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I am new to regex and need to extract just the 'Chr' number by reading an entry at a time.

For example, for the following data:

Chr6_clust92082
Chr7_clust13
Chr7_clust256
Chr7_clust3678
Chr7_clust42
Chr7_clust5
Chr7_clust130538

The first entry should return '6' because it is right after 'Chr' and before '_'. Please suggest the specific regex for it.

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Is that number only one digit, or can it be multiple? –  Sasha Chedygov May 12 '12 at 19:57

4 Answers 4

up vote 0 down vote accepted

Use the following, it will look even if there are more than one digits -

re.findall(r'^Chr([\d]+)_', 'Chr6_clust92082')[0]
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No need to use a character class. \d+ can stand well on its own. –  Tim Pietzcker May 12 '12 at 21:48

If you are going to match many times it's best to compile the pattern:

c = re.compile('Chr(\d)_')

and if you can have chr-numbers larger than 9 it should be:

c = re.compile('Chr(\d*)_')

then you'd do:

t = 'Chr6_clust92082'
n = int(re.match(c, t).groups()[0])

just changing the t for each iteration of course.

Though you asked for regexp, since the pattern is so simple it might be worth using:

n = int(t.split("_",1)[0][3:])

I timed that one for 1110000 strings (don't ask me why) of your pattern and it took 8.8 seconds, while the regex version took 21.4 seconds.

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8.8 Seconds really....I thought regex will be fast and thats why wanted to use it...anyways thanks –  Atul Kakrana May 12 '12 at 21:52
    
I might not have done the most efficient regex there is, but I would guess that it has to do with that it creates a new object for each string it parses. And creating objects takes some time, while the list that is made from the split is probably much faster. –  deinonychusaur May 12 '12 at 22:12

That is not the type of Question which is welcome on stackoverflow. No one will do your work. The regex you need is really easy to find.

I suggest you this online tool: http://www.gskinner.com/RegExr/

It helps a lot finding Regular Expressions

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1  
This is not the type of answer which is welcome on StackOverflow either (well, it isn't an answer at all). You should post this as a comment, maybe. –  Tim Pietzcker May 12 '12 at 21:47

You can write this regular expression:

re.match('Chr(\d+)_.*','Chr6_clust92082')
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I think you want a period before that asterisk: _.* instead of _*. –  Sasha Chedygov May 12 '12 at 19:57
    
You are making an assumption here, that number has only one digit. –  theharshest May 12 '12 at 19:58
    
I agree with both of you, I just took the samples as assumption but it would be a better answer for the OP. Corrected, thanks. –  Boud May 12 '12 at 20:00

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