Develop Reference

When are strings different objects in Java?

I recently learned that in Java: == compares the object references, not the content, which is why:
String str1 = "hell";
String str2 = "o";
String str3 = str1 + str2;
String str4 = "hello";
str3 == str4; // False
So far so good. However when I do the following:
String str5 = "hello";
str5 == str4; // True
Does this mean that str5 and str4 reference the same memory object? How does this work?

The String str5 = "hello"; creates a pooled String value hello, which is why str5 == str4 returns true.
On the other hand, str1 + str2 works like this:
An instance of the StringBuilder class is created (behind the scenes)
The + operator actually invokes the StringBuilder#append(String s) method
When the appending is done, a StringBuilder.toString() method is invoked, which returns a brand new String object. This is why str3 == str4 is actually false.
More info:
How do I compare Strings in Java?
How Java do the string concatenation using “+”?

Yes. str5 and str4 refer the same memory object. As Strings are immutable when you change the value of some string its produce an different object. If two String objects have the same value then second one is not created, JVM just give the reference of the first object.
When the value of String changed different object created for some security and other usefull purpose read these link:
Immutability of Strings
wiki Immutable object
When some string are created like
String str1="hello";
JVM creates an immutable object when again you try to create some string with same value
String str2="hello"
JVM use the same procedure to create an object as see's that this object is already created then its return the object of the str1 to reduce duplicate object creation.
This will be useful string pool in the jvm

Yes, when you create and assign a String value eg String s1="hello"; , it gets added in the String pool. Now if you assign the same String value to another reference like this:-
String s2="hello";
The variable s2 will point to the same String object hello , present in String pool.
However you can force and create a new String object for the same values like this:-
String s3= new String("hello");
This will add and create new object for hello even though it is already present in the String pool.
Hence it can be summarised as:-
s1==s2; //return true
s1==s3; //return false
s2==s3; //returns false

Strings are pooled by the JVM once they are created, that's why those variables refer to the same instance in the String pool.
And the idea behind having a String pool is to avoid unnecessary object creation.

Strings are immutable objects. This is why str1 and str2 combined are not equal to str3.

Ya,its gives true for str5 ==str4 becoz it uses"string pool area" to store."this time also it
compares object references" but these strings has same object reference as string pool area has one object id.
In first case strings are not created in string pool area thats why it gives false.

A private pool of string literals is maintained by String class. All literal strings and string-valued constant expressions are added to this pool during program start up. So all string literals with same value will point to same object.
When a new string object is created(e.g. by concatenating two string objects) it does not belong to the String pool, so comparing it with another string literal will return false. Any string object can be added to String pool by invoking intern() method on that string object, now the object will point to a string literal from the pool which have same value as this object. Now any string comparison of this object with same string literal will yield true.

What is the purpose of Java's String.intern()?

I know there are two ways of creating String in Java:
String a = "aaa";
String b = new String("bbb");
With the first way Java will definitely create a String object in the string pool and make a refer to it. (Assume "aaa" wan't in the pool before.)
With the second method, an object will be created in the heap, but will jvm also create an object in the string pool?
In this post Questions about Java's String pool, #Jesper said:
If you do this:
String s = new String("abc");
then there will be one String object in the pool, the one that represents the literal "abc", > and there will be a separate String object, not in the pool, that contains a copy of the > content of the pooled object.
If that's true, then every time with the new String("bbb");, a object "bbb" is created in the pool, which means by either way above, java will always create a string object in the pool. Then what is intern() used for ? In the docs http://docs.oracle.com/javase/7/docs/api/java/lang/String.html#intern(), it says:
When the intern method is invoked, if the pool already contains a string equal to this String object as determined by the equals(Object) method, then the string from the pool is returned. Otherwise, this String object is added to the pool and a reference to this String object is returned.
That means there are cases that a string is not in the pool, is that possible ? Which one is true ?

