4

I have a small bit of code in Python 3 -

'{:08b}' .format(i)

that gives an error in Python 2.x. Does anyone know the equivalent?

9

Your original code actually works in Python 2.7. For Python 2.6, you need to introduce a reference to your format argument - either an index (0):

'{0:08b}'.format(i)

or a name:

'{x:08b}'.format(x=i)  # or:
'{i:08b}'.format(i=i)  # or even:
'{_:08b}'.format(_=i)  # (since you don't care about the name)

Strangely enough, this particular quirk doesn't seem to be mentioned in the documentation about string formatting :(

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  • Well I'll be ... Here I was just assuming it didn't work on python2.7. Here's the monstrosity I came up with: '{:0>8s}' .format(bin(i)[2:]). Clearly not worth posting as an answer ... (+1) – mgilson Dec 27 '13 at 18:50
  • 2
    What about '{0:08b}'.format(i)? I think that should work on both python2.x and python3.x without a problem and it's still using positional arguments like the original... – mgilson Dec 27 '13 at 18:58
  • It indeed does work for both. I've updated my answer to include it as preferred option. – Xion Dec 27 '13 at 19:00
  • ... but, and there is always a but ... in Python 2.7, '{:08b}' .format(i), "i" must be an integer, but in Python 3, "i" must be a string. – brett Dec 27 '13 at 23:59
  • @brett I just tested '{:08b}'.format(42) in Python 3.3.1 and it works just fine. – Xion Dec 28 '13 at 10:51
0

Try this:

def fun(i):
    print ('{0:08b}'.format(i))
fun(i) # Put any decimal number instead of i in fun(i) like fun(5). The result will be the binary code for number five which is 00000101
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