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if (A || B) { X; }
if (C && D) { X; }
if (F != G && H + I === J) { X; }

Can be replaced by:

if ((A || B) || (C && D) || (F != G && H + I === J)) { X; }

But can it be replaced by:

if (A || B || C && D || F != G && H + I === J) { X; }

? (Without parentheses)

And is there any difference between languages?

P.S: The answers shouldn't based on those examples.

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closed as off topic by Dagon, Vohuman, Govind KamalaPrakash Malviya, xdazz, kapa Aug 9 '12 at 8:05

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FYI, the first code example isn't equivalent to the second. The second can only run X once, but the first can run it thrice. – Blender Aug 9 '12 at 2:56
@Blender Thanks. It's equivalent if X is foo=3; for example. – Mageek Aug 9 '12 at 2:58
@djechlin has given the answer. But finally it decreases the readability. As you said if x is foo=3, in terms of readability the best is your second statement. – hari Aug 9 '12 at 3:17

4 Answers 4

up vote 6 down vote accepted

One, this is all invalid if these have side-effects.

Two, only if X is idempotent, which is a fancy way of saying, if X can be called twice with no change on the second time.

&& binds tigther than ||, so yes, you may drop parens around && in this context. The operator precedence rules I believe hold valid for any language that has them, I don't know any counterexamples to this, and the languages you asked about do follow C operator precedence rules.

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Then, if(A){X;}if(B){X;} can always be replaced by if(A||B){X;}? No matter what A and B are? – Mageek Aug 9 '12 at 2:56
No. If A is returnTrue() and B is blowUptheWorldThenReturnTrue()` you may have an unintended result in the former case. If X is i++ then no because in the former case i is added twice. Look up short-circuiting. – djechlin Aug 9 '12 at 2:58

According to this:

Almost everything has precedence over || so yes it should still work.

This should also hold for Java, and also why?

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For knowledge... – Mageek Aug 9 '12 at 2:53
@Mageek If anyone saw this in commercial code they would poo their pants. But i guess it is interesting. – Ben Aug 9 '12 at 2:55

Your first equivalence statement is not correct at least in C++. This


can execute X more than once if more than one condition is true. Also, the above is guaranteed to evaluate at least A, C, F and G. Meanwhile this

if((A||B) || (C&&D) || (F!=G&&H+I===J)){X;}

is guaranteed to execute X only once and it is only guaranteed to evaluate at least A.

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Yes it doesn't show much difference because && has higher priority that ||

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