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I'm trying to write a bash function which will take all the arguments sent to it and push them through sed to delete lines in a file that match the arguments. A use case example:

to_delete get the trash

I can get it to "almost" work like this:

function to_delete() { sed -i -e "/$@/d" /tmp/testfile; }

The problem with this is it will only work if I send a single command line argument:

to_delete get

If I send more than one it returns this error:

sed: 1: "/get": unterminated regular expression

It will also work if I throw quotes around the arguments:

to_delete "get the trash"

But I'd rather not have to do that.

Any ideas on how to get this working? Thanks.

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4  
Having quotes seems like a reasonable approach. It's a single argument with 3 words, not 3 separate arguments –  Mikhail Nov 5 '10 at 18:26

2 Answers 2

up vote 2 down vote accepted

The problem you have with $@ is that it expands in separately quoted arguments.

You could in theory use $* instead because this hasn't the feature.

BUT $* will have the arguments separated by the first character of IFS (usually a space).

So the trouble is if you do something:

to_delete foo   bar baz

The pattern will look like:

/foo bar baz/d

(Only one space).

All this mess is avoided if you use a quoted argument, nothing wrong with this.

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awesome, thanks –  jerodsanto Nov 5 '10 at 19:07

Quotes is a good option. If you still insist in having this, one option would be something like this:

function to_delete() { sed -i -e "/`echo $@`/d" /tmp/testfile; }

The problem was that $@ get separated into several arguments. This have several problems, though, for instance, the search term having the character '/', for instance.

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This will also have the problem of not preserving the number of spaces/tabs whatever IFS is set to thing. –  Peer Stritzinger Nov 5 '10 at 18:43
    
You can use an alternate delimiter chosen to be a character that doesn't appear in the file. An example using colons: "\:$(echo $@):d –  Dennis Williamson Nov 5 '10 at 18:54

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