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I have a file where the first byte contains encoded information. In Matlab I can read the byte bit by bit with var=fread(file,8, 'ubit1') then retrieve each bit by var(1),var(2), etc.

Is there any equivalent bit reader in python?

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6 Answers 6

up vote 10 down vote accepted

Read the bits from a file, low bits first.

def bits(f):
    bytes = (ord(b) for b in f.read())
    for b in bytes:
        for i in xrange(8):
            yield (b >> i) & 1

for b in bits(open('binary-file.bin', 'r')):
    print b
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Tested this (btw the byte is little endian) and ord('\x04') returns 4 which should return the bit string '0000100' using your code i get '000100000' –  David Apr 5 '10 at 16:15
    
oops i meant i get '00100000' with your code –  David Apr 5 '10 at 16:16
    
It gives low bits first (which is natural, since it also gives low bytes first). But if you want the other order, you can change xrange(8) to reversed(xrange(8)). –  user97370 Apr 5 '10 at 17:51
    
Tested against the matlab code reading the file and your code correctly returns the same bit string from the data file. the byte converted to a bit string is '00100000' not sure why the conversion in Daniel G's answer is off since it makes sense. –  David Apr 5 '10 at 17:51

The smallest unit you'll be able to work with is a byte. To work at the bit level you need to use bitwise operators.

x = 3
#Check if the 1st bit is set:
x&1 != 0
#Returns True

#Check if the 2nd bit is set:
x&2 != 0
#Returns True

#Check if the 3rd bit is set:
x&4 != 0
#Returns False
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Do you mind adding more info, since the OP clearly seems like a beginner? –  Bruno Brant Apr 5 '10 at 3:00
    
Sure I'm coming from a matlab background and can't find a 'ubit1' typecode for python. I've used the following: f=open('filename','rb') var=f.read(1) which returns var as the hex value string '\x04' how do i get the binary representation of the string? –  David Apr 5 '10 at 3:19
    
@David: I see, already covered by accepted answer. –  Brian R. Bondy Apr 5 '10 at 11:45

You won't be able to read each bit one by one - you have to read it byte by byte. You can easily extract the bits out, though:

f = open("myfile", 'rb')
# read one byte
byte = f.read(1)
# convert the byte to an integer representation
byte = ord(byte)
# now convert to string of 1s and 0s
byte = bin(byte)[2:].rjust(8, '0')
# now byte contains a string with 0s and 1s
for bit in byte:
    print bit
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Tried it and for the example where byte='\0x04' the code above returns '0b' –  David Apr 5 '10 at 3:38
    
@David OOPS! Let me fix that. Sorry.... (edit) Ok, it's fixed now. Should work. –  Daniel G Apr 5 '10 at 3:42
    
Thanks your code now gives byte=100 which is the correct base 2 representation of ord('\0x04')=4 but shouldn't the byte read be '00000100' –  David Apr 5 '10 at 3:52
    
Sure, I'll add that really quickly (the problem is that it truncates leading zeros). –  Daniel G Apr 5 '10 at 3:54
    
I realize I can pad the bits to get the representation once i have the binary value but it just seems odd that I can't read the bits directly. –  David Apr 5 '10 at 3:54

The Python wiki explains how.

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Read it but couldn't figure out how to do this. I'm coming from a matlab background and can't find a 'ubit1' typecode for python. I've used the following: f=open('filename','rb') var=f.read(1) which returns var as the hex value string '\x04' how do i get the binary representation of the string? –  David Apr 5 '10 at 3:23
    
struct or int() can convert it into a number for you. Then use the various methods given in the wiki. –  Ignacio Vazquez-Abrams Apr 5 '10 at 3:25
    
thanks for your help –  David Apr 5 '10 at 3:53
    
i believe the bitarray module would do what i need but i get compile errors trying to install it on all my systems –  David Apr 5 '10 at 16:47
1  
Just discovered the bitstring module which does the trick and more. code.google.com/p/python-bitstring –  David Apr 5 '10 at 21:09

There are two possible ways to return the i-th bit of a byte. The "first bit" could refer to the high-order bit or it could refer to the lower order bit.

Here is a function that takes a string and index as parameters and returns the value of the bit at that location. As written, it treats the low-order bit as the first bit. If you want the high order bit first, just uncomment the indicated line.

def bit_from_string(string, index):
       i, j = divmod(index, 8)

       # Uncomment this if you want the high-order bit first
       # j = 8 - j

       if ord(string[i]) & (1 << j):
              return 1
       else:
              return 0

The indexing starts at 0. If you want the indexing to start at 1, you can adjust index in the function before calling divmod.

Example usage:

>>> for i in range(8):
>>>       print i, bit_from_string('\x04', i)
0 0
1 0
2 1
3 0
4 0
5 0
6 0
7 0

Now, for how it works:

A string is composed of 8-bit bytes, so first we use divmod() to break the index into to parts:

  • i: the index of the correct byte within the string
  • j: the index of the correct bit within that byte

We use the ord() function to convert the character at string[i] into an integer type. Then, (1 << j) computes the value of the j-th bit by left-shifting 1 by j. Finally, we use bitwise-and to test if that bit is set. If so return 1, otherwise return 0.

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Got it! thanks for the detail in your comment I looked at the bit shift operators but couldn't see how it worked for this. Your answer helps clarify the bitwise operators and the approach. Thanks –  David Apr 5 '10 at 4:02
    
Daniel thanks for the general solution above. –  David Apr 5 '10 at 18:10

This is pretty fast I would think:

import itertools
data = range(10)
format = "{:0>8b}".format
newdata = (False if n == '0' else True for n in itertools.chain.from_iterable(map(format, data)))
print(newdata) # prints tons of True and False
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