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I'd like to make an if statement to detect if a string could be formed with items from lists, in order. For example, if I want to check if a term had the same meaning as "HelloWorld", I'd have a "hello" list with ['hello', 'Hello', 'Hi', 'Greetings', 'Hola'], and a "world" list with ['world', 'World', 'Planet', 'Earth']. Then, check if a string is equal to any item from the "hello" list, directly followed by any item from the "world" list. "HelloWorld", "GreetingsEarth", and "HiPlanet" would all successfully trip the if statement. How would I do this? I'd like to use Python lists, so regex (a|b) seems impractical.

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closed as not a real question by Josh Caswell, Don Roby, hauleth, Daniel Fischer, AVD Sep 23 '12 at 4:33

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Are you interested in determining which match was triggered (ie that the Xth item from the hello list was followed by the Yth item from the world list?) or just that there is any match? –  Adam Parkin Sep 22 '12 at 18:47

4 Answers 4

up vote 4 down vote accepted

If you want to avoid a regular expression, you can use a generator expression that tests each combination (generated via itertools.product):

import itertools
combinations = (''.join((first, second)) for first, second in itertools.product(a, b))
any('HelloWorld' == combination for combination in combinations)

Note that this is far slower than the regular expression approach, especially when hitting the worst-case scenario (no match):

>>> timeit.timeit('search("HelloWorld"); search("HiThere")', 'from __main__ import reMatch as search')
1.8922290802001953
>>> timeit.timeit('search("HelloWorld"); search("HiThere")', 'from __main__ import genMatch as search')
18.3697190284729

The generator expression is 10 times slower than the regular expression approach.

(I used a re.compile() compiled regular expression for the test).

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Out of curiosity was the re version you tried a compiled re, or was it just a raw re.match("someregularexpression...")? If it wasn't compiled, then feeding it through re.compile will likely make it even faster. –  Adam Parkin Sep 22 '12 at 18:49
    
@AdamParkin: Sorry, yes, I used a compiled re. Note that re.match still compiles the expression, and uses a cache for that; the slowdown you see is the cache-lookup vs. using the compiled expression directly. –  Martijn Pieters Sep 22 '12 at 18:50

Regexes will work just fine:

a = ['hello', 'Hello', 'Hi', 'Greetings', 'Hola']
b = ['world', 'World', 'Planet', 'Earth']

import re
r = '^(%s)(%s)$' % ('|'.join(a), '|'.join(b))

print re.match(r, "HelloWorld").groups() # ('Hello', 'World')
print re.match(r, "HiThere") # None

A non-regex solution is tedious:

s = "GreetingsEarth"
for x in a:
    if s.startswith(x) and s[len(x):] in b:
        print x, '+', s[len(x):]
        break 
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Guess the regex method is faster, but by how much? –  Prasanta Behera Sep 22 '12 at 18:40
    
I wouldn't say that. Regex are really slow. –  Zashas Sep 22 '12 at 18:43
    
The regular expression is doing basically the same thing as the Python code. On the other hand, the regex engine is in C. I think it probably partly depends on the lengths of the lists. –  David Robinson Sep 22 '12 at 18:44
    
Not necessarily, depends on a number of factors. Depending on the circumstances a re can actually be quite faster, especially if you compile the regex in advance with re.compile. A compiled re is O(1) (constant) time, whereas a loop version is going to depend on the size of the input. –  Adam Parkin Sep 22 '12 at 18:45
    
@AdamParkin: re compilation is not an issue, because every regex gets compiled exactly once (re module maintains a cache of compiled patterns). –  georg Sep 22 '12 at 18:50

This actually could be done with a regular expression, like so:

list1 = ['hello', 'Hello', 'Hi', 'Greetings', 'Hola']
list2 = ['world', 'World', 'Planet', 'Earth']
regex = "(%s)(%s)" % ("|".join(list1), "|".join(list2))
print re.match(regex, "HelloWorld")

But it could also be done with itertools.product:

print any("HelloWorld" == x + y for x, y in itertools.product(list1, list2)) 
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I'm using a set for the second list so that you don't have to iterate every time over all it's items.

a = ['hello', 'Hello', 'Hi', 'Greetings', 'Hola']
b = ['world', 'World', 'Planet', 'Earth']

b_set = set(b)
needle = 'HelloWorld'
for start in a:
    if needle.startswith(start) and needle[len(start):] in b_set:
         print 'match'

If you are looking for a shorter version

any((needle[len(start):] in b_set for start in a if needle.startswith(start)))

In contrast to the itertools.product this solution does not have to compare all n^2 possible combinations, but has just to walk once over the first list (n) and in worst case do an additional set lookup.

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