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How will an expression of the form a/b/c/d be evaluated in gcc ? Will it be (a*d) / (b*c) or will it be ( ( (a/b) / c) / d ) ? Is there a rule for this in C standard ?

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Have you tried it? – FDinoff May 15 '13 at 14:18
also there are rules, they are important... – Grady Player May 15 '13 at 14:20
i tried on two different compilers, observed anomaly and hence the question arises, definitely not playing trivia here. I was expecting the downvoting. – Bleamer May 15 '13 at 14:21
See the precedence table. – Ashish Rawat May 15 '13 at 14:22
@Bleamer What anomaly? Since it is defined by the standard to be ((a/b)/c)/d, I'm curious what compiler breaks it in which way. – Daniel Fischer May 15 '13 at 14:46

3 Answers 3

up vote 2 down vote accepted

order of operations:

a/b/c/d is just like it says: ((a/b)/c)/d

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The C standard (and the C++ standard) says that operators are evaluated from left to right once priority is decided. The compiler MAY optimize the operations if it knows this can be done without affecting the actual result, but it would be invalid if the result [within the defined behaviour of the standard] is affected in such a way that it alters the result. In particular, you can expect small constants to be optimized into something larger, if ALL the values are known at compilation time.

In other words, ((a/b)/c)/d should be calculated.

-- Mats

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Especially, an alternation may affect the result if you have overflows. So doing a/cb instead of ab/c might prevent overflow, but induce inaccuracy. – glglgl May 15 '13 at 14:22
@glglgl There are all manner of different ways that the result may be "changed" if the compiler decides to alter the order and/or the way the value is calculated. But at the same time, if the compiler can determine that it IS safe to perform such an optimization, it can do so, which is my point. – Mats Petersson May 15 '13 at 14:25
My point was that it can be up to the user to change thinks if it sounds reasonable. – glglgl May 15 '13 at 14:26

Multiplicative operators are all left-associative, as given by the syntax (N1570):

6.5.5 Multiplicative operators
        multiplicative-expression * cast-expression
        multiplicative-expression / cast-expression
        multiplicative-expression % cast-expression

so it will be parsed as

((a / b) / c) / d
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