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These 2 are highly commonly used terms in programming and extremely important for a programmer to know. And as far as i understand these 2 concepts are tightly bound, one cannot do without the other when talking about expressions.

Let us take a simple example:

int a=1;  // Line 1
a = a++ + ++a;  // Line 2
printf("%d",a);  // Line 3

Now, it is evident that Line 2 leads to Undefined Behavior, since Sequence points in C and C++ include:

  1. Between evaluation of the left and right operands of the && (logical AND), || (logical OR), and comma operators. For example, in the expression *p++ != 0 && *q++ != 0, all side effects of the sub-expression *p++ != 0 are completed before any attempt to access q.

  2. Between the evaluation of the first operand of the ternary "question-mark" operator and the second or third operand. For example, in the expression a = (*p++) ? (*p++) : 0 there is a sequence point after the first *p++, meaning it has already been incremented by the time the second instance is executed.

  3. At the end of a full expression. This category includes expression statements (such as the assignment a=b;), return statements, the controlling expressions of if, switch, while, or do-while statements, and all three expressions in a for statement.

  4. Before a function is entered in a function call. The order in which the arguments are evaluated is not specified, but this sequence point means that all of their side effects are complete before the function is entered. In the expression f(i++) + g(j++) + h(k++), f is called with a parameter of the original value of i, but i is incremented before entering the body of f. Similarly, j and k are updated before entering g and h respectively. However, it is not specified in which order f(), g(), h() are executed, nor in which order i, j, k are incremented. The values of j and k in the body of f are therefore undefined.3 Note that a function call f(a,b,c) is not a use of the comma operator and the order of evaluation for a, b, and c is unspecified.

  5. At a function return, after the return value is copied into the calling context. (This sequence point is only specified in the C++ standard; it is present only implicitly in C.)

  6. At the end of an initializer; for example, after the evaluation of 5 in the declaration int a = 5;.

Thus, going by Point # 3:

At the end of a full expression. This category includes expression statements (such as the assignment a=b;), return statements, the controlling expressions of if, switch, while, or do-while statements, and all three expressions in a for statement.

Line 2 clearly leads to Undefined Behavior. This shows how Undefined Behaviour is tightly coupled with Sequence Points.

Now let us take another example:

int x=10,y=1,z=2; // Line 4
int result = x<y<z; // Line 5

Now its evident that Line 5 will make the variable result store 1.

Now the expression x<y<z in Line 5 can be evaluated as either:

x<(y<z) or (x<y)<z. In the first case the value of result will be 0 and in the second case result will be 1. But we know, when the Operator Precedence is Equal/Same - Associativity comes into play, hence, is evaluated as (x<y)<z.

This is what is said in this MSDN Article:

The precedence and associativity of C operators affect the grouping and evaluation of operands in expressions. An operator's precedence is meaningful only if other operators with higher or lower precedence are present. Expressions with higher-precedence operators are evaluated first. Precedence can also be described by the word "binding." Operators with a higher precedence are said to have tighter binding.

Now, about the above article:

It mentions "Expressions with higher-precedence operators are evaluated first."

It may sound incorrect. But, i think the article is not saying something wrong if we consider that () is also an operator x<y<z is same as (x<y)<z. My reasoning is if associativity does not come into play, then the complete expressions evaluation would become ambiguous since < is not a Sequence Point.

Also, another link i found says this on Operator Precedence and Associativity:

This page lists C operators in order of precedence (highest to lowest). Their associativity indicates in what order operators of equal precedence in an expression are applied.

So taking, the second example of int result=x<y<z, we can see here that there are in all 3 expressions, x, y and z, since, the simplest form of an expression consists of a single literal constant or object. Hence the result of the expressions x, y, z would be there rvalues, i.e., 10, 1 and 2 respectively. Hence, now we may interpret x<y<z as 10<1<2.

Now, doesn't Associativity come into play since now we have 2 expressions to be evaluated, either 10<1 or 1<2 and since the precedence of operator is same, they are evaluated from left to right?

