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In Bash, how do I declare a local integer variable, i.e. something like:

func() {
  local ((number = 0)) # I know this does not work
  local declare -i number=0 # this doesn't work either

  # other statements, possibly modifying number
}

Somewhere I saw local -i number=0 being used, but this doesn't look very portable.

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What do you mean by platform-independent? The Bash builtins are the same everywhere. –  larsmans Jun 25 '12 at 10:21
    
@larsmans Sry, meant portable. –  helpermethod Jun 25 '12 at 11:17

2 Answers 2

up vote 5 down vote accepted

Per http://www.gnu.org/software/bash/manual/bashref.html#Bash-Builtins,

local [option] name[=value] ...

For each argument, a local variable named name is created, and assigned value. The option can be any of the options accepted by declare.

So local -i is valid.

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+1 Didn't know it accepts the same options as declare. –  helpermethod Jun 25 '12 at 10:40
1  
local used to be an alias to declare, so it is not surprising (on Korn shell it still is an alias to typedef). –  cdarke Jun 25 '12 at 11:01

declare inside a function automatically makes the variable local. So this works:

func() {
    declare -i number=0

    number=20
    echo "In ${FUNCNAME[0]}, \$number has the value $number"
}

number=10
echo "Before the function, \$number has the value $number"
func
echo "After the function, \$number has the value $number"

And the output is:

Before the function, $number has the value 10
In func, $number has the value 20
After the function, $number has the value 10
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