275

In order to convert an integer to a binary, I have used this code:

>>> bin(6)
'0b110'

and when to erase the '0b', I use this:

>>> bin(6)[2:]
'110'

What can I do if I want to show 6 as 00000110 instead of 110?

1

17 Answers 17

489
>>> '{0:08b}'.format(6)
'00000110'

Just to explain the parts of the formatting string:

  • {} places a variable into a string
  • 0 takes the variable at argument position 0
  • : adds formatting options for this variable (otherwise it would represent decimal 6)
  • 08 formats the number to eight digits zero-padded on the left
  • b converts the number to its binary representation

If you're using a version of Python 3.6 or above, you can also use f-strings:

>>> f'{6:08b}'
'00000110'
5
  • 13
    The first 0 means the 0th argument to format. After the colon is the formatting, the second 0 means zero fill to 8 spaces and b for binary
    – jamylak
    Commented May 2, 2012 at 9:39
  • 1
    @Aif: Also, have a look at the standard documentation docs.python.org/library/…
    – pepr
    Commented May 2, 2012 at 10:27
  • 28
    This can be simplified with the format() function: format(6, '08b'); the function takes a value (what the {..} slot applies to) and a formatting specification (whatever you would put after the : in the formatting string). Commented Sep 11, 2013 at 17:33
  • 7
    '{0:08b}'.format(-6) -> '-0000110'. what if you don't want a sign? struct? -6%256?
    – n611x007
    Commented Jun 23, 2014 at 11:17
  • 1
    @AK47 Yes, since Pythoon 2.6 you can write int constants in binary form with 0b or 0B prefix: 0b00000110 Commented May 11, 2017 at 23:13
130

Just another idea:

>>> bin(6)[2:].zfill(8)
'00000110'

Shorter way via string interpolation (Python 3.6+):

>>> f'{6:08b}'
'00000110'
3
  • 8
    Note that this solution is faster than the accepted one. Which solution is more clear (or, dare I say it, Pythonic) is probably a matter of personal taste.
    – Air
    Commented Feb 21, 2014 at 18:04
  • I'm still learning the essence of pythonicity, but this is clearly much more versatile. I was initially excited to see the accepted solution with its elegant explanation, but alarmed that the object being called on to do the methods was written as a single string with all specifications built in, eliminating the involvement of variables in such things as the desired length of the bitstring. This solves that completely, and is so intuitive (at least for Python 2) that there's no need to explain each character!
    – Post169
    Commented Mar 20, 2018 at 16:27
  • Does not work for negative integer bin(-6)[2:].zfill(8) reads as '0000b110'
    – jlandercy
    Commented Dec 14, 2019 at 7:19
27

Just use the format function

format(6, "08b")

The general form is

format(<the_integer>, "<0><width_of_string><format_specifier>")
1
  • 2
    Yes, I like this one, it's simple and one of the fastest :-) 1000000 loops, best of 3: 556 ns per loop
    – SebMa
    Commented Jul 12, 2017 at 8:45
26

A bit twiddling method...

>>> bin8 = lambda x : ''.join(reversed( [str((x >> i) & 1) for i in range(8)] ) )
>>> bin8(6)
'00000110'
>>> bin8(-3)
'11111101'
4
  • 1
    Nice method. But I couldn't understand what this part of your code is doing: str((x >> i) & 1)
    – Gregory
    Commented Sep 24, 2016 at 10:17
  • 2
    @Gregory: it shifts the bits in x to the right and ANDs it with 1, effectively extracting one bit (0 or 1) at a time.
    – Jongware
    Commented Feb 18, 2018 at 12:18
  • Very nice! As an observation, reversed could be removed by using range(7,-1,-1); albeit more ‘pure’, but perhaps less readable/intuitive.
    – s3dev
    Commented Sep 22, 2021 at 21:38
  • This is the only answer that supports negative numbers (which, since Python stores them in 2's complement, are output in 2's complement format with this method).
    – Mew
    Commented Feb 15, 2023 at 10:44
12

numpy.binary_repr(num, width=None) has a magic width argument

Relevant examples from the documentation linked above:

>>> np.binary_repr(3, width=4)
'0011'

The two’s complement is returned when the input number is negative and width is specified:

>>> np.binary_repr(-3, width=5)
'11101'
11

eumiro's answer is better, however I'm just posting this for variety:

>>> "%08d" % int(bin(6)[2:])
00000110
0
8

The best way is to specify the format.

format(a, 'b')

returns the binary value of a in string format.

To convert a binary string back to integer, use int() function.

int('110', 2)

returns integer value of binary string.

1
  • 1
    Better would be format(a, '08b') to obtain the format the user wanted.
    – ZSG
    Commented Apr 27, 2020 at 6:20
6

.. or if you're not sure it should always be 8 digits, you can pass it as a parameter:

>>> '%0*d' % (8, int(bin(6)[2:]))
'00000110'
6

Going Old School always works

def intoBinary(number):
binarynumber=""
if (number!=0):
    while (number>=1):
        if (number %2==0):
            binarynumber=binarynumber+"0"
            number=number/2
        else:
            binarynumber=binarynumber+"1"
            number=(number-1)/2

else:
    binarynumber="0"

return "".join(reversed(binarynumber))
4
  • 1
    number=number/2 gives float, so number=number//2 seams better, also I would replace number=number//2 with number//=2 and b=b+"0" with b+="0"
    – Brambor
    Commented Nov 12, 2019 at 3:46
  • also, you don't have the 0 padding as the OP required
    – Brambor
    Commented Nov 12, 2019 at 3:48
  • so if number=7, your function returns "111" instead of "0111", this is unexpected.
    – Ye Xu
    Commented Nov 7, 2022 at 16:11
  • true because at 7, you are still in the third bit. essentially the assumption is depending on the size to be received, the entire left side is made of zeroes Commented Nov 11, 2022 at 6:12
5

An even an easier way:

my_num = 6
print(f'{my_num:b}')
4

You can use just:

"{0:b}".format(n)

In my opinion this is the easiest way!

2

Assuming you want to parse the number of digits used to represent from a variable which is not always constant, a good way will be to use numpy.binary.

could be useful when you apply binary to power sets

import numpy as np
np.binary_repr(6, width=8)
1
('0' * 7 + bin(6)[2:])[-8:]

or

right_side = bin(6)[2:]
'0' * ( 8 - len( right_side )) + right_side
1
  • 4
    While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value.
    – Nic3500
    Commented Sep 5, 2018 at 0:31
0
def int_to_bin(num, fill):
    bin_result = ''

    def int_to_binary(number):
        nonlocal bin_result
        if number > 1:
            int_to_binary(number // 2)
        bin_result = bin_result + str(number % 2)

    int_to_binary(num)
    return bin_result.zfill(fill)
0

Simple code with recursion:

 def bin(n,number=('')):
   if n==0:
     return(number)
   else:
     number=str(n%2)+number
     n=n//2
     return bin(n,number)
1
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    – Community Bot
    Commented Dec 2, 2021 at 22:51
0

The Python package Binary Fractions has a full implementation of binaries as well as binary fractions. You can do your operation as follows:

from binary_fractions import Binary
b = Binary(6) # Creates a binary fraction string
b.lfill(8) # Fills to length 8

This package has many other methods for manipulating binary strings with full precision.

-1
    def convertToBinary(self, n):
        result=""
        if n==0:
            return 0

        while n>0:
            r=n%2
            result+=str(r)
            n=int(n/2)
        if n%2==0:
            result+="0"
        return result[::-1]

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