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I have a file and I need to filter lines that have (or don't have) N occurrences of a pattern. I.e., if my pattern is the letter o and I what to match lines where the letter o occurs exactly 4 times, the expression should match the first of the following example lines but not the others:

foo foo  
foo  
foo foo foo   

I thouth I could do it with a regex in vim, or sed, awk, or any other tool. I've googled and haven't found anyone that has done a similar thing. Probably will have do a script or something similar to parse each line. Does anyone have done a similar thing?

Thanks

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grep -E -x '([^o]*o){4}[^o]*' –  Robert Bossy May 16 '11 at 14:57
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6 Answers

up vote 3 down vote accepted

A Perl one-liner :

perl -ne 'print if(tr/o/o/ == 4)' foo_file
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I voted your answer as right instead of Timofey Stolbov's answer because your's is shorter. Thanks. –  lodge May 15 '11 at 22:01
    
@lodge: Thank you. –  M42 May 16 '11 at 7:42
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You can use a regex like below:

(?=(.*o){4})(?!(.*o){5,}).*

Regexr - http://regexr.com?2toro

This should work with any pattern you want. For instance, you want to find lines with exactly four foos in it, use:

(?=(.*foo){4})(?!(.*foo){5,}).*

Regexr - http://regexr.com?2tosa

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I think your pattern fails in ooooo. –  MByD May 15 '11 at 1:09
    
@MByD - how? regexr.com?2toru –  manojlds May 15 '11 at 1:11
    
I am not familiar with this site, I will look at it. BTW - where do you see the results there? –  MByD May 15 '11 at 1:12
    
@MByD - see my updated link. Match is highlighted in blue. –  manojlds May 15 '11 at 1:15
    
@Yeah, figured that out. thanks(+1). –  MByD May 15 '11 at 1:18
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perl -lnwe '@c=$_=~/o/g;if(scalar(@c)==4){print $_}' file_to_parse
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Your answer worked fine but I voted M42 answer as right because it was shorter than your's. I voted your's as useful. Thanks. –  lodge May 15 '11 at 22:01
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In awk...

awk '{ if (gsub(/o/, "o") == 4) print }' # lines that matched
awk '{ if (gsub(/o/, "o") != 4) print }' # lines that didn't

If you're going to be doing this over and over with different patterns/match counts, and pattern isn't a regular expression, you could also do something like...

awk -v pattern=o -v matches=4 '{ if (gsub(pattern, pattern) == matches) print }'
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I used the perl answer from M42, but your's worked also so I voted it as useful. Thanks. –  lodge May 15 '11 at 22:01
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If you want to write code, then you can construct a DFA based string matching or i would tell you to have a look at the shift or string matching algorithm, which you can easily write. Then you can input the string to the proper datastructure as per the algorithm needs. Read http://en.wikipedia.org/wiki/Shift_Or_Algorithm for the shift-or string matching algorithm.

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It's possible, but not easy.

For the single letter case, an expression such as ^[^o]*o[^o]*o[^o]*o[^o]*o[^o]*$ would work. It basically looks for "not o" (zero or more) followed by "o" four times, and allows extra "not o" characters at the end.

But longer expressions are bit of a problem. For example, in order not to find the word "foo", you have to allow "f" and "fo" but not "foo". So to find a line with exactly twice "foo", you have to allow the line "ffofofoofoffoffoofoffofofo" which is not so easy to define.

To match "anything but 'foo'" you could use the expression ([^f]|f[^o]|fo[^o])* which allows "f" and "fo" and other things, but not "foo". But you can see how this can become annoying if the word is longer and you have to match it four times.

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Doesn't work and frankly, too complicated to afford not working - regexr.com?2tos1 –  manojlds May 15 '11 at 1:13
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