104

I can't seem to be able to increase the variable value by 1. I have looked at tutorialspoint's Unix / Linux Shell Programming tutorial but it only shows how to add together two variables.

I have tried the following methods but they don't work:

i=0

$i=$i+1 # doesn't work: command not found

echo "$i"

$i='expr $i+1' # doesn't work: command not found

echo "$i"

$i++ # doesn't work*, command not found

echo "$i"

How do I increment the value of a variable by 1?

4
  • assignments to variables won't have the leading $ character on the LHS of the expression.
    – shellter
    Jan 10, 2014 at 2:29
  • How to increment a variable in bash?
    – phuclv
    Sep 25, 2018 at 9:59
  • 2
    for the expr one, it's not working because they have to be backticks ( ` ) rather than single quotes ( ' ) Feb 3, 2020 at 18:28
  • (only shows how to add together two variables - well, they show assignment of a sum of literals: val=`expr 2 + 2`.)
    – greybeard
    Apr 11, 2021 at 15:20

4 Answers 4

184

You can use an arithmetic expansion like so:

i=$((i+1))

or declare i as an integer variable and use the += operator for incrementing its value.

declare -i i=0
i+=1

or use the (( construct.

((i++))
2
  • 10
    The first variant also works in dash (which is sh on many systems). The two others do not. Dec 8, 2021 at 7:03
  • 2
    The two others are not POSIX compliant - I think they are bash only. So stick to the first one for maximum portability. Jan 27, 2022 at 1:11
12

The way to use expr:

i=0
i=`expr $i + 1`

The way to use i++ (unless you're running with -e/-o errexit):

((i++)); echo $i;

Tested in gnu bash.

4

you can use bc as it can also do floats

var=$(echo "1+2"|bc)
0

These are the methods I know:

ichramm@NOTPARALLEL ~$ i=10; echo $i;
10
ichramm@NOTPARALLEL ~$ ((i+=1)); echo $i;
11
ichramm@NOTPARALLEL ~$ ((i=i+1)); echo $i;
12
ichramm@NOTPARALLEL ~$ i=`expr $i + 1`; echo $i;
13

Note the spaces in the last example, also note that's the only one that uses $i.

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