Harmonic fractal transformation, 4R-regeneration and noise shaping for ultra wide-band reception in FitzHugh-Nagumo neuronal model

Fuente: arXiv
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Main Author: Sorokina, Mariia
Format: Preprint
Published: 2024
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author Sorokina, Mariia
author_facet Sorokina, Mariia
contents Human hearing range significantly surpasses the typical neuronal spiking frequency. Yet, neurons with their modest frequency range not only efficiently receive and process multiple orders higher frequency signals, but also demonstrate remarkable stability and adaptability to frequency variations in brain functional connectivity. Ability to process signals beyond the limitations of the receiver temporal or frequency (bandwidth) resolution is highly desirable yet requires complex design architectures. Using the FitzHugh-Nagumo model we reveal the harmonic fractal transformation of frequency and bandwidth, which enables the Nyquist rate integer (for low frequencies) and sub-integer (for high frequencies) multiplication. We also demonstrate for the first time that noise shaping can be achieved in a simple RLC-circuit without a requirement of a delay line. The discovered effect presents a novel regeneration type - 4R: re-amplifying, re-shaping, re-timing, and re-modulating and due to the fractal nature of transformation offers a remarkable regenerative efficiency. The effect is a generalization of phase locking to non-periodic encoded signals. The discovered physical mechanism explains how using neuronal functionality one can receive and process signals over an ultra-wide band (below or higher the spiking neuronal range by multiple orders) and below the noise floor.
format Preprint
id arxiv_https___arxiv_org_abs_2408_03951
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Harmonic fractal transformation, 4R-regeneration and noise shaping for ultra wide-band reception in FitzHugh-Nagumo neuronal model
Sorokina, Mariia
Neurons and Cognition
Human hearing range significantly surpasses the typical neuronal spiking frequency. Yet, neurons with their modest frequency range not only efficiently receive and process multiple orders higher frequency signals, but also demonstrate remarkable stability and adaptability to frequency variations in brain functional connectivity. Ability to process signals beyond the limitations of the receiver temporal or frequency (bandwidth) resolution is highly desirable yet requires complex design architectures. Using the FitzHugh-Nagumo model we reveal the harmonic fractal transformation of frequency and bandwidth, which enables the Nyquist rate integer (for low frequencies) and sub-integer (for high frequencies) multiplication. We also demonstrate for the first time that noise shaping can be achieved in a simple RLC-circuit without a requirement of a delay line. The discovered effect presents a novel regeneration type - 4R: re-amplifying, re-shaping, re-timing, and re-modulating and due to the fractal nature of transformation offers a remarkable regenerative efficiency. The effect is a generalization of phase locking to non-periodic encoded signals. The discovered physical mechanism explains how using neuronal functionality one can receive and process signals over an ultra-wide band (below or higher the spiking neuronal range by multiple orders) and below the noise floor.
title Harmonic fractal transformation, 4R-regeneration and noise shaping for ultra wide-band reception in FitzHugh-Nagumo neuronal model
topic Neurons and Cognition
url https://arxiv.org/abs/2408.03951