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I am new to C# from java and am getting an error regarding ambiguity. Please let me know what needs to be corrected.

public class JessiahP3 
{
    boolean  isPlaying =  false;
    int strings  = 1;
    boolean isTuned = false;
    public String instrumentName;

    //is tuned
    public void isTuned() 
    {
        isTuned = true;
        System.out.println("Currently tuning " + getInstrumentName());
    }

    //not tuned
    public void isNotTuned() 
    {
        isTuned = false;
        System.out.println(getInstrumentName() + " is not tuned");
    }
}
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2  
What is the precise error message? –  Oliver Charlesworth Nov 28 '11 at 1:31
    
Would be helpful if you said where the ambiguity error happens, buddy. –  Strelok Nov 28 '11 at 1:31
3  
System.out.println is from Java. This isn't C# code. –  Daniel Mann Nov 28 '11 at 1:34
1  
@DBM lol good spot. No idea what's going on here. –  Strelok Nov 28 '11 at 1:36
    
Welcome to C#. You'll enjoy writing programs via it. –  Danny Chen Nov 28 '11 at 2:23

4 Answers 4

You have a variable and function named isTuned.

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Error says ambuguity between JessiahP3.isTuned and JessiahP3.isTuned(). @DBM I had changed the println statement there is no error there. Only with the ambiguity. –  Jessiah Campbell Nov 28 '11 at 1:40
    
Throw us a bone and accept some answers. :) –  BNL Nov 28 '11 at 15:41

Might I suggest the following as more idiomatic C#.

  1. Use properties instead of public fields.
  2. Prefer automatic getter/setters for properties when appropriate.
  3. Properties names should begin with capitals
  4. Explicitly specify visibility

--

public class JessiahP3
{
    private int strings  = 1;
    public string InstrumentName { get; set; }
    public boolean IsPlaying { get; set; }
    public boolean IsTuned { get; set; }
}
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I see three obvious errors here.

  1. You have isTuned used as both a variable and a method name within the same type.
  2. System.out.println will need to be Console.WriteLine.
  3. boolean should be bool (or Boolean)

That being said, in C#, this would often be done as a single property (along with changing getInstrumentName() to an InstrumentName property):

bool isTuned = false;

bool IsTuned
{
    get { return isTuned; }
    set 
    { 
         this.isTuned = value; 
         Console.WriteLine( isTuned ? "Currently tuning " + this.InstrumentName : this.InstrumentName + " is not tuned" );
    } 
}
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You have a field and a method with the same signature. See isTuned.

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Problem solved. Thanks for everyone's input. –  Jessiah Campbell Nov 28 '11 at 1:42

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