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I am using the following to search a directory recursively for specific string and replace it with another:

grep -rl oldstr path | xargs sed -i 's/oldstr/newstr/g'

This works okay. The only problem is that if the string doesn't exist then sed fails because it doesn't get any arguments. This is a problem for me since i'm running this automatically with ANT and the build fails since sed fails.

Is there a way to make it fail-proof in case the string is not found?

I'm interested in a one line simple solution I can use (not necessarily with grep or sed but with common unix commands like these).

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the reason i want to keep it as simple as possible is because my script connects to a remote server and runs this line with SSH. if i would use a shell script for this, i would have to copy the shell script to the server before and then run it there. i'm trying to avoid it and keep it simple. thanks. –  Michael May 30 '11 at 16:14
1  
superuser.com/questions/257250/… –  user405725 May 30 '11 at 16:47
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7 Answers 7

up vote 44 down vote accepted

You can use find and -exec directly into sed rather than first locating oldstr with grep. It's maybe a bit less efficient, but that might not be important. This way, the sed replacement is executed over all files listed by find, but if oldstr isn't there it obviously won't operate on it.

find /path -type f -exec sed -i 's/oldstr/newstr/g' {} \;
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@Vlad: It is, because you're running a separate sed for each file instead of letting xargs batch them. That said, unless you're talking about several thousand tiny files, you're unlikely to notice a difference. –  geekosaur May 30 '11 at 16:29
    
@geekosaur: Oh, right.. I haven't thought about a number of execs shell should make. Good point! –  user405725 May 30 '11 at 16:33
    
thanks, i tried your solution. it did solve my return value problem, now it returns 0 when it doesn't find anything. the problem is that it returns : sed: no input files even though i have files with the oldstring in the directory. know why ? –  Michael May 30 '11 at 16:33
    
i'm using this in directory tree with possibly thousand of files to look in (although the amount of files that actually need change is not big) is that an issue ? –  Michael May 30 '11 at 16:35
    
If you're getting no input files from sed, did you remember the {} \;? The braces are the current filename as exec'd by find and without them sed will complain. –  Michael Berkowski May 30 '11 at 17:41
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Standard xargs has no good way to do it; you're better off using find -exec as someone else suggested, or wrap the sed in a script which does nothing if there are no arguments. GNU xargs has the --no-run-if-empty option, and BSD / OS X xargs has the -L option which looks like it should do something similar.

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thanks, i tried to use --no-run-if-empty but it still returns nonzero code (returns 1) and that would also trigger a build fail for me. how generic and common is find command ? –  Michael May 30 '11 at 16:25
    
find -exec goes back to 7th Research Edition UNIX; it should work anywhere that has find installed. –  geekosaur May 30 '11 at 16:27
    
+1 I'm surprised the xargs -r fix is not mentioned in more answers. For this limited use case, it's simple and sufficient. –  tripleee Aug 30 '13 at 10:48
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I think that without using -exec you can simply provide /dev/null as at least one argument in case nothing is found:

grep -rl oldstr path | xargs sed -i 's/oldstr/newstr/g' /dev/null
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could be a very neat workaround. sadly i get sed: couldn't edit /dev/null: not a regular file :) –  Michael May 30 '11 at 16:41
    
@michael: Turns out - running anything like this will actually crash the shell because of too many arguments... See superuser.com/questions/257250/… –  user405725 May 30 '11 at 16:48
    
there are a lot of files in my directory but only few of them contain the string i want to change. so i am not so worried about too many arguments to sed. –  Michael May 30 '11 at 17:04
    
@michael: The solution listed there with 10 votes should do the job. –  user405725 May 30 '11 at 17:08
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I have taken Vlad's idea and changed it a little bit. Instead of

grep -rl oldstr path | xargs sed -i 's/oldstr/newstr/g' /dev/null

Which yields

sed: couldn't edit /dev/null: not a regular file

I'm doing in 3 different connections to the remote server

touch deleteme
grep -rl oldstr path | xargs sed -i 's/oldstr/newstr/g' ./deleteme
rm deleteme

Although this is less elegant and requires 2 more connections to the server (maybe there's a way to do it all in one line) it does the job efficiently as well

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And this script save my life! –  workdreamer Oct 9 '13 at 15:24
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Your solution is ok. only try it in this way:

files=$(grep -rl oldstr path) && echo $files | xargs sed....

so execute the xargs only when grep return 0, e.g. when found the string in some files.

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If you are to replace a fixed string or some pattern i would also like to add the bash builtin pattern string replacement variable substitution construct. Instead of describing it myself i am quoting the section from the bash manual. It has it all documented excellently.

${parameter/pattern/string}

          The pattern is expanded to produce a pattern just as in pathname
          expansion.   Parameter is expanded and the longest match of pat-
          tern against its value is replaced  with  string.   If  Ipattern
          begins  with /, all matches of pattern are replaced with string.
          Normally only the first match is replaced.   If  pattern  begins
          with  #, it must match at the beginning of the expanded value of
          parameter.  If pattern begins with %, it must match at  the  end
          of  the expanded value of parameter.  If string is null, matches
          of pattern are deleted and the / following pattern may be  omit-
          ted.   If  parameter  is  @  or *, the substitution operation is
          applied to each positional parameter in turn, and the  expansion
          is  the  resultant list.  If parameter is an array variable sub-
          scripted with @ or *, the substitution operation is  applied  to
          each  member  of  the  array  in  turn, and the expansion is the
          resultant list.
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My use case was I wanted to replace foo:/Drive_Letter with foo:/bar/baz/xyz In my case I was able to do it with the following code. I was in the same directory location where there were bulk of files.

find . -name "*.library" -print0 | xargs -0 sed -i '' -e 's/foo:\/Drive_Letter:/foo:\/bar\/baz\/xyz/g'

hope that helped.

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