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I am trying to delete files from the Unix directory which starts with EXPORT_v1x0 and whose date is less than 2013-01-25 (Jan 25th 2013). I can delete the files one by one but it will take few days for me to delete all the files. Is there any better way to delete the files with the specific pattern?

Below are the sample files when I do ls

bash-3.00$ ls /data/bds/real
EXPORT_v1x0_20120811.dat.gz 
EXPORT_v1x0_20120811.dat.gz   

If you see the above files. Each file has a date in that. Suppose we take this file into the consideration-

EXPORT_v1x0_20120811.dat.gz

It's date is 20120811 So I need to delete all the files which starts with EXPORT_v1x0 and whose date is less than 20130125. So If I am supposed to delete all the files having date less than 20130125 then all the files above I mentioned will get deleted as there dates are less than 20130125.

NOTE:- All the files are having same pattern exactly as I mentioned above. Only date and other numbers followed by that are different.

So I just need to delete all the files which starts with EXPORT_v1x0 and whose date is less than 20130125.

I am running SunOS. I am still in the process of learning Unix better. So not sure of any high ends commands and scripts.

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2 Answers 2

up vote 1 down vote accepted

A first naive approach to the problem, tweek it to your needs:

find . | awk -F'_' '$3<20130125' | xargs rm

To prevent find from doing a recursive search and just stay in current folder:

find . \( ! -name . -prune \) -type f | ...

2nd update:

Add the name parameter to only list files that contains the string "EXPORT_v1x0"

find . \( ! -name . -prune \) -type f -name "EXPORT_v1x0*" | ...

Simpler way to make find non-recursive is to use the maxdepth flag

find . -maxdepth 1 -type f -name "EXPORT_v1x0*" | ...
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Thanks Fredrik for the suggestion. If I need to do some dry run before deleting the files then should I just remove xargs rm right? –  lining Feb 3 '13 at 19:53
    
exactly. and the find command is extremely versatile and with different parameters you can narrow down the files listed to match exactly those you're after –  Fredrik Pihl Feb 3 '13 at 19:55
    
If I am trying this command find . | awk -F'_' '{if($3 < 20121025)print}' then it is printing all the files from other directories as well not from the current directory in which I am there. I will be deleting all the files from the current directory. Any thoughts what changes I need to make in that? –  lining Feb 3 '13 at 19:58
    
And one more thing, there are other files as well in that same directory having dates as well. I need to delete all the files which starts with EXPORT_v1x0 this and has the date pattern less than I mentioned in my question. I am going to edit my question as well. –  lining Feb 3 '13 at 20:02
    
See updated answer –  Fredrik Pihl Feb 3 '13 at 20:04

WARNING: Be very careful

You list the files that you want like this:

ls -1 | awk -F _ '$3<"20130125"'

if that gives the proper list of files, you can do

ls -1 | awk -F _ '$3<"20130125"' | xargs rm
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Thanks Vaughn for the suggestion. When I tried your first suggestion to print the files, I got this exception bash-3.00$ ls -1 | awk -F _ '$3<"20130125" {print}' awk: syntax error near line 1 awk: bailing out near line 1 . WHy? Because of different Unix flavor I am running? –  lining Feb 3 '13 at 19:56
    
mywiki.wooledge.org/ParsingLs :-) –  Fredrik Pihl Feb 3 '13 at 19:59
    
@TechGeeky: I'm not sure. That is very basic awk. Make sure the single quotes and double quotes are right. –  Vaughn Cato Feb 3 '13 at 19:59
    
@TechGeeky: Actually, the {print} is unncessary. I've removed it. Although it shouldn't have caused a problem. –  Vaughn Cato Feb 3 '13 at 20:01
    
@Fredrik: Agreed this isn't a good approach in general, but for this very specific case it seems like a quick and easy way to get it done. –  Vaughn Cato Feb 3 '13 at 20:04

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