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To cut last field in string I use:

command:         echo /dir1/dir2/dir3/file | awk -F "/" '{ print $NF; }'
output:          file

How can I get everything to the left from the last delimiter in the same string?

desired output:  /dir1/dir2/dir3   

Thanks for you help

Rasty

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3 Answers 3

up vote 2 down vote accepted

bash in itself is powerful enough to do this:

VAR="/dir1/dir2/dir3/file" echo ${VAR%/*}
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This is the coolest one in my opinion as there's no need to use another command. It's only matter of variable and echo. THANKS! –  rasty.g Jul 16 '11 at 14:19
3  
you don't even need echo: filename=${VAR##*/}; pathname=${VAR%/*} –  glenn jackman Jul 16 '11 at 16:00
    
ssapkota & Glenn, you guys rock! –  Bob Feb 27 at 21:30

I guess you are looking for the dirname command.

> dirname /dir1/dir2/dir3/file
/dir1/dir2/dir3    

Just for completeness: basename.

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Perfect! Exactly. I need directory in a filepath. THANKS! But still, how can the cut be done? –  rasty.g Jul 16 '11 at 13:57
1  
VAR=/path/to/file/name; pathname=$(dirname "$VAR") –  glenn jackman Jul 16 '11 at 16:01

If you're working with file names specifically, dirname and basename are the tools for the job:

pax$ dirname /dir1/dir2/dir3/file
/dir1/dir2/dir3

pax$ basename /dir1/dir2/dir3/file
file

For arbitrary delimiters, you can use sed:

pax$ echo /dir1/dir2/dir3/file | sed 's?/[^/]*$??'
/dir1/dir2/dir3

pax$ echo /dir1/dir2/dir3/file | sed 's?^.*/??'
file

The first replaces the sequence "slash followed by zero or more non-slashes to the end of the line" (/file) with nothing. The second replaces everything from the beginning of the line to the last slash (/dir1/dir2/dir3/) with nothing.

If you want the output of those commands assigned to variables, you can use $():

pax$ filespec=$(basename /dir1/dir2/dir3/file) ; echo $filespec
file
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Thanks for commands and explanation. With these commands I can cut any strings (not only paths). Thanks! –  rasty.g Jul 16 '11 at 14:14

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