From End to End: Gaining, Sorting, and Employing High-Density Neural Single Unit Recordings

Author:

Bod Réka Barbara,Rokai János,Meszéna Domokos,Fiáth Richárd,Ulbert István,Márton Gergely

Abstract

The meaning behind neural single unit activity has constantly been a challenge, so it will persist in the foreseeable future. As one of the most sourced strategies, detecting neural activity in high-resolution neural sensor recordings and then attributing them to their corresponding source neurons correctly, namely the process of spike sorting, has been prevailing so far. Support from ever-improving recording techniques and sophisticated algorithms for extracting worthwhile information and abundance in clustering procedures turned spike sorting into an indispensable tool in electrophysiological analysis. This review attempts to illustrate that in all stages of spike sorting algorithms, the past 5 years innovations' brought about concepts, results, and questions worth sharing with even the non-expert user community. By thoroughly inspecting latest innovations in the field of neural sensors, recording procedures, and various spike sorting strategies, a skeletonization of relevant knowledge lays here, with an initiative to get one step closer to the original objective: deciphering and building in the sense of neural transcript.

Publisher

Frontiers Media SA

Subject

Computer Science Applications,Biomedical Engineering,Neuroscience (miscellaneous)

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Marple: Scalable Spike Sorting for Untethered Brain-Machine Interfacing;Proceedings of the 29th ACM International Conference on Architectural Support for Programming Languages and Operating Systems, Volume 2;2024-04-27

2. Functional clustering of neuronal signals with FMM mixture models;Heliyon;2023-10

3. NeuSort: an automatic adaptive spike sorting approach with neuromorphic models;Journal of Neural Engineering;2023-09-13

4. SCALO: An Accelerator-Rich Distributed System for Scalable Brain-Computer Interfacing;Proceedings of the 50th Annual International Symposium on Computer Architecture;2023-06-17

5. Edge computing on TPU for brain implant signal analysis;Neural Networks;2023-05

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