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So, I have an integer with a value 7. (0b00000111) And I would like to replace it with a function to 13. (0b00001101) So what is the best algorithm to replace bytes in an integer? For example:

set_bits(somevalue, 3, 1) # What makes the 3rd bit to 1 in somevalue?
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1  
Just like in C. wiki.python.org/moin/BitwiseOperators –  Kos Aug 29 '12 at 8:33
2  
Be careful with your prefixes for literal integers... 0x is the prefix for hexadecimal numbers. The prefix you want is 0b. –  Joachim Pileborg Aug 29 '12 at 8:44

3 Answers 3

You just need:

def set_bit(v, index, x):
  """Set the index:th bit of v to x, and return the new value."""
  mask = 1 << index
  v &= ~mask
  if x:
    v |= mask
  return v

>>> set_bit(7, 3, 1)
15
>>> set_bit(set_bit(7, 1, 0), 3, 1)
13

Note that bit numbers (index) are from 0, with 0 being the least significant bit.

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You can use bitwise opertions. http://wiki.python.org/moin/BitwiseOperators

if you want to set a given bit to 1 you can use bitwise 'or' with 1 on given position:

0b00000111 | 0b00001000 = 0b00001111

to set a given bit to 0 you can use bitwise 'and'

0b00001111 & 0b11111011 = 0b00001101

Note that 0b prefix is for binary numbers and 0x is for hexadecimal.

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Hi, instead of posting a new answer and deleting the old one, consider just editing your old answer. :-) –  sloth Aug 29 '12 at 8:52
    
That was my intention but I had it opened in two tabs and sent from the wrong one :) –  wmiel Aug 29 '12 at 8:55
    
But I would like to set bytes by index. –  Váradi Norbert Aug 29 '12 at 8:56
    
Then (as @unwind showed you) you can take 0b1 (=1) and shift it left to the correct position (1 << index in his code). Then you can use |, & or calculate inversion, which changes all zeros to ones. –  wmiel Aug 29 '12 at 8:59
    
Thanks, but I have found the solution already. –  Váradi Norbert Aug 30 '12 at 8:44

These work for integers of any size, even greater than 32 bit:

def set_bit(value, bit):
    return value | (1<<bit)

def clear_bit(value, bit):
    return value & ~(1<<bit)

If you like things short, you can just use:

>>> val = 0b111
>>> val |= (1<<3)
>>> '{:b}'.format(val)
'1111'
>>> val &=~ (1<<1)
'1101'
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