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I'm writing the following script:

v="1,pop";
sed "$v/d" dir/file1

It gives me this error:

char 3: unexpected `,'

How to solve this? Note: the value of $v cannot be controlled.

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What are you expecting the sed command to do? When the shell has finished expanding $v/d, you have an invalid sed command. It might that you're wanting to delete lines that match what's in $v, in which case, to a first approximation, you should use sed "/$v/d". If you're looking for lines 1 to the first line containing pop, you've got to do work on the value in $v to generate sed "1,/pop/d". If you want to do something else, you need to describe what it is you do want. –  Jonathan Leffler Jan 21 '13 at 5:10

3 Answers 3

up vote 0 down vote accepted

You are using sed in a wrong way.

$ v="1,pop";
$ cat file 
1,pop
Suku
JohnGeorge
stackoverflow
serverfault

$ sed '/'$v'/d' file
Suku
JohnGeorge
stackoverflow
serverfault

$ sed "/"$v"/d" file
Suku
JohnGeorge
stackoverflow
serverfault

If you want to substitute a bash variable inside sed, you need to surround it with quotes like I showed above. Also if you want to write modification to file, you need to use sed with -i.

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The quoting above is wrong: sed /$v/d file, sed '/'$v'/d' file, and sed "/"$v"/d" file all do exactly the same thing, because none of the characters in quotes are shell metacharacters, and all quoting does is suppress the interpretation of metacharacters. Mind you, if $v contains (certain) metacharacters, you want it to be in double-quotes. Thus, sed "/$v/d" file is the recommended form. –  Gordon Davisson Jan 21 '13 at 6:51

You need the hashbang so your shell knows how to execute the script.

#!/bin/sh

Then you'll get...

sed: 1: "1,pop/d": expected context address

...which tells your the commands were executed. :)

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Using this way in script

v="1,pop"

sed "/^$v$/{

d

}" dir/file1

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