Java学习随笔1:Java是值传递还是引用传递?

Java always passes arguments by value NOT by reference.


Let me explain this through an example:

public class Main{
     public static void main(String[] args){
          Foo f = new Foo("f");
          changeReference(f); // It won't change the reference!
          modifyReference(f); // It will modify the object that the reference variable "f" refers to!
     }
     public static void changeReference(Foo a){
          Foo b = new Foo("b");
          a = b;
     }
     public static void modifyReference(Foo c){
          c.setAttribute("c");
     }
}

I will explain this in steps:

  1. Declaring a reference named f of type Foo and assign it to a new object of type Foo with an attribute "f".

    Foo f = new Foo("f");
    

    enter image description here

  2. From the method side, a reference of type Foo with a name a is declared and it's initially assigned to null.

    public static void changeReference(Foo a)
    

    enter image description here

  3. As you call the method changeReference, the reference a will be assigned to the object which is passed as an argument.

    changeReference(f);
    

    enter image description here

  4. Declaring a reference named b of type Foo and assign it to a new object of type Foo with an attribute "b".

    Foo b = new Foo("b");
    

    enter image description here

  5. a = b is re-assigning the reference a NOT f to the object whose its attribute is "b".

    enter image description here


  6. As you call modifyReference(Foo c) method, a reference c is created and assigned to the object with attribute "f".

    enter image description here

  7. c.setAttribute("c"); will change the attribute of the object that reference c points to it, and it's same object that reference f points to it.

    enter image description here

I hope you understand now how passing objects as arguments works in Java :)

posted @ 2015-10-18 10:01  mengrennwpu  阅读(287)  评论(0编辑  收藏  举报