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I'm trying to use a shell wildcard in sed. The following fails. (I expect foo as output.)

$ touch foo
$ ls
foo
$ echo *
foo
$ bar=*
$ echo $bar
foo
$ echo "$bar"
*
$ echo replace | sed "s/replace/${bar}/"
*
$ echo replace | sed "s/replace/"${bar}"/"
*

As expected, the penultimate command doesn't produce foo, since ${bar} is (double-)quoted. However, I expected the last command to expand the wildcard.

I can get either command to work after the following, though.

bar=$(echo *)

Further, I would have expected shell wildcard expansion in the following, which does not occur.

$ echo replace | sed s/replace/*/
*

However, this works.

$ echo replace | sed s/replace/$(echo *)/
qwe
share|improve this question
    
thats because * alone is not a command but echo * is, shell understands echo * as a command and substitutes the result with it after that sed comes to work. – Ashish Gaur Oct 20 '13 at 11:18
    
Have you tried this command?: echo replace | sed s/replace/$(echo ${bar})/ (Launching echo in a subshell and its stdout going to your sed command) – Gooseman Oct 20 '13 at 11:22
    
@snyder really? But I don't really see the difference between the command echo and the command sed. Similarly, you can use * in find, etc. I thought that bash would just always expand. – Sparhawk Oct 20 '13 at 11:40
    
@Gooseman Yes, that works too. – Sparhawk Oct 20 '13 at 11:41
up vote 3 down vote accepted

Your last command does try to expand the wildcard except that it fails. From man bash:

 Pathname Expansion
        After  word  splitting,  unless  the -f option has been set, bash
        scans each word for the characters *, ?, and [.  If one of these
        characters appears, then the word is regarded as a pattern, and
        replaced with an alphabetically sorted list of file names matching
        the  pattern.

As it says, bash tries to expand each word containing a * to matching filenames. In your case, it tries to expand to a filename beginning with s/replace/ and there is no such file. To prove this:

$ echo "aaaa" | sed "s@a@*@g"
****

$ echo "aaaa" | sed "s@a@"*"@g"
****

$ touch s@a@b@g

$ echo "aaaa" | sed "s@a@*@g"
****

$ echo "aaaa" | sed "s@a@"*"@g"
bbbb

As for the solution to your problem, you can use subshell expansion as mentioned in the comments.

share|improve this answer
1  
To further demonstrate, run shopt -s nullglob, then try the last command again. When the expansion fails, the entire argument to sed is removed, leaving your command as echo "aaaa" | sed, in which sed just reproduces its input. – chepner Oct 20 '13 at 13:18
    
Great answer! Very clear. Also, it's interesting to note that despite first impressions, my proposed solution and those in the comments are a non-useless use of echo. (Also, thanks @chepner, that is also interesting.) – Sparhawk Oct 21 '13 at 5:13
    
@Sparhawk bash supports bar=*; foo=replace; echo "${foo/replace/$bar}", so there may not be a need for sed at all here. – chepner Oct 21 '13 at 12:46
    
@chepner I've never come across that within-variable replacement before. What is it called, so I can search more and educate myself? However, this doesn't seem to work for me (i.e. it outputs *). – Sparhawk Oct 21 '13 at 13:21
    
It's a bash extension, documented as "Pattern substitution" under "Parameter Expansion" in the bash man page. Quoting the argument to echo prevents the * from being expanded before it is passed to echo. Unquoting it would allow the * which results from the expansion to be expanded before echo gets it. – chepner Oct 21 '13 at 13:32

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