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I have a binary string say '01110000', and I want to return the number of leading zeros in front without writing a forloop. Does anyone have any idea on how to do that? Preferably a way that also returns 0 if the string immediately starts with a '1'

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"binary string" doesn't really make sense. That's a text string that happens to represent a number written in base-2. –  millimoose Jan 24 '13 at 20:20

5 Answers 5

A simple one-liner:

x = '01110000'
leading_zeros = len(x.split('1', 1)[0])

This partitions the string into everything up to the first '1' and the rest after it, then counts the length of the prefix. The second argument to split is just an optimization and represents the number of splits to perform, meaning the function will stop after it found the first '1' instead of splitting it on all occurences. You could just use x.split('1')[0] if performance doesn't matter.

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+1 This is probably the most straightforward way to deal with a string of all zeroes. –  millimoose Jan 24 '13 at 20:23

If you're really sure it's a "binary string":

input = '01110000'
zeroes = input.index('1')

Update: it breaks when there's nothing but "leading" zeroes

An alternate form that handles the all-zeroes case.

zeroes = (input+'1').index('1')
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1  
+1, that's even simpler than mine :) you could append '1' to the string to make sure it always contains a one. –  l4mpi Jan 24 '13 at 20:21

If you know it's only 0 or 1:

x.find(1)

(will return -1 if all zeros; you may or may not want that behavior)

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Here is another way:

In [36]: s = '01110000'

In [37]: len(s) - len(s.lstrip('0'))
Out[37]: 1

It differs from the other solutions in that it actually counts the leading zeroes instead of finding the first 1. This makes it a little bit more general, although for your specific problem that doesn't matter.

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I'd use:

s = '00001010'
sum(1 for _ in itertools.takewhile('0'.__eq__, s))

Rather pythonic, works in the general case, for example on the empty string and non-binary strings, and can handle strings of any length (or even iterators).

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