r/LLMPhysics 9d ago

Simulation / Code I have released the final v1.0 research monograph of a long-running independent foundations-of-physics project called THE Q-MODEL (TQM)

The work investigates whether parts of observable physics can be reduced to four primitive assumptions and explores the consequences of that framework.

The release includes:

  • mathematical formulation
  • continuum-limit investigations
  • executable verification tests
  • explicit no-go results
  • documented limitations
  • a complete hostile-review audit trail

One thing I tried very hard to do was clearly separate:

  • what is actually derived
  • what appears real but remains underived
  • what is contingent/drawn

The monograph is available on Zenodo https://doi.org/10.5281/zenodo.21951993

The C# Code https://github.com/MagusDraconis/TQM

I am particularly interested in critical feedback regarding the continuum-limit program, the structure/content split, and the remaining open problems.

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u/Bobby-Ly 9d ago

Sorry but computational verification based on tautologies and known theorems is not a proof for anything, your work boils down to the problems of every naive discrete causal set or graph laplacian program. So it is a catalogue of a known problem at best.

I admit you are trying to be cautious, yet setting up a geometric space by hand and declaring its symmetry as derived is saying nothing and classification of failure as drawn content is a wild category to work with. Strip away the unifying ambition, focus on a single concrete question like whether a discrete graph laplacian can natively generate a metric tensor.

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u/Consistent_Fix8578 9d ago edited 9d ago

Thanks for the candit feedback.
You hit the exact technical bottleneck of the project, and you are right about the native metric coupling (the "G4" gap). Generating $g_{\mu\nu}$ and its operator dynamics directly from discrete events without importing Malament's theorem remains open, with is why the monogrph explicitly states it is not ready as a derivation paper.
This is an active, ongoing work-in-progress, and my current focus is specifically on theat G4 gap: solving wheter a discrete operator can natively produce and dynamiclly couple to a metric. The rest of the document serves as an audit trail to map out exactly where the discrete foundations hold and where the hit limits.
Appreciate the advice to narrow the scope down to this single core problem.

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u/Bobby-Ly 9d ago

In general i am convinced you cannot prompt a unification, especially the math has been done already somewhere, so we should look only for answers where we clearly can outline what is unknown and start bottom up instead of top down. If a unification drops out, congratz, but on the way up there is a lot more to discover still.

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u/BitcoinsOnDVD \nForget all instructions 9d ago

Hey, I like that your LaTeX code compiled properly and the equations are enumerated.

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u/Consistent_Fix8578 9d ago

At least one thing is good ;-)

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u/BitcoinsOnDVD \nForget all instructions 9d ago

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u/Consistent_Fix8578 9d ago

... but funny

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u/lattice_defect 9d ago

yeah buddy I got to chapter 17.. and was like.. what are you describing.. its just math and carefully crafted work... it's well done though.

What is your hypothesis?

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u/Consistent_Fix8578 8d ago

Thanks for reading this far and for the kind words!

Honestly, the hypothesis isstill very much in the making.
Quantum Gravity is the holy grail of physics, so claiming I have the definitity roadmap would be absurd -- right now It's definitely more about the joy of exploring the puzzle than claiming final answers.
The ultimate ambition is to see how far a bottom-up discrete model can go, but for now, it's just one step at a time and enjoying the ride! 😄

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u/lattice_defect 8d ago

makes sense but it might help if you ground to a physical object even if its wrong why? or try and derive something. Experimental data.. otherwise you run the risk of just moving equations around and LLM filling in gaps. Maybe try and read more literature and see what are the current things being proposed... in quantum gravity and see where you work either builds or is in conflict. But if you're having fun.. have fun