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trying to improve the regex below:

urlpath=columns[4].strip()
                                urlpath=re.sub("(\?.*|\/[0-9a-f]{24})","",urlpath)
                                urlpath=re.sub("\/[0-9\/]*","/",urlpath)
                                urlpath=re.sub("\;.*","",urlpath)
                                urlpath=re.sub("\/",".",urlpath)
                                urlpath=re.sub("\.api","api",urlpath)
                                if urlpath in dlatency:

This transforms a URL like this:

/api/v4/path/apiCallTwo?host=wApp&trackId=1347158

to

api.v4.path.apiCallTwo

Would like to try and improve the regex as far as performance, as every 5 minutes this script runs across 50,000 files approximately and takes about 40 seconds overall to run.

thank you

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2  
Are you sure the regexes are the bottleneck in your script, and not, say, the harddisk? –  larsmans Jun 5 '12 at 15:04
    
Disk IO is fairly low. Script reads the log file in reverse line by line until it reaches a line thats over 5 minutes old. –  coderwhiz Jun 5 '12 at 15:18
1  
Is this based on profiling the code or intuition? –  hexparrot Jun 5 '12 at 15:32
    
iostat -kxd 2 shows very minimal Disk IO during the run of the script –  coderwhiz Jun 6 '12 at 20:47
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6 Answers 6

Try this:

s = '/api/v4/path/apiCallTwo?host=wApp&trackId=1347158'
re.sub(r'\?.+', '', s).replace('/', '.')[1:]
> 'api.v4.path.apiCallTwo'

For even better performance, compile once the regular expression and reuse it, like this:

regexp = re.compile(r'\?.+')
s = '/api/v4/path/apiCallTwo?host=wApp&trackId=1347158'

# `s` changes, but you can reuse `regexp` as many times as needed
regexp.sub('', s).replace('/', '.')[1:]

An even simpler approach, without using regular expressions:

s[1:s.index('?')].replace('/', '.')
> 'api.v4.path.apiCallTwo'
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1  
There is urlparse... –  schlamar Jun 5 '12 at 15:24
1  
The second approach fails if there is no '?'. Why reinventing the wheel ;) –  schlamar Jun 5 '12 at 15:26
    
@ms4py this is not about parsing URLs, it's about extracting and transforming text from an URL. Mind the unnecessary downvote? –  Óscar López Jun 5 '12 at 15:26
1  
It is about extracting the path of an URL and transforming it. And the preferable way is via parsing it so it works safely for every input. –  schlamar Jun 5 '12 at 15:29
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You can also compile re statements to gain a performance boost,

e.g.

compiled_re_for_words = re.compile("\w+")
compiled_re_for_words.match("test")
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Are you sure you need Regex for this?
I.e.,

urlpath = columns[4].strip()
urlpath = urlpath.split("?")[0]
urlpath = urlpath.replace("/", ".")
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One-liner with urlparse:

urlpath = urlparse.urlsplit(url).path.strip('/').replace('/', '.')
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Here is my oneliner solution (edited).

urlpath.partition("?")[0].strip("/").replace("/", ".")

As some others have mentions, the speed improvements are negligible here. Aside from using re.compile() to precompile your expressions, I would start looking else where.

import re


re1 = re.compile("(\?.*|\/[0-9a-f]{24})")
re2 = re.compile("\/[0-9\/]*")
re3 = re.compile("\;.*")
re4 = re.compile("\/")
re5 = re.compile("\.api")
def orig_regex(urlpath):
    urlpath=re1.sub("",urlpath)
    urlpath=re2.sub("/",urlpath)
    urlpath=re3.sub("",urlpath)
    urlpath=re4.sub(".",urlpath)
    urlpath=re5.sub("api",urlpath)
    return urlpath


myregex = re.compile(r"([^/]+)")
def my_regex(urlpath):
    return ".".join( x.group() for x in myregex.finditer(urlpath.partition('?')[0]))

def test_nonregex(urlpath)
    return urlpath.partition("?")[0].strip("/").replace("/", ".")

def test_func(func, iterations, *args, **kwargs):
    for i in xrange(iterations):
        func(*args, **kwargs)

if __name__ == "__main__":
    import cProfile as profile

    urlpath = u'/api/v4/path/apiCallTwo?host=wApp&trackId=1347158'
    profile.run("test_func(orig_regex, 10000, urlpath)")
    profile.run("test_func(my_regex, 10000, urlpath)")
    profile.run("test_func(non_regex, 10000, urlpath)")

Results

Iterating orig_regex 10000 times
     60003 function calls in 0.108 CPU seconds

....

Iterating my_regex 10000 times
     130003 function calls in 0.087 CPU seconds

....

Iterating non_regex 10000 times
     40003 function calls in 0.019 CPU seconds

Without doing re.compile on your 5 regex results in

running <function orig_regex at 0x100532050> 10000 times
     210817 function calls (210794 primitive calls) in 0.208 CPU seconds
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Going through the lines one by one:

You're not capturing or grouping, so the ( and ) aren't needed, and the / isn't a special character in Python's regex, so it doesn't need to be escaped:

urlpath = re.sub("\?.*|/[0-9a-f]{24}", "", urlpath)

Replacing a / followed by zero repeats of something with a / is pointless:

urlpath = re.sub("/[0-9/]+", "/", urlpath)

Removing a fixed character and everything after it is faster using a string method:

urlpath = urlpath.partition(";")[0]

Replacing a fixed string with another fixed string is also faster using a string method:

urlpath = urlpath.replace("/", ".")

urlpath = urlpath.replace(".api", "api")

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