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I'm trying to take a binary number in string form and flip the 1's and 0's, that is, change all of the 1's in the string to 0's, and all of the 0's to 1's. I'm new to Python and have been racking my brain for several hours now trying to figure it out.

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You've already marked an answer to this, but you may want to look at struct.pack and unpack –  Daenyth Oct 13 '10 at 20:37
    
wrack (v) to destroy; rack (v) to torture –  Andrew Kozak Jan 4 '12 at 16:22

7 Answers 7

up vote 2 down vote accepted

Amber's answer, while superior, possibly isn't the most clear, so here's a super basic iterative example:

b_string = "1100101"
ib_string = ""

for bit in b_string:
  if bit == "1":
    ib_string += "0"
  else:
    ib_string += "1"

print ib_string

This can be done in much better ways...replacements, comprehensions, but this is an example.

I would learn from the other answers in this question once you understand the basis of this one. This method is slow and painful. For the best performance, as Muhammad Alkarouri pointed out, the string.translate/maketrans combo is the way to go. Right behind it is the comprehension. My code is the slowest by a significant margin.

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1  
I'd like to avoid encouraging people to use += for strings, as opposed to join() - not only is join() more Pythonic, but it's also the more efficient method for general usage. It's a good habit to instill early. –  Amber Oct 13 '10 at 3:13
    
After a while working with Python one tends to find list comprehensions as clear or clearer than for loops. –  Robert Rossney Oct 13 '10 at 16:33
    
I personally prefer the comprehension, it makes more sense to me. –  Xorlev Oct 13 '10 at 16:36
2  
Generally, don't speculate in timing. In this case, timeit ''.join('1' if x == '0' else '0' for x in b_string) gives 5.3 microseconds on my machine, while timeit b_string.translate(maketrans("10", "01")) gives 979 nanoseconds. –  Muhammad Alkarouri Oct 13 '10 at 20:35
>>> ''.join('1' if x == '0' else '0' for x in '1000110')
'0111001'

The a for b in c pattern is a generator expression, which produces a series of items based on a different series. In this case, the original series is the characters (since you can iterate over strings in Python, which gives you the characters that make up that string), and the new series is a set of characters with the 0's and 1's flipped.

'1' if x == '0' else '0' is pretty straightforward - it gives us whichever of 1 or 0 isn't x. We do this for each such x in the original set of characters, and then join() them all together (with an empty string '', a.k.a. nothing, in between each item), thus giving us a final string which is all of the opposite characters from the original, combined.

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1  
Clever. I like the comprehension. +1 –  Xorlev Oct 13 '10 at 3:08
1  
To make it too clever by half, you may elect to replace the if expression with '01'[x=='0']. I still prefer your answer, but thought I would mention it. –  Muhammad Alkarouri Oct 13 '10 at 20:29

Another way to do it is with string.translate() and string.maketrans()

from string import maketrans
bitString = "10101010100011010"
flippedString = bitString.translate(maketrans("10","01"))
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You might want to link to documentation slightly more recent than Python 2.3 - perhaps docs.python.org/library/string.html#string.translate –  Amber Oct 13 '10 at 3:21
    
    
Didn't even notice I was linking to such old documentation, thanks. –  birryree Oct 13 '10 at 3:24
1  
To be perfectly correct, you're (correctly) using this method: docs.python.org/library/stdtypes.html#str.translate not the deprecated string function Amber linked to. –  Jon-Eric Oct 13 '10 at 3:29
    
@Jon-Eric - quite correct. –  Amber Oct 13 '10 at 5:12

Using a dictionary should be very straightforward.

>>> flip={"1":"0","0":"1"}
>>> s="100011"
>>> import sys
>>> for i in s:
...   sys.stdout.write(flip[i])
...
011100
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http://docs.python.org/library/string.html#string.replace

Replace all the 1's with 2's, then replace the 0's with 1's, finally replacing the 2's with 0's.

"10011".replace("1", "2").replace("0", "1").replace("2", "0")
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If speed is important:

And you already have the decimal integer representing the binary string, then bit manipulation is slightly faster.

bin((i ^ (2 ** (i.bit_length()+1) - 1)))[3:]

If you are only given the binary string, then use the str.replace method given by @Amy:

s.replace('1', '2').replace('0', '1').replace('2', '0')

I tested the various methods proposed here, and the bit manipulation method, with this gist:

Test Results

i = 129831201;
s = '111101111010001000100100001';

Bit manipulation given decimal int:

bin((i ^ (2 ** (i.bit_length()+1) - 1)))[3:]

1000000 loops, best of 3: 0.647 usec per loop

Bit manipulation given binary string:

bin((int(s, 2) ^ (2**(len(s)+1) - 1)))[3:]

1000000 loops, best of 3: 0.922 usec per loop

Sequential str.replace:

s.replace('1', '2').replace('0', '1').replace('2', '0')

1000000 loops, best of 3: 0.619 usec per loop

str.maketrans:

s.translate(str.maketrans('10', '01'))

1000000 loops, best of 3: 1.16 usec per loop

''.join with dictionary mapping:

flip = {'1':'0', '0':'1'}; ''.join(flip[b] for b in s)

100000 loops, best of 3: 2.78 usec per loop

''.join with conditional:

''.join('1' if b == '0' else '0' for b in s)

100000 loops, best of 3: 2.82 usec per loop
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Along the lines of Amber, but using ASCII arithmetic (for no particular reason). This obviously isn't meant for production code.

''.join(chr(97 - ord(c)) for c in my_bit_string)

48 and 49 are the ASCII (and Unicode) values for '0' and '1' respectively. ord gives you the numeric value for a character, while chr does the reverse.

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