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This is regarding the difference in the result returned by '+' operator. Result varies for String literal and String Object.

String str="ab";
String str1="c";
String str2 = "ab"+"c"; // Line 3
String str3 = "abc";
String str4 = str+str1;  // Line 5

System.out.println(str2==str3);  // True
System.out.println(str2==str4);  // False

With the result we can deduce that with literal, already available object from the string pool is returned as in case of line 3 and with string object new object is returned, as in line 5. Why is it so?

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marked as duplicate by Narendra Pathai, Raedwald, ВГДЕЖЅZЗИІКЛМНОПҀРСТȢѸФХ, Adrian Shum, WATTO Studios Jun 25 '13 at 7:10

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I was comparing referential equality in this case. –  HyperLink Jun 25 '13 at 6:18
    
+1, I also wanna know why, although I assume it's because you are assigning literals string 1-4 and doing concatenation in str4 I'm not sure if theres'a another reason. –  Thihara Jun 25 '13 at 6:20

4 Answers 4

up vote 9 down vote accepted

The + oprator for Strings is handled differently depending on the time when the expression can be evaluated.

When the expression can be evaluated at compile time (as in line 3) the compiler will create a String containing only the concatenation. Therefore in line 3 only the String "abc" will be created and this String will be put in the .class file. Therefore str3 and str4 will be exactly the same and will be interned.

When using a concatenation that can be evaluated only at runtime (as in line 5) the resulting String is a new String which must be compared wth equals() as it is a new object.

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String str2 = "ab"+"c"; this is evaluated at compile time. It goes to the constant pool, since it's known already to the compiler.

The other can be evaluated at runtime, it won't be part of the constant pool.

It's good opportunity to note the difference from the case where you use String#concat, if you do

String str2 = "ab".concat("c");

Since String is immutable, a new String is returned from concat causing str to not be interned. So in this case, str2 == str3 will be false.

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I have marked the question as duplicate, but found that similar answer is not posted so thought of giving it a go. Other answers have already pointed out why the answer is false. But here is something that shows you when it will be true.

If you call intern() on the second string then the result will be true.

Why this works?

To save memory (and speed up testing for equality), Java supports “interning” of Strings. When the intern() method is invoked on a String, a lookup is performed on a table of interned Strings. If a String object with the same content is already in the table, a reference to the String in the table is returned. Otherwise, the String is added to the table and a reference to it is returned.

String str4 = (str+str1).intern();

Explicitly invoking intern() returns a reference to the interned String.

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When you will create str,str1,str2 and str3 it will point to same string pool.Here it will not create string object. But when you will create String str4 = str+str1.So str4 is evaluated at runtime.So is wont be part of same string pool where all other strings are pointed.So str4 returns false..

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This is not true. For example, str == str1 is false. They'll be interned iff they are evaluated on compile time and have the same String value. –  Maroun Maroun Jun 25 '13 at 6:51

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