2

See Code Review

See Github Project

I need to parse out instances of +word+ line by line (replace +word+ with blank). I'm currently using the following (working) sed regex:

newLine=$(echo "$line" | sed "s/+[a-Z]\++//g")

This violates "SC2001" according to "ShellCheck" validation;

SC2001: See if you can use ${variable//search/replace} instead.

I've attempted several variations without success (The string "+word+" remains in the output):

newLine=$(line//+[a-Z]+/)
newLine=$(line/+[a-Z]+//)
newLine=$(line/+[a-Z]\++/)
newLine=${line//+[a-Z]+/}
and more..

I've heard that in some cases sed is necessary, but I would like to use Bash's built in find and replace if possible.

  • What do you mean by "without success"? What was wrong with your solutions? – choroba Mar 11 '17 at 20:39
  • The string "+word+" remains in the output. – Matt Mar 11 '17 at 20:40
4

The substitution in parameter expansion doesn't use regular expressions, but patterns. To get closer to regular expressions, you can turn on extended patterns:

shopt -s extglob
new_line=${line//++([a-Z])+}
  • Please provide example that exactly reproduces the behavior of : sed "s/+[a-Z]\++//g". The provided example does not seem to be parsing +word+. – Matt Mar 18 '17 at 20:52
  • @MatthewA.Brassey: The behaviour of [a-Z] depends on the current locale. Use a more explicit character class (e.g. [[:alnum:]]). – choroba Mar 19 '17 at 8:47
  • [[:alnum:]] was the solution! Thank you. – Matt Jun 3 '17 at 20:03

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.