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This is the command I want to translate into a zsh function, which does a global search and replace for a string:

find ./ -type f -exec sed -i 's/string1/string2/' {} \;

I tried:

gr () {
    find ./ -type f -exec sed -i 's/$1/$2/' {} \;
}

But it does not seem to work.

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migrated from superuser.com Mar 21 '13 at 18:11

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not very helpful without the output you are getting. How do you know it is not working? Have you run the zsh function with debug set? What is the output when invoked? –  mdpc Mar 21 '13 at 1:15

1 Answer 1

up vote 4 down vote accepted

The obvious error is the wrong quoting -- as always. ' prevents the shell to expand the variables, which is what you want. Use " instead -- and probably you also want the global flag for sed:

gr () {
    find ./ -type f -exec sed -i "s/$1/$2/g" {} \;
}

However, this is not very zsh-stylish... the following is shorter and IMHO better to read:

gr () {
    sed -i "s/$1/$2/g" **/*(.)
}
  • ** searches recursively, but does not follow symlinks (use *** if you want that)
  • (.) limits the results to plain files
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Thanks! It works! –  Grace Shao Mar 21 '13 at 16:16
    
Be careful if either the before or after text contains a /; make sure to escape them. For example, gr "meters per second" "m\/s" –  chepner Mar 24 '13 at 2:40
1  
Or use sed -i "s#${1//#/\\#}#${2//#/\\#}#g" **/*(.). It's ugly, but will ensure that any characters in the two arguments that match the sed delimiter will be properly escaped. –  chepner Mar 24 '13 at 2:54

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