As you know that String is an immutable object in Java programming language, which means once constructed can not be altered. Due to this, JVM has the ability to maintain a literal pool which is helpful to reduce the memory usage and to increase the performance. Each time when a String literal is used JVM checks the literal pool. If the literal is already available, the same reference would be returned. If the literal is not available, a new String object will be created and added in the literal pool.
This theory is applied when you try to create a String like a primitive or a literal/constant.
String str = "bbb";
But when you create a new String object
String str = new String("bbb");
the above mentioned rules are overridden and a new instance is created always.
But the intern API in the String class can be used to pick the String reference from the literal pool even though you create a String using new operator. Please check the below given example. Although the str3 is created using new operator since we used the intern method JVM picked up the reference from the literal pool.
public class StringInternExample {
public static void main(final String args[]) {
final String str = "bbb";
final String str1 = "bbb";
final String str2 = new String("bbb");
final String str3 = new String("bbb").intern();
System.out.println("str == str1 : "+(str == str1));
System.out.println("str == str2 : "+(str == str2));
System.out.println("str == str3 : "+(str == str3));
}
}
Output of above code:
str == str1 : true
str == str2 : false
str == str3 : true
You can have a look: Confusion on string immutability
Source of answer: http://ourownjava.com/java/java-string-immutability-and-intern-method/
Shishir

There are essentially two ways that our String objects can enter in to the pool:
Using a literal in source code like "bbb".
Using intern.
intern is for when you have a String that's not otherwise from the pool. For example:
String bb = "bbb".substring(1); // substring creates a new object
System.out.println(bb == "bb"); // false
System.out.println(bb.intern() == "bb"); // true
Or slightly different:
System.out.println(new String("bbb").intern() == "bbb"); // true
new String("bbb") does create two objects...
String fromLiteral = "bbb"; // in pool
String fromNewString = new String(fromLiteral); // not in pool
...but it's more like a special case. It creates two objects because "bbb" refers to an object:
A string literal is a reference to an instance of class String [...].
Moreover, a string literal always refers to the same instance of class String.
And new String(...) creates a copy of it.
However, there are many ways String objects are created without using a literal, such as:
All the String methods that perform some kind of mutation. (substring, split, replace, etc.)
Reading a String from some kind of input such as a Scanner or Reader.
Concatenation when at least one operand is not a compile-time constant.
intern lets you add them to the pool or retrieve an existing object if there was one. Under most circumstances interning Strings is unnecessary but it can be used as an optimization because:
It lets you compare with ==.
It can save memory because duplicates can be garbage collected.

Yes, new String("abc") will create a new object in memory, and thus it is advised to avoid it. Please have a look at item 5 of Josh Bloch's Effective Java, "Avoid creating unnecessary objects" where it is better explained:
As an extreme example of what not to do, consider this statement:
String s = new String("stringette"); // DON'T DO THIS!
The statement
creates a new String instance each time it is executed, and none of
those object creations is necessary. The argument to the String
constructor ("stringette") is itself a String instance, functionally
identical to all of the objects created by the constructor. If this
usage occurs in a loop or in a frequently invoked method, millions of
String instances can be created needlessly. The improved version is
simply the following:
String s = "stringette";
This version uses a
single String instance, rather than creating a new one each time it is
executed. Furthermore, it is guaranteed that the object will be reused
by any other code running in the same virtual machine that happens to
contain the same string literal [JLS, 3.10.5].
http://uet.vnu.edu.vn/~chauttm/e-books/java/Effective.Java.2nd.Edition.May.2008.3000th.Release.pdf

With the second method, an object will be created in the heap, but will jvm also create an object in the string pool?
Yes, but it is the string literal "bbb" which ensures the interned string1. The string constructor creates a new string object which is a copy with the same length and content - the newly created string is not automatically interned.
If that's true, then every time with the new String("bbb");, a object "bbb" is created in the pool, which means by either way above, java will always create a string object in the pool. Then what is intern() used for ?
Only string literals are automatically interned. Other string objects must be manually interned, if such is the desired behavior.
That means there are cases that a string is not in the pool, is that possible ?
With the exception of manual calls to String.intern, only string literals result in interned strings.
While I would recommend using a specialized collection for such cases, interning may be useful where it can be used to avoid creating extra duplicate objects. Some use-cases where interning can be beneficial - as in, the same string value can appear many times - is in JSON keys and XML element/attribute names.
1 This is trivial to reason, consider:
String _b = "bbb"; // string from string literal (this is interned)
String b = new String(_b); // create a NEW string via "copy constructor"
b == _b // -> false (new did NOT return an interned string)
b.equals(_b) // -> true (but it did return an equivalent string)
b.intern() == _b // -> true (which interns to .. the same string object)

