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I'm trying to write a bash script that takes a few variables and then does a find/replace with a given file search using grep to get the list of files that have the string. I think the issue I'm having is having the variables be seen in sed I'm not sure what else it might be.

if [ "$searchFiles" != "" -a "$oldString" != "" -a "$newString" != "" ]; then
   echo -en "Searching for '$searchFiles' and replacing '$oldString' with '$newString'.\n"
   for i in `grep $oldString $searchFiles |cut -d: -f1|uniq`; do
      sed -i 's/${oldString}/${newString}/g' $i;
   done
   echo -en "Done.\n"
else
   usage
fi

Thank you,
LF4

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You need double quotes for variable substitution in bash I think - sed -i "s/${oldString}/${newString}/g" $i; –  arunkumar Aug 11 '11 at 22:50

2 Answers 2

up vote 8 down vote accepted

use double quotes so the shell can substitute variables.

for i in `grep -l $oldString $searchFiles`; do
  sed -i "s/${oldString}/${newString}/g" $i;
done

if your search or replace string contains special characters you need to escape them: Escape a string for sed search pattern

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Thank you that did it and thanks for pointing out a place to help escape the string. That was my next thing to work on. –  LF4 Aug 12 '11 at 15:11

Use double quotes so the environmental variables are expanded by the shell before it calls sed:

  sed -i "s/${oldString}/${newString}/g" $i;

Be wary: If either oldString or newString contain slashes or other regexp special characters, they will be interpreted as their special meaning, not as literal strings.

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