Spiking Neural Network based Region Proposal Networks for Neuromorphic Vision Sensors

February 26, 2019 ยท Declared Dead ยท ๐Ÿ› International Symposium on Circuits and Systems

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Authors Jyotibdha Acharya, Vandana Padala, Arindam Basu arXiv ID 1902.09864 Category cs.NE: Neural & Evolutionary Cross-listed cs.ET Citations 4 Venue International Symposium on Circuits and Systems Last Checked 4 months ago
Abstract
This paper presents a three layer spiking neural network based region proposal network operating on data generated by neuromorphic vision sensors. The proposed architecture consists of refractory, convolution and clustering layers designed with bio-realistic leaky integrate and fire (LIF) neurons and synapses. The proposed algorithm is tested on traffic scene recordings from a DAVIS sensor setup. The performance of the region proposal network has been compared with event based mean shift algorithm and is found to be far superior (~50% better) in recall for similar precision (~85%). Computational and memory complexity of the proposed method are also shown to be similar to that of event based mean shift
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