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Could anyone explain these undefined behaviors (i = i++ + ++i , i = i++, etc…)

I am having this confusion in the Operator preference of && ++ and *

int i=-1,k=-1,y,n;
y=++i*++i;
n=++k&&++k;
printf("%d %d %d %d",i,y,k,n);

output gcc : 1 1 0 0

here, for the case of y initially i is incremented once i.e i=0 and again i is incremented i.e i=1 now i*i is done i.e 25 since ++ has higher precedence than *

in second case k doesnot increment to 1 even though ++ has higher preference than && .Can anyone please explain this phenomenon??

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marked as duplicate by H2CO3, David Heffernan, Jim Balter, Lundin, WhozCraig Nov 15 '12 at 7:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Why the downvotes? It's an interesting question. –  darren Nov 15 '12 at 6:55
1  
@darren it has been asked many times so it shows no research effort (see my comment about the possible duplicate). –  user529758 Nov 15 '12 at 6:56
    
Your experience with this code should lead you to resolve never to write code like this. –  David Heffernan Nov 15 '12 at 6:59
    
It was from one of those technical questions based on C,not practical code. –  Debarshi Dutta Nov 15 '12 at 7:01
1  
@H2CO3: Actually I think this is a distinct question. The question here isn't really related to trying to modify the same variable; but operator precedence. Of course, the actual cause of the failure ends up being the sequence point problems; but just because two questions have the same answer doesn't mean that they are the same questions. –  Billy ONeal Nov 15 '12 at 7:07

7 Answers 7

up vote 7 down vote accepted

y = ++i * ++i; and similar clauses invoke undefined behavior, since they're modifying the variable more than once between two sequence points. You can expect anything to happen, literally.

n = ++k && ++k; is not actually UB, since the && operator is a logical AND operator and it is evaluated using short-circuiting - so there is a sequence point in that expression, but the other one is still wrong.

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even if its an undefined behaviour ... how can the compiler give the same output everytime ?? –  Debarshi Dutta Nov 15 '12 at 6:57
    
@DebarshiDutta Because the compiler is deterministic, perhaps? –  user529758 Nov 15 '12 at 6:58
    
Undefined here means undefined by the langugage specification. –  David Heffernan Nov 15 '12 at 6:58
    
@DebarshiDutta not everytime. The compiled program is still assumed to be deterministic (unless it's JITted), but different compiled programs may do different things for the same code. –  Jan Dvorak Nov 15 '12 at 6:58
    
kk actually was a bit confused about this thing.. thanks :) –  Debarshi Dutta Nov 15 '12 at 6:59

They are different here.

First, ++i*++i is undefined behaviour. There are two side effects and without a sequence point to split them.

Second, ++k&&++k is short circuit. Since ++k is 0. The expression should be 0. There is no need to evaluate the second ++k. It is important that && is a sequence point.

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The short circuit operation actually sequences the side effects. +1 –  Jan Dvorak Nov 15 '12 at 6:55

The precedence of operators does not dictate the order in which those operators are evaluated. The order of evaluation is unspecified.

The precedence rules merely state that y=++i*++i; is interpreted as y=(++i)*(++i); and n=++k&&++k; as n=(++k)&&(++k);, but otherwise the compiler is allowed to actually execute them in any order.

There are a few exceptions to this rule; for instance, the standard mandates that the logical and operator (&&) short circuit; so the left side of such an expression must be evaluated before the right side.

For instance, consider the expression a = b+++c. Precedence rules mandate that this expression be interpreted as a = (b++) + c; but the compiler is freely allowed to execute this in any of the following orders:

  • add one to b and store the old value in a temporary, then add c and the temporary together, then store the result in a
  • add the values of b and c together, then store the result in a, then increment b
  • add the values of b and c together and store them in a temporary, then increment the value of b, then assign the temporary to a
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Precedence is irrelevant here.

In the first case: ++i * ++i, you have undefined behavior, because you're modifying i twice without an intervening sequence point.

In the second case, you have an &&, which defines a sequence point, so you have defined behavior. Specifically, with &&, the left operand is evaluated, then if and only if that yields a non-zero value, the right operand is evaluated. The result is the logical and of the two results. In your case, k starts out as -1, so when the ++k on the left is evaluated, the result is 0. Since it's 0, the right operand isn't evaluated at all.

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+1 because "precedence is irrelevant here" ... but to my understanding C++11 doesn't have the concept of a "sequence point"... –  Billy ONeal Nov 15 '12 at 7:04
    
@BillyONeal Nobody has mentioned C++. C11 certainly has sequence points. –  Lundin Nov 15 '12 at 7:19
    
Oops. Silly me. –  Billy ONeal Nov 15 '12 at 7:40

This is undefined behaviour.Changing the value of a variable twice between two sequence points.

y=++i*++i; here you are modifying i twice between two sequence points.

For sequence points read this link

n=++k&&++k; but this is well defined behaviour because && is a sequence point. Here you are getting n == 0 because of short circuit of logical &&

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Changing the value of a variable twice itself is not UB. Doing so between two segquence points is. –  user529758 Nov 15 '12 at 6:55

From my understanding of that what will happen is this:

(++k)    && (++k)    -->  ans1 && ans2
-1 -> 0      0 -> 1        0   &&  1   = 0
                              ^ The rest will not be calculated. 

So the ++k is evaluated first but still leads to a separate answer to the first ++k (because left to right order on same operators)

Therefore the answer will be 0.

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y=++i*++i;

It is Undefined Behaviour (Language standard doesn't guarantee the output of variable will be same every time).

n=++k&&++k;

Since && is short-circuit operator and it won't operate 2nd operand if result can be determined by 1st operand itself. Since 1st operand becomes 0 result is false i.e. 0

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