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Possible Duplicate: Undefined behavior and sequence points

 #include< iostream.h>
 int main()
 {
       int i=7,j=i;
       j=(i++,++i,j++*i);
       cout <<j;
       return 0;
 }

What will be the output of the C++ code?

It's my homework that my professor gave me.

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marked as duplicate by sbi, fredoverflow, Starkey, Steve Jessop, John Dibling Nov 15 '10 at 18:46

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.

11  
Why is your professor still doing #include <iostream.h>? Are you guys using Turbo C++? :p – birryree Nov 15 '10 at 18:05
14  
On my machine, the output is "Yo mama." – Steve M Nov 15 '10 at 18:09
5  
In the real world, the correct answer is that the output of that code is an enraged programmer who will track down the author and give them an earful! – AshleysBrain Nov 15 '10 at 18:19
4  
I thought Steve M was referring to the undefined behavior of the program, which allows his stated output to happen. But, shame to explain it ... :( – AshleysBrain Nov 15 '10 at 18:23
8  
These questions are asked about twice a week. There's dozens of dupes for this. Fortunately we have now an FAQ entry for it: Undefined Behavior and Sequence Points. Read that very carefully. I bet it has more ammunition than your professor can take. – sbi Nov 15 '10 at 18:30

It sometimes helps to convince people who don't believe this is undefined by actually compiling the program with several compilers and observing the results:

After fixing the iostream.h error,

  • g++ 4.5.2 prints 64
  • CLang++ 2.8 prints 63
  • Sun C++ 5.8 prints 63
  • MSVC 2010 prints 64

(oh, and, re-written to use C I/O, the original K&R C compiler on Unix 7 prints 63)

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1  
+1 for practical approach – fredoverflow Nov 15 '10 at 18:50

[Edited to account for OP's question changing edit]:

It's undefined as to what the output will be.

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why and what are all of you saying undefined,? – napster Nov 15 '10 at 18:14
3  
@John there is no sequence point between j++ and the modification of the assignment expression to j. Therefor, you get undefined behavior. You will need to rewrite it to j=(i++,++i,j++,(j-1)*i); to make this case defined. The "sequence point" FAQ entry needs more such examples, IMHO, and could spare on the mathematical aspects, like defining "partial order" and so on :) – Johannes Schaub - litb Nov 15 '10 at 18:23
1  
@Johannes: I think that'll be defined in C++0x, but under the current standard, I don't think it is; there's still no sequence point between the assignment to j and the post-increment of j. The increment is sequenced relative to the computation of (j-1)*i, but not relative to the assignment to j (and the current standard does not require that assignment of a value happen after the value is computed). – Jerry Coffin Nov 15 '10 at 18:29
1  
@Jerry well I agree this is vague, and I'm certainly not betting on anything. But there is some logic: In a = (x, y) you need to evaluate (x, y) before assigning. Evaluating that implies to evaluate y, and there is a sequence point between the evaluations of x and y, which implies that all side effects before evaluating y are complete. Therefor, there are no two side efffects between the same two sequence points: The assignment side effect will happen after the sequence point between x and y. – Johannes Schaub - litb Nov 15 '10 at 18:39
1  
@litb, @Jerry: Correct, I wasn't looking widely enough -- only at the comma operators. This is undefined for the same reason why j = j++ is undefined – John Dibling Nov 15 '10 at 18:41

There are the following errors in the code:

#include <iostream.h> should be #include <iostream>,

j is uninitialized so the value of j++*i isn't known - OK, this got fixed in the edit,

Besides, the assignment itself is improper. The convoluted line can be rewritten as:

i++;
++i;
j = j++ * i;

And the last part is invalid for the reasons described here:

FAQ : Undefined Behavior and Sequence Points

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1  
i initilized j. – napster Nov 15 '10 at 18:15
4  
Kudos for (accidentally?) achieving a double meaning with that comment :) – AshleysBrain Nov 15 '10 at 18:18
    
i = 7, j = i j == 7 – thecoshman Nov 15 '10 at 18:19
    
The rewrite of the assignment you have provided assigns an order to the operations that is not guaranteed. You probably intend that to be discovered in the reference link, but it should be noted explicitly. – gregg Nov 15 '10 at 18:19
1  
I still can't get why j = j++ is undefined and j = ++j is well defined. :-/ – Let_Me_Be Nov 15 '10 at 18:21

Essentially, you're incrementing i by 2, multiplying it by the original value of j, and adding one.

In the end, j=64

j = ((7+2)*7) + 1 = (9*7)+1 = 63+1 = 64

At least that's what my Visual Studio 2010 compiler does with it.

share|improve this answer
    
@flevine100: what makes you think something like this would be justified in the embedded community? – Jerry Coffin Nov 15 '10 at 18:26
    
It's probably not, but some of the embedded code I've seen is full of supposed 'space saving' optimizations. Personally, I would never write that code unless there was a justifiable reason that could not be ignored. – fbl Nov 15 '10 at 18:39
    
Just the examples of people who don't trust their compilers, I pressume. – Kos Nov 15 '10 at 18:47
1  
-1 because 64 is wrong, the program invokes undefined behavior. – fredoverflow Nov 15 '10 at 18:50
    
To be fair, I specified that my VS2010 compiler produced it, but having reviewed the results on other compilers I now agree that 64 is only right in VS2010 and g++. – fbl Nov 15 '10 at 18:58

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