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Real-time detection of bursts in neuronal cultures using a Neuromorphic Auditory Sensor and Spiking Neural Networks

View ORCID ProfileJuan P. Dominguez-Morales, View ORCID ProfileStefano Buccelli, View ORCID ProfileDaniel Gutierrez-Galan, View ORCID ProfileIlaria Colombi, Angel Jimenez-Fernandez, View ORCID ProfileMichela Chiappalone
doi: https://doi.org/10.1101/2020.05.20.105593
Juan P. Dominguez-Morales
aRobotics and Technology of Computers Lab. Universidad de Sevilla, Spain
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Stefano Buccelli
bRehab Technologies IIT-INAIL Lab, Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy
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Daniel Gutierrez-Galan
aRobotics and Technology of Computers Lab. Universidad de Sevilla, Spain
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Ilaria Colombi
cDepartment of Neuroscience and Brain Technologies, Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy
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Angel Jimenez-Fernandez
aRobotics and Technology of Computers Lab. Universidad de Sevilla, Spain
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Michela Chiappalone
bRehab Technologies IIT-INAIL Lab, Istituto Italiano di Tecnologia, Via Morego 30, 16163 Genova, Italy
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Abstract

The correct identification of burst events is crucial in many scenarios, ranging from basic neuroscience to biomedical applications. However, none of the burst detection methods that can be found in the literature have been widely adopted for this task. As an alternative to conventional techniques, a novel neuromorphic approach for real-time burst detection is proposed and tested on acquisitions from in vitro cultures. The system consists of a Neuromorphic Auditory Sensor, which converts the input signal obtained from electrophysiological recordings into spikes and decomposes them into different frequency bands. The output of the sensor is sent to a trained spiking neural network implemented on a SpiNNaker board that discerns between bursting and non-bursting activity. This data-driven approach was compared with 8 different conventional spike-based methods, addressing some of their drawbacks, such as being able to detect both high and low frequency events and working in an online manner. Similar results in terms of number of detected events, mean burst duration and correlation as current state-of-the-art approaches were obtained with the proposed system, also benefiting from its lower power consumption and computational latency. Therefore, our neuromorphic-based burst detection paves the road to future implementations for neuroprosthetic applications.

Competing Interest Statement

The authors have declared no competing interest.

Copyright 
The copyright holder for this preprint is the author/funder, who has granted bioRxiv a license to display the preprint in perpetuity. It is made available under a CC-BY-NC-ND 4.0 International license.
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Posted May 22, 2020.
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Real-time detection of bursts in neuronal cultures using a Neuromorphic Auditory Sensor and Spiking Neural Networks
Juan P. Dominguez-Morales, Stefano Buccelli, Daniel Gutierrez-Galan, Ilaria Colombi, Angel Jimenez-Fernandez, Michela Chiappalone
bioRxiv 2020.05.20.105593; doi: https://doi.org/10.1101/2020.05.20.105593
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Real-time detection of bursts in neuronal cultures using a Neuromorphic Auditory Sensor and Spiking Neural Networks
Juan P. Dominguez-Morales, Stefano Buccelli, Daniel Gutierrez-Galan, Ilaria Colombi, Angel Jimenez-Fernandez, Michela Chiappalone
bioRxiv 2020.05.20.105593; doi: https://doi.org/10.1101/2020.05.20.105593

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