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What is the cleanest way to obtain the numeric prefix of a string in Python?

By "clean" I mean simple, short, readable. I couldn't care less about performance, and I suppose that it is hardly measurable in Python anyway.

For example:

Given the string '123abc456def', what is the cleanest way to obtain the string '123'?

The code below obtains '123456':

input = '123abc456def'
output = ''.join(c for c in input if c in '0123456789')

So I am basically looking for some way to replace the if with a while.

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5  
would regexp be an option? – MaxU Mar 8 at 12:06
    
@MaxU: I was hoping that there would be a simple "string operation" that could save me the burden of regular expression, but if you think that there is no other alternative then yes. – barak manos Mar 8 at 12:09
    
Are all of the prefixes 3 characters or does it vary? – AlG Mar 8 at 12:11
    
@AIG: No, it varies (otherwise, I would have just used input[0:3]). – barak manos Mar 8 at 12:12
    
@ForceBru: Thank you. Here below there is an answer more suitable to my question than the accepted answer in the question that you have suggested as duplicate (i.e., the answer below is "cleaner"), so I will accept it here. – barak manos Mar 8 at 12:19
up vote 50 down vote accepted

You can use itertools.takewhile which will iterate over your string (the iterable argument) until it encounters the first item which returns False (by passing to predictor function):

>>> from itertools import takewhile
>>> input = '123abc456def'
>>> ''.join(takewhile(str.isdigit, input))
'123'
share|improve this answer
    
Please vote to reopen this question. There are two suggested duplicates. One is a different question (!!!), and the other one is closed by itself, and in addition, the answer here matches my question better than the accepted answer to that (closed) question, since it addresses my requirement for the cleanest possible solution. Thank you. – barak manos Mar 8 at 12:54
    
@barakmanos I just did that before I read your comment ;) – Kasravand Mar 8 at 12:58
    
Thank you very much. Can you please have a look at the solution proposed by @demented hedgehog below? It seems to be very "clean", though I would hate to unaccept your answer. – barak manos Mar 8 at 13:06
1  
@barakmanos I left a comment there. It's shorter but is not optimum in terms of memory use. It also used an indexing and two len function. – Kasravand Mar 8 at 13:25
1  
I'll upvote any solution that looks like Haskell. This is definitely the "cleanest" solution in my opinion. – ApproachingDarknessFish Mar 9 at 0:14

This is the simplest way to extract a list of numbers from a string:

>>> import re
>>> input = '123abc456def'
>>> re.findall('\d+', s)
['123','456']

If you need a list of int's then you might use the following code:

   >>> map(int, re.findall('\d+', input ))
   [123,456]

And now you can access the first element [0] from the above list

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1  
That's a bold statement. Though I think it's a good solution. – demented hedgehog Mar 8 at 12:19
10  
Perhaps match() would be more suitable, since OP needs only the starting digits. – Fermi paradox SO Mar 8 at 12:22

Simpler version (leaving the other answer as there's some interesting debate about which approach is better)

input[:-len(input.lstrip("0123456789"))]
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This one is pythonic ;), but as I said takewhile() is more optimized in terms of memory use. – Kasravand Mar 8 at 17:56
    
That is true. I'll have to take a second look at itertools.. I hadn't heard about takewhile till now. – demented hedgehog Mar 8 at 21:24
input[:len(input) - len(input.lstrip("0123456789"))]
share|improve this answer
    
This is not an optimized approach in terms of memory use (specially when you are dealing with larger strings). Because you are creating a stripped string from the main string and load it in memory. – Kasravand Mar 8 at 13:23
    
Yes. It's not particularly efficient but the post specifically doesn't care about performance and it is simple and in practice the performance won't usually matter. You'd have to be using big strings to care. There's overhead for example in compiling regular expressions too. If you really care about speed do it in c. – demented hedgehog Mar 8 at 13:30
    
Also depends on what portion of the string is the prefix.. if it's a million digits followed by "x" your approach is going to be slow too. Possibly slower cause you've got the copy as well as a bunch of function call overhead? I'd be interested to see a timing comparison of our two approaches vs string length and prefix length. – demented hedgehog Mar 8 at 13:38

Here is my way:

output = input[:next((i for i,v in enumerate(input) if not v.isdigit()),None)]
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One way, but not very efficient since it works through the whole string without break would be:

input_string = '123abc456def'
[input_string[:c] for c in range(len(input_string)) if input_string[:c].isdigit()][-1]

This appends each substring with increasing size if it is a digit and then appends it. So the last element is the one you look for. Because it is the longest startstring that is still a digit.

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You could use regex

import re
initialNumber = re.match(r'(?P<number>\d+)', yourInput).group('number')
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Another regexp version strips away everything starting with the first non-digit:

import re
output = re.sub('\D.*', '', input)
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input = '123abc456def'
output = re.findall(r'^\d+', input)

Will return ['123'] too.

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