Microcomb-based integrated photonic processing unit

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作者
Bowen Bai
Qipeng Yang
Haowen Shu
Lin Chang
Fenghe Yang
Bitao Shen
Zihan Tao
Jing Wang
Shaofu Xu
Weiqiang Xie
Weiwen Zou
Weiwei Hu
John E. Bowers
Xingjun Wang
机构
[1] Peking University,State Key Laboratory of Advanced Optical Communications System and Networks, School of Electronics
[2] University of California,Department of Electrical and Computer Engineering
[3] Peking University,Frontiers Science Center for Nano
[4] Zhangjiang Laboratory,optoelectronics
[5] Shanghai Jiao Tong University,State Key Laboratory of Advanced Optical Communications System and Networks, Department of Electronic Engineering
[6] Peking University Yangtze Delta Institute of Optoelectronics,undefined
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The emergence of parallel convolution-operation technology has substantially powered the complexity and functionality of optical neural networks (ONN) by harnessing the dimension of optical wavelength. However, this advanced architecture faces remarkable challenges in high-level integration and on-chip operation. In this work, convolution based on time-wavelength plane stretching approach is implemented on a microcomb-driven chip-based photonic processing unit (PPU). To support the operation of this processing unit, we develop a dedicated control and operation protocol, leading to a record high weight precision of 9 bits. Moreover, the compact architecture and high data loading speed enable a preeminent photonic-core compute density of over 1 trillion of operations per second per square millimeter (TOPS mm−2). Two proof-of-concept experiments are demonstrated, including image edge detection and handwritten digit recognition, showing comparable processing capability compared to that of a digital computer. Due to the advanced performance and the great scalability, this parallel photonic processing unit can potentially revolutionize sophisticated artificial intelligence tasks including autonomous driving, video action recognition and image reconstruction.
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