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Probably a silly question, but in python is there a simple way to automatically pad a number with zeros to a fixed length? I wasn't able to find this in the python docs, but I may not have been looking hard enough? e.i. I want bin(4) to return 00100, rather than just 100. Is there a simple way to ensure the output will be six bits instead of three?

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Have a look here –  sloth Nov 28 '12 at 7:12

3 Answers 3

up vote 10 down vote accepted

Strings have a .zfill() method to pad it with zeros:

>>> '100'.zfill(5)
'00100'

For binary numbers however, I'd use string formatting:

>>> '{0:05b}'.format(4)
'00100'

The :05b formatting specification formats the number passed in as binary, with 5 digits, zero padded. See the Python format string syntax. I've used str.format() here, but the built-in format() function can take the same formatting instruction, minus the {0:..} placeholder syntax:

>>> format(4, '05b')
'00100'

if you find that easier.

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Ah, fantastic! Just what I was looking for. Bonus points for including both solutions, which is why once this one is accepted over others. –  Slater Tyranus Nov 28 '12 at 7:14
    
@SlaterTyranus: bin/zfill is slightly faster than format in my measurements. –  J.F. Sebastian Apr 26 at 1:48
    
@J.F.Sebastian: I see no measurements for format(), only str.format(). str.format() requires a parsing step, then filling the slots, which internally then uses format(). To compare with bin/zfill, you need to not incur that extra cost. –  Martijn Pieters Apr 26 at 1:51
    
@MartijnPieters: yes. My older comment uses "".format that hints at that. Though I don't know what is "fair" translation of: "{:0{}b}".format(n, len(data)*8) (it is compared against bin(n)[2:].zfill(len(data)*8)) using only format() e.g., format(n, "0%db" % (len(data)*8)) has performed worse. –  J.F. Sebastian Apr 26 at 2:20
    
@J.F.Sebastian: The length cannot be pre-computed? Why not compare bin()/zfill() and format() with a fixed length? –  Martijn Pieters Apr 26 at 2:23

try this...

In [11]: x = 1

In [12]: print str(x).zfill(5)
00001

In [13]: bin(4)
Out[13]: '0b100'

In [14]: str(bin(4)[2:]).zfill(5)
Out[14]: '00100'
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+1 for using [2:] to strip the '0b' off the binary literal. that caught me at first. –  Tutti Frutti Jacuzzi Dec 20 '13 at 0:42

This is a job for the format built-in function:

>>> format(4, '05b')
'00100'
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