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I've came across a problem while writing some code up for a game. It seems I cant use variables in statements like;

local Username = "Cranavvo"
game.Players.Username:BreakJoints() -- Kills the player

And the output is telling me "No such user as 'Username'" which should be "Cranavvo".

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3 Answers

up vote 7 down vote accepted

From Lua PiL on tables

To represent records, you use the field name as an index. Lua supports this representation by providing a.name as syntactic sugar for a["name"].

A common mistake for beginners is to confuse a.x with a[x]. The first form represents a["x"], that is, a table indexed by the string "x".

Therefore, when you try:

game.Players.Username:BreakJoints()

Lua interprets it as:

game["Players"]["Username"]:BreakJoints()

which ofcourse is wrong. If you want to use varying name as index for your table, use them like this:

local var1, var2 = "Players", "Cranavvo"
game[var1][var2]:BreakJoints()
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Double check if the user really exists at the time your code gets executed.

Also it should be:

game.Players.Username:BreakJoints()

EDIT:

I misread what you wanted to do: in

...Players.Username

lua interprets Username as a named index and does not use the Username variable declared beforehand.

If you want to access an array variable with a dynamic name you can do it like this:

game.Players[Username]:BreakJoints()

additionally in roblox you could just use the following:

game.Players:GetPlayerByID(userId):BreakJoints()
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That was just a write-up I did for StackOverflow as a e.g. My code on the script is correct and links up to the right libraries, it's just I need 'Username' to be defined as 'Cranavvo' which it's not doing. It thinks 'Username' is the name of a library. –  Connor Simpson Mar 31 '13 at 14:58
    
i updated my answer, you need to access dynamic variable names differently –  cppanda Mar 31 '13 at 15:12
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The correct way to do this in roblox is this:

local Username = "Cranavvo"
local p = game.Players:FindFirstChild(Username)
if(p ~= nil) then
    if(p.Character ~= nil) then
        p.Character:BreakJoints()
    end
end
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