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On 8/1/2024 3:10 AM, Fred. Zwarts wrote:You are repeating the same false claim with out any self-reflection. It has been pointed out that there are many errors in this proof.Op 31.jul.2024 om 23:23 schreef olcott:The following is all that is needed for 100% complete proofOn 7/31/2024 3:01 PM, Fred. Zwarts wrote:>Op 31.jul.2024 om 17:14 schreef olcott:>On 7/31/2024 3:44 AM, Fred. Zwarts wrote:>Op 31.jul.2024 om 06:09 schreef olcott:This algorithm is used by all the simulating termination analyzers:>>
machine stack stack machine assembly
address address data code language
======== ======== ======== ========= =============
[00002192][00103820][00000000] 55 push ebp
[00002193][00103820][00000000] 8bec mov ebp,esp
[00002195][0010381c][00002172] 6872210000 push 00002172 ; push DDD
[0000219a][00103818][0000219f] e833f4ffff call 000015d2 ; call HHH(DDD)
New slave_stack at:1038c4
>
We don't show any of HHH and show the execution trace of
of just DDD assuming that HHH is an x86 emulator.
This assumption is incorrect if it means that HHH is an unconditional simulator that does not abort.
<MIT Professor Sipser agreed to ONLY these verbatim words 10/13/2022>
*If simulating halt decider H correctly simulates its input D*
*until H correctly determines that its simulated D would never*
*stop running unless aborted* then
>
H can abort its simulation of D and correctly report that D
specifies a non-halting sequence of configurations.
</MIT Professor Sipser agreed to ONLY these verbatim words 10/13/2022>
So, Sipser only agreed to a correct simulation, not with an incorrect simulation that violates the semantics of the x86 language by skipping the last few instructions of a halting program.
>
int DD()
{
int Halt_Status = HHH(DD);
if (Halt_Status)
HERE: goto HERE;
return Halt_Status;
}
>
int main()
{
HHH(DD);
}
>
DD correctly emulated by HHH cannot possibly reach its own
second line. I switched to DDD correctly emulated by HHH
But it has been proven that no such HHH exists that simulates itself correctly. So, talking about a correct simulation by HHH is vacuous word salad.
>because only C experts understood the above example and we>
never had any of those here.
There are many C experts that looked at it, but you only got critic, because you keep hiding important properties of HHH, which made the conclusion impossible.
that HHH did emulate DDD correctly according to the semantics
of the x86 language and did emulate itself emulating DDD
according to these same semantics.
_DDD()The trace stops and hides what happens when 000015d2 is called.
[00002172] 55 push ebp ; housekeeping
[00002173] 8bec mov ebp,esp ; housekeeping
[00002175] 6872210000 push 00002172 ; push DDD
[0000217a] e853f4ffff call 000015d2 ; call HHH(DDD)
[0000217f] 83c404 add esp,+04
[00002182] 5d pop ebp
[00002183] c3 ret
Size in bytes:(0018) [00002183]
Begin Local Halt Decider Simulation Execution Trace Stored at:1138cc
[00002172][001138bc][001138c0] 55 push ebp ; housekeeping
[00002173][001138bc][001138c0] 8bec mov ebp,esp ; housekeeping
[00002175][001138b8][00002172] 6872210000 push 00002172 ; push DDD
[0000217a][001138b4][0000217f] e853f4ffff call 000015d2 ; call HHH(DDD)
New slave_stack at:14e2ecAgain the trace stops and hides what happens when 000015d2 is called.
[00002172][0015e2e4][0015e2e8] 55 push ebp ; housekeeping
[00002173][0015e2e4][0015e2e8] 8bec mov ebp,esp ; housekeeping
[00002175][0015e2e0][00002172] 6872210000 push 00002172 ; push DDD
[0000217a][0015e2dc][0000217f] e853f4ffff call 000015d2 ; call HHH(DDD)
Local Halt Decider: Infinite Recursion Detected Simulation StoppedThe program prints an erroneous message about an infinite recursion, when only two recursions are seen. It is clear the that the simulated HHH would need only one cycle more to return to DDD.
Now that we have established that HHH did emulate'Must abort ..' is no proof that aborting will results in a correct simulation. At most it proves that not-aborting is incorrect, as well.
DDD correctly the above is also 100% complete proof
that HHH must abort its correct emulation of DDD or
neither HHH nor DDD will ever stop running.
This has always been complete proof for anyone that knowsNo, anyone with sufficient knowledge of the semantics of the x86 language, sees that the simulation is incomplete and therefore incorrect. It is clear who lacks knowledge of the semantics of the x86 language.
the semantics of the x86 language sufficiently well.
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