2

I want to extract a number of variable length from a string.

The string looks like this:

used_memory:1775220696

I would like to have the 1775220696 part in a variable. There are a lot of questions about this, but I could not find a solution that suits my needs.

9

You can use cut:

my_val=$(echo "used_memory:1775220696"  | cut -d':' -f2)

Or also awk:

my_val=$(echo "used_memory:1775220696"  | awk -F':' '{print $2}')
6

Use parameter expansion:

string=used_memory:1775220696
num=${string#*:}              # Delete everything up to the first colon.
  • Note that this will also work in any POSIX-compliant shell, not just bash. – chepner Apr 15 '13 at 15:17
5

I used to use egrep

echo used_memory:1775220696 | egrep -o [0-9]+

Output:

1775220696
3

bash supports regular-expression matching, but for a simple case like this it is overkill; use parameter expansion (see choroba's answer).

For the sake of completeness, here's an example using regular expression matching:

[[ $string =~ (.*):([[:digit:]]+) ]] && num=${BASH_REMATCH[2]}
2

use the regex:

s/^[^:]*://g

you use it with sed or perl and get the part you needed.

> echo "used_memory:1775220696" | perl -pe 's/^[^:]*://g'
1775220696
1

Can be done using awk, like this:

var=`echo "used_memory:1775220696" | awk -F':' '{print $2;}'`
echo $var

output:

1775220696
0

If your number could be anywhere in the string, but you know that the digits are contiguous, you can use shell parameter expansion to remove everything that is not a digit:

$ str=used_memory:1775220696
$ num=${str//[!0-9]}
$ echo "$num"
1775220696

This works also for used_memory:1775220696andmoretext and 123numberfirst. However, something like abc123def456 would become 123456.

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