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I'm trying to match a string that contains Lua code.

a = [[workspace.Object["Child"]:remove()]]

to do this, I'm trying to create an option where either .x or ['x'] would be matched regardless of what order they are in or how many of them there are.

A couple problems I have run into:

  • How do I match more than one combined character/pattern between brackets? [abc] matches a or b or c, but not abc.
  • How do I add a modifier to %b[]? ex. %b[]+ to match ['x']['x']['x']
  • If I could match something like %[.-%] *, that would work the same.
share|improve this question
    
What do you want your match or find to return? –  hjpotter92 Feb 27 '13 at 15:43
    
I'm not looking to capture anything, I just wait it to be able to recognize any combination of x.y.z and x[y][z] and x[y].z.w[v] etc. –  Waffle Feb 27 '13 at 20:07

1 Answer 1

up vote 1 down vote accepted

Lua does not fully support regexps.
But you can do your task step-by-step, using intermediate strings.

local str0 = [[workspace.Object["Child"]['xx'][5].xxx:remove()]]
local str = str0
   :gsub('%b[]',
      function(s)
         return s:gsub('^%[%s*([\'"]?)(.*)%1%s*%]$','{%2}')
      end
   )
   :gsub('[%.:]%s*([%w_]+)','{%1}')

print(str0)
print(str)
print()
for w in str:gmatch'{(.-)}' do
   print(w)
end

---------------------------
-- output
---------------------------
workspace.Object["Child"]['xx'][5].xxx:remove()
workspace{Object}{Child}{xx}{5}{xxx}{remove}()

Object
Child
xx
5
xxx
remove

EDIT :

local str0 = [[workspace.Object["Child"]['xx'][5][ [=[xxx]=] ]:remove()]]
local str = str0
   :gsub('%b[]',
      function(s)
         return s:gsub('^%[%s*([\'"]?).*%1%s*%]$','{%0}')
      end
   )
   :gsub('%.%s*[%w_]+','{%0}')
   :gsub(':%s*[%w_]+%s*([\'"]).-%1','{%0}')
   :gsub(':%s*[%w_]+%s*%b()','{%0}')
   :gsub('{(:%s*remove%s*%(%s*%))}','%1')
   :gsub('}%s*{', '')
   :gsub('([%w_]+)%s*(%b{})%s*:%s*remove%s*%(%s*%)',
      function(s1, s2)
         return 'removefilter('..s1..s2:match'^{(.*)}$'..')'
      end
   )
   :gsub('([%w_]+)%s*:%s*remove%s*%(%s*%)','removefilter(%1)')
   :gsub('[{}]', '')

print(str0)
print(str)

---------------------------
-- output
---------------------------
workspace.Object["Child"]['xx'][5][ [=[xxx]=] ]:remove()
removefilter(workspace.Object["Child"]['xx'][5][ [=[xxx]=] ])
share|improve this answer
    
The ["']? is necessary, but what about cases where strings are in brackets; ex. [[string]], [=[string]=], [======etc. –  Waffle Feb 27 '13 at 20:25
    
@Waffle - Do you mean workspace.Object[ [[Child]]] ? –  Egor Skriptunoff Feb 27 '13 at 20:57
    
Yes, where things would be written as, [[[Child]]] or [[=[Child]=]] rather than ["Child"] Another question though: How would this be read? Would it see the [[ ]] and think =[Child]= is the string, or would it see the [ ] and think it must be indexing something and [=[ ]=] is indicating that Child must be the string? –  Waffle Feb 27 '13 at 21:02
    
@Waffle - Object[[[Child]]] is not a correct Lua expression. –  Egor Skriptunoff Feb 27 '13 at 21:29
    
@Waffle - Object[[=[Child]=]] is attempt to call a function Object('=[Child]='). –  Egor Skriptunoff Feb 27 '13 at 21:33

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