AI & Computingpreprint2026-08-30

AXISAURA: A NEW PARADIGM OF COORDINATE-BASED DATA TRANSMISSION VIA MULTI-DIMENSIONAL STATE SPACES

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Abstract

This paper introduces AxisAura — a novel data transmission technology that marks a paradigm shift from waveform-dependent modulation to passive state-space navigation. Discovered serendipitously during iterative software prototyping and simulation of spectral detection chains, AxisAura completely bypasses computationally expensive Digital Signal Processing (DSP) and Forward Error Correction (FEC) sub-systems. Instead of dynamically encoding binary streams into the phase and amplitude of a carrier wave, the AxisAura technology deconstructs data into navigation vectors within a shared static reference space. Under the formalized 3=4 Principle, any 24-bit data segment is treated as a unique coordinate mapped bijectively into a four-dimensional spectral space (64^4 = 2^24), where it points to a pre-stored 3-byte payload atom inside a 117.4 MB Global Ark reference matrix. A key engineering advantage of AxisAura is its adaptive temporal flexibility: the transmission cycle duration is not a static constraint but a dynamically regulated variable controlled by an electronic gating mechanism to match the exact channel conditions and receiver precision requirements. Software and hardware prototype validations confirm an absolute O(1) lookup complexity, 100% bit-for-bit reconstruction fidelity verified by SHA-256 hashes, linear throughput scaling up to 240 Gbps under 100-beam WDM, and a 36–48x leap in energy efficiency compared to traditional coherent systems (such as 400G Ethernet DP-16QAM). AxisAura is presented here as a foundational communication technology and a new layer of abstraction for future optical and high-speed interconnect architectures. Beyond speed and energy metrics, AxisAura introduces a novel paradigm for physical-layer data confidentiality. Because payload retrieval relies entirely on the shared static reference matrix, the architecture functions as an intrinsic cryptographic layer. If communication partners utilize a customized, privately randomized Global Ark instead of a public matrix, the transmitted spectral coordinates appear as pure entropy to any interceptor. This guarantees absolute data privacy and hardware-level security without the computational latency and overhead of traditional cryptographic frameworks.

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View paper (DOI)Open access versionOpenAlexZenodo (CERN European Organization for Nuclear Research)Published 2026-08-30

Authors: Alexander A. Chepkasov

Institutions: Volgograd Institute of Business