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Are there any canned Python methods to convert an Integer (or Long) into a binary string in Python?

There are a myriad of dec2bin() functions out on Google... But I was hoping I could use a built-in function / library.

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14 Answers 14

up vote 93 down vote accepted

Python's string format method can take a format spec.

>>> "{0:b}".format(10)
'1010'

Format spec docs for Python 2

Format spec docs for Python 3

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9  
str.format() is new in version 2.6: docs.python.org/library/stdtypes.html –  Mark Roddy Mar 31 '09 at 3:19
    
Thank you Tung. What is a pythonic way to reverse this operation? –  kalu Oct 23 at 16:40

If you're looking for bin() as an equivalent to hex(), it was added in python 2.6.

Example:

>>> bin(10)
'0b1010'
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14  
Note also that it's faster to do str(bin(i))[2:] (0.369s for 1000000ops) than "{0:b}".format(i) (0.721s for 1000000ops) –  mVChr Oct 30 '13 at 7:55
3  
@mVChr if someone's converting numbers into an ASCII binary representation, I really hope speed doesn't matter. –  Nick T Feb 5 at 5:04
4  
@mVChr bin() returns a string without str() –  AirThomas Feb 21 at 17:34

No language or library will give its user base everything that they desire, although Boost may claim to :-) You should be collecting snippets of code as you develop to ensure you never have to write the same thing twice.

Such as:

def bin(i):
    if i == 0:
        return "0"
    s = ''
    while i:
        if i & 1 == 1:
            s = "1" + s
        else:
            s = "0" + s
        i >>= 1
    return s

which will construct your binary string based on the decimal value.

The idea is to use code from (in order of preference):

  • the language.
  • the libraries.
  • third-party libraries with suitable licenses.
  • your own collection.
  • something new you need to write (and save in your collection for later).
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5  
I like your general coding comments. –  Cosine Dec 27 '13 at 1:14

As a reference:

def toBinary(n):
    return ''.join(str(1 & int(n) >> i) for i in range(64)[::-1])

This function can convert a positive integer as large as 18446744073709551615, represented as string '1111111111111111111111111111111111111111111111111111111111111111'.

It can be modified to serve a much larger integer, though it may not be as handy as "{0:b}".format() or bin().

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Having an old version of Python this is exactly what I needed, thank you. –  Gaz Davidson Mar 19 at 14:43

If you want a textual representation without the 0b-prefix, you could use this:

getBin = lambda x: x >= 0 and str(bin(x))[2:] or "-" + str(bin(x))[3:]

print(getBin(3))
>>> 11

print(getBin(-3))
>>> -11

When you want a n-bit representation:

getBin = lambda x, n: x >= 0 and str(bin(x))[2:].zfill(n) or "-" + str(bin(x))[3:].zfill(n)
>>> getBin(12,32)
'00000000000000000000000000001100'
>>> getBin(-12,32)
'-00000000000000000000000000001100'
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Unless I'm misunderstanding what you mean by binary string I think the module you are looking for is struct

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def binary(decimal) :
    otherBase = ""
    while decimal != 0 :
        otherBase  =  str(decimal % 2) + otherBase
        decimal    /=  2
    return otherBase

print binary(10)

output:

1010

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Here is the code I've just implemented. This is not a method but you can use it as a ready-to-use function!

def inttobinary(number):
  if number == 0:
    return str(0)
  result =""
  while (number != 0):
      remainder = number%2
      number = number/2
      result += str(remainder)
  return result[::-1] # to invert the string
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here is simple solution using the divmod() fucntion which returns the reminder and the result of a division without the fraction.

def dectobin(number):
    bin = ''
    while (number >= 1):
        number, rem = divmod(number, 2)
        bin = bin + str(rem)
    return bin
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Needs debugging. Calling dectobin(10) resulted in '0101' –  Nate Oct 27 at 19:31

Yet another solution with another algorithm, by using bitwise operators.

def int2bin(val):
    res=''
    while val>0:
        res += str(val&1)
        val=val>>1     # or val=val/2 
    return res[::-1]   # invert the string

print int2bin(23) # 10111

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Somewhat similar solution

def to_bin(dec):
    flag = True
    bin_str = ''
    while flag:
        remainder = dec % 2
        quotient = dec / 2
        if quotient == 0:
            flag = False
        bin_str += str(remainder)
        dec = quotient
    bin_str = bin_str[::-1] # reverse the string
    return bin_str 
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Small solution of mine for positive decimals:

def converter(d):
    b=""
    while d!=0:
        b+=str(d%2)
        d//=2
    return b[::-1]

And small test for it:

from collections import OrderedDict
result_dict=OrderedDict(zip([x for x in range(1,11)], [converter(x) for x in range(1,11)]))
for key,value in result_dict.items():
    print key, "=", value

Output:

1 = 1
2 = 10
3 = 11
4 = 100
5 = 101
6 = 110
7 = 111
8 = 1000
9 = 1001
10 = 1010
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Along a similar line to Yusuf Yazici's answer

def intToBin(n):
    if(n < 0):
        print "Sorry, invalid input."
    elif(n == 0):
        print n
    else:
        result = ""
        while(n != 0):
            result += str(n%2)
            n /= 2
        print result[::-1]

I adjusted it so that the only variable being mutated is result (and n of course).

If you need to use this function elsewhere (i.e., have the result used by another module), consider the following adjustment:

def intToBin(n):
    if(n < 0):
        return -1
    elif(n == 0):
        return str(n)
    else:
        result = ""
        while(n != 0):
            result += str(n%2)
            n /= 2
        return result[::-1]

So -1 will be your sentinel value indicating the conversion failed. (This is assuming you are converting ONLY positive numbers, whether they be integers or longs).

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Raising meaningful errors is preferable to printing output or returning sentinel values. –  Daniel Lee May 27 at 6:27
n=input()
print(bin(n).replace("0b", ""))
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Can you explain this answer (inside it) please ? –  Zulu Nov 29 at 12:49

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