I have this bash statement with perl regex:
echo $1 | perl -pe 's|(?:://).+?(?:/)|b|'
prints this:
httpbTesting/JS/displayName.js
from this:
http://php2-mindaugasb.c9.io/Testing/JS/displayName.js
I was expecting:
http://b/Testing/JS/displayName.js
Maybe I don't understand something about the non-capturing groups? I thought they are supposed to match, but not capture (like a positive lookahead and look behind combined). Am I mistaken?
You should use:
perl -pe 's|(//).+?(/)|$1b$2|'
Non capturing group doesn't mean that input text won't be consumed. Non-capturing parentheses group the regex so you can apply regex operators, but do not capture anything.
Or use lookarounds and avoid capturing groups:
echo "$1" | perl -pe 's|(?<=://).+?(?=/)|b|'
http://b/Testing/JS/displayName.js
s|://\K.+?(?=/)|b| - \K (not available in really old perls) sets where the consumption starts
(ab){2} regex you have captured group back-reference available as $1 but in (ab){2} you cannot use $1
(?:ab){2} 2nd time in above comment. To answer your question no non-capturing group doesn't discard the matches. It just doesn't keep it available in back-reference $1, $2, $3 etc.
/ab{2}/matchs strings containingabb, while/(?:ab){2}/matches strings containingabab. Example 2)/ab|c/matches strings containingaband strings containingc, while/a(?:b|c)/matches strings containingaband strings containingac