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Op 27.jun.2024 om 19:30 schreef olcott:https://liarparadox.org/HHH(DDD)_Full_Trace.pdf>If... But since this if does not apply, the the is irrelevant.
When you prove that you are totally overwhelmed and confused
by the original issue I break it down into simpler steps.
>
If you don't have a slight clue about the C programming
language then the first step is you must learn this language
otherwise it is like trying to talk to someone about
differential calculus that does not know how to count to ten.
You keep repeating irrelevant texts to hide that you cannot show any error in my reasoning.
>Another attempt to distract from the subject.You claim you are not talking about halt-deciders or termination analyzers, but now you bring them up again.
typedef void (*ptr)();
int H0(ptr P);
>
void Infinite_Loop()
{
HERE: goto HERE;
}
>
void Infinite_Recursion()
{
Infinite_Recursion();
}
>
void DDD()
{
H0(DDD);
}
>
int main()
{
H0(Infinite_Loop);
H0(Infinite_Recursion);
H0(DDD);
}
>
Every C programmer that knows what an x86 emulator is knows that when H0
emulates the machine language of Infinite_Loop, Infinite_Recursion, and
DDD that it must abort these emulations so that itself can terminate
normally.
>
When this is construed as non-halting criteria then simulating
termination analyzer H0 is correct to reject these inputs as non-halting
by returning 0 to its caller.
>
Simulating termination analyzers must report on the behavior that their
finite string input specifies thus H0 must report that DDD correctly
emulated by H0 remains stuck in recursive simulation.
>
We are discussing an H0 that aborts after two cycles. I do not tolerate to go away from this point.I updated all of my names in my code.
The examples of Infinite_Loop and Infinite_Recursion do not apply. They are completely different from an H0 that aborts after two cycles.That example is merely a more difficult to understand
The last example can be formulated much simpler:
int main()
{
return H(main, 0);
}
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