6

I just came across a piece of code I find interesting (because I have never seen it as a question before in 2 years of programming)

int x = 5;
int y = 3;
int z = y + (y+=1) % 4 + (x-=2) / 3;
System.out.println(z);

The output is 4.

I am wondering why is the left most 'y' evaluated first instead of the '(y+=1)' which would then resulted in an output of 5. (in other words, why is the bracket not forcing the order of precedence?)

I am not sure what to search since searching 'java order of precedence' returns results that at best shows tricky examples of y++, ++y kind of questions or just the order of precedence table.

I tagged Java but I have tested this with C# and javascript so it is probably a general thing in programming.

Update

I was mistaken about the order of precedence and order of evaluation.

This article helped me to further understand the answers provided.

  • 3
    What is strange about evaluating the left-most term first? – JF Meier Aug 25 '16 at 11:35
  • 4
    You wouldn't see that as a question because any programmer worth his salt wouldn't write something like that. These kinds of questions are quite worthless. – Kayaman Aug 25 '16 at 11:36
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    @JFMeier I would like to know why the bracket '(y+=1)' was not done first. – Stein121 Aug 25 '16 at 11:37
  • 2
    @Kayaman I know that no 1 would write something like this, it is just 1 of those academic questions used to test students on their understanding of order of precedence. – Stein121 Aug 25 '16 at 11:37
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    Don't confuse precedence with order of evaluation. The brackets change how the expression is parsed but not the order of evaluation. – Peter Lawrey Aug 25 '16 at 11:42
11

In short, the parentheses only apply to a particular term.

The expression y + (y+=1) % 4 + (x-=2) / 3; can be rewritten as t1 + t2 + t3, with t1 standing for y, t2 for (y+=1) % 4, and t3 for (x-=2) / 3.

Java always evaluates this from left to right, since the associativity of the binary operator + is from left to right. Hence t1 is the first term to be evaluated and so is done so with the unincremented value of y.

  • 1
    This is the key - evaluation is always LTR. I believe in C++ the evaluation order is undefined... – Boris the Spider Aug 25 '16 at 11:36
  • Indeed, the evaluation of + is from LTR: I've added that. Note that ternary conditionals, for example, are evaluated from RTL. – Bathsheba Aug 25 '16 at 11:37
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    This is the order most western language are read left to right. Arabic, Hebrew are read right to left by comparison. – Peter Lawrey Aug 25 '16 at 11:38
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    @BoristheSpider: In C++ and C, the value of this this expression is indeed undefined. But it's more to do with the fact that + is not a sequencing point in C and C++, as opposed to the order of evaluation. – Bathsheba Aug 25 '16 at 11:42
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    A source of confusion is school mathematics teachers who say you should evaluate brackets first (with mnemonics such as BODMAS). Unfortunately, people tend to confuse precedence order with evaluation order, They are totally different things. – Klitos Kyriacou Aug 25 '16 at 11:43
8

As per Java language Specs Evaluate Left-Hand Operand First and Evaluate Operands before Operation

  • 3
    This is the correct answer - the fact that evaluation order is prescribed by the Java Language Specification. – Dawood says reinstate Monica Aug 25 '16 at 11:39

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