11

I have a command which spouts a number of lines to stdout:

$ listall
foo
bar
baz

How do I extract a random entry from this, in a one-liner (preferably without awk) so I can just use it in a pipe:

$ listall | pickrandom | sed ... | curl ...

Thanks!

6 Answers 6

20
listall | shuf | head -n 1
2
  • Excellent, exactly what I needed (I didn't know about shuf) - thanks!
    – AnC
    Feb 27, 2010 at 9:15
  • 12
    actually "listall | shuf -n 1" seems enough
    – xiechao
    Feb 27, 2010 at 10:27
4

Some have complained about not having shuf available on their installs, so maybe this is more accessible: listall | sort -R |head -n 1. -R is "sort randomly".

1
  • 1
    I'm afraid -R is not available on OS X.
    – AnC
    Feb 4, 2017 at 8:53
3

you can do it with just bash, without other tools other than "listall"

$ lists=($(listall)) # put to array
$ num=${#lists[@]} # get number of items
$ rand=$((RANDOM%$num)) # generate random number
$ echo ${lists[$rand]}
0
2

Using Perl:

  • perl -MList::Util=shuffle -e'print((shuffle<>)[0])'

  • perl -e'print$listall[$key=int rand(@listall=<>)]'

1
  • Thank you. While more complex than just using shuf, this might come in handy sometime.
    – AnC
    Feb 27, 2010 at 9:16
2

This is memory-safe, unlike using shuf or List::Util shuffle:

listall | awk 'BEGIN { srand() } int(rand() * NR) == 0 { x = $0 } END { print x }'

It would only matter if listall could return a huge result.

For more information, see the DADS entry on reservoir sampling.

1
  • Good to know, thanks! It's not a concern for this particular case, but I hadn't even thought of this issue before...
    – AnC
    Feb 27, 2010 at 9:46
0

Save the following as a script (randomline.sh):

#! /bin/sh
set -- junk $(awk -v SEED=$$ 'BEGIN { srand(SEED) } { print rand(), $0 }' | sort -n | head -1)
shift 2
echo "$@"

and run it as

$ listall | randomline.sh

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