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Please be easy on me and don't shoot me as I'm still newbie.

I'm totally confused and can't for life figure out why when I run this code:

int y = 9;
cout << "++y = " << ++y << "\n--y = " << --y << "\ny++ = " << y++ << "\ny-- = " << y-- << "\n";
cout << "y = " << y << "\n";

I get the following results:

y = 9
++y = 9
--y = 9
y++ = 8
y-- = 9
y = 9

instead of these results:

y = 9
++y = 10
--y = 9
y++ = 9
y-- = 10
y = 9

That I get from this code:

int y = 9;
cout << "y = " << y << "\n";
cout << "++y = " << ++y << "\n";
cout << "--y = " << --y << "\n";
cout << "y++ = " << y++ << "\n";
cout << "y-- = " << y-- << "\n";
cout << "y = " << y << "\n";

Can anyone explain -in simple words as possible- what happens in the first code so that it prints the result that way?

share|improve this question
1  
As you can see, it is so interesting and complicated question, that even non-newbies argues on it. Thank you for good question. +1. –  Gangnus Jan 19 '12 at 20:47
    
Indeed! I just hoped there was a clear and logic reason to explain it as I'm pretty sure we're going to get a similar question in the final exam and don't want to lose any marks because of it. :( –  XO39 Jan 19 '12 at 20:52
    

3 Answers 3

up vote 11 down vote accepted

A simple rule is that you are not expected to increment the same location more than once in any given statement. So you should not code cout << y++ << ++y << endl; which contain two increments of y (assuming an int y; declaration).

For details, read about sequence points and undefined behavior in the C++ standard.

There are lot of related questions. Look into them for more!

share|improve this answer
    
Thanks, Basile. We were asked to give the output of the first code by our teacher in an exam. My answer was the same as the one from the second code. When I got home I tried it and found out I was totally wrong, so I wanted to understand the logic behind that. (Added int declaration) –  XO39 Jan 19 '12 at 20:12
    
No. It is error. You can not predict the order of evaluation of ++ and --. But the result of a=1; b=a++ + a++; is absolutely (ANSII) predictable. It is 5. –  Gangnus Jan 19 '12 at 20:15
1  
Again, I see more than ten related questions on the right part of the browser. Look into them! –  Basile Starynkevitch Jan 19 '12 at 20:17
    
@Gangnus: no, it's not. If well-defined, it would be 2 or 3, not 5. But it's undefined behaviour, so it could also be 42. –  R. Martinho Fernandes Jan 19 '12 at 20:18
    
It is worse than unpredicatable: it is undefined behavior, and as I joke sometimes, the computer could explode and kill you and still have a standard conforming implementation. You just should never code that. Use the -Wall option of the gcc compiler to get more warnings... Understand that having code with undefined behavior is a shame (it is non professional and you should avoid coding that). –  Basile Starynkevitch Jan 19 '12 at 20:18

When according to the rules operation * is to be counted before +, and ++ before *, it will be so.

 a*b++ + c // first b++ (returns **old** b), than a*b, than ...+c

But when you have a++ * a--, nobody can tell, what of the two operands, a++ or a-- will be evaluated the first. According to ANSII standard, even if you use the same translator, the result is every time unpredictable.

cite from the C++ ANSII standard:

Except where noted, the order of evaluation of operands of individual operators and subexpressions of individual expressions, and the order in which side effects take place, is unspecified. Between the previ- ous and next sequence point a scalar object shall have its stored value modified at most once by the evaluation of an expression. Fur- thermore, the prior value shall be accessed only to determine the value to be stored. The requirements of this paragraph shall be met for each allowable ordering of the subexpressions of a full expres- sion; otherwise the behavior is undefined. [Example:

      i = v[i++];      // the behavior is undefined
      i = 7, i++, i++; // `i' becomes 9

      i = ++i + 1;     // the behavior is undefined 
      i = i + 1;       // the value of 'i' is incremented

Sequence points:

  • at the end of the evaluation of a full expression (a full expression is an expression statement, or any other expression which is not a subexpression within any larger expression);
  • at the ||, &&, ?:, and comma operators;
  • and at a function call (after the evaluation of all the arguments, and just before the actual call).

So, || is a sequence point, but << is not.

share|improve this answer
    
I don't think that parenthesis are enough to make a++ * a-- legal. It is undefined behavior even if coded (a++) * a-- etc.... You need to make one of the increment/decrement in a separate statement. –  Basile Starynkevitch Jan 19 '12 at 20:16
    
Yes, you are right here. They are not enough. Even more - it is impossible to make the compilator to give priority to one or the other ++ or -- –  Gangnus Jan 19 '12 at 20:25
    
yes, the words on "the same level" was chosen badly. They are senseless here. Sorry. Removed. –  Gangnus Jan 19 '12 at 20:28

Mulitiline version of first code should be:

  y = 9;
  cout << "y-- = " << y-- << "\n";
  cout << "y++ = " << y++ << "\n"
  cout << "--y = " << --y << "\n"
  cout << "++y = " << ++y << "\n"
  cout << "y = " << y << "\n";
share|improve this answer
    
Yes, except perhaps endl instead of "\n" –  Basile Starynkevitch Jan 19 '12 at 20:21
    
Yes, I know that. I just was wondering how it assigns the value of the code in the first code and why it prints it that way while the final value of y in both codes is the same! –  XO39 Jan 19 '12 at 20:21
1  
Value is the same in both code pieces, because in first and second code you have the same operations, and addition is cumulative. –  ldanko Jan 19 '12 at 20:25
    
@BasileStarynkevitch: Is there any real benefits of using endl over "\n"? –  XO39 Jan 19 '12 at 20:29
1  
Yes, endl may flush the buffer on occasions. I'm not sure "\n" should always flush (in practice it often does, because of compatibility of C++ streams with C FILE-s). I'm not sure that "\n"would flush a stringstream –  Basile Starynkevitch Jan 19 '12 at 20:30

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