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Analog Optical Computing for Artificial Intelligence

delete2022-03-01
delete56
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OA
AI
吴
吴嘉敏 (Jiamin Wu)
X
Xing Lin
Y
Yuchen Guo
刘
刘军伟 (Junwei Liu)
L
Lu Fang *
S
Shuming Jiao *
戴
戴琼海 (Qionghai Dai) *
DOI:10.1016/j.eng.2021.06.021delete
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摘要

摘要

En 中文
The rapid development of artificial intelligence (AI) facilitates various applications from all areas but also poses great challenges in its hardware implementation in terms of speed and energy because of the explosive growth of data. Optical computing provides a distinctive perspective to address this bottleneck by harnessing the unique properties of photons including broad bandwidth, low latency, and high energy efficiency. In this review, we introduce the latest developments of optical computing for different AI models, including feedforward neural networks, reservoir computing, and spiking neural networks (SNNs). Recent progress in integrated photonic devices, combined with the rise of AI, provides a great opportunity for the renaissance of optical computing in practical applications. This effort requires multidisciplinary efforts from a broad community. This review provides an overview of the state-of-the-art accomplishments in recent years, discusses the availability of current technologies, and points out various remaining challenges in different aspects to push the frontier. We anticipate that the era of large-scale integrated photonics processors will soon arrive for practical AI applications in the form of hybrid optoelectronic frameworks. CO 2021 THE AUTHORS. Published by Elsevier LTD on behalf of Chinese Academy of Engineering and Higher Education Press Limited Company. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
Keyword:
Artificial intelligence
Optical computing
Opto-electronic framework
Neural network
Neuromorphic computing
Reservoir computing
Photonics processor
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Engineering
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11.6
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2.7K
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机构

T
tsinghua university
学者数:
11.9W
论文数: 10.0W
被引数: 137
P
Peng Cheng Laboratory
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