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Of note: maximum string ling will be 15 char.

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closed as too localized by Andrew Marshall, Chris, Eldar Abusalimov, agf, jamylak Oct 6 '12 at 3:39

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This is a joke, right? –  siride Oct 6 '12 at 2:26
5  
What have you tried? –  Andrew Marshall Oct 6 '12 at 2:27
3  
@chrickso: for a string of length 15, even a naive algorithm will be plenty fast. –  siride Oct 6 '12 at 2:37
1  
@chrickso: If what you're asking is "which of these several methods that I've seen is faster", you could at least enumerate the methods (which would also show you've done research). Of course, once you've done that you could time the methods yourself. –  David Robinson Oct 6 '12 at 2:40
1  
@chrickso unless you have mistaken 'efficiency' for raw speed then any solution will run efficiently, 15 chars can be processed in extremely fast time and so the efficiency doesn't really even matter. If you were to ask which solution is fastest for micro-optimization's sake, that would be a better question although micro-optimization is seldom required. –  jamylak Oct 6 '12 at 3:36

2 Answers 2

up vote 4 down vote accepted

To compare raw speed here are here's a comparison of @wim's answer, a few optimizations of it and a regex solution:

import re, string, timeit

clean = re.compile(r'[^a-zA-Z0-9_-]')
keep = string.ascii_letters + string.digits + '_-'
keep_set = set(string.ascii_letters + string.digits + '_-')
test = '$pam and_Eggs##-!'
cur_encoding_bytes = 256 # 8 for UTF-8, in Python 3 this would be different for Unicode
all_else = ''.join(chr(i) for i in range(cur_encoding_bytes) if chr(i) not in keep_set) # taken from http://stackoverflow.com/a/3588485/1219006

def clean1(s):
    return ''.join(x for x in s if x in keep)

def clean1_filter(s):
    return filter(keep.__contains__, s)

def clean1_filter_set(s):
    return filter(keep_set.__contains__, s)

def clean2(s):
    return clean.sub('', s)

def clean3(s):
    return s.translate(None, all_else)

print timeit.timeit('clean1(test)', 'from __main__ import clean1, test')
print timeit.timeit('clean1_filter(test)', 'from __main__ import clean1_filter, test')
print timeit.timeit('clean1_filter_set(test)', 'from __main__ import clean1_filter_set, test')
print timeit.timeit('clean2(test)', 'from __main__ import clean2, test')
print timeit.timeit('clean3(test)', 'from __main__ import clean3, test')

The output of this script is:

2.96962522809
1.56208783165
1.10597814849
1.59298783663
0.53834820236

str.translate is the fastest, being a specialized string method.

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1  
Turn keep into a set and it gets closer. –  Steven Rumbalski Oct 6 '12 at 3:58
    
@Blender I made a more comprehensive set of tests, showing that regex is not the fastest(it usually isn't). –  jamylak Oct 6 '12 at 4:02
    
@jamylak: Thanks for the .__contains__ function, I never knew about it. I tried a lambda, but it performed worse than the regular list comprehension. –  Blender Oct 6 '12 at 4:06
    
@jamylak: I never realized filter would return a string for a string argument. –  Steven Rumbalski Oct 6 '12 at 4:09
    
@Blender: __contains__ is just the implementation of in. I would not have thought to use it with filter. –  Steven Rumbalski Oct 6 '12 at 4:12
>>> def clean(s):
...   from string import ascii_letters, digits
...   keep = ascii_letters + digits + '_-'
...   return ''.join(x for x in s if x in keep)
... 
>>> clean('$pam and_Eggs##-!')
'pamand_Eggs-'
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