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May 30, 2026¡Zenodo (CERN European Organization for Nuclear Research)
0 cites
The Leedskalnin Equation: Revised and Extended Through the Unified Prime Lattice

Griff gurwell

" Overview This is a revised and extended edition of the original Leedskalnin Equation paper (Zenodo, March 2026). The original work established four independent derivations of the CTF base frequency f0=53e=10373/72=144.06944…f0=53e=10373/72=144.06944… Hz, the prime‑swapping control test identifying prime 53 as unique, the micro‑gap δ=f0−53e≈0.0005075δ=f0−53e≈0.0005075 Hz, and a 12‑emitter dodecahedral resonance simulation with watch logic and burst envelope. Those results remain unchanged and are not retracted. The new contribution of this revision is the full integration of those results into the unified Prime Lattice Coherence Theorem (PLCT) – a mathematical framework built on the 2a×3b prime lattice, the Lock‑Out Theorem, and the Partition Theorem. The lattice was developed independently after the original paper and is now applied retroactively to give every number in the original work an axiom‑level home. No numbers change; two results are promoted from observations to theorems; several new structural arithmetic facts are added. Key New Results (Not in Original) Micro‑gap as a theorem, not an observationThe Lock‑Out Theorem proves that f0=10373/72f0=10373/72 (denominator 72=23×3272=23×32) is Tier‑1 (primes {2,3}{2,3}) and therefore maintains zero accumulated drift D(x,B)=0D(x,B)=0 at all scales. The expression 53e53e introduces the Tier‑4 prime 53 (outside {2,3,5}{2,3,5}), which necessarily produces unbounded logarithmic drift. A Tier‑1 rational cannot equal a Tier‑4 transcendental; hence δ>0δ>0 is mathematically forced. The gap is no longer merely a “physical tolerance” – it is a structural necessity of the prime lattice. Triple lattice lock of prime 53Prime 53 is shown to be the unique prime satisfying three independent lattice coordinates simultaneously: Tier‑4 (prime set {53}{53} outside {2,3,5,7}{2,3,5,7}) Temporal zone (53 mod 9=8∈{2,5,8}53mod9=8∈{2,5,8}) Prime index P16P16 where 16=2416=24 is exactly the exponent of prime 2 in the spatial harmonic Λ=144=24×32Λ=144=24×32.The original prime‑swapping control test (primes 41–71) is reinterpreted as the empirical shadow of this triple lock – explaining why 53 is unique and why all other primes miss the fractional signature 1/(Pe)≈0.006941/(Pe)≈0.00694. Inscription as PLCT tier map Base‑60 = 22×3×522×3×5 – the smallest positive integer whose prime set is exactly {2,3,5}{2,3,5} (Tier‑2). The Sumerian sexagesimal system is therefore arithmetic at the coherence boundary of the lattice. Coefficients 28:15:53:15 from the decomposition 6,105,195=28×603+15×602+53×60+156,105,195=28×603+15×602+53×60+15 map to tiers T3:T2:T4:T2 and zones Hard Wall → Spine → Temporal → Spine. This sequence traces the Lock‑Out Theorem path from the Hard Wall prime P4=7P4=7 through the Tier‑2 gateway to the Temporal lock prime 53. Prime mirror 71297129 satisfies 7129 mod 144=737129mod144=73, and 7373 is one of the six Partition Theorem universal lock values L={0,1,9,64,73,81}L={0,1,9,64,73,81}. Primary inscription number 6,105,1956,105,195 is a Spine element: mod 9=0mod9=0 (Spine zone), digital root = 9, and mod 144=27=33mod144=27=33 (pure Tier‑1). Simulation parameters as Tier‑1The burst envelope 99 ON / 2727 OFF cycles are 3232 and 3333; their sum is 36=22×3236=22×32, and 36×4=144=Λ36×4=144=Λ. The ratio 9:27=1:3=P1:P29:27=1:3=P1:P2 – the ratio of the two generators of the {2,3}{2,3} lattice. The duty cycle 1/4=2−21/4=2−2 is pure Tier‑1. Prime mirror as Tier‑1/Tier‑2 ratio71292971≈14460=24×3222×3×5=12529717129≈60144=22×3×524×32=512. The mirror approximates the ratio of the spatial harmonic (Tier‑1) to the smallest Tier‑2 base. What Is New vs. What Is Unchanged Unchanged: The four independent derivations of f0f0 (recursive lock, constants survey, base‑60 decomposition, prime mirror), the prime‑swapping control test data, the 12‑emitter simulation results (mean g≈0.66g≈0.66, min g≈0.21g≈0.21), the hardware specification, and the experimental protocol. The caveat that the inscription mapping is hypothesis‑generating, not proof of intentional design, is preserved. New (this revision): The micro‑gap theorem, triple lock theorem, base‑60 tier identification, coefficient tier/zone map, lock value verification for 7129, Spine element verification for 6105195, burst envelope tier analysis, and the prime mirror tier interpretation. Also three open research directions (coefficient 28 and fine‑structure screening integer, Hard Wall–Hard Wall prime mirror structure, and the Tier‑2×Tier‑4 factorization of 6105195). Scope and Honesty The paper is explicit about what is proved (theorems marked as such) versus what is observed (numerical coincidences that await explanation) versus what is conjectural (the open research directions). No claim is made that the inscription was designed with knowledge of the prime lattice; the mapping shows structural consistency only. No claim of antigravity, time dilation, or real‑world load reduction is made – the simulation remains a toy model with a hypothetical Heaviside coupling. Reproducibility All numerical results are verified with a Python script (included in the Appendix) that uses only standard libraries (math, fractions). The script computes the micro‑gap, verifies the triple lock, checks prime sets, computes residues mod 9 and mod 144, and confirms the burst envelope arithmetic. Runtime < 5 seconds.