Taking this last example as my argument:

int myval = ( printf("Operator\n"), printf("Precedence\n"), printf("vs\n"),
printf("Order of Evaluation\n") );

Now in the above example, since the comma operator has same precedence, the expressions are evaluated left-to-right and the return value of the last printf() is stored in myval.

In SO/IEC 9899:201x under J.1 Unspecified behavior it mentions:

The order in which subexpressions are evaluated and the order in which side effects take place, except as specified for the function-call (), &&, ||, ?:, and comma operators (6.5).

Now i would like to know, would it be wrong to say:

Order of Evaluation depends on the precedence of operators, leaving cases of Unspecified Behavior.

I would like to be corrected if any mistakes were made in something i said in my question. The reason i posted this question is because of the confusion created in my mind by the MSDN Article. Is it in Error or not?

share|improve this question
    
I'm with you all the way up to the conclusion, but don't see where you get the unspecified behavior. –  Bo Persson Mar 29 '11 at 13:29
6  
As I read the standard, (x<y)<z only clarifies associativity/precedence. The two subexpressions (x<y) and z could be evaluated in either order. –  Erik Mar 29 '11 at 13:32
1  
@pmg:: The precedence of operators is not directly specified, but it can be derived from the syntax. –  al-Acme Mar 29 '11 at 13:43
1  
@Acme: No idea on C. For C++ I'm pretty certain my initial comment is correct. –  Erik Mar 29 '11 at 13:51
1  
@Acme Read my answer. The precedence and associativity rules only define the shape of the expression tree, not the order in which it will be evaluated. –  Let_Me_Be Mar 29 '11 at 13:51

6 Answers 6

up vote 24 down vote accepted

Yes, the MSDN article is in error, at least with respect to standard C and C++1.

Now, as to evaluation order being determined by precedence, no it's not! It's as simple as that. Just for example, let's consider your example of x<y<z. According to the associativity rules, this parses as (x<y)<z. Now, consider evaluating this expression on a stack machine. It's perfectly allowable for it to do something like this:

 push(z);    // Evaluates its argument and pushes value on stack
 push(y);
 push(x);
 test_less();  // compares TOS to TOS(1), pushes result on stack
 test_less();

This evaluates z before x or y, but still evaluates (x<y), then compares the result of that comparison to z, just as it's supposed to.

Summary: Order of evaluation is independent of associativity.

Precedence is the same way. We can change the expression to x*y+z, and still evaluate z before x or y:

push(z);
push(y);
push(x);
mul();
add();

Summary: Order of evaluation is independent of precedence.

When/if we add in side effects, this remains the same. I think it's educational to think of side effects as being carried out by a separate thread of execution, with a join at the next sequence point (e.g., the end of the expression). So something like a=b++ + ++c; could be executed something like this:

push(a);
push(b);
push(c+1);
side_effects_thread.queue(inc, b);
side_effects_thread.queue(inc, c);
add();
assign();
join(side_effects_thread);

This also shows why an apparent dependency doesn't necessarily affect order of evaluation either. Even though a is the target of the assignment, this still evaluates a before evaluating either b or c. Also note that although I've written it as "thread" above, this could also just as well be a pool of threads, all executing in parallel, so you don't get any guarantee about the order of one increment versus another either.

Unless the hardware had direct (and cheap) support for thread-safe queuing, this probably wouldn't be used in in a real implementation (and even then it's not very likely). Putting something into a thread-safe queue will normally have quite a bit more overhead than doing a single increment, so it's hard to imagine anybody ever doing this in reality. Conceptually, however, the idea is fits the requirements of the standard: when you use a pre/post increment/decrement operation, you're specifying an operation that will happen sometime after that part of the expression is evaluated, and will be complete at the next sequence point.

Edit: though it's not exactly threading, some architectures do allow such parallel execution. For a couple of examples, the Intel Itanium and VLIW processors such as some DSPs, allow a compiler to designate a number of instructions to be executed in parallel. Most VLIW machines have a specific instruction "packet" size that limits the number of instructions executed in parallel. The Itanium also uses packets of instructions, but designates a bit in an instruction packet to say that the instructions in the current packet can be executed in parallel with those in the next packet. Using mechanisms like this, you get instructions executing in parallel, just like if you used multiple threads on architectures with which most of us are more familiar.

