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int x = 10;
x += x--;

In C#/.Net, why does it equal what it equals? (I'm purposely leaving the answer out so you can guess and see if you're right)

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16  
It behaves that way because you should never do anything like that, and as such the behavior is irrelevant. –  Stefan Kendall Feb 19 '10 at 20:53
    
Interesting Question! –  Kevin Feb 19 '10 at 20:53
    
i should not second guess myself. seemed obvious until i thought about it a second. my reasoning for thinking 20 was that the decrement did not happen until after the reference and then i started bumbling out thinking that the original reference would be decremented when the operation compeleted but it is a value type but but so i guess 19. silly me. –  Sky Sanders Feb 19 '10 at 20:54
1  
After Jon Skeets explanation, I'm curious to know how many compilers would optimize out the --. –  Wallacoloo Feb 19 '10 at 21:01
7  
Questions like this should be called clay pigeons... perfect for Skeet shooting. –  patros Feb 19 '10 at 21:26

5 Answers 5

up vote 53 down vote accepted

Look at this statement:

x += x--;

This is equivalent to:

x = x + x--;

Which is equivalent to:

int a1 = x; // a1 = 10, x = 10
int a2 = x--; // a2 = 10, x = 9
x = a1 + a2; // x = 20

So x is 20 afterwards - and that's guaranteed by the spec.

What's also pretty much guaranteed, although not by the spec, is that anyone using such code will be attacked by their colleagues. Yes, it's good that the result is predictable. No, it's not good to use that kind of code.

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9  
No fair...Skeet shouldn't be allowed to answer these questions. :P –  CAbbott Feb 19 '10 at 20:53
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haha, no skeet should not be allowed!!! Greedy! haha. –  Eric Feb 19 '10 at 20:54
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@CAbbott - unfortunately no one else appears to understand the difference between x-- and --x! –  Daniel Earwicker Feb 19 '10 at 20:55
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@Tom: Yes, I did. I checked it afterwards, admittedly. I did have to check that you'd specified x as int though... the first "equivalent to..." would be very slightly different if x were a byte even though the result would be the same in this case. –  Jon Skeet Feb 19 '10 at 21:00
7  
+1 for "...anyone using such code will be attacked by their colleagues..." –  JMarsch Feb 19 '10 at 21:02

20; the "--" doesn't happen until after everything gets evaluated, and that value is overwritten by the left-hand side of the equals.

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11  
Your name isn't Jon Skeet, but I'll upvote anyway. –  Patrick Karcher Feb 19 '10 at 20:57
4  
Though you've got the right answer, the logic that got you there is incorrect. The "doesn't happen until after everything gets evaluated" is misleading. In particular, the decrement happens before the assignment of 9 to x, which happens before the addition of 10 and 10, which happens before the assignment of 20 to x. The calculation of the decrement happens before one addition and two assignments, so it cannot be correct to say that it doesn't happen until everything gets evaluated. –  Eric Lippert Feb 19 '10 at 21:27

Jon is of course right.

A good way to think about this is to remember:

1) subexpressions are always evaluated left to right. Period. Evaluation of a subexpression may induce a side effect.

2) execution of operators is always done in the order indicated by parentheses, precedence and associativity. Execution of operators may induce a side effect.

The "x" to the left of the += is the leftmost subexpression, and therefore rule (1) applies. Its value is computed first -- 10.

The x-- to the right of the += is the next one in left-to-right order, so it is evaluated next. The value of x-- is 10, and the side effect is that x becomes 9. This is as it should be, because -- is of higher precedence than +=, so its side effect runs first.

Finally, the side effect of += runs last. The two operands were 10 and 10, so the result is to assign 20 to x.

I get questions about this all the time. Remember, the rules are very straightforward: subexpressions left-to-right, operators in precedence order, period.

In particular, note that the commonly-stated reasoning "the -- operator is postfix and therefore runs after everything else" is incorrect reasoning. I discuss why that is incorrect in the articles below.

Here are some articles I've written on this subject:

http://blogs.msdn.com/ericlippert/archive/tags/precedence/default.aspx

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Addition is a sequence point in C#? You're allowing people to write code without understanding sequence points. Surely the end of the world is at hand. –  Ben Voigt Feb 19 '10 at 21:47

From the specs 7.13.2

If the return type of the selected operator is implicitly convertible to the type of x, the operation is evaluated as x = x op y, except that x is evaluated only once.

So your statement is equivalent to x = x + x--; which is evaluated in left-to-right order and gives the answer 20.

Note that there is also a difference between --x and x-- here. If you had written x += --x; this would be equivalent to x = x + --x; then you would get 19. This is because the value of x is decremented and the resulting value is used in the expression (unlike x-- where the original value of x is used in the expression).

This expression x = x + --x + x will give 28 because the third timefourth time (see comments) x is evaluated it is 9.

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Maybe you meant 20? 10 would be really surprising..;) –  Francesco Feb 19 '10 at 20:56
    
@Francesco: Typo, fixed. Now I added one more paragraph and that 10 is actually meant to be a 10. –  Mark Byers Feb 19 '10 at 21:06
    
+1 for quoting the spec. –  Jon Skeet Feb 19 '10 at 21:06
    
Though the answer you came up with in the last paragraph is correct, your explanation doesn't quite make sense. The decrement cannot be done before x is evaluated because obviously the value computed by decrement depends on the evaluation of x! Rather, the right way to say this is that the value of the expression --x is the value that was assigned to x after the decrement. That is, the sequence of events is: evaluate x (10), evaluate x again (10), subtract one (9), assign 9 to x, add 10 and 9 (19), assign 19 to x. There are two evaluations of x and they both happen up front. –  Eric Lippert Feb 19 '10 at 21:23
    
@Eric: Yes, you're right - the word "evaluated" was the wrong word to use there. Thanks for the correction. I've rephrased in my own words. Hopefully it's OK now. –  Mark Byers Feb 19 '10 at 22:05

The answer is 20. And Tom, you really aren't as surprised as your questions seems to imply, right? And to those of you who are assuming the answer is 19 - I think you're confused with x += --x;

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2  
What they're confused about is probably not --x, but rather, whether the side effect of "decrement x" happens before or after the computation of the left-hand side of the += operator. In language where x+=x-- is evaluated right-to-left, you first compute x--, which is 10, and assign 9 to x. Then you compute the left hand side, which is now 9. And now you add 9 to 10 and assign that to x, so, 19. C# guarantees that expressions are evaluated left-to-right. C++ does not; a C++ compiler can evaluate this right-to-left if it chooses, and both 19 and 20 are legal results. –  Eric Lippert Feb 19 '10 at 21:31
    
Eric. I believe you are right. I couldn't agree more. –  Eric Feb 19 '10 at 21:58

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