String s = new String("xyz"). How many objects has been made after this line of code execute?

THERE ARE ERRORS BELOW DEPENDING ON THE JVM/JRE THAT YOU USE. IT IS BETTER TO NOT WORRY ABOUT THINGS LIKE THIS ANYWAYS. SEE COMMENTS SECTION FOR ANY CORRECTIONS/CONCERNS.

First, this question really asks about this addressed here: Is String Literal Pool a collection of references to the String Object, Or a collection of Objects

So, that is a guide for everyone on this matter.

...

Given this line of code: String s = new String(“xyz”)

There are two ways of looking at this:

(1) What happens when the line of code executes -- the literal moment it runs in the program?

(2) What is the net effect of how many Objects are created by the statement?

Answer:

1) After this executes, one additional object is created.

a) The "xyz" String is created and interned when the JVM loads the class that this line of code is contained in.

  • If an "xyz" is already in the intern pool from some other code, then the literal might produce no new String object.

b) When new String s is created, the internal char[] is a copy of the interned"xyz" string.

c) That means, when the line executes, there is only one additional object created.

The fact is the "xyz" object will have been created as soon as the class loaded and before this code section was ever run.

...next scenario ...

2) There are three objects created by the code (including the interned "a")

String s1 = "a";
String s2 = "a";
String s3 = new String("a");

a) s1 and s2 are just referenced,not objects, and they point to the same String in memory.

b) The "a" is interned and is a compound object: one char[] object and the String object itself. It consisting of two objects in memory.

c) s3, new String("a") produces one more object. The new String("a") does not copy the char[] of "a", it only references it internally. Here is the method signature:

public String2(String original) {
        this.value = original.value;
        this.hash = original.hash;
}

One interned String ("a") equals 2 Objects. And one new String("a") equals one more object. Net effect from code is three objects.


Two objects will be created for this:

String s = new String("abc");

One in the heap and the other in the "string constant pool" (SCP). The reference s will pointing to s always, and GC is not allowed in the SCP area, so all objects on SCP will be destroyed automatically at the time of JVM shutdown.

For example:

Here by using a heap object reference we are getting the corresponding SCP object reference by call of intern()

String s1 = new String("abc");
String s2 = s1.intern(); // SCP object reference
System.out.println(s1==s2); // false
String s3 = "abc";
System.out.println(s2==s3); //True s3 reference to SCP object here

There are two ways to create string objects in Java:

  1. Using the new operator, i.e.

    String s1 = new String("abc");
    
  2. Using a string literal, i.e.

    String s2 = "abc";
    

Now string allocation is costly in both time and memory so the JVM (Java Virtual Machine) performs some tasks. WHAT TASKS?

See, whenever you are using the new operator the object is created, and the JVM will not look in the string pool. It is just going to create the object, but when you are using the string literals for creating string objects then the JVM will perform the task of looking in the string pool

I.e., when you write

String s2 = "abc";

the JVM will look in the string pool and check if "abc" already exists or not. If it exists then a reference is returned to the already existing string "abc" and a new object is not created and if it doesn't exists then an object is created.

So in your case (a)

String s1 = new String("abc");
  • Since new is used the object is created

(b)

String s2 = "abc";
  • using a string literal an object is created and "abc" is not in the string pool and therefore the object is created.

(c)

String s2 = "abc";
  • Again using a string literal and "abc" is in the string pool, and therefore the object is not created.

You can also check it out by using the following code:

class String_Check
{
    public static void main(String[] n)
    {
        String s1 = new String("abc");
        String s2 = "abc";
        String s3 = "abc";
        if (s1==s2)
            System.out.println("s1==s2");
        if(s1==s3)
            System.out.println("s1==s3");
        if(s2==s3)
            System.out.println("s2==s3");
    }
}

I hope this helps... Note that == is used to see if the objects are equal and the equals(Object) method is used to see if content are equal.

Tags:

Java

Jvm