Summary: Order of evaluation is independent of apparent dependencies

Any attempt at using the value before the next sequence point gives undefined behavior -- in particular, the "other thread" is (potentially) modifying that data during that time, and you have no way of synchronizing access with the other thread. Any attempt at using it leads to undefined behavior.

Just for a (admittedly, now rather far-fetched) example, think of your code running on a 64-bit virtual machine, but the real hardware is an 8-bit processor. When you increment a 64-bit variable, it executes a sequence something like:

load variable[0]
increment
store variable[0]
for (int i=1; i<8; i++) {
    load variable[i]
    add_with_carry 0
    store variable[i]
}

If you read the value somewhere in the middle of that sequence, you could get something with only some of the bytes modified, so what you get is neither the old value nor the new one.

This exact example may be pretty far-fetched, but a less extreme version (e.g., a 64-bit variable on a 32-bit machine) is actually fairly common.

Conclusion

Order of evaluation does not depend on precedence, associativity, or (necessarily) on apparent dependencies. Attempting to use a variable to which a pre/post increment/decrement has been applied in any other part of an expression really does give completely undefined behavior. While an actual crash is unlikely, you're definitely not guaranteed to get either the old value or the new one -- you could get something else entirely.


1 I haven't checked this particular article, but quite a few MSDN articles talk about Microsoft's Managed C++ and/or C++/CLI but do little or nothing to point out that they don't apply to standard C or C++. This can give the false appearance that they're claiming the rules they have decided to apply to their own languages actually apply to the standard languages. In these cases, the articles aren't technically false -- they just don't have anything to do with standard C or C++. If you attempt to apply those statements to standard C or C++, the result is false.

share|improve this answer
    
+1 for a correct and complete post. –  Prasoon Saurav Mar 29 '11 at 15:58
1  
Since the precedence and associativity rules define the shape of the expression tree, they also define partial ordering, since the tree has to be evaluated from leaves to root. There is of course no ordering between the leaves themselves, but claiming that there is none at all is just weird. –  Let_Me_Be Mar 29 '11 at 16:40
    
@Let_Me_Be: The compiler is free to transform something like ab+ac, into something like a*(b+c) (assuming a, b, and c are all integers). In the original, two multiplications precede addition, but the transformed version has one multiplication subsequent to the addition. Ultimately, yes, it has to evaluate some tree from leaves to root, but the tree it evaluates often won't directly reflect what you wrote. –  Jerry Coffin Mar 29 '11 at 18:27
1  
precedence surely affects order of evaluation to some degree. If you say (a++ + b) * c, then the addition is necessarily evaluated before the multiplication, because the result of the multiplication depends on the result of the addition. That's just how the expression tree turns out to look. That's the whole reason f().g() will first execute f and then g, because f() is evaluated before g is called, as there is an apparent dependency. –  Johannes Schaub - litb Apr 2 '11 at 16:06
1  
@Johannes: No, but it could still do temp=c, then use temp in the altered expression. What we're left with is pretty simple: depending on order of evaluation beyond what's defined by sequence points is a really poor idea at best. Yes, you might be able to deduce part of what's likely to happen part of the time, but depending on it is still a really poor idea -- almost anything you think you've determined stands at least some chance of being wrong -- and even if you are right, depending on it leads to fragility (i.e., somebody who knows less than you do is likely to break it). –  Jerry Coffin Apr 2 '11 at 16:30

A good way to look at this is to take the expression tree.

If you have an expression, lets say x+y*z you can rewrite that into an expression tree:

Applying the priority and associativity rules:

x + ( y * z )

After applying the priority and associativity rules, you can safely forget about them.

In tree form:

  x
+
    y
  *
    z

Now the leaves of this expression are x, y and z. What this means is that you can evaluate x, y and z in any order you want, and also it means that you can evaluate the result of * and x in any order.

Now since these expressions don't have side effects you don't really care. But if they do, the ordering can change the result, and since the ordering can be anything the compiler decides, you have a problem.

