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Abstract

With the proliferation of ultrahigh-speed mobile networks and internet-connected devices, along with the rise of artificial intelligence (AI), the world is generating exponentially increasing amounts of data that need to be processed in a fast and efficient way. Highly parallelized, fast and scalable hardware is therefore becoming progressively more important. Here we demonstrate a computationally specific integrated photonic hardware accelerator (tensor core) that is capable of operating at speeds of trillions of multiply-accumulate operations per second (10 MAC operations per second or tera-MACs per second). The tensor core can be considered as the optical analogue of an application-specific integrated circuit (ASIC). It achieves parallelized photonic in-memory computing using phase-change-material memory arrays and photonic chip-based optical frequency combs (soliton microcombs3). The computation is reduced to measuring the optical transmission of reconfigurable and non-resonant passive components and can operate at a bandwidth exceeding 14 gigahertz, limited only by the speed ofthe modulators and photodetectors. Given recent advances in hybrid integration of soliton microcombs at microwave line rates, ultralow-loss silicon nitride waveguides, and high-speed on-chip detectors and modulators, our approach provides a path towards full complementary metal-oxide-semiconductor (CMOS) wafer-scale integration of the photonic tensor core. Although we focus on convolutional processing, more generally our results indicate the potential of integrated photonics for parallel, fast, and efficient computational hardware in data-heavy AI applications such as autonomous driving, live video processing, and next-generation cloud computing services.

Details

Title
Parallel convolutional processing using an integrated photonic tensor core
Author
Feldmann, J 1 ; Youngblood, N 2 ; Karpov, M 3 ; Gehring, H 1 ; Li, X 2 ; Stappers, M; Gallo, M Le; Fu, X; Lukashchuk, A; Raja, A S; Liu, J; Wright, C D; Sebastian, A; Kippenberg, T J; Pernice, W H P; Bhaskaran, H

 Institute of Physics, University of Münster, Münster, Germany 
 Department of Materials, University of Oxford, Oxford, UK 
 Laboratory of Photonics and Quantum Measurements, Swiss Federal Institute of Technology Lausanne (EPFL), Lausanne, Switzerland 
Pages
52-58,58A-58C
Section
Article
Publication year
2021
Publication date
Jan 7, 2021
Publisher
Nature Publishing Group
ISSN
00280836
e-ISSN
14764687
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2476869314
Copyright
Copyright Nature Publishing Group Jan 7, 2021