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Please note, that this has nothing to do with Operator Precedence.. () and ++ , Undefined Behavior and Sequence Points , Could anyone explain these undefined behaviors (i = i++ + ++i , i = i++, etc...) and the hundreds similar questions about this here


Shortly: is the Associativity guaranteed by the standard?

Detailed example: from Wikipedia's article for operator precedence, operator* and operator/ have the same priority and they are Left-to-right operators. Does this mean, that the standard guarantees, that this:

int res = x / y * z / t;

will be evaluated as

int res = ( ( x / y ) * z ) / t;

or it's implementation defined?

If it's guaranteed, could you quote?


It's just out of curiosity, I always write brackets in these cases.
Ready to delete the question, if there's such one.

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Yes (now need a few for characters!) –  Ed Heal Aug 17 '12 at 12:19
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2 Answers

up vote 6 down vote accepted

From the latest publicly available draft

5.6 Multiplicative operators [expr.mul]

1 The multiplicative operators *, /, and % group left-to-right.

multiplicative-expression:
pm-expression
multiplicative-expression * pm-expression
multiplicative-expression / pm-expression
multiplicative-expression % pm-expression

So parsing will go like:

int res = x / y * z / t;
int res = (x / y * z) / t;
int res = ((x / y) * z) / t;
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And not like int res = ( x / y ) * z / t; int res = ( ( x / y ) * z ) / t;? I have some troubles understanding that order. If so, why? Could you explain (and I'll accept the answer) –  Kiril Kirov Aug 17 '12 at 12:33
    
I see, that the result is the same, just asking :) –  Kiril Kirov Aug 17 '12 at 12:33
    
If you look at the parse tree: it's multiplicative-expression: multiplicative-expression @ pm-expression. When parsing your expression, the rightmost term t is isolated as the pm-expression, and the rest is then evaluated as another multiplicative-expression. The next step will identify z as the pm-experssion. –  TemplateRex Aug 17 '12 at 12:35
    
what does pm-expression mean? –  Kiril Kirov Aug 17 '12 at 12:42
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To explain this who have not been introduced to formal grammars: This text from the standard states that a multiplicative-expression (which I will abbreviate “ME”) must be formed of either a pm-expression (“PE”) or one of the following combinations: “ME * PE”, “ME / PE”, “ME % PE”. For our purposes, identifiers such as “x” and “y“ are already PEs. To form an ME from “x / y * z”, you must make the “x / y” into an ME, then use that ME to form “ME * z” into another ME. You cannot form “y * z” into an ME first, because that would give you “x / ME”, and since x is a PE, it would be “PE / ME”.… –  Eric Postpischil Aug 17 '12 at 12:45
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n3337 5.6/1

The multiplicative operators *, /, and % group left-to-right.

Read 5 par of standard.

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