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Inverse design for robust inference in integrated computational spectrometry

Inverse design for robust inference in integrated computational spectrometry

来源:Arxiv_logoArxiv
英文摘要

For computational spectrometers, we propose an inverse-design approach in which the scattering media are topology-optimized to achieve better performance in inference, without the need of a training set of spectra and a distribution of detector noise. Our approach also allows the selection of the inference algorithm to be decoupled from that of the scatterer. For smooth spectra, we additionally devise a regularized reconstruction algorithm based on Chebyshev interpolation, which yields higher accuracy compared with conventional methods in which the spectra are sampled at equally spaced frequencies/wavelengths with equal weights. Our approaches are numerically demonstrated via inverse design of integrated computational spectrometers and reconstruction of example spectra. The inverse-designed spectrometers exhibit significantly better performance in the presence of noise than their counterparts with random scatterers.

Wenchao Ma、Rapha?l Pestourie、Zin Lin、Steven G. Johnson

物理学计算技术、计算机技术

Wenchao Ma,Rapha?l Pestourie,Zin Lin,Steven G. Johnson.Inverse design for robust inference in integrated computational spectrometry[EB/OL].(2025-06-02)[2025-07-01].https://arxiv.org/abs/2506.02194.点此复制

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