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Is there any module or function in python I can use to convert a decimal number to its binary equivalent? I am able to convert binary to decimal using int('[binary_value]',2), so any way to do the reverse without writing the code to do it myself?

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    Unlike the linked question "convert to binary string", I think this question is different. I came here looking to convert an integer to a corresponding binary array (or boolean array), and I think that would be a sensible answer. – Sanjay Manohar Jan 16 at 20:57
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    @SanjayManohar The pure string processing algorithm found here could be adapted to do what you want. – CopyPasteIt Mar 15 at 17:11
238

all numbers are stored in binary. if you want a textual representation of a given number in binary, use bin(i)

>>> bin(10)
'0b1010'
>>> 0b1010
10
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77
"{0:#b}".format(my_int)
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    Here's the format for printing with leading zero's: "{0:08b}".format(my_int) – Waldo Bronchart May 6 '13 at 9:49
  • @WaldoBronchart thats cool. Can you explain to me how does that work, having the leading zeros? Is that inbuilt, that you get the leading zeros with 0+8 or 0+16? – Alexandre Allegro May 2 at 11:52
64

Without the 0b in front:

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

Starting with Python 3.6 you can also use formatted string literal or f-string, --- PEP:

f"{int:b}"
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    I got the following error: TypeError: non-empty format string passed to object.__format__ – Right leg Feb 7 '18 at 15:47
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    same for me with python 3.5.2 TypeError: non-empty format string passed to object.__format__ ahh - now i got it, what you meant: ```>>> "{0:b}".format(47) ---> '101111' – Josef Klotzner Oct 10 '19 at 18:58
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def dec_to_bin(x):
    return int(bin(x)[2:])

It's that easy.

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    -1 - don't return an int. Also, dec_to_bin(-1) gives ValueError: invalid literal for int() with base 10: 'b1' – Eric Jan 8 '13 at 15:42
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    can you explain that [2:] ? – Patrick Ferreira Apr 18 '14 at 14:25
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    Try bin(2). You don't get '10'. You get '0b10'. Same possible pit with hex(2) ('0x2'). So you want all but the first two characters. So you take a slice that starts after the first two characters. – leewz May 3 '14 at 5:04
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    @zero_cool if test_var = "Hello world" then test_var[2:] = "llo world" – Walter Apr 10 '18 at 7:30
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    @Wallace: because binary and decimal are a choice of how to show the number, not part of the number itself. dec_to_bin(0b101) == 101, which is nonsense because none of operations you can apply to 101 have any relation to the original 5 - for instance, dec_to_bin(0b101) + 1 == 102. – Eric Jan 1 at 18:29
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You can also use a function from the numpy module

from numpy import binary_repr

which can also handle leading zeros:

Definition:     binary_repr(num, width=None)
Docstring:
    Return the binary representation of the input number as a string.

    This is equivalent to using base_repr with base 2, but about 25x
    faster.

    For negative numbers, if width is not given, a - sign is added to the
    front. If width is given, the two's complement of the number is
    returned, with respect to that width.
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12

I agree with @aaronasterling's answer. However, if you want a non-binary string that you can cast into an int, then you can use the canonical algorithm:

def decToBin(n):
    if n==0: return ''
    else:
        return decToBin(n/2) + str(n%2)
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  • int(bin(10), 2) yields 10. int(decToBin(10)) yields 101 and int(decToBin(10), 2) yields 5. Also, your function hit's recursion limits with from __future__ import division or python 3 – aaronasterling Aug 20 '10 at 4:47
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    @aaron, the latter point can be solved by switching to // (truncating division); the former, by switching the order of the two strings being summed in the return. Not that recursion makes any sense here anyway (bin(n)[2:] -- or a while loop if you're stuck on some old version of Python -- will be much better!). – Alex Martelli Aug 20 '10 at 4:56
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    This is awesome! it could go with the lambda way too :] binary = lambda n: '' if n==0 else binary(n/2) + str(n%2) – Aziz Alto Jun 15 '15 at 1:52
  • @AzizAlto I get a busload full of numbers with lots of e-, also in the recursive call dectobin. – Timo Feb 7 '18 at 16:18
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    @Timo lol apparently you are using Python3 just change binary(n/2) to binary(n//2) then you won't get that busload :-) – Aziz Alto Feb 7 '18 at 16:42
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n=int(input('please enter the no. in decimal format: '))
x=n
k=[]
while (n>0):
    a=int(float(n%2))
    k.append(a)
    n=(n-a)/2
k.append(0)
string=""
for j in k[::-1]:
    string=string+str(j)
print('The binary no. for %d is %s'%(x, string))
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2

For the sake of completion: if you want to convert fixed point representation to its binary equivalent you can perform the following operations:

  1. Get the integer and fractional part.

    from decimal import *
    a = Decimal(3.625)
    a_split = (int(a//1),a%1)
    
  2. Convert the fractional part in its binary representation. To achieve this multiply successively by 2.

    fr = a_split[1]
    str(int(fr*2)) + str(int(2*(fr*2)%1)) + ...
    

You can read the explanation here.

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