AI让微波光子系统更智能,实现全链条自主运行
Artificial Intelligence Reshapes Microwave Photonics
- 用AI优化微波光子系统设计与运维全流程
- 实现320 GHz带宽光电模数转换和616 Gbit/s无线传输
- 适合对智能通信与光子技术交叉感兴趣的科研与工程人员
微波光子学(MWP)作为新兴交叉领域,融合微波与光子技术,突破传统电子系统的带宽瓶颈。凭借光子技术固有的超宽带与低损耗特性,MWP可实现微波、毫米波及太赫兹信号的生成、传输、处理与检测。代表性成果包括全光微波雷达系统、最高达320 GHz带宽的光电模拟-数字转换器,以及数据速率高达616 Gbit/s的光子无线通信系统。与此同时,人工智能(AI)正以前所未有的方式重塑科学研究与工程实践,如AI for science和AI co-scientist。相应地,AI正在全方位重塑MWP,涵盖信号生成、传输、处理与检测等环节。AI已革新MWP系统的设计、仿真、制造、测试、部署与维护,实现自主运行与远超传统系统的效率。本文首次系统性综述了AI赋能的微波光子学,全面总结当前前沿进展,并为学术界与公众提供洞见。
原文摘要 · Abstract (English)
As a rapidly emerging interdisciplinary field that intrinsically integrates microwave and photonics, microwave photonics (MWP) provides disruptive solutions to overcome the fundamental bandwidth of conventional electronic systems. By exploiting the inherently ultra-wide bandwidth and low-loss characteristics of photonic technologies, MWP enables the generation, transmission, processing, and detection of microwave, millimeter-wave, and terahertz signals. Representative breakthroughs include fully photonic microwave radar systems, photonic analog-to-digital converters with bandwidth up to 320 GHz, and photonic wireless communication systems achieving data rate as high as 616 Gbit/s. Meanwhile, the rapid growth of artificial intelligence (AI) is reshaping scientific research, engineering, and daily life in unprecedented ways, such as AI for science/engineering and AI co-scientist/assistant. Correspondingly, AI is profoundly reshaping MWP in all aspects, ranging from signal generation, transmission to signal processing and detection. AI has revolutionized the design, simulation, fabrication, testing, deployment, and maintenance of MWP systems, delivering autonomous operation and exceptional efficiency beyond traditional systems. Motivated by these developments, this Review Paper provides the first comprehensive overview of AI-enabled MWP, systematically summarizing the state-of-the-art advances and presenting insights for both the academic community and the broader public.
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