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AI Intelligence for the Grid 16 Years Later: Progress, Challenges and Lessons for Other Sectors

机译:16年后的网格人工智能技术:其他行业的进步,挑战和经验教训

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How could the “new AI” based on neural networks and deep learning be applied to the electric power grid, so as to get maximum benefit from the new technology, and serve as a model for how to organize the new Internet of Things (IOT) in general? The first of these questions was already assessed in great detail in workshops organized jointly by NSF and the Electric Power Research Institute (EPRI) in 2002 [1], drawing on new technologies which included today's deep learning but also more advanced technologies in the same family [2]. The NSTC (White House) Smart Grid policy of June 2011 cited [1] in stating: “NSF is currently supporting research to develop a '4th generation intelligent grid' that would use intelligent system-wide optimization to allow up to 80% of electricity to come from renewable sources and 80% of cars to be pluggable electric vehicles (PEV) without compromising reliability, and at minimum cost to the Nation.” This paper gives some highlights of the progress made, the open challenges, and important connections to the larger needs of humanity, in that order. The synergy between new intelligence, new technology for cybersecurity [3] and new physical hardware [4] is essential to maximum success, and even to the very survival of our endangered species. Lessons from the power grid are essential to better understanding of urgent challenges central to the IOT in general [5].
机译:如何将基于神经网络和深度学习的“新AI”应用于电网,以便从新技术中获得最大收益,并成为组织新的物联网(IOT)的模型一般来说?这些问题中的第一个已经在NSF和电力研究所(EPRI)于2002年联合举办的研讨会中进行了详细评估[1],它借鉴了包括当今的深度学习以及同一家族中更先进技术在内的新技术。 [2]。 2011年6月的NSTC(白宫)智能电网政策引用了[1]:“ NSF当前正在支持开发“第四代智能电网”的研究,该系统将使用智能系统范围内的优化来允许高达80%的电力使用这些产品将来自可再生能源,而80%的汽车将成为可插拔电动汽车(PEV),而不会损害可靠性,而且对国家的成本最低。”本文按此顺序重点介绍了所取得的进展,面临的挑战以及与人类更大需求的重要联系。新情报,用于网络安全的新技术[3]和新的物理硬件[4]之间的协同作用对于最大程度地取得成功,甚至对我们濒临灭绝物种的生存至关重要。电网方面的经验对于更好地理解总体上属于物联网的紧迫挑战至关重要[5]。

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