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

The commonly agreed answer to this interview question is that two objects are created by the code. But I don't think so; I wrote some code to confirm.
public class StringTest {
public static void main(String[] args) {
String s1 = "a";
String s2 = "a";
String s3 = new String("a");
System.out.println("s1: "+s1.hashCode());
System.out.println("s2: "+s2.hashCode());
System.out.println("s3: "+s3.hashCode());
}
}
The output is:
Does this mean that only one object was created?
Reaffirm: My question is how many object was created by the following code:
String s = new String("xyz")
Instead of the StringTest code.
Inspired by #Don Branson, I debugged the below code:
public class test {
public static void main(String[] args) {
String s = new String("abc");
}
}
And the result is:
The id of s is 84, and the id of "abc" is 82. What exactly does this mean?

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

String s = new String("xyz");
The above line will create two object one is in heap and another is in String constant pool.
now if we do this
String s = new String("xyz");
String s1 ="xyz";
the above two statement will create two object.
The first line String s = new String("xyz");will create two object as mentioned
in 1st line and , When String s = "xyz";executes it checks in string constant pool if there is same content object is there or not, since the first line made an entry in string constant pool with "xyz" it returns the same reference and does not create other object.
What if we have these four line together as mentioned bellow.
String s2 = new String("xyz");
String s3 ="xyz";
String s4 = new String("xyz");
String s5 ="xyz";
If we execute the above line we will have three object.
The first and as mentioned will create two object one in heap and
another in String constant poll.
When the second line executes it checks in the string constant poll
and find with "xyz" so it returns the same object, so till second
line we have two objects.
when the third line executes it will create a new object in the heap
since new operator creates object in the heap so till third line will
have 3 objects.
When the fourth line executes it checks in the string constant poll
and find with "xyz" so it returns the same object, so fourth line
we have three objects.
Bonus about the intern() method
When the intern() method is invoked on a String object it looks the
string contained by this String object in the pool, if the string is
found there then the string from the pool is returned. Otherwise, this
String object is added to the pool and a reference to this String
object is returned.
public class TestString {
public static void main(String[] args) {
String s1 = "Test";
String s2 = "Test";
String s3 = new String("Test");
final String s4 = s3.intern();
System.out.println(s1 == s2);
System.out.println(s2 == s3);
System.out.println(s3 == s4);
System.out.println(s1 == s3);
System.out.println(s1 == s4);
System.out.println(s1.equals(s2));
System.out.println(s2.equals(s3));
System.out.println(s3.equals(s4));
System.out.println(s1.equals(s4));
System.out.println(s1.equals(s3));
}
}
//Output
true
false
false
false
true
true
true
true
true
true
See the magic of intern by applying intern method on new string object.
intern is applied here so it will check if "Test" is available in String Constant pool or not since "Test" is available in String constant pool and it will return the same object so s3 has the same reference as s1 and s2 and will get all the result as true
public class TestString {
public static void main(String[] args) {
String s1 = "Test";
String s2 = "Test";
String s3 = new String("Test").intern();
final String s4 = s3.intern();
System.out.println(s1 == s2);
System.out.println(s2 == s3);
System.out.println(s3 == s4);
System.out.println(s1 == s3);
System.out.println(s1 == s4);
System.out.println(s1.equals(s2));
System.out.println(s2.equals(s3));
System.out.println(s3.equals(s4));
System.out.println(s1.equals(s4));
System.out.println(s1.equals(s3));
}
}
true
true
true
true
true
true
true
true
true
true

There are two ways to create string objects in Java:
Using the new operator, i.e.
String s1 = new String("abc");
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.

If we execute String s = new String("Brajesh"); , two objects shall be created. One object will be created in string literal pool and another one in heap area.
But if we have already same string literal object, then only one object is created.
like
String s1 ="Brajesh";
String s = new String("Brajesh");//it will create only one object in heap area
Apart from this one additional object is also created in heap area that is char[]'s object. I have attached here snapshot of heap memory.

