8

So I'm trying to find square brackets inside a string:

s = "testing [something] something else"
x,y = string.find(s,"[")

which gives me an error: malformed pattern (missing ']').

I also tried:

x,y = string.find(s,"\[")

giving me the same error.

And this:

x,y = string.find(s,"\\[")

in this case x and y are nil.

Any thoughts on how to do this properly? Thanks in advance.

13

John's answer will work -- turning off pattern matching.

What you're trying to do -- escape the [ -- is done with the % character in Lua:

 x,y = string.find(s,'%[')

Also strings in Lua all have the string module as their metatable, so you could just say:

 x,y = s:find('%[')

or even:

 x,y = s:find'%['
4

Use the fourth argument to string.find, which turns off pattern-matching.

x, y = string.find(s, "[", nil, true)
  • That works fine, thank you. But what I'm trying to do now it to find this pattern: "[..:..]" which means: a bracket, two '.' meaning any character, the ':', again 2 '.', and another bracket. Should I split the problem in 2 or more string.find? Thanks. – Marcelo Machado May 20 '11 at 21:04
  • Oh Mud anwsered that: just use the '%[' so now i can use '.' as a wildcard character. thanks again – Marcelo Machado May 20 '11 at 21:15
  • 1
    Right—in that case use Mud's answer. You can escape a character such as [ with the % symbol; so you could use a pattern of "%[..:..%]". – John Calsbeek May 20 '11 at 21:16

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