . map (flip showHex "") . B.unpack

main :: IO ()
main = putStrLn . prettyPrint . B.pack $ [102, 117, 110]
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1  
+1, just want to mention that concat . map == concatMap –  max taldykin Dec 7 '11 at 14:23
4  
You'll mess up the result here since showHex will not pad to 2. –  Peaker Jun 12 '12 at 14:23

Somethig like this:

{-# LANGUAGE NoMonomorphismRestriction #-}

import qualified Data.ByteString as B
import Text.Printf
import Data.List
import Numeric

hex = foldr showHex "" . B.unpack
list = printf "[%s]" . concat . intersperse "," . map show

Test:

> let x = B.pack [102,117,110]
> list . hex $ x
"['6','6','7','5','6','e']"

Upd Oh, there is a stupid memory leak: of course you should replace foldr with foldl' (because laziness is not required here):

hex = foldl' (flip showHex) "" . B.unpack
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You have ["1","7e"] :: [String] concat ["1", "7e"] is "17e" :: String which is equal to [Char] and equal to ['1','7','e'] :: [Char].

Than you may split that String into pieces:

> Data.List.Split.splitEvery 1 . concat $ ["1", "7e"]
["1","7","e"]
it :: [[Char]]
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5  
Data.List.Split.splitEvery 1 == map (:[]) –  max taldykin Dec 7 '11 at 9:24

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