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I have a bash script that processes all of the files in a directory using a loop like

for i in *.txt do ops..... done

There are thousands of files and they are always processed in alphanumerical order because of '*.txt' expansion.

Is there a simple way to random the order and still insure that I process all of the files only once?

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why do you want to do this? –  ennuikiller Dec 16 '09 at 19:27

6 Answers 6

up vote 3 down vote accepted

Assuming the filenames do not have spaces, just substitute the output of List::Util::shuffle.

for i in `perl -MList::Util=shuffle -e'$,=$";print shuffle<*.txt>'`; do
    ....
done

If filenames do have spaces but don't have embedded newlines or backslashes, read a line at a time.

perl -MList::Util=shuffle -le'$,=$\;print shuffle<*.txt>' | while read i; do
    ....
done

To be completely safe in Bash, use NUL-terminated strings.

perl -MList::Util=shuffle -0 -le'$,=$\;print shuffle<*.txt>' |
while read -r -d '' i; do
    ....
done


Not very efficient, but it is possible to do this in pure Bash if desired. sort -R does something like this, internally.

declare -a a                     # create an integer-indexed associative array
for i in *.txt; do
    j=$RANDOM                    # find an unused slot
    while [[ -n ${a[$j]} ]]; do
        j=$RANDOM
    done
    a[$j]=$i                     # fill that slot
done
for i in "${a[@]}"; do           # iterate in index order (which is random)
    ....
done

Or use a traditional Fisher-Yates shuffle.

a=(*.txt)
for ((i=${#a[*]}; i>1; i--)); do
    j=$[RANDOM%i]
    tmp=${a[$j]}
    a[$j]=${a[$[i-1]]}
    a[$[i-1]]=$tmp
done
for i in "${a[@]}"; do
    ....
done
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1  
It's not necessary to use dollar signs for array subscript variables or array subscript expressions: a[j]=${a[i-1]}. Also man bash says "The old format $[expression] is deprecated and will be removed in upcoming versions of bash." (in favor of $(()) for example in your j=$[RANDOM%i]) –  Dennis Williamson Dec 17 '09 at 1:37

You could pipe your filenames through the sort command:

ls | sort --random-sort | xargs ....
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which sort command are you using? /bin/sort has no such option –  ennuikiller Dec 16 '09 at 19:33
    
I'm using sort (GNU coreutils) 6.10 –  tangens Dec 16 '09 at 19:34
    
GNU coreutils sort has it, though some versions had bugs where its effectiveness varied by locale. –  ephemient Dec 16 '09 at 19:34
    
@tangens you should specify that in your answer. Not all unix/linux distros come with the gnu toolset. –  ennuikiller Dec 16 '09 at 19:36
    
it's kinda funny that a "sort" utility has a random option!! –  ennuikiller Dec 16 '09 at 19:38

Here's an answer that relies on very basic functions within awk so it should be portable between unices.

ls -1 | awk '{print rand()*100, $0}' | sort -n | awk '{print $2}'

EDIT:

ephemient makes a good point that the above is not space-safe. Here's a version that is:

ls -1 | awk '{print rand()*100, $0}' | sort -n | sed 's/[0-9\.]* //'
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Breaks if any filenames contain whitespace. –  ephemient Dec 16 '09 at 19:48
    
Hopefully nobody ever creates them, but embedded newlines in filenames will still trip this up. –  ephemient Dec 16 '09 at 20:35

If you have GNU coreutils, you can use shuf:

while read -d '' f
do
    # some stuff with $f
done < <(shuf -ze *)

This will work with files with spaces or newlines in their names.

Off-topic Edit:

To illustrate SiegeX's point in the comment:

$ a=42; echo "Don't Panic" | while read line; do echo $line; echo $a; a=0; echo $a; done; echo $a
Don't Panic
42
0
42
$ a=42; while read line; do echo $line; echo $a; a=0; echo $a; done < <(echo "Don't Panic"); echo $a
Don't Panic
42
0
0

The pipe causes the while to be executed in a subshell and so changes to variables in the child don't flow back to the parent.

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More specifically, coreutils≥6.1, I believe. Personally I'd prefer shuf -ze * | while read over done < <(shuf -ze *) but effectively they're the same. –  ephemient Dec 17 '09 at 1:15
    
The reason I like done < <() is that it parallels done < filename (which avoids using cat unnecessarily). –  Dennis Williamson Dec 17 '09 at 1:27
    
@ephemient The process substitution way < <(foo) has the added benefit that it does not create a sub-shell like the pipe method does. –  SiegeX Dec 17 '09 at 9:55

Here's a solution with standard unix commands:

for i in $(ls); do echo $RANDOM-$i; done | sort | cut -d- -f 2-
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your solution doesn't work if filenames contain spaces –  Dwight Kelly Dec 16 '09 at 20:07
    
changing $(ls) to * will let it work with spaces. –  dustmachine Dec 16 '09 at 20:08
2  
ls, sort, and cut aren't pure Bash commands. Also fails in the horrible case of filenames containing embedded newlines. –  ephemient Dec 16 '09 at 20:34
1  
See my updated answer for a couple pure-Bash shuffles, which incidentally handle odd filenames without problems. –  ephemient Dec 16 '09 at 20:54
    
@ephemient: Thanks for that solution. I didn't know the Fisher-Yates shuffle before. –  tangens Dec 16 '09 at 21:14

Here's a Python solution, if its available on your system

import glob
import random
files = glob.glob("*.txt")
if files:
    for file in random.shuffle(files):
        print file
share|improve this answer
    
To satisfy the original question, this wants a if file.endswith('.txt'). Or maybe you could turn it into something more generic like shuf... –  ephemient Dec 17 '09 at 2:55

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