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How to cut the last field in this shell string


So that the string would look like this


Thanks in advance!

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5 Answers 5

up vote 12 down vote accepted

I think you could use the "dirname" command. It takes in input a file path, removes the filename part and returns the path. For example:

$ dirname "/string/to/cut.txt"
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For what it's worth, a cut-based solution:

NEW_LINE="`echo "$LINE" | rev | cut -d/ -f2- | rev`/"
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I believe this is cutting off the first field, not the last? –  Michael Mar 7 '12 at 22:22
@Michael: I ran it through some tests here, and it seems to work fine. It does actually cut the first field, but it (rather inefficiently) reverses the string before and after, which has the desired overall effect. –  Lucas Jones Mar 10 '12 at 16:42
I can confirm this does indeed work, in both Unix and GNU implementations of cut. Obviously the dirname answer is better for the OPs specific use case, but I found this when searching for a general way to drop the last field with cut and this was it. –  jdeuce Jul 23 '12 at 18:04
@LucasJones It's worth noting that this is many, many times more efficient on multiline input, because dirname can only be run on one path at a time. For example, on find output the dirname alternative is find ... -exec dirname {} \;. The -exec makes it extremely slow. –  NickC Aug 28 '13 at 6:40

This will work in modern Bourne versions such as Dash, BusyBox ash, etc., as well as descendents such as Bash, Korn shell and Z shell.


or to keep the final slash:

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This should be the accepted answer because it is the fastest and most portable solution as it will work in any POSIX-compliant shell without requiring a fork. –  Adrian Frühwirth Feb 23 at 13:29
nice solution... thanks –  nishu Aug 5 at 11:53
echo "/string/to/cut.txt" | awk -F'/' '{for (i=1; i<NF; i++) printf("%s/", $i)}'
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How can we do that using cut? –  user558134 Dec 30 '10 at 13:56
@user558134 - not too sure cut support variable for last field, awk is more elegant –  ajreal Dec 30 '10 at 14:04
awk solved my issue much more easily and with less code, thanks for the tip. –  Michael Tunnell Oct 18 '13 at 8:16

echo $LINE | grep -o '.*/' works too.

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