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Say I'm in a directory and there's another directory called pictures with .jpg images inside that I want to run an operation on say "./operation image1.jpg" how can I do this for every jpg in the directory pictures? When I searched for iterating through files in a directory I could not get the output I wanted.

#!/bin/sh

cd pictures
pictures=$ls

for pic in $pictures
do
   ./operation $pic
done

That's the code I have. What am I doing wrong?

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If operation accepts multiple file arguments, maybe you could simply do operation pictures/*.jpg –  tripleee Apr 7 '12 at 6:48

3 Answers 3

Don't use ls to get the list of files, since that won't work well with spaces inside file names. It turns something like:

my file.jpg
another file.jpg

into:

my
file.jpg
another
file.jpg

Let bash handle the fil list and you won't run into that problem. Just remember to quote each file so that those with spaces in them are preserved whole:

#!/bin/sh
cd pictures
for pic in *.jpg ; do 
    ./operation "$pic"
done
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Much better. :-) –  Adam Liss Apr 7 '12 at 5:09

Also

find pictures/ -type f -name '*.jpg' -exec \./operation {} \;
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Aside from the fact that spaces in filenames would cause problems, your script would work, but your pictures=$ls assignment is incorrect. It should be pictures=$(ls)... If you ever need to consider whitespace in a variable, put double-quotes around it: "$var" ... Also, don't use ls as your source of filenames; it has many problems which other methods avoid; eg, use find or shell expansion as shown in paxdiablo's answer.

find gives great control over what you actually list and even how you process it.

Here are a couple more ways to do it.

# using find
find -maxdepth 1 -type f -name '*.jpg' -exec ./operation "{}" \;

# using an array
pic=(*.jpg)
for p in "${pic[@]}" ;do
  ./operation "$p"
done

# You can (with care) even use ls ... but why would you?  
# I've just added it here to show the use of IFS (Input Field Seperator)
IFS=$'\n'  # this makes `\n` the only delimiter.
pic=$(ls -1 *.jpg )
for p in $pic ;do
  ./operation "$p"
done
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FWIW, using "{}" in find does not make any difference, because "{}" is expanded by bash and {} is expanded by find, in that order. find will expand {} as a single argument, spaces in file name don't matter. –  pizza Apr 7 '12 at 10:31

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