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I am receiving this error in visual studio community 15 trying to compile the code below. I have created a method named "PrintFirstElement" and I am trying to pass the variable myArray as an arguement to the method. I am receiving an error saing that the name PrintFirstElement does not exist in this context. Doesnt make any sense to me. Any help would be appreciated.

namespace ConsoleApplication6
{ 
    class Arrays
    {
        public void PrintFirstElement(int[] a)
        {
            Console.WriteLine("The first element is {0}. /n", a[0]);
        }
    }

    class Program
    {
        static void Main(string[] args)
        {
            int[] myArray = { 1, 2, 3, 4, 5 };
            PrintFirstElement(myArray);
        }
    }
}
2
  • 1
    PrintFirstElement is in another class, you'll need to statically reference it or create an instance to get to it. Dec 30, 2016 at 19:29
  • 1
    And unrelated to the error /n should probably be \n (inside the Console.WriteLine call)? If you even need it at all (WriteLine automatically adds a linebreak) Dec 30, 2016 at 19:32

2 Answers 2

2

You are attempting to call the PrintFirstElement method, which exists in your Arrays class, from another class -- Program; to do this, you either need to instantiate the Arrays class and qualify the method call with the name of the instance, or change the PrintFirstElement method to static and qualify the method call with the name of the class itself.

So, either do this:

int[] myArray = { 1, 2, 3, 4, 5 };
var a = new Arrays(); // create an instance of the `Arrays` class
a.PrintFirstElement(myArray);

Or change your method to public static void PrintFirstElement(int[] a) and change the call in Main to Arrays.PrintFirstElement(myArray);.

1
  • Thanks Rory makes perfect sense. Im working out of a book and there was a detail that wasnt very well explained so I see the error of my ways. Thanks for your time.
    – Yl_Powered
    Dec 30, 2016 at 19:52
0

Rory.ap completely right. I just want to add some information to his answer. When you change your method to static, this method becomes known by memory. So you don't have to create the object for your method.

1
  • Thanks for the extra insight. Much appreciated.
    – Yl_Powered
    Dec 30, 2016 at 19:53

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