1

I have this code:

printf -v s '%(%S)T' -1 # grab the current second
if ((s == 0)); then
  # at the top of the minute, run some code
fi

This code throws an error on the eighth and ninth second of every minute:

bash: ((: 08: value too great for base (error token is "08")
bash: ((: 09: value too great for base (error token is "09")

How can I rectify this? Basically, we need to suppress the leading zero in the date output generated by printf.

5
  • 2
    s=${s##*0} is a simply parameter expansion to remove all leading zeros. Dec 19, 2017 at 6:25
  • @DavidC.RankinDav what about s=10? That would remove everything.
    – PesaThe
    Dec 19, 2017 at 9:36
  • @DavidC.Rankin this may be better: shopt -s extglob; s=${s##+(0)}.
    – PesaThe
    Dec 19, 2017 at 9:41
  • Agreed. extglob provides a better way to protect non-leading zeros. Another is substring replacement, e.g. ${a//^0*/} Dec 19, 2017 at 18:06
  • @DavidC.Rankin The anchor should be actually #. However, using ${a//#0*/} won't help (# is not considered an anchor here because of the extra /), neither will ${a/#0*/} (# is considered an anchor here but it will discard everything if the number starts with at least one 0 -- because of the *). I see only one possible option, using extglob again: ${a/#+(0)/} or ${a/#*(0)/}.
    – PesaThe
    Dec 20, 2017 at 1:50

1 Answer 1

4

Use a - prefix in the format string, thus:

printf -v s '%(%-S)T' -1

This suppresses the leading zero.

A more generic way of solving this is to specify the base in Bash arithmetic this way, while keeping the printf command unchanged:

if ((10#$s == 0)); then

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