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If I have the following expression:

c = (a) * (b)

What does the C90 standard say about the order evaluation of the subexpression 'a' and 'b'?

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8  
Nothing :):):):) –  dasblinkenlight Feb 24 '12 at 20:39
    
Homework questions require a homework tag. –  Robert Harvey Feb 24 '12 at 20:41
2  
@Robert: I don't think anyone asks this in their homework... –  Bruce Feb 24 '12 at 20:42
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@RobertHarvey A class that offers such questions for homework would be a nice class to attend: I cannot begin to imagine what the questions at the final exam would look like :) –  dasblinkenlight Feb 24 '12 at 20:48

2 Answers 2

up vote 11 down vote accepted

There is no specified order since the multiplication operator is not a sequence point. Sequence points include the comma operator, the end of a full expression, and function calls. Thus the order of evaluation of (a) and (b) is up to the compiler implementation. Therefore you shouldn't attempt to-do something in (a) that would have a side-effect that you want to be seen in (b) in order to generate a valid result.

For instance:

int a=5;
int b = (a++) * (a++); //<== Don't do this!!

If you want a full-listing of sequence points for C, you can check out a more thorough reference here.

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Or, even better, a SO search. –  smparkes Feb 24 '12 at 20:43
2  
@Bruce: see the ANSI C draft flash-gordon.me.uk/ansi.c.txt , annex A.2 –  Christoph Feb 24 '12 at 20:45
    
Your example indeed shows incorrect code, but not due to evaluation order. Obviously, it's unimportant which a++ is evaluated first. –  ugoren Feb 24 '12 at 22:00
    
Why would you say that? Suppose you assumed that the first a++ took place incrementing the value of a to 6 and returning 5, and then the second a++ operation set a to a value of 7 and returned 6, thus providing a value of 30? Of course if they went in the opposite order, then you would again get the value of 30, but the problem is you could have any ordering, not just the two I've described above. For instance, a compiler may decide per the C99 spec to only modify the location of a once in the given expression, and thus you could end up with a return value of 25 or 36, etc. –  Jason Feb 24 '12 at 22:14
    
I'm not sure what "valid sequence point" means; there's no such thing as an "invalid sequence point". –  Keith Thompson Oct 25 '13 at 16:02

The evaluation order of the operands of the * binary operator is unspecified in C90.

Here is the relevant paragraph from the C90 Standard (as the question asked about C90):

(C90, 6.3) "Except as indicated by the syntax or otherwise specified later (for the function-call operator (), &&, ||, ?:, and comma operators). the order of evaluation of subexpressions and the order in which side effects take place are both unspecitied"

For the * operator, if we take an example with side-effect operands like:

c =  f() * g();

the implementation can call f() first or g() first:

a = f();
b = g();
c = a * b;

or

a = g();
b = f();
c = a * b;

Both are valid translations.

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