Open access
4 source records
Electrical and Electromagnetic Research
Image Processing Techniques and Applications
Analytic Number Theory Research
Original source
May 5, 2023¡2023 2nd International Conference on Vision Towards Emerging Trends in Communication and Networking Technologies (ViTECoN)
3 cites
Using DLT for Textile Fabric Inspection: A Novel Network for Detecting Fabric Defects

A. Gandhimathinathan, B Abishek, Balaji Raghavan, T Dhilip ¡ 5 authors

This research paper proposes a novel network that uses Distributed Ledger Technology (DLT) for automated textile fabric inspection to detect fabric defects accurately and efficiently. The traditional method of visual inspection by human operators is subjective, time-consuming, and prone to errors, resulting in low productivity and increased cost. Automated inspection methods, such as machine vision and machine learning, can help improve the quality of textile products by providing a more objective and accurate inspection process. DLT can provide an additional layer of security and transparency to the fabric inspection process. Overall, the proposed system has the potential to improve the efficiency, accuracy, and reliability of the textile fabric inspection process.

Industrial Vision Systems and Defect Detection
Surface Roughness and Optical Measurements
Image Processing Techniques and Applications
Original source
Aug 6, 1984¡National Conference on Artificial Intelligence
9 cites
Fingerprints theorems

Alan Yuille, Tomaso Poggio

We prove that the scale map of the zero-crossings of almost all signals filtered by a gaussian of variable size determines the signal uniquely, up to a constant scaling. Exceptions are signals that are antisymmetric about all their zeros (for instance infinitely periodic gratings). Our proof provides a method for reconstructing almost all signals from knowledge of how the zero-crossing contours of the signal, filtered by a gaussian filter, change with the size of the filter. The proof assumes that the filtered signal can be represented as a polynomial of finite, albeit possibly very high, order. The result applies to zero- and level-crossings of signals filtered by gaussian filters. The theorem is extended to two dimensions, that is to images. These results imply that extrema (for instance of derivatives) at different scales are a complete representation of a signal.

Image Retrieval and Classification Techniques
Image and Signal Denoising Methods
Image Processing Techniques and Applications
Original source