8

Assume such situation:

int a = (--t)*(t-2);
int b = (t/=a)+t;

In C and C++ this is undefined behaviour, as described here: Undefined behavior and sequence points

However, how does this situation look in:

  • JavaScript,
  • Java,
  • PHP...
  • C#
  • well, any other language which has compound operators?

I'm bugfixing a Javascript -> C++ port right now in which this got unnoticed in many places. I'd like to know how other languages generally handle this... Leaving the order undefined is somehow specific to C and C++, isn't it?

  • 9
    Maybe it's best not to know it :) – Daniel Daranas Feb 14 '11 at 13:59
  • 2
    @Daniel: Thoroughly agree! But, unfortunately for the OP, it sounds as if he/she is having to debug legacy code with this kind of crud in it... – Oliver Charlesworth Feb 14 '11 at 14:01
  • I'd say it's best not to know it when you write code, but know it when you read it. :) – Kos Feb 14 '11 at 14:02
  • 1
    given this question seems to be about all languages that are not c++ or c, does it really make sense to tag it c++ and c? – jk. Feb 14 '11 at 16:42
  • 3
    stackoverflow.com/questions/3720458/… is the answer for Java , stackoverflow.com/questions/4644328/… for C# – nos Feb 14 '11 at 17:16
7

According to the ECMA Script specification, which I believe javascript is supposed to conform to, in multiplication and addition statements, it evaluates the left hand side before evaluating the right hand side. (see 11.5 and 11.6). I think this means that the code should be equivalent to

t = t - 1;
int a = t * (t - 2);
t = t / a;
int b = t + t;

However, you should not always trust the specification to be the same as the implementation!

Your best bet in confusing cases like this is to experiment with various inputs to the ambiguous lines of code in the original operating environment, and try to determine what it is doing. Make sure to test cases that can confirm a hypothesis, and also test cases that can falsify it.

Edit: Apparently most JavaScript implements the 3rd edition of ECMAScript, so I changed the link to that specification instead.

  • How is this any different than the code I provided? – zzzzBov Feb 15 '11 at 15:41
  • 1
    @zzzzBov The code is the same, I just tried to justify the choices made and provide a strategy for debugging/porting the code. As it turns out, the order that the side effects of operators happen in is well defined in ECMAScript. – Null Set Feb 16 '11 at 1:10
  • touché. I suppose I never explicitly mentioned the order of ops for JavaScript. – zzzzBov Feb 16 '11 at 3:30
3

Practically speaking, if you have to ask or look up the rules for an expression, you shouldn't be using that expression in your code. Someone else will come back two years from now and get it wrong, then rewrite it and break the code.

If this was intended as a strictly theoretical question I unfortunately can't offer details regarding those other languages.

  • 1
    "you shouldn't be using that expression in your code" - I think the practical application of the question is, "how do I replace this expression originally designed for Javascript, with equivalent C++". The questioner knows that the code he has is bad, but unless he understands Javascript's expression evaluation rules he can't replace it with something equivalent (assuming the original author also wasn't lavish with comments, documentation, or a comprehensive set of test cases, any of which could also resolve any ambiguity). Then the purely theoretical part is "what about other languages". – Steve Jessop Feb 15 '11 at 10:39
2

For javascript the following article should help.

This article clearly states whether a particular combination of

a OP b OP c goes from left-to-right and in which order.

I'm don't know about the other languages.

  • 1
    That link doesn't explicitly spell out if it's required to re-read a variable's value at each step in the expression though. – Mark B Feb 14 '11 at 16:09
  • @Mark B: It looks very similar to the C precedence table, and the order of side effects is undefined in C. – David Thornley Feb 14 '11 at 17:11
1

However, how does this situation look in: JS, Java, PHP, C#...

To be perfectly candid, int a = (--t)*(t-2); int b = (t/=a)+t; looks like crap.

It's nice to have fancy code that can be all pretty and elitist, but there's absolutely no need for it. The solution for every language when confronted with code like this is to add a couple more semi-colons (unless you're dealing with python):

--t;
int a = t * (t-2);
t /= a;
int b = t + t;
-or-
int b = t * 2;
-or-
int b = t << 1;
//whichever method you prefer

If a different order of operations is desired, the adjust the lines accordingly. If you're trying to fix old buggy code, fix the code, don't just re-implement someone else's spaghetti.

Edit to add:

I realized I never specifically answered the original question:

How do languages handle side effects of compound operators?

Poorly.

  • +1 for stating clearly what I tried to say in my answer. – Mark B Feb 14 '11 at 15:36
  • 1
    This does not address the problem. Berating the original coder will not help Kos decipher the ambiguous behavior of the original javascript code and reproduce that behavior in c++ – Null Set Feb 14 '11 at 15:57
  • It does address the actual problem, which is that the code needs to work. To make the code work, you simply break it down into separate parts. As long as the perens were left intact, order of operations should be the same as what I've posted above. There's no reason to rely on compound operators especially when their behavior is undefined. – zzzzBov Feb 14 '11 at 16:02
  • -1 as it doesn't addres the question, which has nothing to do with good vs ugly code, but sequence points – nos Feb 14 '11 at 17:02
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    @David Thornley- Run the existing code and your cleaned-up code side-by-side. If your refactoring altered the order of operations, you should get different results. That won't tell you if the original code was actually doing what it was intended to do, but it will at least tell you if you altered anything. – bta Feb 14 '11 at 18:34

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