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I'm searching through a number of directories for "searchstring", and then running a script on each $file:

for file in `find $dir -name ${searchstring}'*'`;
do
    echo $file >> $debug
    script.sh $file >> $output
done

My $debug file yields the following:

/root/0007_searchstring/out/filename_20120105_020000.log
/root/0006_searchstring/out/filename_20120105_010000.log
/root/0005_searchstring/out/filename_20120105_013000.log
(filename is _yyyymmdd_hhmmss.log) ...

Is there a way to get find to order by filename or by mktime? Should I pipe find to sort first? Make an array then sort it as per this question?

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|sort -n seems pretty reasonable to me -- provided your sort implementation supports -n – fge Jan 6 '12 at 11:19
up vote 1 down vote accepted

If you want to ignore the directory path and just use the file name, then you should be able to use:

for file in `find $dir -name ${searchstring}'*' | sort --field-separator=/ --key=4`;
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Thanks, I didn't know sort could do this. I ended up using sort -t/ -k 4 – Alex L Jan 9 '12 at 2:17

'ls -t' if you need to regenerate the list based on timestamp.

'sort -n' if the list is fairly static?

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+1 for using "ls -t" – qbert220 Jan 6 '12 at 11:29

To sort by modification time, you can use stat with find:

$ find . -exec stat {} -c '%Y %n' \; | sort -n | cut -d ' ' -f 2
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You can pipe the output of find through sort to sort by filename:

find $dir -name "${searchstring}*" | sort | while read file
do
    echo "$file" >> $debug
    script.sh "$file" >> $output    
done
share|improve this answer

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