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Special session paper: data analytics enables energy- efficiency and robustness: from mobile to manycores, datacenters, and networks

机译:特别会议论文:数据分析可提高能源效率和可靠性:从移动到许多核,数据中心和网络

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摘要

The amount of data generated and collected across computing platforms every day is not only enormous, but growing at an exponential rate. Advanced data analytics and machinelearning techniques have become increasingly essential to analyze and extract meaning from such “Big Data”. These techniques can be very useful to detect patterns and trends to improve the operational behavior of computing platforms, but they also introduce a number of outstanding challenges: (1) How can we design and deploy data analytics and learning mechanisms to improve energy-efficiency in IoT and mobile devices, without introducing significant software overheads? (2) How to use machine learning and analytics techniques for effective designspace exploration during manycore chip design? (3) How can data analytics and learning improve the reliability and energyefficiency of large-scale cloud datacenters, to cost-effectively support connected embedded and IoT platforms? (4) How can data analytics detect anomalies and increase robustness in the network backbone of emerging cloud datacenter networks? In this paper, we discuss these outstanding problems and describe far-reaching solutions applicable across the interconnected ecosystem of IoT and mobile devices, manycore chips, datacenters, and networks.
机译:每天跨计算平台生成和收集的数据量不仅巨大,而且还在呈指数级增长。先进的数据分析和机器学习技术对于分析和提取“大数据”的含义变得越来越重要。这些技术对于检测模式和趋势以改善计算平台的操作行为可能非常有用,但它们也带来了许多突出的挑战:(1)我们如何设计和部署数据分析和学习机制来提高能源效率。物联网和移动设备,而又不会带来大量软件开销? (2)在多核芯片设计期间,如何使用机器学习和分析技术进行有效的设计空间探索? (3)数据分析和学习如何提高大型云数据中心的可靠性和能效,以经济高效地支持互连的嵌入式和物联网平台? (4)数据分析如何在新兴的云数据中心网络的网络主干中发现异常并提高其健壮性?在本文中,我们讨论了这些悬而未决的问题,并描述了适用于物联网和移动设备,许多核心芯片,数据中心和网络的互连生态系统的深远解决方案。

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