+ 1
Why the output is 2 and 0
Int x=0; Cout<<++x<<" "<<x++<<endl;
4 Respuestas
+ 3
I think the output should be undefined behaviour, because you are changing the same value and using it again between the same two sequence points.
If I run it here on Sololearn, I get 1 1 as output. In what situation did you get 2 and 0?
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HonFu
You are correct. I didn't put every results of the tests 😁
* In Code Playground:
C++ code
- printf("%d %d\n", ++x, x++); // 2 0
- cout << ++x << " " << x++ << endl; // 1 1
C code
- printf("%d %d\n", ++x, x++); // 2 0
* In C4Droid (C code)
- printf("%d %d\n", ++x, x++); // 1 1
I hope this gives the OP an idea what a mess this sequence point thing was all about.
+ 2
That is not a definite answer محمود شاكر . Output of such a code where a variable is accessed and modified in a single point of execution sequence is unpredictable. Output in different compiler will most likely be different also.
I tested that line in C4Droid and get 1 1 for output. In Code Playground the result is 2 0, but you will see the sequence point warning.
This is something unexplainable, because the result depends on compiler implementation.
+ 1
Funny. I got 1 1 right here. Maybe not even the same every time in one environment?