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I have some text where each line of text has some good words and some bad(unwanted) words. So the pattern might look like this

good1-good2 good3 bad1-good4-bad2 some more good words
good1-good2 good3 bad1 bad2 
good1-good2 good3 bad1 bad2 bad3

Now i need to reject everything in a line following and including the first bad word So

good1-good2 good3 bad1-good4-bad2 some more good words should become good1-good2 good3

good1-good2 good3 bad1 bad2 should become good1-good2 good3

good1-good2 good3 bad1 bad2 bad3 should become good1-good2 good3

I am using python so this was what i did

p=re.compile('([\w \d-]+) (bad1|bad2|bad3).+',re.I)
m=p.search('good1-good2 good3 bad1-good4-bad2 ')
m.group(1)

and this gives good1-good2 good3 which is what i want but

m=p.search('good1-good2 good3 bad1 bad2 ')
m.group(1)

returns good1-good2 good3 bad1 I thought that because the + is greedy so the + in ([\w \d-]+) goes on matching characters till the end of the line and then it backtracks to find the last bad word which in this case is bad2 but when i do this

p=re.compile('([\w \d-]+) (bad1|bad2|bad3).+',re.I)
m=p.search('good1-good2 good3 bad1 bad2 bad3')
m.group(1)

it again returns good1-good2 good3 bad1. Can you please explain that? Because there might be a problem with my understanding of greediness in regex? Although i have figured out to solve this problem by using a regex like this ([\w \d-]+?) (bad1|bad2|bad3).+ but still i do not understand why using ([\w \d-]+) (bad1|bad2|bad3).+ always returns the first bad word(bad1 in this case)?

Thanks for the time.

Edit: But suppose i have a pattern with only good words and no bad words like good1-good2 good3--only good words then what should be the regex? i tried this regex ([\w \d-]+?) ?(bad1|bad2|bad3)?.* but this returns the first letter of the pattern.

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The first sub-pattern is also greedy, so it gets the most it can match, then the second one, etc... –  poncha Jun 20 '12 at 15:19
    
@poncha my problem is the third case. why does it return good1-good2 good3 bad1 when i am looking in good1-good2 good3 bad1 bad2 bad3? It should have returned good1-good2 good3 bad1 bad2 according to my understanding of greedy –  lovesh Jun 20 '12 at 15:28

1 Answer 1

up vote 3 down vote accepted

Regarding this case:

m=p.search('good1-good2 good3 bad1 bad2 ')

You are correct. ([\w \d-]+) is greedy so it "eats" as much as possible and backtracks.

Regarding this case however:

m=p.search('good1-good2 good3 bad1 bad2 bad3')

What you're probably not seeing is that your .+ has to match at least one character after the bad word. That's why the regex can't match bad3 as the bad word: if it did, it'd run out of characters for the .+ to match anything. Thus, it backtracks to bad2 once again. Change your .+ to .* to see the difference. It's only because you happened to have an extra space in the first case, i.e. bad2 , that things "worked out as expected" there.

In other words, some unfortunate coincidences left you confused; but your understanding of greediness is sound.

EDIT

For the edited part of the question, as written by @lovesh from the comments below:

([\w \d-]+?) ?(bad1|bad2|bad3|$)
share|improve this answer
    
Thanks a lot for the help. –  lovesh Jun 20 '12 at 15:48
    
i know i have accepted your answer but i just realized i had missed something. I have edited my question. Can you please help? Thanks –  lovesh Jun 20 '12 at 22:22
    
In your edit, it's only returning the first letter because you made the first part non-greedy, i.e. ([\w \d-]+?), so it would only need to match one letter while the .* takes the rest. I've been thinking about a solution, but it's actually a tricky problem... I'll get back to you. –  Andrew Cheong Jun 21 '12 at 15:05
1  
I think I got it. ^(.*?)(?=bad1|bad2|bad3|$). You can see it in action here: rubular.com/r/Ai1a96xPks. It basically says, "The shortest string followed by a bad word or the end-of-line." The $ has to be the last in the alternation list for this to work. –  Andrew Cheong Jun 21 '12 at 15:46
1  
Thanks. Thats smart. But i dont think you need the lookahead. I tried this ([\w \d-]+?)(bad1|bad2|bad3|$) and group(1) works –  lovesh Jun 21 '12 at 15:56

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