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I am trying to understand the string constant pool, how string literal objects are managed in constant pool, i am not able to understand why I am getting false from below code where s2 == s4

 public static void main(String[] args) {
    String s1 = "abc";
    String s2 = "abcd";
    String s3 = "abc" +"d";
    String s4 = s1 + "d";
    System.out.println(s2 == s3); //  OP:  true
    System.out.println(s2 == s4); // OP:  false
 }
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"abc" +"d" is a compile-time constant expression while s1 + "d" is not. –  johnchen902 May 22 '13 at 12:12
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2 Answers

up vote 10 down vote accepted

The expression "abc" + "d" is a constant expression, so the concatenation is performed at compile-time, leading to code equivalent to:

String s1 = "abc";
String s2 = "abcd";
String s3 = "abcd";
String s4 = s1 + "d";

The expression s1 + "d" is not a constant expression, and is therefore performed at execution time, creating a new string object. Therefore although s2 and s3 refer to the same string object (due to constant string interning), s2 and s4 refer to different (but equal) string objects.

See section 15.28 of the JLS for more details about constant expressions.

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Jon - I've fixed what I think was an oversight in your closing remarks. It would be good to check that this is what you really meant. –  Andrzej Doyle May 22 '13 at 12:16
    
@AndrzejDoyle: Yes, it is - thanks. –  Jon Skeet May 22 '13 at 12:16
3  
Also note that if you make s1 final, the second comparison will output true as well, because it will be known at compile-time that it can be considered constant. –  Slanec May 22 '13 at 12:18
1  
@Slanec: Good point. I've never used a local variable as a constant before, but it does indeed work. –  Jon Skeet May 22 '13 at 12:22
3  
@Slanec: It's not considered a constant expression by the language. Bear in mind cases such as debugging - you could change s1 that way, and it would be odd for that then not to be reflected by the later assignment to s4. I think for cases like this, simplicity and predictability is usually better than aggressive optimization. While string concatenation is somewhat implementation-specific, I think it would at least violate the spirit of the JLS for the output to be true in the OP's case. –  Jon Skeet May 22 '13 at 12:33
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s2 is created at compile-time. Memory is reserved for it and populated accordingly.

s1 + "d" is evaluated at runtime. Because you are using two different strings (ie. s1 is a variable which could in theory be anything) the compiler cannot know in advance that you do not intend to change the value of the object reference.

Hence, it must allocate the memory dynamically.

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