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I have the string "1001" and I want the string "9".

The numeric library has the (rather clunky) showIntAtBase, but I haven't been able to find the opposite.

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4 Answers 4

up vote 4 down vote accepted

Here is more or less what you were looking for from Prelude. From Numeric:

(NB: readInt is the "dual" of showIntAtBase, and readDec is the "dual" of showInt. The inconsistent naming is a historical accident.)

import Data.Char  (digitToInt)
import Data.Maybe (listToMaybe)
import Numeric    (readInt)

readBin :: Integral a => String -> Maybe a
readBin = fmap fst . listToMaybe . readInt 2 (`elem` "01") digitToInt
-- readBin "1001" == Just 9
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One can also use digitToInt = subtract (fromEnum '0') . fromEnum instead, which works for all decimal digits (the built-in implementation of digitToInt handles hexadecimal digits as well). –  Rufflewind Jan 16 at 0:27

From PLEAC:

bin2dec :: String -> Integer
bin2dec = foldr (\c s -> s * 2 + c) 0 . reverse . map c2i
    where c2i c = if c == '0' then 0 else 1
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This helps? http://pleac.sourceforge.net/pleac_haskell/numbers.html

from the page:

bin2dec :: String -> Integer
bin2dec = foldr (\c s -> s * 2 + c) 0 . reverse . map c2i
    where c2i c = if c == '0' then 0 else 1
-- bin2dec "0110110" == 54
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1  
Why do they reverse and then foldr instead of foldl? –  alternative May 7 '11 at 14:20
    
@mathepic stackoverflow.com/questions/384797/… –  Erik Kronberg May 7 '11 at 14:30
    
@shintoist I understand the difference. I should have said foldl' –  alternative May 7 '11 at 15:10
1  
@shintoist: Unless I'm missing something, nothing in that link suggests that foldr and reverse are preferable to foldl' here. As a matter of fact, I can only see downsides to using foldr and reverse here. –  sepp2k May 7 '11 at 15:12
    
@sepp2k no, I agree, I don't see a reason either to using foldr and reverse over foldl', but I understood the question as foldr vs regular foldl. –  Erik Kronberg May 7 '11 at 19:41

Because

1001 = 1 * 2^0 + 0 * 2^1 + 0 * 2^2 + 1 * 2^3 = 1 + 0 + 0 + 8 = 9

┌───┬───┬───┬───┐
│1  │0  │0  │1  │
├───┼───┼───┼───┤
│2^3│2^2│2^1│2^0│
└───┴───┴───┴───┘

so obviously:

fromBinary :: String -> Int
fromBinary str = sum $ zipWith toDec (reverse str) [0 .. length str]
  where toDec a b = digitToInt a * (2 ^ b)
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