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I have a directory with similarly named files, in this pattern:

00002_930831_fa.ppm  00398_940422_fa.ppm  00714_960530_fa.ppm
00002_930831_fb.ppm  00398_940422_fb.ppm  00714_960530_fb.ppm
00002_931230_fa.ppm  00399_940422_fa.ppm  00714_960620_fa.ppm
00002_931230_fb.ppm  00399_940422_fb.ppm  00714_960620_fb.ppm
00002_940128_fa.ppm  00400_940422_fa.ppm  00715_941201_fa.ppm
00002_940128_fb.ppm  00400_940422_fb.ppm  00715_941201_fb.ppm
00002_940422_fa.ppm  00401_940422_fa.ppm  00715_941205_fa.ppm
00002_940422_fb.ppm  00401_940422_fb.ppm  00715_941205_fb.ppm
00002_940928_fa.ppm  00402_940422_fa.ppm  00716_941201_fa.ppm
00002_940928_fb.ppm  00402_940422_fb.ppm  00716_941201_fb.ppm

What I need to do is remove for example all but two instances of the 00002 sample (doesn't matter which ones), so that I'm left for example with 00002_930831_fa.ppm and 00002_930831_fb.ppm. The problem is I need this done for all samples, 00003, 00004 and so on. I need to be left with two files for each sample.

I've tried with find but I'm not sure how to frase my condition.

Can this be solved by simply piping commands or do I have to solve it with a bash script?

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rm $(ls 00002_* | tail -n +3) – Majenko Jun 12 '14 at 20:14

4 Answers 4

up vote 1 down vote accepted

Using an associative array:


[[ BASH_VERSINFO -ge 4 ]] || {
    echo "You need Bash 4.0 or newer to run this script." >&2
    exit 1

declare -A COUNTER=()

for A in *.ppm; do
    IFS=_ read I __ <<< "$A"
    (( ++COUNTER[$I] > 2 )) && rm "$A" 


Skip 00002_930831_fa.ppm
Skip 00002_930831_fb.ppm
rm 00002_931230_fa.ppm
rm 00002_931230_fb.ppm
rm 00002_940128_fa.ppm
rm 00002_940128_fb.ppm
rm 00002_940422_fa.ppm
rm 00002_940422_fb.ppm
rm 00002_940928_fa.ppm
rm 00002_940928_fb.ppm
Skip 00398_940422_fa.ppm
Skip 00398_940422_fb.ppm
Skip 00399_940422_fa.ppm
Skip 00399_940422_fb.ppm
Skip 00400_940422_fa.ppm
Skip 00400_940422_fb.ppm
Skip 00401_940422_fa.ppm
Skip 00401_940422_fb.ppm
Skip 00402_940422_fa.ppm
Skip 00402_940422_fb.ppm
Skip 00714_960530_fa.ppm
Skip 00714_960530_fb.ppm
rm 00714_960620_fa.ppm
rm 00714_960620_fb.ppm
Skip 00715_941201_fa.ppm
Skip 00715_941201_fb.ppm
rm 00715_941205_fa.ppm
rm 00715_941205_fb.ppm
Skip 00716_941201_fa.ppm
Skip 00716_941201_fb.ppm

Note: Test it first on some dummy files.

Come to think of it:

IFS=_ read I __ <<< "$A"

Can just be

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Just use head or tail to filter your filename list:

ls 00002_* | tail -n +3 | xargs rm
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You might want to add a grep in there for 00002. He's only looking for files from the 00002 sample. So: ls | grep 00002 | tail -n +3 | xargs rm – Florin Stingaciu Jun 12 '14 at 20:13
OP wanted the 00002 files, so ls 00002_* and then everything else, I think. – MJB Jun 12 '14 at 20:13
@MJB: just did that, thanks. – nneonneo Jun 12 '14 at 20:14
Sorry -- I was answering while you answered. – MJB Jun 12 '14 at 20:14
this would be great but unfortunately I didn't frase my question correctly before posting... I edited it now – kolarek Jun 12 '14 at 20:27

Create an array that contains all matching file names, then use the substring parameter expansion operator to pass all but the first two elements as arguments to rm.

while read -r sample; do
  matching_files=( ${sample}_* )
  # To make sure at least two files survive:
  (( ${#matching_files[@]} > 2 )) && rm "${matching_files[@]:2}"
done < samples.txt
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this works well, thank you! the only problem is that some samples have only two files and using your code I would delete them as well... I'm afraid I'll have to use a counter of some sort – kolarek Jun 12 '14 at 20:43

with bash version 4:

declare -A files
for f in *ppm; do
    files[${f%%_*}]+="$f "
for i in "${!files[@]}"; do
    set -- ${files[$i]}
    shift 2
    (($# > 0)) && echo rm $*

Remove echo if you're satisfied it's selecting the right files to delete.

Won't work if there are any filenames with whitespace.

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