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Is find lazy in bash?

I'm trying to go through a directory tree to get all *.jpg files where there are at least 700k files in a 3 level directory tree using the following script:

for im in $(find $1 -name '*.jpg');
    echo im;

    # Do something with im... 

but is taking to long without printing anything from the echo and I'm sure the script works (I tested it with 50k files with 3 levels directory tree and it takes less time but at the end it prints everything).

Maybe there's a lazy version of find or something I could use to get those echo to show while the script is running.

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1 Answer 1

up vote 7 down vote accepted

$() will allocate all of find's output at once. Use while read loop instead with process substitution (recommended with bash) or pipe:

while IFS= read -r im; do
done < <(exec find "$1" -name '*.jpg')

exec is my style and is optional. Since we only run one command inside the subshell summoned by process substitution, having another fork may not be necessary.


find "$1" -name '*.jpg' | while IFS= read -r im; do
    # Unfortunately anything that happens here is already inside
    # a subshell so any variable changes would not affect the
    # parent shell.

If you have irregular filenames like filenames having a newline, use \x00 as delimeter:

while IFS= read -r -d '' im; do
done < <(exec find "$1" -name '*.jpg' -print0)

If one of your commands inside the loop reads input, it would be necessary to use another file descriptor to prevent those commands from reading input from find:

while IFS= read -ru 4 -d '' im; do
done 4< <(exec find "$1" -name '*.jpg' -print0)
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So find is lazy, but only if you invoke it the right way. That worked thanks – Jcao02 Aug 12 '14 at 16:13
Well, find isn't lazy, but bash runs it in a parallel process that it reads from, as opposed to waiting for find to complete before starting the loop. – chepner Aug 12 '14 at 16:44

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