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Overview of the state of the art in embedded machine learning

机译:嵌入式机器学习的最新发展概况

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摘要

Nowadays, the main challenges in embedded machine learning are related to artificial neural networks. Inspired by the biological neural networks, artificial neural networks are able to solve complex problems, by performing a tremendous amount of relatively simple parallel computations. Embedding such networks in autonomous devices raises the issues of energy efficiency, resource usage and accuracy. The aim of this paper is to provide a comprehensive analysis of the efforts made in recent years to implement artificial neural network architectures suitable for embedded applications.
机译:如今,嵌入式机器学习的主要挑战与人工神经网络有关。受生物神经网络的启发,人工神经网络能够通过执行大量相对简单的并行计算来解决复杂的问题。将这样的网络嵌入自主设备会引发能源效率,资源使用和准确性的问题。本文的目的是对近年来为实现适用于嵌入式应用程序的人工神经网络架构所做的努力进行全面分析。

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