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My professor recently said that although x = x + 1 and x++ will obviously give the same result, there is a difference in how they are implemented in the JVM. What does it mean? Isn't compiler like: hey, I see x++ so I will switch it to x = x + 1 and carry on?

I doubt there is any difference when it comes to efficiency, but I would be surprised if assembly would be different in those cases...

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  • This will be a duplicate. – Alec Teal Oct 22 '13 at 20:31
  • For clarity, there should be a difference between ++x and x++, but not between x++ and "x = x + 1" or even "x += 1", when used as a stand-alone expression. – drobert Oct 22 '13 at 20:33
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    This shouldn't be downvoted - it's a perfectly fine question. And @AlecTeal you should present the duplicate if it exists. – sdasdadas Oct 22 '13 at 20:33
  • Increment and decrement operators can be placed before (prefix) or after (postfix) the variable they apply to. If you place an increment or decrement operator before its variable, the operator is applied before the rest of the expression is evaluated. If you place the operator after the variable, the operator is applied after the expression is evaluated. – user20232359723568423357842364 Oct 22 '13 at 20:33
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    @drobert There is indeed a difference between x++ and x = x + 1. Look it up, it is a duplicate on SO many times... – buzzsawddog Oct 22 '13 at 20:34
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My professor recently said that although x = x + 1 and x++ will obviously give the same result

I guess your professor perhaps meant - the value of x after x = x + 1 and x++ will be same. Just to re-phrase, as it seems to be creating confusion in interpreting the question.

Well, although the value of x will be same, they are different operators, and use different JVM instructions in bytecode. x + 1 uses iadd instruction, whereas x++ uses iinc instruction. Although this is compiler dependent. A compiler is free to use a different set of instructions for a particular operation. I've checked this against javac compiler.

For eclipse compiler, from one of the comment below from @Holger:

I just tested it with my eclipse and it produced iinc for both expressions. So I found one compiler producing the same instructions

You can check the byte code using javap command. Let's consider the following class:

class Demo {
    public static void main(String[] args) {
        int x = 5;

        x = x + 1;
        System.out.println(x);

        x++;
        System.out.println(x);
    }
} 

Compile the above source file, and run the following command:

javap -c Demo

The code will be compiled to the following bytecode (just showing the main method):

 public static void main(java.lang.String[]);
   Code:
      0: iconst_5
      1: istore_1
      2: iload_1
      3: iconst_1
      4: iadd
      5: istore_1
      6: getstatic     #2                  // Field java/lang/System.out:Ljava/io/PrintStream;
      9: iload_1
     10: invokevirtual #3                  // Method java/io/PrintStream.println:(I)V
     13: iinc          1, 1
     16: getstatic     #2                  // Field java/lang/System.out:Ljava/io/PrintStream;
     19: iload_1
     20: invokevirtual #3                  // Method java/io/PrintStream.println:(I)V
     23: return
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    +1 for actually answering the question instead of talking about something completely different that just happens to also involve increment operators ;-) – user395760 Oct 22 '13 at 20:34
  • @Bohemian x += 1 actually uses the iinc instruction only. the 2nd parameter would be 2 for x += 2. – Rohit Jain Oct 22 '13 at 20:38
  • The are different! Hence, the bytecode can't be the same, unless in caertain optimiuzed cases. – Ingo Oct 22 '13 at 20:38
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    @delnan - There may be different compilers. It is not written in stone that a compiler couldn't use iinc for x = x + 1 under certain circumstances. – Ingo Oct 22 '13 at 20:47
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    I just tested it with my eclipse and it produced iinc for both expressions. So I found one compiler producing the same instructions. – Holger Oct 23 '13 at 7:54
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The two expressions x++ and x=x+1 will not give the same result, your professor is wrong (or you confused this with ++x, which is again different). To see this

void notthesame() {
    int i = 0;
    System.out.println(i = i + 1);
    i = 0;
    System.out.println(i++);
    System.out.println("See?");
}

Hence, the question for bytecode is meaningless, because 2 different computations can't have the same bytecode.

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    People, you can downvote me 100 times, it's still not the same, hence bytecode doesn't even matter. @sdasdadas Yes, the bytecode is different, at least in this case. – Ingo Oct 22 '13 at 20:36
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    The bytecode is different even when it's used so that the semantics are the same (read: in a statement on its own). That would be a reasonable unstated assumption. It's fine to point out that they have different semantics in general, but that alone does not answer the question. – user395760 Oct 22 '13 at 20:38
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    @buzzsawddog I did! How can 2 computations with different result have the same bytecode? It's impossible. Hence. – Ingo Oct 22 '13 at 20:40
  • Based on your new edit, can you explain how ++x is semantically different from i = i + 1? – Cruncher Oct 22 '13 at 20:45
  • @Cruncher I could and I would if I didn't get already so many downvotes because alledgedly not answering the question. – Ingo Oct 22 '13 at 20:49

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