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Hey, I have the following two lines of code:

result[i] = temp[i] + temp[i + 1] + " " + temp[i + 2];
i += 2;

I am wondering if this line of code would do the same:

    result[i] = temp[i] + temp[i++] + " " + temp[i++];

Can I be sure, that EVERY VM would process the line from the left to the right? Thanks, Tobi

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Probably not. Depends whether it's in the spec. –  Raynos Feb 12 '11 at 15:38
1  
The two lines are very very different: One changes i, and the other does not, and I'd be afraid of side-effects elsewhere in your code from the second line. –  Hovercraft Full Of Eels Feb 12 '11 at 15:39
    
result[i] = temp[i] + temp[++i] + " " + temp[++i]; will work. –  Dead Programmer Feb 12 '11 at 15:40
1  
Given that Java generally avoids the trouble of UB, I suppose it is in the spec. However, (1) you want preincrement to make it equivalent and (2) it's not the most obvious code anyway (you have to ask here, and nearly everyone else will have to look it up as well!). –  delnan Feb 12 '11 at 15:41
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Even if it was the same, the first code sample is much much more easier to understand, maintain and debug. This is much more important than saving a line of code. –  JB Nizet Feb 12 '11 at 15:51
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5 Answers 5

up vote 11 down vote accepted

From Java language specification:

The Java programming language guarantees that the operands of operators appear to be evaluated in a specific evaluation order, namely, from left to right.

It is recommended that code not rely crucially on this specification. Code is usually clearer when each expression contains at most one side effect, as its outermost operation, and when code does not depend on exactly which exception arises as a consequence of the left-to-right evaluation of expressions.

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fix the link. It's pointing at the wrong place. Also you found the place I was looking for. –  Raynos Feb 12 '11 at 15:52
    
+1 For "using the specification". Perhaps emphasis on some bits? :) –  user166390 Feb 12 '11 at 16:18
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It should be

result[i] = temp[i] + temp[++i] + " " + temp[++i];

if I am not wrong, so that the indexes are computed after each incrementation. Apart from that it should work.

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Good, you were the first to recognized they most definitely NOT the same. –  Mark Peters Feb 12 '11 at 16:14
    
++ also has side-effects –  user166390 Feb 12 '11 at 16:20
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Let's just try actually quoting the source.

Operators on the same line have equal precedence. When operators of equal precedence appear in the same expression, a rule must govern which is evaluated first. All binary operators except for the assignment operators are evaluated from left to right; assignment operators are evaluated right to left.

It looks like someone found a link to the spec as well.

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+1 for also quoting a repitable source. Is there a reference in the spec somewhere rather then on a tutorial? I couldn't find one. Are we the only ones who interpreted the question correctly? –  Raynos Feb 12 '11 at 15:47
    
I am heading out so I don't have time to check but if I find it, I'll add it to the answer. –  Andrew White Feb 12 '11 at 15:50
    
the other poster found the reference to the spec. –  Raynos Feb 12 '11 at 15:57
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No it's not the same. When you put the ++ after i it implies that it is postfix, i.e. i will first be used and THEN incremented.

So:

result[i] = temp[i] + temp[i++] + " " + temp[i++];

would be the same as the below if i = 1:

result[1] = temp[1] + temp[1] + " " + temp[2];

and after this statement i would be sitting with value of 3.

For it to be the same as:

result[i] = temp[i] + temp[i + 1] + " " + temp[i + 2];

You should use the prefix increment operator, i.e:

result[i] = temp[i] + temp[++i] + " " + temp[++i];
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++ also has side-effects -- another important distinction –  user166390 Feb 12 '11 at 16:21
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i++ will output the value and increment
++i will increment the value and output.
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thanks, but this wasn't really the question :-/ –  Tobi Feb 12 '11 at 16:19
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