Spiking networks for improved cognitive abilities of edge computing devices

Proceedings of the 12th ACM International Conference on PErvasive Technologies Related to Assistive Environments(2019)

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摘要
This concept paper highlights a recently opened opportunity for large scale analytical algorithms to be trained directly on edge devices. Such approach is a response to the arising need of processing data generated by natural person (a human being), also known as personal data. Spiking Neural networks are the core method behind it: suitable for a low latency energy-constrained hardware, enabling local training or re-training, while not taking advantage of scalability available in the Cloud.
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关键词
edge computing, interactive computation, spiking neural networks
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