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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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18 Answers 18

up vote 203 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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12  
str.format() is new in version 2.6: docs.python.org/library/stdtypes.html – Mark Roddy Mar 31 '09 at 3:19
2  
Thank you Tung. What is a pythonic way to reverse this operation? – kalu Oct 23 '14 at 16:40
4  
to convert a binary string to an integer, just use int(): int(x,2) – RufusVS Apr 18 '15 at 3:42
2  
for padding, add .zfill(n) where n is the number of bits. – mike Jul 14 '15 at 23:50
11  
str.format() just to format one value is overkill. Go straight to the format() function: format(n, 'b'). There is no need to parse out the placeholder and match it to an argument, go straight for the value formatting operation itself. Only use str.format() if you need to place the formatted result in a longer string (e.g. use it as a template). – Martijn Pieters Dec 10 '15 at 10:23

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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30  
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
12  
@mVChr if someone's converting numbers into an ASCII binary representation, I really hope speed doesn't matter. – Nick T Feb 5 '14 at 5:04
10  
@mVChr bin() returns a string without str() – Air Feb 21 '14 at 17:34
4  
@mVChr: str.format() is the wrong tool anyway, you would use format(i, 'b') instead. Take into account that that also gives you padding and alignment options though; format(i, '016b') to format to a 16-bit zero-padded binary number. To do the same with bin() you'd have to add a str.zfill() call: bin(i)[2:].zfill(16) (no need to call str()!). format()'s readability and flexibility (dynamic formatting is much harder with bin()) are great tradeoffs, don't optimise for performance unless you have to, until then optimise for maintainability. – Martijn Pieters Dec 10 '15 at 10:28

No language or library will give its user base everything that they desire. If you're working in an envronment that doesn't provide exactly what you need, you should be collecting snippets of code as you develop to ensure you never have to write the same thing twice. Such as, for example:

def int2bin(i):
    if i == 0: return "0"
    s = ''
    while i:
        if i & 1 == 1:
            s = "1" + s
        else:
            s = "0" + s
        i /= 2
    return s

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

Fortunately, however, Python has something already built in, the ability to do operations such as '{0:b}'.format(42), which will give you the bit pattern for 42, or 101010.

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

  • the language or built-in libraries.
  • third-party libraries with suitable licenses.
  • your own collection.
  • something new you need to write (and save in your own collection for later).
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6  
I like your general coding comments. – Cosine Dec 27 '13 at 1:14
1  
I too like your comments, which is why I did not downvote you for disregarding your own advice. – Mad Physicist Oct 21 '15 at 17:37

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 '14 at 14:43
    
Clever. Crafty. – Mad Physicist Oct 21 '15 at 17:38

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

get_bin = lambda x: format(x, 'b')

print(get_bin(3))
>>> '11'

print(get_bin(-3))
>>> '-11'

When you want a n-bit representation:

get_bin = lambda x, n: format(x, 'b').zfill(n)
>>> get_bin(12, 32)
'00000000000000000000000000001100'
>>> get_bin(-12, 32)
'-00000000000000000000000000001100'
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2  
Or just use format(integer, 'b'). bin() is a debugging tool, specifically aimed at producing the Python binary integer literal syntax, format() is meant to produce specific formats. – Martijn Pieters Dec 10 '15 at 10:21
    
@MartijnPieters Thank you very much for mentioning it. I've adjusted my solutution. How do you know that bin() is a debugging tool aimed at producing the Python binary integer literal syntax? I couldn't find that in the documentation. – Martin Thoma Dec 10 '15 at 10:36
1  
From the documentation: The result is a valid Python expression. It's aim is to produce a Python expression, not to produce end-user representations. The same applies to oct() and hex(). – Martijn Pieters Dec 10 '15 at 10:37
1  
More alternatives: If you are going to make the width dynamic, instead of str.zfill() you could use str.format() or format() with a dynamic second argument: '{0:0{1}b}'.format(x, n) or format(b, '0{}b'.format(n)). – Martijn Pieters Dec 10 '15 at 10:41
    
@MartijnPieters Wow, thank you very much for this input! I didn't know that this was possible with format. However, I think my current answer with zfill is easier to read and understand than the dynamic second argument, so I'll keep that. – Martin Thoma Dec 10 '15 at 10:45

one-liner with lambda:

>>> binary = lambda n: '' if n==0 else binary(n/2) + str(n%2)

test:

>>> binary(5)
'101'



EDIT:

but then :(

t1 = time()
for i in range(1000000):
     binary(i)
t2 = time()
print(t2 - t1)
# 6.57236599922

in compare to

t1 = time()
for i in range(1000000):
    '{0:b}'.format(i)
t2 = time()
print(t2 - t1)
# 0.68017411232
share|improve this answer
    
I like the recursive lambda. – Mad Physicist Oct 21 '15 at 17:41

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

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

A faster version without reversing the string.

def int2bin(val):
   res=''
   while val>0:
       res = chr((val&1) + 0x30) + res
       val=val>>1    
   return res 
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Summary of alternatives:

n=42
assert  "-101010" == format(-n, 'b')
assert  "-101010" == "{0:b}".format(-n)
assert  "-101010" == (lambda x: x >= 0 and str(bin(x))[2:] or "-" + str(bin(x))[3:])(-n)
assert "0b101010" == bin(n)
assert   "101010" == bin(n)[2:]   # But this won't work for negative numbers.

Contributors include John Fouhy, Tung Nguyen, mVChr, Martin Thoma. and Martijn Pieters.

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1  
str.format() just to format one value is overkill. Go straight to the format() function: format(n, 'b'). No need to parse out the placeholder and match it to an argument that way. – Martijn Pieters Dec 10 '15 at 10:23

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 '14 at 19:31

Here's yet another way using regular math, no loops, only recursion. (Trivial case 0 returns nothing).

def toBin(num):
  if num == 0:
    return ""
  return toBin(num//2) + str(num%2)

print ([(toBin(i)) for i in range(10)])

['', '1', '10', '11', '100', '101', '110', '111', '1000', '1001']
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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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A simple way to do that is to use string format, see this page.

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

And if you want to have a fixed length of the binary string, you can use this:

>> "{0:{fill}8b}".format(10, fill='0')
'00001010'

If two's complement is required, then the following line can be used:

'{0:{fill}{width}b}'.format((x + 2**n) % 2**n, fill='0', width=n)

where n is the width of the binary string.

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If two's complement is required, then the following line can be used: '{0:{fill}{width}b}'.format((x + 2**n) % 2**n, fill='0', width=n) – Xiang Jan 19 at 21:58

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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1  
Raising meaningful errors is preferable to printing output or returning sentinel values. – Daniel Lee May 27 '14 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 '14 at 12:49

Using numpy pack/unpackbits, they are your best friends.

Examples
--------
>>> a = np.array([[2], [7], [23]], dtype=np.uint8)
>>> a
array([[ 2],
       [ 7],
       [23]], dtype=uint8)
>>> b = np.unpackbits(a, axis=1)
>>> b
array([[0, 0, 0, 0, 0, 0, 1, 0],
       [0, 0, 0, 0, 0, 1, 1, 1],
       [0, 0, 0, 1, 0, 1, 1, 1]], dtype=uint8)
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