There are so many random answers and so I am confident that my interviewer will also be not very sure :) :)
I researched a lot and found that hashcode is not the memory address and the variables while debugging don't give the memory address. So, those parameters might confuse.

2 or 3 objects are created, depending on how smart the compiler is.
Nevertheless, your test is junk, because hashCode of Strings is based on the content of the String, and not on their identity. If you want to check for identity, you should use System.identityHashCode or just == comparison.
The compiler and the runtime are allowed (not forced) to optimize string creation whenever possible. So, they optimize literal strings, by using a single literal for the three strings you have.
Anyway, the new operator must return a new object (i.e. a newly allocated one).
String optimization at runtime is possible if the static method String.valueOf is used instead. But I don't know if any caching is actually applied by current JREs (maybe it's more expensive to check a hash table than to just allocate a new String)

String s1="Pune";
String s2="Mumbai";
String s3="Pune";
String s4=new String("Mumbai");
System.out.println("S1 :"+s1.hashCode()); //S1 :2499228
System.out.println("S2 :"+s2.hashCode()); //S2 :-1979126203
System.out.println("S3 :"+s3.hashCode()); //S3 :2499228
System.out.println("S4 :"+s4.hashCode()); //S4 :-1979126203
System.out.println(s2==s4); // false
As we can see in the above program we are getting a similar hashcode for s2 and s4 respectively although we are getting false using == operator. == operator is used for reference comparison.
Two objects have been created at "String s4=new String("Mumbai")", one in heap memory and one in stack memory. Therefore s2 compares with s4 which is created in heap memory, not with stack memory.

public String(String original) {
int size = original.count;
char[] originalValue = original.value;
char[] v;
if (originalValue.length > size) {
// The array representing the String is bigger than the new
// String itself. Perhaps this constructor is being called
// in order to trim the baggage, so make a copy of the array.
int off = original.offset;
v = Arrays.copyOfRange(originalValue, off, off+size);
} else {
// The array representing the String is the same
// size as the String, so no point in making a copy.
v = originalValue;
}
this.offset = 0;
this.count = size;
this.value = v;
}
If we see the code , we can see it will just create a char[] and it will get copied every time with same content get instantiated and yes it will store data in String Constant Pool . 1)Will take from SCP String s1 = "a" String s2 = "a"; 2)Creates a new object String s3 = new String("a"); Curiosity , New Object String s2=new String("a"); In all above code same char[] will get copied.i:e char[] value You can check here

I ran it in the Eclipse debugger. In that context, two objects are created, one with the id 17, the other 22:

java.lang.String overrides the hashCode() method so that the value depends on the content of the string.
As a result, hashCode() does not tell you anything about the number of instances. It may be the same string or may be another instance with no single byte shared. Same about equals(). This explains your output.
Use System.identityHashCode(..) for this kind of research.
And may the source be with you.

#Giulio, You are right.
String s3 = new String("abc"); creates two objects one in heap with reference s3 and another in SCP(Without reference).
and now String s2 = "abc"; doesn't create any new object in SCP because "abc" is already there in SCP.
String s1 = "abc";
String s2 = "abc";
String s3 = new String("abc");
String s4 = s3.intern();
System.out.println("s1: "+System.identityHashCode(s1));
System.out.println("s2: "+System.identityHashCode(s2));
System.out.println("s3: "+System.identityHashCode(s3));
System.out.println("s4: "+System.identityHashCode(s4));
O/P:s1: 366712642,
s2: 366712642,
s3: 1829164700,
s4: 366712642
As i am not eligible for commenting i wrote it here.

