Path: ...!eternal-september.org!feeder3.eternal-september.org!news.eternal-september.org!.POSTED!not-for-mail From: "Fred. Zwarts" Newsgroups: comp.theory,sci.logic Subject: Re: 195 page execution trace of DDD correctly simulated by HH0 Date: Tue, 25 Jun 2024 16:13:50 +0200 Organization: A noiseless patient Spider Lines: 104 Message-ID: References: MIME-Version: 1.0 Content-Type: text/plain; charset=UTF-8; format=flowed Content-Transfer-Encoding: 8bit Injection-Date: Tue, 25 Jun 2024 16:13:50 +0200 (CEST) Injection-Info: dont-email.me; posting-host="c4ff8408f3b943eae31dc22ab1458b62"; logging-data="1665191"; mail-complaints-to="abuse@eternal-september.org"; posting-account="U2FsdGVkX1/6NYEYCQCjNfnsQ7qKdJBc" User-Agent: Mozilla Thunderbird Cancel-Lock: sha1:J4gQ5/CuZmM/UR+djTviPI9PAj8= Content-Language: en-GB In-Reply-To: Bytes: 5264 Op 25.jun.2024 om 15:12 schreef olcott: > On 6/25/2024 7:08 AM, Fred. Zwarts wrote: >> Op 24.jun.2024 om 23:04 schreef olcott: >>> On 6/24/2024 2:36 PM, joes wrote: >>>> Am Mon, 24 Jun 2024 08:48:19 -0500 schrieb olcott: >>>>> On 6/24/2024 2:37 AM, Mikko wrote: >>>>>> On 2024-06-23 13:17:27 +0000, olcott said: >>>>>>> On 6/23/2024 3:22 AM, Mikko wrote: >>>>>>>> That code is not from the mentined trace file. In that file _DDD() >>>>>>>> is at the addresses 2093..20a4. According to the trace no >>>>>>>> instruction >>>>>>>> at the address is executed (because that address points to the last >>>>>>>> byte of a three byte instruction. >>>>>>> >>>>>>> In order to make my examples I must edit the code and this >>>>>>> changes the >>>>>>> addresses of some functions. >>>>>> >>>>>> Why do you need to make an example when you already have one in the >>>>>> file mentioned in the subject line? >>>>>> >>>>> I had to make a few more examples such as HH1(DD,DD) >>>> AFACT HH1 is the same as HH0, right? What happens when HH1 tries to >>>> simulate a function DD1 that only calls HH1? >>>> >>> >>> typedef uint32_t u32; >>> u32 H(u32 P, u32 I); >>> >>> int P(u32 x) >>> { >>>    int Halt_Status = H(x, x); >>>    if (Halt_Status) >>>      HERE: goto HERE; >>>    return Halt_Status; >>> } >>> >>> int main() >>> { >>>    H(P,P); >>> } >>> >>> I am going to have to go through my code and standardize my names. >>> H(P,P) was the original name. Then I had to make a one parameter >>> version, a version that is identical to H, except P does not call >>> it and then versions using different algorithms. People have never >>> been able to understand the different algorithm. >>> >>> typedef void (*ptr)(); >>> typedef int (*ptr2)(); >>> int  HH(ptr2 P, ptr2 I); // used with int D(ptr2 P) that calls HH >>> int HH1(ptr2 P, ptr2 I); // used with int D(ptr2 P) that calls HH >>> int  HHH(ptr P);         // used with void DDD() that calls HHH >>> int HHH1(ptr P);         // used with void DDD() that calls HHH >>> >>> *The different algorithm version has been deprecated* >>> int  H(ptr2 , ptr2 I);  // used with int D(ptr2 P) that calls H >>> int H1(ptr2 P, ptr2 I); // used with int D(ptr2 P) that calls H >>> >>> *It is much easier for people to see the infinite recursion* >>> *behavior pattern when they see it actually cycle through the* >>> *same instructions twice* >> >> Twice is not equal to infinitely. When will you see that? >> It is strange that you call that an infinite recursion, when H aborts >> after two cycles and the simulated H cannot reach its own abort >> operation, because it is aborted when it had only one more cycle to go. >> None of the aborted simulations would cycle more than twice, so >> infinite recursion is not seen for an H that aborts the simulation of >> itself. > > typedef void (*ptr)(); > int H0(ptr P); > > void DDD() > { >   H0(DDD); > } > > int main() > { >   H0(DDD); > } > > _DDD() > [00002172] 55               push ebp      ; housekeeping > [00002173] 8bec             mov ebp,esp   ; housekeeping > [00002175] 6872210000       push 00002172 ; push DDD > [0000217a] e853f4ffff       call 000015d2 ; call H0(DDD) > [0000217f] 83c404           add esp,+04 > [00002182] 5d               pop ebp > [00002183] c3               ret > Size in bytes:(0018) [00002183] > > The call from DDD to H0(DDD) when DDD is correctly emulated > by H0 cannot possibly return. Contradictio in terminis. The fact that the simulated H0 does not return shows that the simulation is incorrect. The simulated H0 does not return, because it is aborted one cycle too soon. One cycle later it would return. This is what the simulation by H1 and the direct execution shows. You could as well claim that the correct addition 1+1=3 shows that 1+1>2.