1

I have decimal numbers stored in strings.

The numbers which are < 100 are stored in this way "045" or "005".

When using these number strings in arithmetic operations like let A="045"+"009" these numbers are treated as octal numbers like indicated in the man page.

To treat them as decimal I added 10# at the beginning of the number strings like that

let A="10#045"+"10#123"

but this solution causes an error -ash: let: arithmetic syntax error in my bash from BusyBox (Installed on OpenWRT)

Is there another solution for my busybox shell?

Note: The operation should evaluated with let because I need theses numbers in other kind of operations like bitwise operation.

  • 1
    Can you use expr instead? – Michael Gardner May 13 '13 at 13:08
  • @MichaelGardner I want to use bitwise also operation on theses numbers. And expr does not support bitwise operation – MOHAMED May 13 '13 at 13:10
3

busybox does not have bash, its shell is ash.

You can either strip the leading zeros off your variables, e.g.:

while [ "${n:0:1}" = "0" ]; do n="${n#?}"; done

or use expr:

$ echo $(expr 045 + 045)
90
  • There is no let in my answer. Use expr instead of let. – Adrian Frühwirth May 13 '13 at 13:05
  • e.g.: A="$(expr 045 + 045)" – Adrian Frühwirth May 13 '13 at 13:06
  • expr does not support bitwise operations – MOHAMED May 13 '13 at 13:08
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    No, but your question was how to simply add two numbers. If your goal is something else, you have to be more specific in your question. Also, you can break up your calculation to use both. – Adrian Frühwirth May 13 '13 at 13:11
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    You didn't ask about Bitwise, you asked about decimal arithmetic. – Michael Gardner May 13 '13 at 13:11
0

You can remove the zeros before doing the arithmetics:

n=005
shopt -s extglob
n1=${n##+(0)}
echo $n1

Output:

5

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