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Objective: Convert binary to string

Example: 0111010001100101011100110111010001100011011011110110010001100101 -> testCode (without space)

I use a dictionary and my function, i search a better way and more efficient

from textwrap import wrap

DICO = {'\x00': '00', '\x04': '0100', '\x08': '01000', '\x0c': '01100', 
'\x10': '010000', '\x14': '010100', '\x18': '011000', '\x1c': '011100',
' ': '0100000', '$': '0100100', '(': '0101000', ',': '0101100', '0': '0110000',
'4': '0110100', '8': '0111000', '<': '0111100', '@': '01000000',
'D': '01000100', 'H': '01001000', 'L': '01001100', 'P': '01010000',
'T': '01010100', 'X': '01011000', '\\': '01011100', '`': '01100000',
'd': '01100100', 'h': '01101000', 'l': '01101100', 'p': '01110000',
't': '01110100', 'x': '01111000', '|': '01111100', '\x03': '011',
'\x07': '0111', '\x0b': '01011', '\x0f': '01111', '\x13': '010011',
'\x17': '010111', '\x1b': '011011', '\x1f': '011111', '#': '0100011',
"'": '0100111', '+': '0101011', '/': '0101111', '3': '0110011', '7': '0110111',
';': '0111011', '?': '0111111', 'C': '01000011', 'G': '01000111',
'K': '01001011', 'O': '01001111', 'S': '01010011', 'W': '01010111',
'[': '01011011', '_': '01011111', 'c': '01100011', 'g': '01100111',
'k': '01101011', 'o': '01101111', 's': '01110011', 'w': '01110111',
'{': '01111011', '\x7f': '01111111', '\x02': '010', '\x06': '0110',
'\n': '01010', '\x0e': '01110', '\x12': '010010', '\x16': '010110',
'\x1a': '011010', '\x1e': '011110', '"': '0100010', '&': '0100110',
'*': '0101010', '.': '0101110', '2': '0110010', '6': '0110110', ':': '0111010',
'>': '0111110', 'B': '01000010', 'F': '01000110', 'J': '01001010',
'N': '01001110', 'R': '01010010', 'V': '01010110', 'Z': '01011010',
'^': '01011110', 'b': '01100010', 'f': '01100110', 'j': '01101010',
'n': '01101110', 'r': '01110010', 'v': '01110110', 'z': '01111010',
'~': '01111110', '\x01': '01', '\x05': '0101', '\t': '01001', '\r': '01101',
'\x11': '010001', '\x15': '010101', '\x19': '011001', '\x1d': '011101',
'!': '0100001', '%': '0100101', ')': '0101001', '-': '0101101',
'1': '0110001', '5': '0110101', '9': '0111001', '=': '0111101',
'A': '01000001', 'E': '01000101', 'I': '01001001', 'M': '01001101',
'Q': '01010001', 'U': '01010101', 'Y': '01011001', ']': '01011101',
'a': '01100001', 'e': '01100101', 'i': '01101001', 'm': '01101101',
'q': '01110001', 'u': '01110101', 'y': '01111001', '}': '01111101'}

def decrypt(binary):
    """Function to convert binary into string"""
    binary = wrap(binary, 8)
    ch = ''
    for b in binary:
        for i, j in DICO.items():
            if j == b:
                ch += i
    return ch

thank by advance,

share|improve this question
1  
What exactly do you want to improve on? Space or time complexity? What algorithm do you use currently, do you just split the string? –  RedX Jan 2 '12 at 14:43
6  
How do you decide if the sequence 010001 is 0100 (= \x04) followed by the start of a 01 sequence, or is the start of a hash mark character, 0100011? If all characters have the same number of bits (presumable 7 or 8 bits), why isn't the code for \x00 written as 00000000 in your example, but 00? The example data leaves a lot of room for interpretation ... –  hochl Jan 2 '12 at 14:43
    
@Redx, thank for your response, i search a better time of execution, else i keep my code –  user1125315 Jan 2 '12 at 14:45
    
a strange thing about this code is that it will never match the short items such as '\x00': '00' –  Xavier Combelle Jan 2 '12 at 16:39

