解调
计算机科学
分布式声传感
电子工程
多路复用
光纤
光功率
信号处理
光纤传感器
信号(编程语言)
光学工程
延迟(音频)
动态范围
多模光纤
功率(物理)
光纤分路器
光交叉连接
光学传感
实时计算
纤维
计算机硬件
低延迟(资本市场)
超短脉冲
频分复用
作者
Yu Tao,Yangyang Wan,Long, Ziwen,Wenjia Zhang,Jiangbing Du,Zuyuan He
标识
DOI:10.1038/s41377-026-02265-x
摘要
Abstract Optical fiber sensing plays a crucial role in modern measurement systems and holds significant promise for a wide range of applications. This potential, though, has been fundamentally constrained by the intrinsic latency and power limitations associated with electronic signal processing. Here, we propose an all-optical fiber sensing architecture with in-sensor computing (AOFS-IC) that achieves fully optical-domain sensing signal demodulation at the speed of light. By integrating a scattering medium with an optimized diffractive optical network, AOFS-IC enables linear mapping of physical perturbations to detected intensity, and sensing results can be directly read out without electronic processing. The proposed system maintains high accuracy across various sensing tasks, providing sub-nano strain resolution and 100% torsional angle classification accuracy, as well as multiplexed sensing of multiple physical quantities, and performing multi-degree-of-freedom robot arm monitoring. AOFS-IC eliminates computing hardware requirements while providing <3 ns demodulation delay, which is more than 2 orders of magnitude faster than conventional fiber optic sensing systems. This work demonstrates the potential of next-generation optical sensing systems empowered by all-optical computing and paves the way for expanded applications of fiber sensing through the integration of fully optical components, ultrafast measurement speed, and low power consumption.
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