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On 7/16/2024 2:20 AM, Mikko wrote:It shows some of the data, not all, and in particular, not the halting.On 2024-07-15 12:22:19 +0000, olcott said:The trace shows the data of the executed program of HHH that
On 7/15/2024 3:49 AM, joes wrote:The trace does not show that HHH returns so there is no basis toAm Sun, 14 Jul 2024 19:30:27 -0500 schrieb olcott:This *is* an answer too difficult for you to understand.On 7/14/2024 7:20 PM, joes wrote:Am Sun, 14 Jul 2024 09:00:55 -0500 schrieb olcott:On 7/14/2024 3:29 AM, joes wrote:Am Sat, 13 Jul 2024 18:33:53 -0500 schrieb olcott:On 7/13/2024 6:26 PM, joes wrote:What are the twins and what is their difference? Do you disagree withCan you elaborate? All runtime instances share the same static
code.
I am talking about the inner HHH which is called by the simulated
DDD. That one is, according to you, aborted. Which is wrong,
because by virtue of running the same code, the inner HHH aborts
ITS simulation of DDD calling another HHH.
my tracing?The directly executed DDD is like the first call of infiniteNot really. Execution does not continue.
recursion. The emulated DDD is just like the second call of infinite
recursion. When the second call of infinite recursion is aborted then
the first call halts.void Infinite_Recursion()That would be incorrect.
{
Infinite_Recursion();
}
The above *is* infinite recursion.
A program could emulate the above code and simply skip line 3 causing
Infinite_Recursion() to halt.When DDD calls HHH(DDD) HHH returns.Therefore it does not need to be aborted.When DDD correctly emulated by HHH the call never returns as is provenI do not see this below.
below. The executed DDD() has HHH(DDD) skip this call.HHH(DDD) must skip this call itself by terminating the whole DDD
process.Because this HHH does not know its own machine address HHH only sees
that DDD calls a function that causes its first four steps to be
repeated. HHH does not know that this is recursive simulation. To HHH
it looks just like infinite recursion.New slave_stack at:1038c4 -- create new process context for 1st DDD
Begin Local Halt Decider Simulation Execution Trace Stored at:1138cc[0000217a][001138b4][0000217f] e853f4ffff call 000015d2 ; call
HHH(DDD) New slave_stack at:14e2ec -- create new process context for
2nd DDD[0000217a][0015e2dc][0000217f] e853f4ffff call 000015d2 ; callHow is this detected? Is it also triggered when calling a function in a
HHH(DDD) Local Halt Decider: Infinite Recursion Detected Simulation
Stopped
loop?You never bothered to answer whether or not you have 100% understandingAs if you would believe me.
of infinite recursion. If you don't then you can never understand what I
am saying. If you do that I already proved my point. Here is the proof
again:
You never bothered to answer my questions (see above).
That only proves that HHH and DDD halt.
New slave_stack at:1038c4
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:14e2ec
[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 Stopped
think that HHH is a decider.
does halt.
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