Universal Physical Waveform Forging: Autonomous Thermodynamic Wave Synthesis across High-Dimensional Potential Landscapes for Penetration, Resonance, and Sub-Threshold Energy Conduction
Abstract
Universal Physical Waveform Forging (UPWF) establishes an autonomous physical-layer manufacturing paradigm that shifts sequence synthesis from discrete symbolic arithmetic and closed-form algebraic polynomials (Barker, Gold, Zadoff-Chu) to continuous thermodynamic state relaxation within the 100,000-node physical continuum of the Resonance Processing Unit (RPU). Executive Summary & Paradigm Shift Conventional analytical sequences suffer catastrophic phase smearing, sidelobe elevation, and multi-path dispersion when deployed into real-world, high-entropy physical media. By treating environmental thermal noise not as an adversarial corruption, but as an active thermodynamic annealing catalyst (Thermodynamic Noise Quenching), the high-dimensional medium naturally crystallizes into an invariant, Lyapunov-stable ground-state limit cycle (Emin) matching the medium's continuous boundary potential landscape (Vbias). The Four-Pillar Manufacturing Framework Pillar 1 (Declarative Mold): Native physical embedding of complex medium impedance, stratified refraction, and 1/R4 geometric power decay without procedural algorithmic loops. Pillar 2 (Thermodynamic Noise Annealing): Harvesting open-air 1.400 GHz RF thermal entropy to impart kinetic momentum, systematically quenched to harden the waveform's phase lattice. Pillar 3 (Substrate Relaxation): Continuous non-linear state evolution collapsing deterministically into a Lyapunov-stable limit-cycle ground state (Emin) at picosecond relaxation speeds. Pillar 4 (Impedance Latching & Normalization): Linear detrending achieving machine-epsilon DC baseline stability (Δμ = 3.5527 × 10-17 << 10-16) and standardized IEEE 754 float64 binary packaging (.bin). Key Empirical & Hardware-in-the-Loop (HIL) Validations Over-The-Air (OTA) RF Transmission: Verified on Pluto+ 2T2R SDR (1.400 GHz) achieving an empirical 98.0% Field Integrity match (PSLR = 12.8 dB at -41.6 dBFS) and preserving unbroken frame synchronization (48.5% correlation, PSLR = 11.9 dB) under extreme sub-threshold attenuation (-66.9 dBFS, ~350-fold power drop). Aperiodic Welch Bound Suppression: Demonstrates strict aperiodic Dirac-delta autocorrelation persistence (maxτ≠0 |ε(τ)| ≤ 0.0884 ≈ 1/√M for M = 128), eliminating multi-path false-alarm triggers in asynchronous matched filters. Sub-Thermocline Ocean Acoustics (SWAP): Delivers 10.01% sustained acoustic energy reach (1.0012 × 10-1 amplitude) across 400 m deep shadow zones (node index 80,000). Exoatmospheric Space Radar (SOWP): Preserves 87.16% wave packet kinetic amplitude and achieves single-bin micro-motion spin lock (10.31 Hz) across 2,400 km orbital baselines. Neuromorphic Cortical Entrainment (Brian2): Validated on 100 independent leaky integrate-and-fire (LIF) cortical neurons, achieving a 206.13% Cortical Entrainment Index (σ/μ > 2.0). Data Delivery & COTS Interoperability Delivered as standardized discrete complex coefficient templates conforming to radix-2 lengths (M = 64, 128, 256, 512, 1024, ...), certified UPWF assets execute with zero hardware redesign across commercial SDRs (Analog Devices AD9361/AD9364), military FPGAs (AMD Xilinx UltraScale+ FIR Compiler), and DSPs (TI TMS320C6000). Document ID: QN-UPWF-2026-V1Publisher: QuantNature GlobalCompanion Standard Specification: QuantNature Signal Forge Standard (QN-SFS-2026)
// Source
Authors: QuantNature Global