3 Answers 3

up vote 2 down vote accepted

did you try

def decrypt(binary):
    """Function to convert binary into string"""
    return ''.join(( chr(int(p, 2)) for p in grouper(8,binary,'') ))

where grouper is taken from here http://docs.python.org/library/itertools.html#recipes

or

def decrypt2(binary):
    """Function to convert binary into string"""
    return ''.join(( DICO_INVERTED[p] for p in grouper(8,binary,'') ))

that avoids to create temporary list

EDIT as I was choisen to be the "right" answer I have to confess that I used the other answers. The point is here not to use generator list but generator expression and iterators

share|improve this answer
    
Very good!!!! exceptionnel, thanks –  user1125315 Jan 2 '12 at 17:04
    
which one did you test the one with dictionary or the other one? –  Xavier Combelle Jan 2 '12 at 17:09
    
an average of 14 seconds, your proposal gives 0,006 seconds, super score, thanks a lot –  user1125315 Jan 2 '12 at 17:34
''.join([ chr(int(p, 2)) for p in wrap(binstr, 8) ])

What this does: wrap first splits your string up into chunks of 8. Then, I iterate through each one, and convert it to an integer (base 2). Each of those converted integer now get covered to a character with chr. Finally I wrap it all up with a ''.join to smash it all together.

A bit more of a breakdown of each step of the chr(int(p, 2)):

>>> int('01101010', 2)
106
>>> chr(106)
'j'

To make it fit into your pattern above:

def decrypt(binary):
    """Function to convert binary into string"""
    binary = wrap(binary, 8)
    ch = ''
    for b in binary:
        ch += chr(int(b, 2))
    return ch

or

def decrypt(binary):
    """Function to convert binary into string"""
    return ''.join([ chr(int(p, 2)) for p in wrap(binary, 8) ])

This is definitely faster since it is just doing the math in place, not iterating through the dictionary over and over. Plus, it is more readable.

share|improve this answer
    
for the time, it's equivalent! –  user1125315 Jan 2 '12 at 15:05
    
How big is your string? It could be that the wrap is taking the majority of the time and there is nothing much you can do about that. Either way, this is still way more readable than that monstrosity of a dictionary. –  Donald Miner Jan 2 '12 at 15:14
    
I dont' know for wrap but dictionary for length of 5000 --> 1.94 second and your code --> 3.45 seconds –  user1125315 Jan 2 '12 at 15:21
    
@orangeoctopus Maybe it's worthwhile to replace wrap(binary, 8) with an iterable equivalent (''.join(i) for i in grouper(8,binary,'')) using grouper from here? Or even the whole string with ''.join([ chr(int(''.join(p), 2)) for p in grouper(8,s)]). –  ovgolovin Jan 2 '12 at 15:36
    
I was thinking that as well. Maybe the OP wants to try it. –  Donald Miner Jan 2 '12 at 15:38

If execution speed it the most important for you, why not invert the roles of keys and values in your dict?! (If you also need the current dict, you could created an inverted version like this {v:k for k, v in DICO.items()})

Now, you find directly the searched translation by key instead of looping through the whole dict.

Your new function would look like this:

def decrypt2(binary):
    """Function to convert binary into string"""
    binary = wrap(binary, 8)
    ch = ''
    for b in binary:
        if b in DICO_INVERTED:
            ch += DICO_INVERTED[b]
    return ch

Depending on the size of your binary string, you could gain some time by changing the way you construct your output-string (see Efficient String Concatenation in Python or performance tips - string concatenation). Using join seems promising. I would give it a try: ''.join(DICO_INVERTED.get(b, '') for b in binary)

share|improve this answer
1  
I also suggest creating the dict with code rather than typing it out. –  Donald Miner Jan 2 '12 at 15:32
    
@orangeoctopus, i don't typing the dict ;) –  user1125315 Jan 2 '12 at 15:48
    
@gecco, it's more efficient, thanks ! –  user1125315 Jan 2 '12 at 16:00
    
@user1125315 Did you try join? I'm interested in the performance gain you get (or not get)... –  gecco Jan 2 '12 at 16:04
    
@gecco, it's equivalent –  user1125315 Jan 2 '12 at 16:31

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