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Updated: Sep 2, 2026

Multimodal Optical Imaging Platform for Studying Cellular Metabolism
Published on: June 6, 2025
65 TOPS optoelectronic multi-core computing unlocking multi-feature fusion enhancement
Xiangyan Meng1,2,3, Junshen Li1,2,3, Menghan Yang1,2,3
1State Key Laboratory of Optoelectronic Materials and Devices, Institute of Semiconductors, Chinese Academy of Sciences, Beijing, China.
Abstract:
The rapid progress of artificial intelligence demands scalable, energy-efficient hardware with massive parallelism and high throughput. Although optical computing offers a promising post-Moore solution, current implementations face speed limitations and multi-core integration challenges. Here, we propose a high-throughput optical processing unit (OPU) that simultaneously exploits coherent interference, wavelength-division multiplexing, and spatial parallelism to achieve revolutionary performance gains. Integrating four optical analog cores on a monolithic chip, the OPU supports 124-channel parallel task processing, achieving 65.04 trillion operations per second (TOPS) computational speed and 5.16 TOPS/mm2 compute density. Leveraging this OPU platform, an optoelectronic convolutional neural network (OE-CNN) is constructed that fuses the OPU's parallel 4-kernel convolution and average pooling operations with electronic nonlinear activation and fully connection operations. This OE-CNN, empowered by multi-feature fusion through 4-kernel parallel convolution, achieves a 95.08% MNIST classification accuracy-representing a 9.20% improvement over its single-core counterpart. The OPU demonstration achieves multi-core parallel operation and accelerated computational speed, establishing a scalable hardware foundation for optoelectronic many-core intelligent computing.
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