Primer on silicon neuromorphic photonic processors: architecture and compiler

神经形态工程学 光子学 计算机科学 计算机体系结构 信号处理 可重构性 硅光子学 微电子 数字信号处理 人工神经网络 电子工程 人工智能 工程类 电信 计算机硬件 电气工程 材料科学 光电子学
作者
Thomas Ferreira de Lima,Alexander N. Tait,Armin Mehrabian,Mitchell A. Nahmias,Chaoran Huang,Hsuan-Tung Peng,Bicky A. Márquez,Mario Miscuglio,Tarek El‐Ghazawi,Volker J. Sorger,Bhavin J. Shastri,Paul R. Prucnal
出处
期刊:Nanophotonics [De Gruyter]
卷期号:9 (13): 4055-4073 被引量:46
标识
DOI:10.1515/nanoph-2020-0172
摘要

Abstract Microelectronic computers have encountered challenges in meeting all of today’s demands for information processing. Meeting these demands will require the development of unconventional computers employing alternative processing models and new device physics. Neural network models have come to dominate modern machine learning algorithms, and specialized electronic hardware has been developed to implement them more efficiently. A silicon photonic integration industry promises to bring manufacturing ecosystems normally reserved for microelectronics to photonics. Photonic devices have already found simple analog signal processing niches where electronics cannot provide sufficient bandwidth and reconfigurability. In order to solve more complex information processing problems, they will have to adopt a processing model that generalizes and scales. Neuromorphic photonics aims to map physical models of optoelectronic systems to abstract models of neural networks. It represents a new opportunity for machine information processing on sub-nanosecond timescales, with application to mathematical programming, intelligent radio frequency signal processing, and real-time control. The strategy of neuromorphic engineering is to externalize the risk of developing computational theory alongside hardware. The strategy of remaining compatible with silicon photonics externalizes the risk of platform development. In this perspective article, we provide a rationale for a neuromorphic photonics processor, envisioning its architecture and a compiler. We also discuss how it can be interfaced with a general purpose computer, i.e. a CPU, as a coprocessor to target specific applications. This paper is intended for a wide audience and provides a roadmap for expanding research in the direction of transforming neuromorphic photonics into a viable and useful candidate for accelerating neuromorphic computing.
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