Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm not a veteran in socket programming, so while analyzing code I found in a database API I came across this code

    public static void WriteInt(int i, NetworkStream bufOutputStream) 
    {
        byte[] buffer = new byte[IntSize];
        WriteInt(i, buffer, 0);
        bufOutputStream.Write(buffer, 0, buffer.Length);
    }

    public static void WriteInt(int i, byte[] byte_array, int pos)
    {

        byte_array[pos] =(byte)( 0xff & (i >> 24)); byte_array[pos+1] = (byte)(0xff & (i >> 16)); byte_array[pos+2] = (byte)(0xff & (i >> 8)); byte_array[pos+3] = (byte)(0xff & i);
    }

I understand the bit-shifts what I don't understand is how the 'buffer' var keeps getting a value when no ref is in the args or no return is made. the bitshifts are somehow editing the actual value of buffer?

share|improve this question
    
See also stackoverflow.com/questions/2058161/… –  Eric Lippert Jan 20 '10 at 19:28
add comment

8 Answers 8

up vote 11 down vote accepted

Your confusion is a very common one. The essential point is realising that "reference types" and "passing by refrence" (ref keyboard) are totally independent. In this specific case, since byte[] is a reference type (as are all arrays), it means the object is not copied when you pass it around, hence you are always referring to the same object.

I strongly recommend that you read Jon Skeet's excellent article on Parameter passing in C#, and all should become clear...

share|improve this answer
1  
simple yet effective, thank you. –  jtzero Jan 20 '10 at 16:58
add comment

Because an array isn't a value type, it's a reference type. The reference to the location on the heap is passed by value.

share|improve this answer
    
This doesn't really address the confusion that jtzero has about the use of ref. –  Sean Jan 20 '10 at 16:30
    
byte[] is a subclass of System.Array, which is a reference type. –  Will Jan 20 '10 at 16:31
    
@sean Reference types are always passed by reference, value types are always passed by value... Unless you use ref or out, hence the reason behind the existence of those keywords. Adding them to a reference argument is like an unsharpened pencil. –  Will Jan 20 '10 at 16:32
5  
This is incorrect. Do not confuse reference types with passing by reference... they are totally independent. –  Noldorin Jan 20 '10 at 16:34
    
@Yuriy: That's right now... –  Noldorin Jan 20 '10 at 16:42
show 2 more comments

I think some examples can show you differences between reference types and value types and between passing by reference and passing by value:

//Reference type
class Foo {
    public int I { get; set; }
}

//Value type
struct Boo {
    //I know, that mutable structures are evil, but it only an example
    public int I { get; set; }
}


class Program
{
    //Passing reference type by value
    //We can change reference object (Foo::I can changed), 
    //but not reference itself (f must be the same reference 
    //to the same object)
    static void ClassByValue1(Foo f) {
        //
        f.I++;
    }

    //Passing reference type by value
    //Here I try to change reference itself,
    //but it doesn't work!
    static void ClassByValue2(Foo f) {
        //But we can't change the reference itself
        f = new Foo { I = f.I + 1 };
    }

    //Passing reference typ by reference
    //Here we can change Foo object
    //and reference itself (f may reference to another object)
    static void ClassByReference(ref Foo f) {
        f = new Foo { I = -1 };
    }

    //Passing value type by value
    //We can't change Boo object
    static void StructByValue(Boo b) {
        b.I++;
    }

    //Passing value tye by reference
    //We can change Boo object
    static void StructByReference(ref Boo b) {
        b.I++;
    }

    static void Main(string[] args)
    {
        Foo f = new Foo { I = 1 };

        //Reference object passed by value.
        //We can change reference object itself, but we can't change reference
        ClassByValue1(f);
        Debug.Assert(f.I == 2);

        ClassByValue2(f);
        //"f" still referenced to the same object!
        Debug.Assert(f.I == 2);

        ClassByReference(ref f);
        //Now "f" referenced to newly created object.
        //Passing by references allow change referenced itself, 
        //not only referenced object
        Debug.Assert(f.I == -1);

        Boo b = new Boo { I = 1 };

        StructByValue(b);
        //Value type passes by value "b" can't changed!
        Debug.Assert(b.I == 1);

        StructByReference(ref b);
        //Value type passed by referenced.
        //We can change value type object!
        Debug.Assert(b.I == 2);

        Console.ReadKey();
    }

}
share|improve this answer
add comment

The best way to think about this is to think about the variables. Variables are by definition storage locations. What are the storage locations in your program? They are:

  • the formal parameters i and bufOutputStream of the first WriteInt.
  • the local variable buffer in the first WriteInt
  • the elements ("IntSize" of them) of the array referred to by buffer, after it is allocated.
  • the formal parameters i, byte_array and pos of the second WriteInt

The byte_array storage location and the buffer storage location are different storage locations. But the byte_array storage location contains a reference to the same array that the buffer storage location refers to. Therefore buffer[0] and byte_array[0] refer to the same storage location.

Just think about the storage locations, and it'll all make sense.

share|improve this answer
add comment

C# is like Java in that reference type variables are actually pointers. You always pass by value, but with reference types the value is the location of the object, rather than the object itself. The ref keyword on a reference type is passing the pointer by reference, so an assignment to a ref parameter will change what object the argument passed in points to.

share|improve this answer
add comment

Arrays in .Net are reference types.

Therefore, your function receives a reference to the array object by value. Since there is still only a single array instance, the function can modify the instance and the changes will be seen the caller.

Adding the ref keyword would make the function receive a reference to the array object by reference, and would therefore allow the function to change the reference to refer to a different array instance.

In other words, the ref keyword would allow you to write the following:

public static void WriteInt(int i, ref byte[] byte_array, int pos)
{
    byte_array = new byte[0];    //In the caller, the array will now be empty.
}

To demonstrate:

void SetReference(ref byte[] arrayRef) { arrayRef = new byte[1]; }

void SetValue(byte[] arrayVal) { arrayVal[1] = 42; }

byte[] array = new byte[4];
byte[] sameArray = array;    //sameArray refers to the same instance

sameArray[0] = 77;           //Since it's the same instance, array[4] is also 77.

SetValue(array);             //array[1] is 42.
                             //Since it refers to the same array, sameArray[1] is also 42.

SetReference(ref array);     //sameArray now refers to a new array of length 1.
                             //array still refers to the original array.
share|improve this answer
add comment

byte_array is a reference type.

share|improve this answer
add comment

Like Yuriy Faktorovich said, value types (like int, char, bool ecc.) are passed by default by value (unless you specify ref)

all other types (arrays, and Objects) are passed by default by reference

in your example if u change the values inside the array it will reflect changes also outside the method but you cannot reassign the object.

a full reference about it is in MSDN

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.