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When I increment a variable following error displayed only if the value of variable is 08 or 09

a=08; ((a++)); echo "$a"

Output

~$ a=08;  ((a++));  echo "$a"
bash: ((: 08: value too great for base (error token is "08")
08

What's wrong ??
I want result 09 (not 9. I know 9 can be achieved by bc <<< "08+01" )

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3 Answers

up vote 6 down vote accepted

When you prefix a number with a zero, the shell thinks it's an octal number, and octal digits go only from 0 to 7.

You might want to keep the number without the leading zero, so it's a normal decimal number, and only add the leading zero when printing the value instead.

a=8; ((a++)); printf "%02d\n" $a
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Adding @pixelbeat code it's works fine. a=08; a="echo $(expr "$a" + 1)"; printf "%02d\n" $a –  totti Apr 1 '13 at 7:04
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Numbers with leading 0 are interpreted as octal

You could use a separate expr process: echo $(expr "$a" + 1)

Or you could use bash specific construct an force base 10 directly: echo $((10#$a+1))

Or you could use expr to format the var to decimal once: a=$(expr "$a" + 0)

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Thanks for echo $(expr "$a" + 1) –  totti Apr 1 '13 at 7:05
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When you put a zero behind a number, it is considered in octal base, where don't exists 09 elements.

Remove 0 of number declaration, if you are working with decimal numbering.

Check google for octal numbers and bash for more clarification.

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