30

What does the "b" stand for in the output of bin(30): "0b11110"? Is there any way I can get rid of this "b"? How can I get the output of bin() to always return a standard 8 digit output?

49

Using zfill():

Return the numeric string left filled with zeros in a string of length width. A sign prefix is handled correctly. The original string is returned if width is less than len(s).

>>> bin(30)[2:].zfill(8)
'00011110'
>>>
  • 4
    What about negative numbers? – Gui13 Jul 25 '13 at 7:14
  • 1
    Surprisingly this appears to be the fastest, but ackkkk. – user3467349 Jan 15 '15 at 22:07
  • @loannis Your edit caused problems because now the wrong result was provided for negative values, -30 != 30 whereas your edit results in bin(30).lstrip('-0b').zfill(8) == bin(-30).lstrip('-0b').zfill(8) – Nick A Jan 17 '18 at 12:50
29

0b is like 0x - it indicates the number is formatted in binary (0x indicates the number is in hex).

See How do you express binary literals in python?

See http://docs.python.org/dev/whatsnew/2.6.html#pep-3127-integer-literal-support-and-syntax

To strip off the 0b it's easiest to use string slicing: bin(30)[2:]

And similarly for format to 8 characters wide:

('00000000'+bin(30)[2:])[-8:]

Alternatively you can use the string formatter (in 2.6+) to do it all in one step:

"{0:08b}".format(30)
  • 6
    +1 for string.format answer, beat me to it – SingleNegationElimination Sep 8 '09 at 18:30
  • For this case I prefer the format built in function instead of the format method: format(30, '08b') as opposed to "{0:08b}".format(30) – Manuel Ceron Sep 8 '09 at 22:23
13

Take advantage of the famous format() function with the lesser known second argument and chain it with zfill()

'b' - Binary 'x' - Hex 'o' - Octal 'd' - Decimal

>>> print format(30, 'b')
11110
>>> print format(30, 'b').zfill(8)
00011110

Should do. Here 'b' stands for binary just like 'x', 'o' & 'd' for hexadecimal, octal and decimal respectively.

0

The current answers don't consider negative values (thanks @Gui13 for the comment!) in which case you get -0b... instead of just 0b.... You can handle both with a simple if-else where the value is checked whether it's less than zero or not

>>> def printBit(x):
    if x < 0:
        return '-' + bin(x)[3:].zfill(8) # replace 
    else:
        return bin(x)[2:].zfill(8)

>>> print(printBit(30))
'00011110'
>>> print(printBit(-30))
'-00011110'

or by using replace()

>>> print(bin(30)).replace('0b', '').zfill(8)

The problem with the call above is that one of the bits gets "lost" to the - sign due to the same value being used for the zfill(). You can handle this too with a simple ternary check:

>>> x = 30
>>> print(bin(x)).replace('0b', '').zfill(9 if x < 0 else 8)
'00011110'

>>> x = -30
>>> print(bin(x)).replace('0b', '').zfill(9 if x < 0 else 8)
'-00011110'

Last but not least you can also make the zfill() to automatically adapt the number of 0s to match a byte (8 bits) or a n number of bit quadruplets (4 bits):

>>> def pb(x):
    bres = bin(x).replace('0b', '').replace('-', '') # If no minus, second replace doesn't do anything
    lres = len(bres) # We need the length to see how many 0s we need to add to get a quadruplets
    # We adapt the number of added 0s to get full bit quadruplets.
    # The '-' doesn't count since we want to handle it separately from the bit string
    bres = bres = ('-' if x < 0 else '') + bres.zfill(lres + (4-lres%4))

    return bres

>>> print(pb(7))
'0111'
>>> print(pb(-7))
'-0111'
>>> print(pb(30))
'00011110'
>>> print(pb(-30))
'-00011110'

Here is the final version with adaptable filling of 0s and additional split with space every n characters (where the n is determined by filling factor):

>>> def pb(x, fillingBits=4, splitWithSpace=True):
    # If no minus, second replace doesn't do anything
    bres = bin(x).replace('0b', '').replace('-', '')
    lres = len(bres)

    bres = bres.zfill(lres + (fillingBits - (lres % fillingBits)))
    lres = len(bres)

    # We can also add a blank after every fillingBits character
    if splitWithSpace:
        bres = ' '.join([bres[i:(i + fillingBits)] for i in range(0, lres, fillingBits)])

    bres = ('-' if x < 0 else '') + bres
    # We remove any trailing/leading blanks (occurring whenever splitWithSpace enabled)
    return bres.strip()

>>> print(pb(7))
'0111'
>>> print(pb(-7))
'-0111'
>>> print(pb(30))
'0001 1110'
>>> print(pb(-30))
'-0001 1110'
  • Read before acting "smart". The OP clearly asks about padding plus the fact that bin() (at least at the time I wrote this answer) does NOT handle two complement and a negative number is returned as - followed by the converted binary. The accepted answer even removes the -, which makes results in a negative being the same as a positive number. – rbaleksandar Dec 29 '17 at 11:34
0

python 2.7

print "{0:b}".format(30)

python 3.x

print ('{0:b}'.format(30))

  • Both of the snippets will work on python 2.x and both will result in a syntax error on python 3.x, since print is a function in 3.x. Did you perhaps mean to make the second snippet print("{0:b}".format(30))? – kristaps Jun 29 '17 at 20:28
  • you're right , i have forget that print in python 3.x is with (), i will it new edit – iratxe Jul 4 '17 at 9:32
0

You can use format in Python 2 or Python 3:

>> print( format(15, '08b') )
00001111

[]'s

0

You can use this too :

 bi=bin(n)[2:]

This will remove the '0b' portion of the returned value and you can use the output anywhere .

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