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During work over a simple project I have found situation that I don't fully understand. Consider following code:

#include <iostream>

using namespace std;

bool test(int k)
{
    cout << "start " << k << endl;

    bool result; // it is important that result's value is opposite to initial value of recheck in main()
    result = false;

    return result;
}

int main()
{
    bool recheck;
    recheck = true;
    for (int i = 2; i > -1; i--)
    {
      recheck = (recheck || test(i));   // (1)
      cout << i << " ???" <<endl;
    }
    cout << "----------------------------" << endl;
    cout << endl;

    recheck = true;
    for (int i = 2; i > -1; i--)
    {
        recheck = (test(i) || recheck);  //different order that in (1)
        cout << i << "???" <<endl;
    }

    return 0;
}

It returns completely different results from for loops:

2 ???
1 ???
0 ???
----------------------------

start 2
2???
start 1
1???
start 0
0???

It seems that it first one test(int k) is not even invoked. I suspect it has something to do with || operator. Could anybody explain such a behavior?

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up vote 13 down vote accepted

The built-in || short-circuits: if the left operand is true, the right operand is not evaluated (it doesn't matter what the value of the right operand is, because the value of the || expression is guaranteed to be true in this case).

For completeness, but not particularly relevant to the question: In c++, the || operator is overloadable, just as many other operators are. If an overload is used, short circuiting does not take place.

share|improve this answer
    
You guys are too fast on this stuff. – Stuart Aug 22 '12 at 19:19
    
Thanks, is there any way to disable it (just in case:) )- a compiler flag or sth? – Moomin Aug 22 '12 at 19:22
    
No. The language mandates this behaviour. – Puppy Aug 22 '12 at 19:22
2  
No, this can't be disabled. It's a fundamental feature of the language. However, if both operands are already of type bool, and you are going to store the result in a bool (or otherwise convert the result to bool) use the | operator. It does not short-circuit. (Its semantics are different, but if both operands are of type bool and the result is used as a bool, it has the same behavior as the || operator, sans short-circuiting.) – James McNellis Aug 22 '12 at 19:23
    
Another lesson learned then. – Moomin Aug 22 '12 at 19:23

The boolean operators || and && will short-circuit when one of the operands - evaluating from left-to-right - can determine the result of the expression, without reference to the remaining operands.

In the case of ||, this means that if the first operand is true, the remaining operands aren't evaluated, because the result of the entire expression will always be true.

In the first loop, the variable recheck - that is local to main - is always true, and so the function call test never needs to be evaluated: it is skipped, and you see no output.

In the second loop, the test function call is evaluated first, and it's result can only be determined after calling the function, so the function is called on each iteration, and you see the output.

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Your comment says:

it is important that result's value is opposite to initial value of recheck in main()

Your test() function currently can't see the value of recheck, which is local to main().

Assuming your comment reflects your intent, you need to pass recheck as a parameter to test(); you can then use the unary ! operator, something like:

result = ! recheck;

And of course you need to fix the logic in main() so that test() is called when you need it to be.

Your requirements aren't clear enough for me to comment further.

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Others have addressed the specific issue that you have raised. Just a note to say that beware of using multiple question marks in a row. Trigraph sequences start with two '??' characters and the third character after two question marks is interpreted differently.

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