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I'm new to programming, I'm sorry if this is a silly mistake, but I keep getting this error "CompanyAddress.java:11: error: cannot find symbol System.out.println(testObject.getName(CompanyName));" I don't know what I'm doing wrong.

The main.

import java.util.Scanner;
public class CompanyAddress
{
  public static void main(String[] args)
  {
     Scanner scan = new Scanner(System.in);
     test testObject = new test();
     System.out.println("Enter name: ");
     String input = scan.nextLine();
     testObject.getName(input);
     System.out.println(testObject.getName(CompanyName));
  }
}   

my test.java

import java.util.Scanner;
public class test 
{
    String Name;

    public String getName(String CompanyName) 
    {
        Name = CompanyName;
        return Name;
    }


}
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6  
A side comment. One of the naming conventions widely used in Java is that variable names should start with a lowercase character. –  fivedigit Nov 24 '12 at 18:00
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5 Answers

up vote 2 down vote accepted

First of all you need to declare your variable companyName, before passing it to your method.

Secondly, your method: -

public String getName(String CompanyName) 
{
    Name = CompanyName;
    return Name;
}

Seems strange to me. You are using the same method as getter and setter.

You should have separate setter and getter: -

public void setName(String companyName) {
    name = companyName;
}

public String getName() {
    return name;
}

And invoke them separately.

testObject.setName(companyName);

System.out.println(testObject.getName());

Just a suggestion: -

Follow Java Naming Convention. Field names and method names should start with lowercase alphabet.

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@Downvoter.. Please comment, because I don't think what is your intent behind downvoting. –  Rohit Jain Nov 24 '12 at 18:01
    
I upvoted, because this is the best answer so far. In addition to answering the OP's question you also added som good advice, which from the OP's code examples, was needed. –  Joe Dyndale Nov 24 '12 at 18:04
    
+1 you beat me by minutes.. :-) perfect answer –  Mukul Goel Nov 24 '12 at 18:07
    
Thanks a lot, I get it, but is there anyway of only using one method? –  Kingboom4 Nov 24 '12 at 18:08
    
Yeah, you could change your getName method so that it checked if the input parameter was null, and if so only returned the existing value - and then you would just use System.out.println(testObject.getName(null));. But that really would be a terrible method to have in your application. –  Joe Dyndale Nov 24 '12 at 18:13
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System.out.println(testObject.getName(CompanyName));

What CompanyName this here? It is not known symbol. It could be System.out.println(testObject.getName("CompanyName"));

or

String CompanyName ="name";
System.out.println(testObject.getName(CompanyName);
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please comment for downvote... –  Subhrajyoti Majumder Nov 24 '12 at 18:03
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You have to declare the variable CompanyName. Something like this:

String CompanyName = "CompanyName1";
System.out.println(testObject.getName(CompanyName));

Since you are modifying a variable you should do:

public class test
{
       String Name;

        public void setName(String CompanyName) {this.Name = CompanyName;}

        public String getName()                 {return Name;}

}

The method getName will return the name of the "Company" and the setName will modify the name of the "Company". This way you can separate different concerns.

Furthermore, you can in the future call the method getName without modifying the actual name of the company.

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I think you wamt your program to do something like below. A function setName() that will set the passed value to name and one getName() which will return the value of name.

import java.util.Scanner;
public class test 
{
    String Name;

    public String getName()
    {
        return Name;
    }

    public String setName(String companyName)
    {
        this.Name=companyName;
    }
}

Now

public class CompanyAddress
{
  public static void main(String[] args)
  {
     Scanner scan = new Scanner(System.in);
     test testObject = new test();
     System.out.println("Enter name: ");
     String input = scan.nextLine();
     testObject.setName(input);
     System.out.println(testObject.getName());
  }
}   
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Anyone ,if you think better formatting/ spellings need to be checked. Feel free to edit. M on a phone. Cand do much About formatting. thanks in advance –  Mukul Goel Nov 24 '12 at 18:16
    
It is pretty decent :). –  dreamcrash Nov 24 '12 at 18:18
    
@dreamcrash thankyou & thanks for the edit (y) –  Mukul Goel Nov 24 '12 at 18:21
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Rename your "getName to "setName" (because it is a setter) and add a proper getter to your class and use that:

public class test 
{
    String Name;

    public void setName(String CompanyName) 
    {
        Name = CompanyName;
    }

    public String getName() {
        return Name;
    }
}

then:

 System.out.println(testObject.getName());


Also, it will help you if you adhere to standard naming conventions:

  • Class names start with a capital letter
  • Method, variable and parameter names start with a lowercase letter
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