Liste des Groupes | Revenir à c theory |
On 8/5/2024 2:39 AM, Mikko wrote:Only because an HHH that does so never returns to anybody.On 2024-08-04 18:59:03 +0000, olcott said:If you don't understand what the word "emulate" means look it up.
>On 8/4/2024 1:51 PM, Richard Damon wrote:>On 8/4/24 9:53 AM, olcott wrote:>On 8/4/2024 1:22 AM, Fred. Zwarts wrote:>Op 03.aug.2024 om 18:35 schreef olcott:>>>> ∞ instructions of DDD correctly emulated by HHH[∞] never>reach their own "return" instruction final state.>
>
So you are saying that the infinite one does?
>
Dreaming again of HHH that does not abort? Dreams are no substitute for facts.
The HHH that aborts and halts, halts. A tautology.
void DDD()
{
HHH(DDD);
return;
}
>
That is the right answer to the wrong question.
I am asking whether or not DDD emulated by HHH
reaches its "return" instruction.
But the "DDD emulated by HHH" is the program DDD above,
When I say DDD emulated by HHH I mean at any level of
emulation and not and direct execution.
If you mean anything other than what the words mean you wihout
a definition in the beginning of the same message then it is
not reasonable to expect anyone to understand what you mean.
Instead people may think that you mean what you say or that
you don't know what you are saying.
>
DDD (above) cannot possibly reach its own "return" instruction halt
state when its machine code is correctly emulated by HHH.
Les messages affichés proviennent d'usenet.