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Hardware asynchronous cellular automata of spiking neural networks on SoC for autonomous machines

机译:用于自动机器的SoC上的尖峰神经网络硬件异步蜂窝自动机

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The research field of artificial intelligence (AI) has long abode by the top-down problem solving strategy. Yet, we have adopted bottom-up design thinking to solve its hard problems. To tackle end-to-end AI-hard problems, a highly self-adaptive control system-on-chip (SoC) has been developed to self-learn its internal and external resources with the aid of sets of sensors and actuators. Inspired by biological cell learning theory, different approaches of modelling techniques have been derived together with machine learning (ML) methods to the embedded control systems so as to perform different tasks. This paper lays out our developments of the above.
机译:自上而下的问题解决策略长期以来一直困扰着人工智能(AI)的研究领域。但是,我们采用了自下而上的设计思想来解决其难题。为了解决端到端的AI难题,已开发出高度自适应的片上控制系统(SoC),以借助传感器和执行器组来自学习其内部和外部资源。受生物细胞学习理论的启发,已将不同的建模技术方法与机器学习(ML)方法一起推向嵌入式控制系统,以执行不同的任务。本文列出了我们在上述方面的发展。

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