If we run below code in eclipse in debug mode we'll get an idea about how many objects are created with String string = new String("manoj"); Internally it will create String str = "manoj"in String class constructor.
Just check id after hover on reference as shown in below screen shot.
ScreenShot
public static void main(String[] args)
{
String str = "atul";
String string = new String("manoj");
String string2 = "manoj";
System.out.println(str == string);
}

Confused with what exactly happens after the new String("<>") is being called, I found this thread. Your hashcode comparison understanding is not technically correct though.
int hashCode() has been overriden in String class and it returns a value depending on the content of the String literal.
String s1 = new String("Hello");
String s2 = new String("Hello");
So s1.hashCode() = s2.hashCode() = anyStringOfContent_"Hello".hashCode()
**/** Cache the hash code for the string */
private int hash; // Default to 0
public int hashCode() {
int h = hash;
if (h == 0 && value.length > 0) {
char val[] = value;
for (int i = 0; i < value.length; i++) {
**h = 31 * h + val[i];**
}
hash = h;
}
return h;
}**
Now just to explain why is this done, you can actually read the Kathy Sierra book which has a great explanation why developers have done in this manner (basically any objects returning true to equals() method should return same hashCode() value).

If new String() creates 2 objects (one in heap and one in String pool) then what is the use of .intern method ?
intern() method invoked on a String object looks for the string
contained by this String object in the pool, if the string is found
there then the string from the pool is returned. Otherwise, this
String object is added to the pool and a reference to this String
object is returned.

2 objects made out of:
String s = new String("xyz");
1st creating new String object in heap memory (String Pool)
2nd placing "xyz" in string constant pool

There is a concept called string pool in Java. A string pool (string intern pool) is a special storage area in the Java heap. When a string is created and if the string already exists in the pool, the reference of the existing string will be returned, instead of creating a new object and returning its reference.
So String s = new String(“xyz”) it will create two objects.
The first object will be created in the Java permanent heap memory as part of the argument we are passing - "XYZ". And it will be created in the String Literal Pool.
The second object will be created within the Java heap memory - which will be created as part of the new operator.

Just because all your hash codes are the same does not mean that you are looking at the same object. Two objects are created. Let's break this down.
String s = new String(“xyz”);
In the part ' new String("xyz") ', an address is returned to the new string "xyz". When you say ' String s = ', this assigns that returned address to this object, so that they point to the same place, but the new string and string s are two seperate objects.

I used the hashcode() method to find the number of string objects created.
The hashcode() method digests the data stored in the reference variable into a single hash value.
CASE1:
String s="
Fred";
System.out.println(s.hashCode());
s=s+"47";
System.out.println(s.hashCode());
s=s.substring(2,5);
System.out.println(s.hashCode());
s=s.toUpperCase();
System.out.println(s.hashCode());
s=s.toString();
System.out.println(s.hashCode());
The output is:
Fred--2198155 //1st object ---------------- String s="Fred"
Fred47--2112428622 //2nd object ---------------- s=s+"47"
ed4--100213 //3rd object ---------------- s=s.substring(2,5)
ED4--68469 //4th object ---------------- s=s.toUpperCase()
ED4--68469 //this is retrieved from the string constant pool -------- s=s.toString();
So 4 objects created in total.
CASE 2:
String s="FRED";
System.out.println(s.hashCode());
s=s+"47";
System.out.println(s.hashCode());
s=s.substring(2,5);
System.out.println(s.hashCode());
s=s.toUpperCase();
System.out.println(s.hashCode());
s=s.toString();
System.out.println(s.hashCode());
The output is:
FRED--2166379 //1st object ---------------- String s="Fred"
FRED47--2081891886 //2nd object ---------------- s=s+"47"
ED4--68469 //3rd object ---------------- s=s.substring(2,5)
ED4--68469 //this is retrieved from the string constant pool ------- s=s.toUpperCase()
ED4--68469 //this is retrieved from the string constant pool -------- s=s.toString()
3 objects created in total.

There is a way to find how many objects are created using the new keyword (String s1=new String("Rajesh")).
public class Rajesh {
public static void main(String[] args){
String s1=new String("Rajesh");
System.out.println(s1+s1.intern());
}
}
Output:
RajeshRajesh //s1=Rajesh+s2.intern()=Rajesh
Note: As we know the intern method always hit the string constant pool of heap memory.

String s = new String("xyz");
how many objects has been created in above code?
Only one object has been created in above code, that's in heap memory.
not two object.....
If two objects are created, one is in a heap memory(new operator) and another one is in String constant pool(string literal), if your store below value using String literal ,
String s1 = "xyz";
it will not returns reference of object s in string constant pool. it will create new object in String Constant Pool as s1.
How?
we can check it by using == operator (s == s1) to check the reference type.
If s is already stored in String Constant Pool it give the true, in this case output is false.
So the conclusion is one object is created in above code.

