Real-time multicompartment Hodgkin-Huxley neuron emulation on SoC FPGA - presented by Pr Timothée Levi

Real-time multicompartment Hodgkin-Huxley neuron emulation on SoC FPGA

Pr Timothée Levi

Pr Timothée Levi

Associated Frontiers in Neuroscience article

R. Beaubois et al. (2024) Real-time multicompartment Hodgkin-Huxley neuron emulation on SoC FPGA. Frontiers in Neuroscience
Article of record
Real-time multicompartment Hodgkin-Huxley neuron emulation on SoC FPGA
Pr Timothée Levi
Timothée Levi
University of Bordeaux

Advanced computational models and simulations to unravel the complexities of brain function have known a growing interest in recent years in the field of neurosciences, driven by significant technological progress in computing platforms. Multicompartment models, which capture the detailed morphological and functional properties of neural circuits, represent a significant advancement in this area providing more biological coherence than single compartment modeling. These models serve as a cornerstone for exploring the neural basis of sensory processing, learning paradigms, adaptive behaviors, and neurological disorders. Yet, the high complexity of these models presents a challenge for their real-time implementation, which is essential for exploring alternative therapies for neurological disorders such as electroceutics that rely on biohybrid interaction. Here, we present an accessible, user-friendly, and real-time emulator for multicompartment Hodgkin-Huxley neurons on SoC FPGA. Our system enables real-time emulation of multicompartment neurons while emphasizing cost-efficiency, flexibility, and ease of use. We showcase an implementation utilizing a technology that remains underrepresented in the current literature for this specific application. We anticipate that our system will contribute to the enhancement of computation platforms by presenting an alternative architecture for multicompartment computation. Additionally, it constitutes a step toward developing neuromorphic-based neuroprostheses for bioelectrical therapeutics through an embedded real-time platform running at a similar timescale to biological networks.

References
  • 1.
    R. Beaubois et al. (2024) Real-time multicompartment Hodgkin-Huxley neuron emulation on SoC FPGA. Frontiers in Neuroscience
  • 2.
    R. Beaubois et al. (2024) BiœmuS: A new tool for neurological disorders studies through real-time emulation and hybridization using biomimetic Spiking Neural Network. Nature Communications
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T. Levi (2025, January 21), Real-time multicompartment Hodgkin-Huxley neuron emulation on SoC FPGA
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