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How would I do a regex match as shown below but with quotes around the ("^This") as in the real world "This" will be a string that can have spaces in it.

#!/bin/bash

text="This is just a test string"
if [[ "$text" =~ ^This ]]; then
 echo "matched"

else
 echo "not matched"
fi

I want to do something like

    if [[ "$text" =~ "^This is" ]]; then

but this doesn't match.

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4 Answers

up vote 9 down vote accepted

You can use \ before spaces.

#!/bin/bash

text="This is just a test string"
if [[ "$text" =~ ^This\ is\ just ]]; then
  echo "matched"
else
  echo "not matched"
fi
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+1 This is definitely the way to do it. Bash regexes used with =~ should most often (always?) be unquoted. –  Dennis Williamson Oct 21 '09 at 9:32
    
That's good to hear. I've never used bash regexes before, I just experimented and found that \ worked. On S.O., it's correct until proven wrong! –  too much php Oct 21 '09 at 9:44
    
FWIW, this changed between Bash 3.1 and Bash 3.2. Bash 4.0 has a configurable shopt -s/-u compat31 to toggle between the behaviors. –  ephemient Oct 21 '09 at 15:33
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I did not manage to inline the expression like this:

if [[ "$text" =~ "^ *This " ]]; then

but if you put the expression in a variable you could use normal regex syntax like this:

pat="^ *This "
if [[ $text =~ $pat ]]; then

Note that the quoting on $text and $pat is unnessesary.

Edit: A convinient oneliner during the development:

pat="^ *This is "; [[ "   This is just a test string" =~ $pat ]]; echo $?
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The are no spaces at the beginning of $text so $pat should be "^This". Also, quoting the variables here is not only unnecessary, it won't work. +1 for showing the variable format. –  Dennis Williamson Oct 21 '09 at 9:39
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Have you tried:

^[\s]*This
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can you make your problem description clearer?

text="This is just a test string"
case "$text" in
    "This is"*) echo "match";;
esac

the above assume you want to match "This is" at exactly start of line.

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