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I have file names that end in yyyymmdd, eg: myFile.20090601, myFile20090708 , etc

I want to grep for a pattern in all files from June 08 to July 07 of 2009, ie: 20090609 to 20090707

How can I do a regex in one go?

I tried:

grep 'myPattern' *20090(6(09|[1-3][0-9])|70[1-7])
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Why would you want to use a regular expression for this? –  Lars Haugseth Jul 8 '09 at 14:53
    
I want to grep for a pattern in those files. –  Saobi Jul 8 '09 at 14:55
1  
+1 - not sure why this was downvoted - i wish people would leave comments when they downvote so we can use them to appreciate where they are coming from –  Faisal Vali Jul 8 '09 at 14:55
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nregex.com/nregex/default.aspx is a great site to try out regex's –  Tim Hoolihan Jul 8 '09 at 14:56
    
I can understand downvoting, because he is NOT talking about regular expressions, but, rather, regular Unix pattern matching, which is not regex. The question should be rather "how do I list files according to a regular expression" or "how do I list these files with unix pattern matching". –  Daniel C. Sobral Jul 8 '09 at 20:41
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4 Answers 4

up vote 4 down vote accepted
20090(6(09|[1-3][0-9])|70[1-7])$

or

20090(6(0[89]|[1-3][0-9])|70[1-7])$

depending on whether you meant 8th or 9th of July (your question seems contradictory there).

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Actually, I meant how to I construct it so I can use it to grep for a a pattern in those files. As in I should be able to do: grep 'myPattern' *20090(6(09|[1-3][0-9])|70[1-7])$ But it returns an error when I do this. –  Saobi Jul 8 '09 at 14:56
    
ls -1 myFile.* | grep '20090(6(0[89]|[1-3][0-9])|70[1-7])$' | xargs grep <pattern> –  Lars Haugseth Jul 8 '09 at 15:11
    
Still does not work. –  Saobi Jul 8 '09 at 15:19
    
*20090(6(09|[1-3][0-9])|70[1-7])$ is not a regex, and it won't match what youe want. Also, the shell doesn't expand regexes... and a regex won't match a date range... –  Osama ALASSIRY Jul 8 '09 at 15:20
    
So what are my options? –  Saobi Jul 8 '09 at 15:21
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grep 'myPattern' `ls | grep -E "20090(6(09|[1-3][0-9])|70[1-7])"`

This works roughly as follows. Take a list of files in the current directory (ls), filter that using the date regex (ls | grep ...), then perform a grep search using your pattern, on the list of files that is produced (grep 'myPattern' ...). The back-ticks surrounding the ls | grep ... executes that part of the command and substitutes in the output of that command into the surrounding command. So if it produced output like "file1 file2 file3", then it would result in a command like grep 'myPattern' file1 file2 file3.

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You should change " into ', otherwise, depending on the shell, the wildcard might get expanded. –  Daniel C. Sobral Jul 8 '09 at 20:44
    
I think that there should be no asterisk at the beginning of the grep -E parameter. –  Svante Jul 8 '09 at 20:46
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I'd suggest a perl/python script (or any other scripting language) that takes 3 parameters:

  1. The pattern
  2. Start date as yyyymmdd
  3. End date as yyyymmdd

It would :

  1. decode start and end date.
  2. loop through the files in a folder
  3. decode any dates in the filename
  4. check if it's between the dates, and grep the pattern
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The range of valid dates is 06–30 for June and 01—07 for July. Because the ranges of days are dissimilar, we should use separate regexes for each month. These are

/2009 06 (09 | [12][0-9] | 30)/x

(Notice how the day ranges are divided into cases depending on the tens place, because there are different conditions on what is valid for the units place depending.)

And

/2009 07 0[1-7]/x

and then we can join them into

/(2009 06 (09 | [12][0-9] | 30)) | (2009 07 0[1-7])/x

and then factor out the common points (may not be the best for readabilty) and add the end-of-line assertion:

/2009 0 (6 (09 | [12][0-9] | 30)) | (7 0[1-7]) $/x
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And you need to manually do this for every date range... –  Osama ALASSIRY Jul 8 '09 at 15:25
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