31

In a text file, test.txt, I have the next information:

sl-gs5 desconnected Wed Oct 10 08:00:01 EDT 2012 1001

I want to extract the hour of the event by the next command line:

hour=$(grep -n sl-gs5 test.txt | tail -1 | cut -d' ' -f6 | awk -F ":" '{print $1}')

and I got "08". When I try to add 1,

 14 echo $((hour+1))

I receive the next error message:

./test2.sh: line 14: 08: value too great for base (error token is "08")

If variables in Bash are untyped, why?

  • 1
    The leading 0 is leading to bash trying to interpret your number as an octal number, but octal numbers are 0-7, and 8 is thus an invalid token. – Charles Addis Jan 21 '17 at 20:00
80

See ARITHMETIC EVALUATION in man bash:

Constants with a leading 0 are interpreted as octal numbers.

You can remove the leading zero by parameter expansion:

hour=${hour#0}

or force base-10 interpretation:

$((10#$hour + 1))
  • 15
    You can also force the base-10 interpretation: $((10#$hour+1)). – chepner Oct 10 '12 at 16:03
  • This is not working for my bash and negative numbers: lat=-048 ; latd=${lat#0} ; echo $latd ; echo $((latd-1)) gives me -048 and then the same error. – Luis A. Florit Feb 12 '16 at 0:14
  • 1
    @LuisA.Florit: Of course, as #0 removes zero from the start of the string, and there's a - instead. Use shopt -s extglob ; latd=${latd#?(-)0}. – choroba Feb 12 '16 at 0:17
  • What's funny is that the $((10#$hour + 1)) does not work either for negative numbers. Thanks! – Luis A. Florit Feb 12 '16 at 0:22
  • The problem with that is that you get the absolute value (in the example, 47 instead of -49. It seems this needs a longer oneliner maybe with sed,bc or something that I wanted to avoid since mine is inside a big loop. I hate this octal thing bash do. It should be possible to configure it with a shopt. – Luis A. Florit Feb 12 '16 at 0:28
11

what I'd call a hack, but given that you're only processing hour values, you can do

 hour=08
 echo $(( ${hour#0} +1 ))
 9
 hour=10 
 echo $(( ${hour#0} +1))
 11

with little risk.

IHTH.

8

You could also use bc

hour=8
result=$(echo "$hour + 1" | bc)
echo $result
9
  • It worked for me so +1 however, I was looking for some simple soln like result=int("$hour + 1") – Somum Aug 24 '15 at 11:22
1

How about sed?

hour=`echo $hour|sed -e "s/^0*//g"`
1

Since hours are always positive, and always 2 digits, you can set a 1 in front of it and subtract 100:

echo $((1$hour+1-100))

which is equivalent to

echo $((1$hour-99))

Be sure to comment such gymnastics. :)

0

Here's an easy way, albeit not the prettiest way to get an int value for a string.

hour=`expr $hour + 0`

Example

bash-3.2$ hour="08"
bash-3.2$ hour=`expr $hour + 0`
bash-3.2$ echo $hour
8
  • This just produces the string 08+0 – Jim Garrison Jan 20 '17 at 23:13
  • what shell are you using @JimGarrison – jbrahy Jan 21 '17 at 19:56
  • 1
    Worked for me. Thanks! – Johnny 3653925 Jan 21 '17 at 20:01
0

The leading 0 is leading to bash trying to interpret your number as an octal number, but octal numbers are 0-7, and 8 is thus an invalid token.

If I were you, I would add some logic to remove a leading 0, add one, and re-add the leading 0 if the result is < 10.

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