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I'm currently working on a shell script and i've to check if a string A in contained in string B.

So i immediately wrote out (with "key" as example)

if [ `echo "$KEY" | grep "\$"` ]

However for some reason, on my shell script the output of

echo "$KEY" | grep "\$"

returns "value"

After testing the same command on zshrc i got a different result (nothing as expected)

Anyone knows where it might come from ?

Edit : After reworking how i wrote out my script, i changed the "" quotes to '' and got a correct result for

echo "$KEY" | grep '\$'

However my test is still getting through writing out

[ if `echo "$KEY" | grep '\$'` ]
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If you want echo to print a literal string $KEY you need to put it in single quotes, not double. Apparently in your first experiment you had defined an environment variable KEY containing the string value. –  tripleee Jan 7 '13 at 16:14
    
And grep '$' matches all inputs. If you want to grep for a literal dollar sign, grep -F '$' or grep '\$' (or equivalently grep "\\$") or grep '[$]' does that. –  tripleee Jan 7 '13 at 16:18
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1 Answer

up vote 3 down vote accepted

A more idiomatic and straightforward way is to use the shell's case statement. The syntax is slightly eerie and there are still some metacharacters to cope with, but not the full regex set like with grep.

case '$key' in
  *\$* ) echo contained ;;
  * ) echo not ;;
esac
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