数字孪生光学计算系统
デジタルツイン光学コンピューティングシステム
디지털 트윈 광학 컴퓨팅 시스템
Sistema de computación óptica de gemelo digital
Système de calcul optique par jumeau numérique
Цифровой двойник оптической вычислительной системы
Run Sun ¹ ², Yuemin Li ¹ ², Tingzhao Fu ³, Wencan Liu ¹ ², Sigang Yang ¹ ², Hongwei Chen ¹ ²
¹ Department of Electronic Engineering, Tsinghua University, Beijing 100084, China
中国 北京 清华大学电子工程系
² Beijing National Research Center for Information Science and Technology, Beijing 100084, China
中国 北京 北京信息科学与技术国家研究中心
³ College of Advanced Interdisciplinary Studies & Hunan Provincial Key Laboratory of Novel Nano-Optoelectronic Information Materials and Devices, National University of Defense Technology, Changsha 410073, China
中国 长沙 国防科技大学前沿交叉学科学院 新型纳米光电信息材料与器件湖南省重点实验室
Optical computing systems (OCS) are promising accelerators for artificial intelligence due to their high bandwidth, low latency, and inherent parallelism. However, in existing OCS implementations, task development often requires direct participation of physical hardware during training and optimization, tightly coupling development workflows to device access and limiting offline design, reproducible benchmarking, and parallel exploration.
Here, we propose a Digital Twin Optical Computing System (DT-OCS), a system-level, measurement-driven digital surrogate that emulates the end-to-end input-output behavior of a specific physical OCS under different operating configurations. DT-OCS is implemented as a differentiable software module, enabling fully offline task training and configuration optimization. The optimized configuration parameters can be directly transferred to the physical OCS without hardware-in-the-loop retraining. We validate DT-OCS on a high-speed optical computing system operating at 10 GHz and equipped with a silicon-based integrated computing chip. Representative tasks, including image classification and temporal strategy generation, are evaluated.
Across all tasks, the transferred models closely match the performance of their digital-twin counterparts after direct parameter transfer. These results demonstrate that DT-OCS enables a hardware-decoupled and fully offline development paradigm for optical computing systems. The DT-OCS implementation is released as open-source code to facilitate reuse and further development.