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While creating my game in c# I ran into an issue will making a method which takes in a string, and compares it to another string.

if (Player.GetCurrentRoom() == Level.Rooms[2,0]
    && string.Equals(TextMethods.ExtractArgument(input), "fortune"))
{
  Level.Rooms[2, 0].AddExit("north");
}

Here it says that input is not recognized, while I have defined it in another class as

public static string ExtractInput(string line)
{
  string input = TextMethods.ExtractArgument(line);
  return input;
}

edit: here is the extractArgument method:

public static string ExtractArgument(string line)
{
  int index = line.IndexOf(' ');
  if (index == -1)
    return "";
  else
    return line.Substring(index + 1, line.Length - index - 1);
}

Any ideas on why this happens?

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3  
I don't understand your code. You're inputting input into the ExtractArgument method, so I assume input is a string. Why have you posted your ExtractInput method? –  keyboardP Jan 14 '12 at 16:03
2  
What do you mean, "input is not recognized"? Do you mean that Equals() returns false? Why are you showing us the code of ExtractInput() that you don't use in the code? What is input and what does TextMethods.ExtractArgument() do? –  svick Jan 14 '12 at 16:04
    
Input is not regonized as a variable in the if-function. Input is a an argument which the player enters to say open a locked door –  Herjo de Jong Jan 14 '12 at 16:10
    
You cannot access local variable outside of a function. –  Sungguk Lim Jan 14 '12 at 16:10
    
@HerjodeJong - Where do you define input? –  M.Babcock Jan 14 '12 at 16:11

2 Answers 2

In your second code you are showing a local variable called input inside a method. There is no way this variable is seen outside the method where it's declared.

If you want it to work like you want, you have to declare a property inside the second class:

public class Class2
{
    public static string Input { get; set; }

    public static string ExtractInput(string line)
    {
        return TextMethods.ExtractArgument(line);
    }
}

then use it in the first code:

if (Player.GetCurrentRoom() == Level.Rooms[2,0]
        && string.Equals(TextMethods.ExtractArgument(Class2.Input), "fortune"))
{
    Level.Rooms[2, 0].AddExit("north");
}
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1  
That's what the return is for. –  svick Jan 14 '12 at 16:05
1  
@svick: Um what? I believe he is confused about local variables vs class members. –  Tudor Jan 14 '12 at 16:07
    
You said that the value of the input local cannot be observed outside of the method. But the same variable is returned, so it can be observed by whatever code calls it. (Not that there is such code in the question.) –  svick Jan 14 '12 at 16:08
1  
@svick: It cannot be observed in the way he wants i.e. just put the name input in another class. –  Tudor Jan 14 '12 at 16:09
    
And I am confused by your code too. Is there some relation between Input and ExtractInput()? –  svick Jan 14 '12 at 16:10

If you have a local variable called input in one method, you can't directly access it from another method. After the method that contains the local variable finishes, the local variable doesn't exist anymore!

Maybe you're confused by languages like JavaScript, where you can declare a global variable in one method and then use it anywhere else. That's not what happens here.

If you want to work with the result of ExtractInput(), you can store it in a local variable in your current method:

string line = …;

string input = TextMethods.ExtractInput(line);

if (Player.GetCurrentRoom() == Level.Rooms[2,0]
    && TextMethods.ExtractArgument(input) == "fortune")
{
  Level.Rooms[2, 0].AddExit("north");
}

If you want to work with the result of ExtractInput() for a longer time (not just in one method), you can store it in a field.

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