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I'm trying to extract the time from a string using bash, and I'm having a hard time figuring it out.

My string is like this:

US/Central - 10:26 PM (CST)

And I want to extract the 10:26 part.

Anybody knows of a way of doing this only with bash - without using sed, awk, etc?

Like, in PHP I would use - not the best way, but it works - something like:

preg_match( ""(\d{2}\:\d{2}) PM \(CST\)"", "US/Central - 10:26 PM (CST)", $matches );

Thanks for any help, even if the answer uses sed or awk

0

6 Answers 6

304

Using pure :

$ cat file.txt
US/Central - 10:26 PM (CST)
$ while read a b time x; do [[ $b == - ]] && echo $time; done < file.txt

another solution with bash regex :

$ [[ "US/Central - 10:26 PM (CST)" =~ -[[:space:]]*([0-9]{2}:[0-9]{2}) ]] &&
    echo ${BASH_REMATCH[1]}

another solution using grep and look-around advanced regex :

$ echo "US/Central - 10:26 PM (CST)" | grep -oP "\-\s+\K\d{2}:\d{2}"

another solution using sed :

$ echo "US/Central - 10:26 PM (CST)" |
    sed 's/.*\- *\([0-9]\{2\}:[0-9]\{2\}\).*/\1/'

another solution using perl :

$ echo "US/Central - 10:26 PM (CST)" |
    perl -lne 'print $& if /\-\s+\K\d{2}:\d{2}/'

and last one using awk :

$ echo "US/Central - 10:26 PM (CST)" |
    awk '{for (i=0; i<=NF; i++){if ($i == "-"){print $(i+1);exit}}}'
4
  • Cool! Any chance I use also the hyphen "-" in the pattern? because that grep returns some matches, and I'm only interested in the one that has the hyphen and then a space and then the time.....
    – andrux
    Nov 14, 2012 at 4:59
  • I could've probably got the perl solution, but it's an excellent plus. Thanks!
    – andrux
    Nov 14, 2012 at 5:26
  • 1
    Thank you for let me know the \K "trick". grep with perl syntax is really powerful. Oct 8, 2014 at 12:31
  • 2
    I like the sed version but wanted to warn others that sed doesn't necessarily take + modifier. One way to work around is to use {1, } modifier to match one or more.
    – CodeBrew
    Jan 27, 2020 at 20:42
165
    echo "US/Central - 10:26 PM (CST)" | sed -n "s/^.*-\s*\(\S*\).*$/\1/p"

-n      suppress printing
s       substitute
^.*     anything at the beginning
-       up until the dash
\s*     any space characters (any whitespace character)
\(      start capture group
\S*     any non-space characters
\)      end capture group
.*$     anything at the end
\1      substitute 1st capture group for everything on line
p       print it
8
  • 27
    I feel like this made me an instant sed master. One good option I can tweak is better than nine I don't understand.
    – Noumenon
    Jan 11, 2017 at 22:04
  • 2
    Thanks for the detailed explanation, helps to avoid future "how do I regexp XXXX" posts.
    – studgeek
    Feb 8, 2017 at 20:23
  • 6
    Could you explain why you first suppress printing with -n then request printing again with /p? Wouldn't it be the same to omit the -n flag and omit the /p directive? Thanks. Aug 2, 2017 at 8:18
  • 4
    @VictorZamanian from here: "By default, sed prints every line. If it makes a substitution, the new text is printed instead of the old one. If you use an optional argument to sed, "sed -n," it will not, by default, print any new lines. ... When the "-n" option is used, the "p" flag will cause the modified line to be printed."
    – tdashroy
    Nov 12, 2019 at 20:21
  • 4
    It outputs an empty line on macOS both in bash and zsh
    – Finesse
    May 19, 2020 at 4:46
39

Quick 'n dirty, regex-free, low-robustness chop-chop technique

string="US/Central - 10:26 PM (CST)"
etime="${string% [AP]M*}"
etime="${etime#* - }"
3
  • 10
    That is so disgustingly dirty that I'm ashamed I didn't think of it myself. +1 | read zone dash time apm zone works too Apr 30, 2015 at 1:05
  • Very clean, and avoids calls to external programs. Aug 2, 2017 at 8:20
  • 27
    Hi, this would be 10x more useful if it included a reference to further documentation or some names around the technique so that people could go off and research more. For the interested, this is bash string manipulation, and you can find more details here: tldp.org/LDP/abs/html/string-manipulation.html Oct 15, 2018 at 15:38
6

If your string is

foo="US/Central - 10:26 PM (CST)"

then

echo "${foo}" | cut -d ' ' -f3

will do the job.

3
  • 2
    or cut -c14-18 of course only as long as the character position isn't changing. which shouldn't happen if the Timezone is fixed.
    – Markus
    Jan 21, 2020 at 12:58
  • doesn't answer the question which specifically asks for a regex based solution
    – Aurovrata
    Aug 4, 2022 at 8:18
  • 1
    @Aurovrata : Yes, you're right. So I would suggest : tim=$(print -- "${foo}" | grep -Eo "[[:digit:]]+:[[:digit:]]+") ; # assuming every record has the same format ... but this is not BASH but ksh Aug 12, 2022 at 17:34
0

No need to open a pipe and spawn sed or awk to extract the 10:26 (time) part. Bash can easily handle this.

input="US/Central - 10:26 PM (CST)"
[[ $input =~ ([0-9]+:[0-9]+) ]]
echo ${BASH_REMATCH[1]}

Outputs:

10:26

If you're using zsh, it's the same, except the match result will be in $match[1] instead of $BASH_REMATCH[1]

In 2023, I don't think the extra pipe to grep, sed, awk or perl are relevant, especially when the question is:

Anybody knows of a way of doing this only with bash - without using sed, awk, etc?

-2

foo="US/Central - 10:26 PM (CST)"

echo ${foo} | date +%H:%M

1
  • 2
    Hello Jimbro, welcome to StackOverflow! Unfortunately this is not the solution to the problem. Note, that OP wants to extract the date from the string and your solution returns the current date. Jul 19, 2021 at 21:53

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