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Simple question to which I can't find any "nice" answer by myself:

Let's say I have the following condition:

if 'foo' in mystring or 'bar' in mystring or 'hello' in mystring:
    # Do something
    pass

Where the number of or statement can be quite longer depending on the situation.

Is there a "nicer" (more Pythonic) way of writing this, without sacrificing performance ?

If thought of using any() but it takes a list of boolean-like elements, so I would have to build that list first (giving-up short circuit evaluation in the process), so I guess it's less efficient.

Thank you very much.

share|improve this question
up vote 30 down vote accepted

A way could be

if any(s in mystring for s in ('foo', 'bar', 'hello')):
    pass

The thing you iterate over is a tuple, which is built upon compilation of the function, so it shouldn't be inferior to your original version.

If you fear that the tuple will become too long, you could do

def mystringlist():
    yield 'foo'
    yield 'bar'
    yield 'hello'
if any(s in mystring for s in mystringlist()):
    pass
share|improve this answer
1  
Thanks. But doesn't that technique prevents short-circuit optimization ? – ereOn Jun 25 '12 at 12:59
2  
It's a generator, not a list. – johv Jun 25 '12 at 12:59
9  
Nope. (s in mystring for s in 'foo', 'bar', 'hello') is a generator expression, which means it's not calculated instantly as a whole, only on-demand. any() stops the iteration upon seeing first true value, so the rest won't ever be checked. Read up on generator expressions. – Kos Jun 25 '12 at 13:01
2  
@gnibbler: I haven't said any doesn't short circuit. I feared the list construction would not. But since it's actually a generator, that changes everything. – ereOn Jun 25 '12 at 13:03
2  
OTOH, you wouldn't have short-circuiting if you did any([s in mystring for s in ... ]). The [] list comprehensions always create a whole list; any() wouldn't iterate throught it all but it would still be evaluated before the any call. – Kos Jun 25 '12 at 13:03

This sounds like a job for a regex.

import re

if re.search("(foo|bar|hello)", mystring):
    # Do something
    pass

It should be faster, too. Especially if you compile the regex ahead of time.

If you're generating the regular expression automatically, you could use re.escape() to make sure no special characters break your regex. For example, if words is a list of strings you wish to search for, you could generate your pattern like this:

pattern = "(%s)" % ("|".join(re.escape(word) for word in words), )

You should also note that if you have m words and your string has n characters, your original code has O(n*m) complexity, while the regular expression has O(n) complexity. Even though Python regexs are not really theoretical comp-sci regular expressions, and are not always O(n) complexity, in this simple case they are.

share|improve this answer
4  
But you have to be careful if any of the "words" you are looking for contain special regex characters – John La Rooy Jun 25 '12 at 13:03
    
@gnibbler: True. Conversely, you might be able to write less code by using pattern matching. If you're doing something like auto-generating the regex, you could use re.escape(). – cha0site Jun 25 '12 at 13:06
    
Indeed you can, you should add that to your answer – John La Rooy Jun 25 '12 at 13:08
    
Thanks for your suggestion. My real case scenario is less compatible with this technique (but you could obviously not guess). Upvoted for fairness because the answer is valid and could help somebody. – ereOn Jun 25 '12 at 13:13
2  
Indeed faster! ideone.com/MLgCU Probably because the regex only needs to traverse the string once. – Kos Jun 25 '12 at 13:16

Since you are processing word-by-word against mystring, surely mystring can be used as a set. Then just take the intersection between the set containing the words in mystring and the target groups of words:

In [370]: mystring=set(['foobar','barfoo','foo'])

In [371]: mystring.intersection(set(['foo', 'bar', 'hello']))
Out[371]: set(['foo'])

Your logical 'or' is the members of the intersection of the two sets.

Using a set is also faster. Here are relative timing vs a generator and regular expression:

f1:  generator to test against large string 
f2:  re to test against large string 
f3:  set intersection of two sets of words 

    rate/sec      f2     f1     f3
f2   101,333      -- -95.0% -95.5%
f1 2,026,329 1899.7%     -- -10.1%
f3 2,253,539 2123.9%  11.2%     --

So a generator and the in operation is 19x faster than a regular expression and a set intersection is 21x faster than a regex and 11% faster than a generator.

Here is the code that generated the timing:

import re

with open('/usr/share/dict/words','r') as fin:
     set_words={word.strip() for word in fin}

s_words=' '.join(set_words)
target=set(['bar','foo','hello'])
target_re = re.compile("(%s)" % ("|".join(re.escape(word) for word in target), ))

gen_target=(word for word in ('bar','foo','hello'))

def f1():
    """ generator to test against large string """        
    if any(s in s_words for s in gen_target):
        return True

def f2():
    """ re to test against large string """
    if re.search(target_re, s_words):
        return True

def f3():
    """ set intersection of two sets of words """
    if target.intersection(set_words):
        return True

funcs=[f1,f2,f3]
legend(funcs)
cmpthese(funcs)        
share|improve this answer
    
How is this different from the accepted answer? The only difference is that you use a set instead of a tuple, otherwise it's exactly the same. – cha0site Jun 25 '12 at 13:52
    
@cha0site: The accepted answer also proposes a function for a large list. I think a set is better way to so the same. This is also proposing two sets -- without the use of any – the wolf Jun 25 '12 at 14:36

If you have a known list of items to check against, you could also write it as

if mystring in ['foo', 'bar', 'hello']:

You may not get the benefits of ensuring the comparison order (I don't think Python is required to check the list elements left-to-right) but that's only a problem if you know that 'foo' is way more likely than 'bar'.

share|improve this answer
    
This isn't quite the same thing. The condition in the question would also be true when mystring = 'hello world'. This one would not. – Izkata Jun 25 '12 at 18:12
    
Good point, thanks - as you say, not quite the same thing, and perhaps not a good fit to the specific problem. – kimvanwyk Jun 26 '12 at 6:33

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