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Shouldn't ("bar"):find("(foo)?bar") return 1, 3?

print(("bar"):find("(foo)*bar")) and print(("bar"):find("(foo)-bar")) won't work either.

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2 Answers 2

up vote 5 down vote accepted

This is because parentheses in Lua's patterns (quite unfortunately) do not serve as a grouping construct, only as a delimiters of capturing groups. When you write a pattern (foo)?bar, Lua interprets it as "match f,o,o,?,b,a,r, capture foo in a group". Here is a link to a demo. Unfortunately, the closest you can get to the behavior that you wanted is f?o?o?bar , which of course would also match fbar and oobar, among other wrong captures.

this code

print(("bar"):find("f?o?o?bar"))

returns 1 3

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You're searching for string "(foo)bar" or "(foobar" from string "bar", the questionmark ? only points to the last character.

If you want it to point to the whole word, use [] instead: ("bar"):find("[foo]?bar")

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1  
"(foo)?bar" is supposed to be a pattern, where "foo" can appear 0 to 1 time and "bar" is always supposed to appear. Applied to the "bar" string it should logically return the position of "bar" but it returns nil. –  Morhaus Jan 20 '13 at 13:13
    
@Morhaus Right, check my complete edit. Such a long time since I've been coding lua, didn't remember the pattern matching anymore. –  user1632861 Jan 20 '13 at 13:18
    
The thing with [foo] is that it will match either "f" or "o", but I'm trying to match whether "foobar" or "bar". –  Morhaus Jan 20 '13 at 13:21
    
@Morhaus Then I'm out of ideas. But I'm sure it can be done somehow –  user1632861 Jan 20 '13 at 13:24
    
you'll probably have to use two different expressions to do the capture, unfortunately. lua's pattern matching grammar aren't regexs. –  Mike Corcoran Jan 20 '13 at 16:05

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