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How to sort an array in BASH

I have numbers in the array 10 30 44 44 69 12 11.... How to display the highest from array?

echo $NUM //result 69

marked as duplicate by fancyPants, PaulG, ЯegDwight, David Basarab, meagar Oct 5 '12 at 16:55

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up vote 30 down vote accepted

You can use sort to find out.

#! /bin/bash
ar=(10 30 44 44 69 12 11)
IFS=$'\n'
echo "${ar[*]}" | sort -nr | head -n1

Alternatively, search for the maximum yourself:

max=${ar[0]}
for n in "${ar[@]}" ; do
    ((n > max)) && max=$n
done
echo $max
  • Thank you very much And if there was a string instead of numbers? ar=("dsasd" "dsdas" "dasdsadaasdadadsadad") – Charlie Oct 5 '12 at 10:49
  • @Charlie: Then you can use the string comparison [[ $n > $max ]]. Also, you can then remove the initialization of max. – choroba Oct 5 '12 at 10:55
  • 1
    Or maybe ar[0] if there's only one element... – choroba Aug 8 '16 at 10:40
  • @TNT: I don't understand your comment. I used (( n > max )) for numbers and recommended [[ $n > $max ]] for strings. – choroba Aug 26 '16 at 11:02
  • @choroba Sorry, didn't read carefully. – TNT Aug 31 '16 at 11:40

try this:

a=(10 30 44 44 69 12 11 100)

max=0
for v in ${a[@]}; do
    if (( $v > $max )); then max=$v; fi; 
done
echo $max

result in 100

  • Here's the same issue as in the answer above -- there's a problem with max=0 -- what if all args are negative? .. Here's a better solution -- stackoverflow.com/a/40719447/2107205 – mato Nov 21 '16 at 18:41

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