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#include <iostream>
using namespace std;

int a = 8;

int g()
{
    a++; 
    return a - 1;
}

int f()
{
    a++;
    return a;
}

int main()
{
    cout << g() << " " << f() << " " << g() + f() << endl;
    system("PAUSE");
    return 0;
}

Output is "11 11 18"

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1  
In the future, it might help to mention what output you were expecting. –  Chris Frederick May 13 '11 at 14:05
    
This question is related to this Is this code well-defined? ... and see the explanation by @Johannes. –  Nawaz May 13 '11 at 14:16

6 Answers 6

The order of evaluation of functions is unspecified in C++. In the code:

cout << g() << " " << f() << " " << g() + f() << endl;

The compiler could emit code to call f(), f(), g(), g() and then add the results. Or it could do something else.

This is nothing specific to use with cout, BTW - if you write code like this:

x = a() + b() * c();

There is no guarantee about which order a, b and c will be called in. This is one of the many reasons that global variables are A Bad Thing - you often cannot predict how functions that change them will be called.

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+1: I was about to post this, but took too much time finding quote & verse from the Standard. –  John Dibling May 13 '11 at 14:29
2  
"The order of evaluation ... is not well-specified" The order of evaluation is explicitly unspecified in the standard. Formally, it may even vary dynamically, with a different order each time you execute the statement. Practically, it will vary according to compiler and the level of optimization you compile with. –  James Kanze May 13 '11 at 14:34
    
@James: I think that's exactly what @Neil meant to say. –  John Dibling May 13 '11 at 14:35
    
Sigh. Another edit.... –  nbt May 13 '11 at 14:36

It has to do with order of evaluation. In this case g() + f() is evaluated first, thus giving 8 + 10 = 18. After this a == 10 and f() is evaluated which gives 11 and sets a to 11 etc

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2  
That's what appears to happen in this case, but C++ doesn't guarantee it to be so. –  nbt May 13 '11 at 14:07
    
So it means that it follows right association rule for "<<", right? –  Xiaolong May 13 '11 at 14:10
1  
@user Wrong It is NOT DEFINED! –  nbt May 13 '11 at 14:11
2  
@Joe: It's not "undefined behavior" it is "unspecified behavior." There is a huge difference between the two. –  John Dibling May 13 '11 at 14:19
1  
@Neil, @Joe: "Undefined behavior" = malformed code, the compiler could do anything. "Unspecified behavior" = well-formed code, the compiler must do something deterministic, but no documentation of that behavior is required. –  John Dibling May 13 '11 at 14:28

For this particular result, g() + f() is being evaluated first which will result in a eventually being incremented to 10 and the result being 18. This is the case regardless of whether the g() or f() bit of that sum is done first. Doing g() first gives 8+10, otherwise it's 9+9.

Then f() is evaluated, setting a to 11 and returning 11.

Then g() is evaluated, setting a to 12 and returning 11.

In other words, it's calling the right-most bits of the cout first and proceeding left.

Now you'll notice the phrase "for this particular result" in my ramblings above. Whether this is mandated by the standard, I don't know for sure (meaning I couldn't be bothered looking it up at the moment), but I very much doubt it, based on experience.

So, while it's actually outputting the items in the correct order, the side effects can be different depending on a large number of things. That's one reason why global variables (or, more correctly, side effects on them) are rarely a good idea and you should probably rethink your use of them :-)

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1  
It's not defined, in either C or C++. –  nbt May 13 '11 at 14:10
    
That is the problem, but are you sure this is a standard for every compiler? –  Xiaolong May 13 '11 at 14:13
    
Thank you! I'll test it in other compiler to verify it! –  Xiaolong May 13 '11 at 14:15
    
@user752501, testing it in another compiler will prove nothing! You need to be aware that the standard is the only defining document, not what two (or even a hundred) implementations do. –  paxdiablo May 13 '11 at 14:22
    
@Neil Butterworth "It's not defined" makes it sound like undefined behavior. There's no undefined behavior in his code, just unspecified behavior. –  James Kanze May 13 '11 at 14:31

The order of execution is not guaranteed unless there is a sequence point in the expression. If you want to know the order here you have to break it into separate statements.

cout << g() << " ";
cout << f() << " ";
int temp = g();
temp += f();
cout << temp << endl;
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+1 Thank you very much, I was so confused about this. I was sure () and << were read from left to right. Reading up on sequence point now. –  kisplit May 13 '11 at 14:16

a is a global variable and thus is being accessed by all.
in addition, operator<< is being accessed from right to left, so:
g() + f() = 8+10=18 (a after it is 10)
f() = 11 and a is 11
g() = 11 and a is 12

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I believe the order of operation for things like this is actually undefined by the spec, so it could be L->R or R->L –  Joe May 13 '11 at 14:05
cout << g() << " " << f() << " " << g() + f() << endl;

same as

cout.operator<<(operator<<(operator<<(operator<<(operator<<(operator<<(endl), g() + f()), " "), f()), " "), g());

The order the functions are called is why this occurs.

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1  
Um, wrong. Read the other answers. –  nbt May 13 '11 at 14:45
    
@Neil Sorry I am right. –  Jordonias May 13 '11 at 14:54
1  
And to the upvoter, if you know zip about C++, don't vote on C++ answers. –  nbt May 13 '11 at 15:04
1  
@Jordonias You are not explaining the answers and you are wrong. The order in which g() and f() are called in the users code is unspecified, simple as that. –  nbt May 13 '11 at 15:10
1  
To simplify, in x( y( a(), b() ), c() ) y, a, b and c must be called before x, but that is all you can say. The order of calls of a, b and c are unspecified. –  nbt May 13 '11 at 15:26

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