107

If I have a file with rows like this

/some/random/file.csv:some string
/some/random/file2.csv:some string2

Is there some way to get a file that only has the first part before the colon, e.g.

/some/random/file.csv
/some/random/file2.csv

I would prefer to just use a bash one liner, but perl or python is also ok.

7 Answers 7

165
cut -d: -f1

or

awk -F: '{print $1}'

or

sed 's/:.*//'
3
  • This is exactly what I needed to list only the names of folders that changed in a git diff starting with a particular pattern Aug 1, 2018 at 19:46
  • 2
    Lol I'm an idiot for forgetting about cut, just spent 10 minutes trying to do this regex and then literally facepalmed when I read your answer, thank you. Jun 3, 2019 at 18:45
  • Each of these commands launches another process within the script and so are less efficient than the pure bash method described below. May 6 at 0:54
125

Another pure BASH way:

> s='/some/random/file.csv:some string'
> echo "${s%%:*}"
/some/random/file.csv
5
  • 2
    this does not work as expected if there are more than one colons in the variable, since it cuts at the last occurrence and not as expected the first... use <code>${s%%:*}<code> instead
    – mmoossen
    Aug 29, 2017 at 6:53
  • 5
    That's right %% will suit better. It is edited now.
    – anubhava
    Aug 29, 2017 at 6:57
  • 1
    Works for me to strip only the wanted info from a list of words, one at a time, with the format [info]_mapping.json. echo "${s%%_mapping.json}" Mar 23, 2021 at 15:35
  • 1
    To target some other character, e.g. .: "${s%%.*}". To target any of several characters, e.g. . or -: "${s%%[.-]*}".
    – mrienstra
    Jan 23 at 21:55
  • 1
    ${s%%:*} for first colon, ${s%:*} for last colon. You might want either. May 6 at 0:59
43

Try this in pure bash:

FRED="/some/random/file.csv:some string"
a=${FRED%:*}
echo $a

Here is some documentation that helps.

3
  • awesome answer much appreciated
    – danday74
    Jan 10, 2017 at 3:23
  • Note that a single % only extracts to the first colon; use %% to extract to the last colon.
    – Doktor J
    Apr 16, 2021 at 13:33
  • 9
    Actually, it's the opposite: %% extracts up to the first, % to the last. Jun 18, 2021 at 11:18
7

This works for me you guys can try it out

INPUT='ubuntu:x:1000:1000:Ubuntu:/home/ubuntu:/bin/bash'
SUBSTRING=$(echo $INPUT| cut -d: -f1)
echo $SUBSTRING
5

This has been asked so many times so that a user with over 1000 points ask for this is some strange
But just to show just another way to do it:

echo "/some/random/file.csv:some string" | awk '{sub(/:.*/,x)}1'
/some/random/file.csv
1

Another pure Bash solution:

while IFS=':' read a b ; do
  echo "$a"
done < "$infile" > "$outfile"
1
  • +1 (with a minor edit); this is the standard way to read delimited text from a file in bash.
    – chepner
    Dec 3, 2013 at 14:57
1

You can try using basename with:

basename /some/random/file.csv:some :some

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