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I have to pieces of code:

int m = 4;
int result = 3 * (++m);


int m = 4;
int result = 3 * (m++);

After the execution m is 5 and result is 15 in the first case, but in the second case, m is also 5 but result is 12. Why is this the case? Shouldn't it be at least the same behaviour?

I'm specifically talking about the rules of precedence. I always thought that these rules state that parantheses have a higher precedence than unary operators. So why isn't the expression in the parantheses evaluated first?

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Why do you consider this "strange"? –  Greg Hewgill Sep 20 '11 at 19:37
Why would you expect two completely different syntax trees to give the same result? –  Blindy Sep 20 '11 at 19:38
Because of the rules of precedence –  anon Sep 20 '11 at 19:38
possible duplicate of Is there a difference between x++ and ++x in java? –  Bart Kiers Sep 20 '11 at 19:39
Not really, I'm interested why the expression in the parantheses isn't evaluated first. –  anon Sep 20 '11 at 19:41

4 Answers 4

up vote 6 down vote accepted

No - because in the first case the result is 3 multiplied by "the value of m after it's incremented" whereas in the second case the result is 3 multiplied by "the initial value of m before it's incremented".

This is the normal difference between pre-increment ("increment, and the value of the expression is the value after the increment") and post-increment ("remember the original value, then increment; the value of the expression is the original one").

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Thanks, but why do the rules of precedence not apply here? –  RoflcoptrException Sep 20 '11 at 19:39
@Roflcoptr: What sort of precedence are you expecting to make a difference? It's the value of the pre/post-increment expression itself which is relevant. I don't see how precedence is relevant. –  Jon Skeet Sep 20 '11 at 19:40
I thought the rules of precendence state that parentheses have a higher precedence than unary operators. Therefore the expression in the parantheses should be evaluated first. –  RoflcoptrException Sep 20 '11 at 19:43
@Roflcoptr The fact that the expression in parantheses is evaluated first isn't relevant (or true, actually). The value of the expression (m++) is m, not m + 1. –  dlev Sep 20 '11 at 19:46
@Roflcoptr: No, precedence doesn't change the evaluation order - it changes grouping. See… for Eric Lippert's well written blog post on this. The context is C#, but the same applies in Java. Even if this did affect evaluation order, it wouldn't change the result, given that the LHS of the multiplication doesn't use m. Why do you think it would? What would you expect the result to be, and why? –  Jon Skeet Sep 20 '11 at 19:48

The difference is when the result is assigned to m. In the first case you have basically (not what it really does, but helps to understand)...

int result = 3 * (m=m+1);

In the second case you have

int result = 3 * m; m = m +1;
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This is the definition of the operators: m++ evaluates to m, then increments m. It's a "post-increment". Parentheses around it don't change the fact that the operator evaluates to the variable, and also increments it afterward.

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Think of it as "increment and get" and "get and increment." For instance, see AtomicInteger, which has the methods incrementAndGet() and getAndIncrement().

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