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◆ Nature communications2026-08-17

High-precision integrated diffractive optical networks enabling regression analysis.

Chao Chen, Hanting Ding, Yu Yu, Xinliang Zhang

原始摘要(英文原文)· Original abstract
The growing demands of artificial intelligence impose tremendous challenges on computing hardware. Integrated diffractive optical networks (IDONs) have emerged as a promising candidate for next-generation computing architectures, offering ultrafast processing speed, superior energy efficiency, and inherent parallelism. However, phase-error accumulation and fabrication-sensitive metasurfaces limit their physical precision, restricting most demonstrations to classification tasks. Here, we implement a high-precision IDON by incorporating hardware-level error compensation. Cascaded metasurfaces provide high computational capacity through densely integrated optical modulation units, while integrated thermo-optic tuning arrays enable in-situ calibration to accommodate fabrication nonidealities. Numerical analysis reveals that the proposed approach suppresses the relative error of matrix multiplication from 37% to 4.7%. Leveraging this improvement, we experimentally achieve regression on the Boston Housing dataset with an R² of 0.71, comparable to that of state-of-the-art digital implementations. The demonstrated IDON represents a significant advance toward high-precision optical computing.
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High-precision integrated diffractive optical networks enabling regression analysis. — 科研速览 Science Skim