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In Java and C# if I do this:

int i=1;
int j= i++ + i;

j is 3, i.e. it translates to 1+2 and increments i before the addition.

However, in C j is 2, i.e. it translates to 1+1 then increments i.

What is the internal mechanism in C and Java/C# that causes this difference in what an expression is?

(the same goes for post-fix. Java/C# become 4 and C becomes 3.)

thanks.

Btw, initially I assumed it would be what the C answer was and so was confused by the Java/C# result.

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3  
It's undefined in C, well-defined in Java and C# (by language standards, not some implementation mechanisms) –  Anton Kovalenko Feb 20 '13 at 13:43
    
In Java and C#, you have left-to-right evaluation. So int j = i++ + i; first (after evaluating the location to store, j) evaluates i++, giving 1 and storing 2 in i, then evaluates i giving 2, adds, giving 3, stores in j. –  Daniel Fischer Feb 20 '13 at 13:51
    
Cheers. I just assumed it would be the whole expression, i.e. 'i++ + i' before it incremented i –  Neil Feb 20 '13 at 13:59
    
How can int j= i++ + i; be undefined behavior in C? There are two side effects in the expression: j is modified, i is modified. The same variable is not modified twice between sequence points. It may be unspecified behavior, as in the code depends on order of evaluation, but that's something completely different from UB. –  Lundin Feb 20 '13 at 14:31
    
@Neil I'm assuming you meant to write int i=1; on the first row? –  Lundin Feb 20 '13 at 14:35

4 Answers 4

up vote 5 down vote accepted

Unlike Java and C# which specify precisely when the side effects would take place, C prohibits the use of an expression with side effects before the next sequence point. Not only does your expression produce a different result in C, but it is also undefined behavior.

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Actually, I assumed C had the correct answer and Java/C# must be doing something odd ;) –  Neil Feb 20 '13 at 13:46
    
@Neil Nope, in C your program is wrong, i.e. there is no right or wrong behavior for that expression. There are compilers that do it one way, as well as compilers that do it the other way. The plus + is not a sequence point, so the result is undefined. –  dasblinkenlight Feb 20 '13 at 13:48
    
What exactly is undefined behavior in this code? Accessing a variable twice without sequence points in between is perfectly fine, otherwise x + x would be undefined behavior. C only states UB if a variable is modified twice without a sequence point in between. –  Lundin Feb 20 '13 at 14:33
    
@Lundin Value computation (in this case, the second reference of i) without a sequence point counts as UB as well: "If a side effect on a scalar object is unsequenced relative to either a different side effect on the same scalar object or a value computation using the value of the same scalar object, the behavior is undefined. " –  dasblinkenlight Feb 20 '13 at 14:45
    
@dasblinkenlight Aha, I didn't know that. Still, how is this expression unsequenced? It is unspecified whether i++ or i will be evaluated first, but they will both evaluate to the same result. The actual ++ happens after all operand evaluations. Should we read the standard as "if an expression with the same variable appearing twice without sequence points in between, depends on order of evaluation, it is not unspecified but undefined behavior"? –  Lundin Feb 20 '13 at 15:10

In C, the mechanism is a finely-tuned celebration of compiler-writing skills affectionally known as Undefined behavior, or "UB".

In other words, nobody can provide an answer for C, since the code is known in advance to trigger undefined behavior. Anything could happen, there's no "right" or "wrong".

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From the 2011 draft of the C language standard:

6.5 Expressions

...
2 If a side effect on a scalar object is unsequenced relative to either a different side effect on the same scalar object or a value computation using the value of the same scalar object, the behavior is undefined. If there are multiple allowable orderings of the subexpressions of an expression, the behavior is undefined if such an unsequenced side effect occurs in any of the orderings.84)

3 The grouping of operators and operands is indicated by the syntax.85) Except as specified later, side effects and value computations of subexpressions are unsequenced.86)
84) This paragraph renders undefined statement expressions such as
    i = ++i + 1;
    a[i++] = i;
while allowing
    i = i + 1;
    a[i] = i;

85) The syntax specifies the precedence of operators in the evaluation of an expression, which is the same as the order of the major subclauses of this subclause, highest precedence first. Thus, for example, the expressions allowed as the operands of the binary + operator (6.5.6) are those expressions defined in 6.5.1 through 6.5.6. The exceptions are cast expressions (6.5.4) as operands of unary operators (6.5.3), and an operand contained between any of the following pairs of operators: grouping parentheses () (6.5.1), subscripting brackets [] (6.5.2.1), function-call parentheses () (6.5.2.2), and the conditional operator ? : (6.5.15). Within each major subclause, the operators have the same precedence. Left- or right-associativity is indicated in each subclause by the syntax for the expressions discussed therein.

86) In an expression that is evaluated more than once during the execution of a program, unsequenced and indeterminately sequenced evaluations of its subexpressions need not be performed consistently in different evaluations.

The order in which the side effect of i++ is applied relative to the larger expression i++ + i is unspecified; the two operations are unsequenced relative to each other. If the side effect is applied immediately after i++ is evaluated, then you'll get the result of 1 + 2. If the side effect is deferred until after the addition, you'll get the result of 1 + 1.

The older version of the standard was a bit clearer; an object may have its value modified at most once by the evaluation of an expression between sequence points, and the prior value of the expression is used only to determine the new value to be stored.

The behavior is left undefined so that the compiler isn't required to detect these issues and issue a diagnostic (i++ + i is easy enough to catch, but there are far more subtle variations of this problem that are a lot harder to detect). Either result is "correct" as far as the language definition is concerned.

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In C, post increment/decrement will be executed after the current operation is done. in this example, i++ + i; i will be incremented after the addition is done.

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