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◆ Nature communications2026-08-18

Photonic integrated computing engine for concurrent optical computing.

Ruiqi Zheng, Sheng Dong, Huan Rao, Junyi Zhang, Jingxu Chen, Chencheng Zeng, Yu Huang, Jiejun Zhang, Jianping Yao

原始摘要(英文原文)· Original abstract
Optical networks with parallel processing capabilities advance high-speed computing and large-scale data processing by providing ultrawide computational bandwidth. In this paper, we present a photonic integrated processor that can be segmented into multiple functional blocks, enabling compact and reconfigurable matrix operations for parallel computational tasks. Fabricated on a silicon-on-insulator platform, the processor supports reconfigurable optical matrix operations of various sizes, offering flexibility and scalability. Specifically, it performs optical convolution operations with three-channel 1×1 and 2×2 real-valued convolution kernels implemented in distinct blocks. The multichannel 1×1 convolution is experimentally validated using a deep residual U-Net for precise segmentation of pneumonia lesions in lung computed tomography images. The 2×2 convolution is validated through an optical convolution layer integrated with an electrical fully connected layer for ten-class classification of handwritten digits. The processor features high scalability and robust parallel computing capability, positioning it as a promising candidate for optical neural networks.
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Photonic integrated computing engine for concurrent optical computing. — 科研速览 Science Skim