arXiv:2506.03317physics.opticscs.CV2025-06被引 6

用衍射光学芯片实现低成本高精度结构振动远程监测

Structural Vibration Monitoring with Diffractive Optical Processors

  • 通过优化的衍射层+轻量神经网络,将结构位移编码为光信号
  • 实验显示精度比传统方案提升一个数量级以上
  • 适合灾后评估、航空航天等需低功耗高吞吐场景

结构健康监测对保障土木基础设施安全至关重要,但现有方案受限于成本、功耗、可扩展性及数据处理复杂度。本文提出一种基于衍射光学处理器的振动监测系统,通过联合优化的衍射层与浅层神经网络后端,实现对3D结构振动谱的远程提取,具备低功耗、低成本、可扩展优势。该架构无需密集传感器阵列或大量数据采集,而是利用空间优化的被动衍射层,将3D结构位移编码为调制光信号,由少量探测器捕获,并通过实时浅层低功耗神经网络解码,重构结构3D位移谱。在毫米波照明下,对实验室级建筑模型(带可编程震动台)的数值与实验验证表明,该系统精度优于传统光学方案或独立训练模块一个数量级以上,为高通量3D结构监测奠定基础。除结构健康监测外,该低成本、数据高效框架在灾害韧性、航空航天诊断及自动驾驶导航等领域亦具应用潜力,尤其适用于对能效、低延迟和高吞吐要求严苛的场景。

原文摘要 · Abstract (English)

Structural Health Monitoring (SHM) is vital for maintaining the safety and longevity of civil infrastructure, yet current solutions remain constrained by cost, power consumption, scalability, and the complexity of data processing. Here, we present a diffractive vibration monitoring system, integrating a jointly optimized diffractive layer with a shallow neural network-based backend to remotely extract 3D structural vibration spectra, offering a low-power, cost-effective and scalable solution. This architecture eliminates the need for dense sensor arrays or extensive data acquisition; instead, it uses a spatially-optimized passive diffractive layer that encodes 3D structural displacements into modulated light, captured by a minimal number of detectors and decoded in real-time by shallow and low-power neural networks to reconstruct the 3D displacement spectra of structures. The diffractive system's efficacy was demonstrated both numerically and experimentally using millimeter-wave illumination on a laboratory-scale building model with a programmable shake table. Our system achieves more than an order-of-magnitude improvement in accuracy over conventional optics or separately trained modules, establishing a foundation for high-throughput 3D monitoring of structures. Beyond SHM, the 3D vibration monitoring capabilities of this cost-effective and data-efficient framework establish a new computational sensing modality with potential applications in disaster resilience, aerospace diagnostics, and autonomous navigation, where energy efficiency, low latency, and high-throughput are critical.

结构监测衍射光学低功耗3D振动

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