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I know that String a = "hello"; will put the "hello" into string literal pool. my question is:
1.

String a = "hello";
String b = "hell"+"o";

Does the string literal pool has three object: "hello", "hell", and "o"?

2.

String a = "hello";
String b = new String("hello");

then there will be a "hello" object in string literal pool and a string object in heap?

3.

BufferedReader br = new BufferedReader(new FileReader("names"));
String line = br.readLine(); //(the value of line is "hello" now, for example)

then there will be a "hello" object in string literal pool and a string object in heap?

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2  
Just a comment for part 1, the compiler may optimise the second one into just String b = "hello";, so no guarantees there. –  appclay Apr 13 '12 at 4:06
1  
2 is correct. a!=b. –  trutheality Apr 13 '12 at 4:29
3  
@appclay The compiler is required to intern strings that are the values of constant-expressions, by docs.oracle.com/javase/specs/jls/se5.0/html/lexical.html#3.10.5. This is a guarantee. –  EJP Apr 13 '12 at 4:54
    
@EJP Learn something new every day... –  appclay Apr 13 '12 at 5:00

2 Answers 2

up vote 2 down vote accepted

AFAIk, these are the things happening:

1.when javac compiler encounters the above line, it will change it to StringBuffer like this:

String b = new StringBuffer().append("hell").append("o").toString();

String a will be in pool with the value "hello".

2 String b will in the heap.

3.This is purely an in memory operation as it is loading the file contents dynamically.Java compiler never

get a chance to know its memory structure because it is depending on the file size now.So it cannot be pooled.But when you perform a intern() these are the things happening:

If you call a string with method intern(), it is definitely garbage collected in modern JVMS. It can be used to save memory if many string with the same content.

There is a nice discussion about this here:

Is it good practice to use java.lang.String.intern()?

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1  
for question 1, I don't understand why b is created by new stringBuffer. because if System.out.println(a==b), the result is true. So I think a and b refer to the same object "hello" in the pool. but if b is created by new stringBuffer, "hello" object will in the heap. –  remy Apr 13 '12 at 5:25
    
this is how internally the java compiler retains the string,for more information you can visit this link.java.sun.com/docs/books/performance/1st_edition/html/… –  UVM Apr 13 '12 at 5:34

3) readLine() won't use the value from the string pool. You would have to call intern() on it first.

line = br.readLine().intern();

From the String Javadoc:

All literal strings and string-valued constant expressions are interned. String literals are defined in §3.10.5 of the Java Language Specification.

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