Now, sequence points bring a bit of order into this chaos. They effectively cut the tree into sections.

x + y * z, z = 10, x + y * z

after priority and associativity

x + ( y * z ) , z = 10, x + ( y * z)

the tree:

      x
    +
        y
      *
        z
  , ------------
      z
    =
      10     
  , ------------
      x
    +
        y
      *
        z   

The top part of the tree will be evaluated before the middle, and middle before bottom.

share|improve this answer
    
Well i know it depends on how the parse tree is generated, the doubt is about that MSDN article. –  al-Acme Mar 29 '11 at 13:57
    
@Acme Well, the article is essentially correct. Or to put it even more diplomatically, I know what the author meant. And it might actually be completely true for MSVC (compilers may impose additional orderings). But again, the precedence and associativity rules only define the shape of the expression tree, not the order of evaluation. –  Let_Me_Be Mar 29 '11 at 14:04
    
@Let_Me_Be:: I know precedence defines the order in which operators are applied. Order of evaluation refers to the order in which sub-expressions are evaluated. What i am saying is these are tightly coupled - we cannot say one to be unrelated to another or can we? –  al-Acme Mar 29 '11 at 14:07
1  
@Acme Depends on how you look at it. First, precedence defines partial order. x+y*z means that for evaluating + you need the result of *. That is the ordering that is defined by the operator precedence. Now the order of evaluation needs to follow this partial ordering, but apart from this it can do what it wants. So no you can't really say that they are completely unrelated. But they aren't defined by each other either. –  Let_Me_Be Mar 29 '11 at 14:13
1  
@Prasoon I'm sorry, but you obviously have trouble understanding what he meant. He is talking about the order of the expression on the leaves of the expression tree. –  Let_Me_Be Mar 29 '11 at 15:33

The only way precedence influences order of evaluation is that it creates dependencies; otherwise the two are orthogonal. You've carefully chosen trivial examples where the dependencies created by precedence do end up fully defining order of evaluation, but this isn't generally true. And don't forget, either, that many expressions have two effects: they result in a value, and they have side effects. These two are no required to occur together, so even when dependencies force a specific order of evaluation, this is only the order of evaluation of the values; it has no effect on side effects.

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Effectively meaning that in foo(a) + foo(b), foo(b) could have been evaluated much earlier than foo(a). –  ninjalj Mar 29 '11 at 17:53
    
I like the way you describe this. –  Johannes Schaub - litb Apr 2 '11 at 16:16

It mentions "Expressions with higher-precedence operators are evaluated first."

I am just going to repeat what I said here. As far as standard C and C++ are concerned that article is flawed. Precedence only affects which tokens are considered to be the operands of each operator, but it does not affect in any way the order of evaluation.

So, the link only explains how Microsoft implemented things, not how the language itself works.

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I think it's only the

a++ + ++a

epxression problematic, because

a = a++ + ++a;

fits first in 3. but then in the 6. rule: complete evaluation before assignment.

So,

a++ + ++a

gets for a=1 fully evaluated to:

1 + 3   // left to right, or
2 + 2   // right to left

The result is the same = 4.

An

a++ * ++a    // or
a++ == ++a

would have undefined results. Isn't it?

share|improve this answer

Precedence has nothing to do with order of evaluation and vice-versa.

Precedence rules describe how an underparenthesized expression should be parenthesized when the expression mixes different kinds of operators. For example, multiplication is of higher precedence than addition, so 2 + 3 x 4 is equivalent to 2 + (3 x 4), not (2 + 3) x 4.

Order of evaluation rules describe the order in which each operand in an expression is evaluated.

Take an example

y = ++x || --y;   

By operator precedence rule, it will be parenthesize as (++/-- has higher precedence than || which has higher precedence than =):

y = ( (++x) || (--y) )   

The order of evaluation of logical OR || states that (C11 6.5.14)

the || operator guarantees left-to-right evaluation.

This means that the left operand, i.e the sub-expression (x++) will be evaluated first. Due to short circuiting behavior; If the first operand compares unequal to 0, the second operand is not evaluated, right operand --y will not be evaluated although it is parenthesize prior than (++x) || (--y).

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