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Taking an intro c++ class, and the professor today was talking about loops, increments, and decrements. so we were examining how many times a simple do-while loop would run, and I noticed that during the output of the following code, the int y is displayed first as a 2, however the postfix-notation for increments is used first and, according to my professor, is also given precedence(like in the x variable displayed). so why is y not first displayed as: "1 3" in the output window?

probably a very simple answer, but he did not know immediately, and asked us to see if we can find out. we were using dev c++'s newest version.

#include <iostream>
using namespace std;

int main()
{
    int x=1;
    int y=1;

    do
    {
        cout << "x: " << " " << ++x << " " << x++ << endl;
        cout << "y: " << " " << y++ << " " << ++y << endl;
    }while(x<=10);

    return 0;
}

if you run it, the display will look like this:

x:  3 1
y:  2 3
x:  5 3
y:  4 5
x:  7 5
y:  6 7
x:  9 7
y:  8 9
x:  11 9
y:  10 11

with my limited understanding i came up with this: since there are multiple increment operations used in the same statement, they are both performed before the cout statement displays the information to the console.
but looking for maybe a more precise answer/explanation

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marked as duplicate by dasblinkenlight, jogojapan, WhozCraig, chris, Mat Mar 1 '13 at 5:28

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.

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it seems to be a undefined (or implementation-dependent) behavior for C++, with multiple assignment to the same variable in same statement. –  Adrian Shum Mar 1 '13 at 3:01
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@Dave: the issue is that the standard specifies: Except where noted, evaluations of operands of individual operators and of subexpressions of individual expressions are unsequenced. Unlike a function call, the << and >> operator does not create a sequence point. –  Lie Ryan Mar 1 '13 at 3:41
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@Dave: however the << and >> here is an overloaded operator, and overloaded operator does introduce sequence point like function calls. I'm not actually quite sure whether this should be an undefined behaviour. –  Lie Ryan Mar 1 '13 at 3:51
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@LieRyan Why do you think overloaded operators introduce extra sequencing? –  jogojapan Mar 1 '13 at 3:51

1 Answer 1

up vote 1 down vote accepted

++y increments and assigns the new value of y before a reference of int y is passed to operator<<(std::ostream&, const int&) and y++ increments and assigns y after operator<<(std::ostream&,const int&) returns

So, you land up printing 2 the first time because y=1 is passed in to opertator<< y++ is called to print 2, and after the call to operator<< y is assigned 2.

The second call to operator<< on y has y set to 2, ++y is called before the reference is passed to operator<< and y is 3.

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