Creating a String object by "new"

Consider statement:
String s=new String("abc");
Will this statement creates two String objects namely "abc" and the one represented by 's'?
and if it creates two objects then will "abc" get stored in String pool or just discarded?
EDIT:
i am asking this question in reference to Difference between string object and string literal, where in the last two answers , creation of two objects is denied.

Avoid such kind of behavior , because "abc" is already a String and by making a new String, you are creating an unnecessary Object.
Instead go for String s = "abc";
This way, the String gets interned by the JVM and is added to a pool.
To answer your question, you are just creating an Object s that is referring to "abc".
So when you do say String t = new String("abc"); and then do s==t, will yield in false. Because they have their separate instances to abc.

String s = "HELLO";
Here "s" is a object reference variable of type String, which refers to the String literal object "Hello" which is added to the String Literal Pool.
String t = new String("Hello");
Here t is a object reference variable of type String, which refers to the String object "Hello" which is added to the String Pool.
Difference Between String Literal and String :
Assume
String s = "Hello";
String t = new String("Hello");
Now if following changes are done:
s = null;
t = null;
Hello String object associated with t will be a candidate for Garbage Collector, But Hello String Literal associated with s will NOT BE A CANDIDATE for Garbage Collector, as there will ALWAYS BE A REFERENCE FROM STRING LITERAL POOL to it.

String object creation using new and its comparison with intern method

I read in Kathy Sierra book that when we create String using new operator like String s = new String("abc") In this case, because we used the new keyword, Java will create a new String object in normal (nonpool) memory, and s will refer to it. In addition, literal "abc" will be placed in the pool.
intern() says that if String pool already contains a string then the string from the pool is returned Otherwise, the String object is added to the pool and a reference to this String object is returned.
If string "abc" when created using new also placed the string in the pool, then wht does intern() says that string from the pool is returned if String pool contains the string otherwise the string object is added to the pool.
Also I want to know if we create a String using new then actually how many objects get created?

TL;DR: If you ever really need to do new String("abc"), you'll know you need to and you'll know why. It's so rare that it's almost valid to say you never need to. Just use "abc".
The long version:
When you have the code new String("abc") the following things occur at various times:
When the class containing that code is loaded, if a string with the characters "abc" is not already in the intern pool, it's created and put there.
When the new String("abc") code is run:
A reference to the "abc" string from the intern pool is passed into the String constructor.
A new String object is created and initialized by copying the characters from the String passed into the constructor.
The new String object is returned to you.
If string "abc" when created using new also placed the string in the pool, then why does intern() says that string from the pool is returned if String pool contains the string otherwise the string object is added to the pool.
Because that's what intern does. Note that calling intern on a string literal is a no-op; string literals are all interned automatically. E.g.:
String s1 = "abc"; // Get a reference to the string defined by the literal
String s2 = s1.intern(); // No-op
System.out.println(s1 == s2); // "true"
System.out.println(s1 == "abc"); // "true", all literals are interned automatically
Also I want to know if we create a String using new then actually how many objects get created?
You create at least one String object (the new, non-interned one), and possibly two (if the literal wasn't already in the pool; but again, that bit happens earlier, when the class file's literals are loaded):
String s1 = "abc"; // Get a reference to the string defined by the literal
String s2 = new String(s1); // Create a new `String` object (guaranteed)
System.out.println(s1 == s2); // "false"
String s3 = s2.intern(); // Get the interned version of the string with these characters
System.out.println(s1 == s3); // "true"

String Pool is a pool of string references. Objects are created in Heap only.
When using new String("abc").intern() or using method like String s = "abc"; String pool is checked if there is an reference existing which refers to "abc".
In case reference for "abc" already exists in pool and .intern() is called on the reference referencing to an String object created using new String("abc"), then object created by new String("abc") is eligible for garbage collection. See below code for more clarity.
public static void main(String[] args) {
String s = new String("abc");
String a = s;
System.out.println(s==a);// true
String b = "abc";
s = s.intern();
System.out.println(s==a);// false
}