AI-Driven Physics-Informed Bio-Silicon Intelligence System: Integrating Hybrid Systems, Biocomputing, Neural Networks, and Machine Learning, for Advanced Neurotechnology

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Main Authors: Jorgsson, Vincent, Kumar, Raghav, Ahmed, Mustaf, Yung, Maxx, Pattnayak, Aryaman, Sridhar, Sri Pradhyumna, Varma, Vaishnav, Ponnambalam, Arun Ram, Weidlich, Georg, Pinotsis, Dimitris
Format: Preprint
Published: 2024
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author Jorgsson, Vincent
Kumar, Raghav
Ahmed, Mustaf
Yung, Maxx
Pattnayak, Aryaman
Sridhar, Sri Pradhyumna
Varma, Vaishnav
Ponnambalam, Arun Ram
Weidlich, Georg
Pinotsis, Dimitris
author_facet Jorgsson, Vincent
Kumar, Raghav
Ahmed, Mustaf
Yung, Maxx
Pattnayak, Aryaman
Sridhar, Sri Pradhyumna
Varma, Vaishnav
Ponnambalam, Arun Ram
Weidlich, Georg
Pinotsis, Dimitris
contents We present the Bio-Silicon Intelligence System (BSIS), an innovative hybrid platform that integrates biological neural networks with silicon-based computing. The BSIS, a Physics-Informed Hybrid Hierarchical Reinforcement Learning State Machine, employs carbon nanotube-coated electrodes to interface rat brains with computational systems, enabling high-fidelity neural interfacing and bidirectional communication through self-organizing systems in both biological and silicon forms. Our system leverages both analogue and digital AI theory, incorporating concepts from computational theory, chaos theory, dynamical systems theory, physics, and quantum mechanics. Additionally, the BSIS replicates the neuronal dynamics typical of intelligent brain tissue, employing nonlinear operations underlying learning and information storage. Neural signals are read through the FreeEEG32 board and BrainFlow software, then features are extracted and mapped to game actions by tracking feature changes in continuous data. Metadata is encoded into both analogue and digital brain stimulation signals at the microvolt level using our proprietary software and hardware. The system employs a dual signaling approach for training the rat brain, incorporating a reward solution and sound as well as human-inaudible distress sounds. This paper details the design, theory, functionality, and technical specifications of the BSIS, highlighting its interdisciplinary approach and advanced technological integration.
format Preprint
id arxiv_https___arxiv_org_abs_2407_11939
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle AI-Driven Physics-Informed Bio-Silicon Intelligence System: Integrating Hybrid Systems, Biocomputing, Neural Networks, and Machine Learning, for Advanced Neurotechnology
Jorgsson, Vincent
Kumar, Raghav
Ahmed, Mustaf
Yung, Maxx
Pattnayak, Aryaman
Sridhar, Sri Pradhyumna
Varma, Vaishnav
Ponnambalam, Arun Ram
Weidlich, Georg
Pinotsis, Dimitris
Neurons and Cognition
Adaptation and Self-Organizing Systems
We present the Bio-Silicon Intelligence System (BSIS), an innovative hybrid platform that integrates biological neural networks with silicon-based computing. The BSIS, a Physics-Informed Hybrid Hierarchical Reinforcement Learning State Machine, employs carbon nanotube-coated electrodes to interface rat brains with computational systems, enabling high-fidelity neural interfacing and bidirectional communication through self-organizing systems in both biological and silicon forms. Our system leverages both analogue and digital AI theory, incorporating concepts from computational theory, chaos theory, dynamical systems theory, physics, and quantum mechanics. Additionally, the BSIS replicates the neuronal dynamics typical of intelligent brain tissue, employing nonlinear operations underlying learning and information storage. Neural signals are read through the FreeEEG32 board and BrainFlow software, then features are extracted and mapped to game actions by tracking feature changes in continuous data. Metadata is encoded into both analogue and digital brain stimulation signals at the microvolt level using our proprietary software and hardware. The system employs a dual signaling approach for training the rat brain, incorporating a reward solution and sound as well as human-inaudible distress sounds. This paper details the design, theory, functionality, and technical specifications of the BSIS, highlighting its interdisciplinary approach and advanced technological integration.
title AI-Driven Physics-Informed Bio-Silicon Intelligence System: Integrating Hybrid Systems, Biocomputing, Neural Networks, and Machine Learning, for Advanced Neurotechnology
topic Neurons and Cognition
Adaptation and Self-Organizing Systems
url https://arxiv.org/abs/2407.11939