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迈向更精确的非视距成像光传输模型。

Towards a more accurate light transport model for non-line-of-sight imaging.

作者信息

Sultan Talha, Reza Syed Azer, Velten Andreas

出版信息

Opt Express. 2024 Feb 26;32(5):7731-7761. doi: 10.1364/OE.508034.

Abstract

Non-line-of-sight (NLOS) imaging systems involve the measurement of an optical signal at a diffuse surface. A forward model encodes the physics of these measurements mathematically and can be inverted to generate a reconstruction of the hidden scene. Some existing NLOS imaging techniques rely on illuminating the diffuse surface and measuring the photon time of flight (ToF) of multi-bounce light paths. Alternatively, some methods depend on measuring high-frequency variations caused by shadows cast by occluders in the hidden scene. While forward models for ToF-NLOS and Shadow-NLOS have been developed separately, there has been limited work on unifying these two imaging modalities. Dove et al introduced a unified mathematical framework capable of modeling both imaging techniques [Opt. Express27, 18016 (2019)10.1364/OE.27.018016]. The authors utilize this general forward model, known as the two frequency spatial Wigner distribution (TFSWD), to discuss the implications of reconstruction resolution for combining the two modalities but only when the occluder geometry is known a priori. In this work, we develop a graphical representation of the TFSWD forward model and apply it to novel experimental setups with potential applications in NLOS imaging. Furthermore, we use this unified framework to explore the potential of combining these two imaging modalities in situations where the occluder geometry is not known in advance.

摘要

非视距(NLOS)成像系统涉及在漫反射表面测量光信号。前向模型以数学方式对这些测量的物理过程进行编码,并且可以通过求逆来生成隐藏场景的重建图像。一些现有的NLOS成像技术依赖于照亮漫反射表面并测量多次反射光路的光子飞行时间(ToF)。或者,一些方法依赖于测量由隐藏场景中的遮挡物投射的阴影所引起的高频变化。虽然ToF-NLOS和Shadow-NLOS的前向模型已分别开发,但在统一这两种成像模式方面的工作有限。多夫等人引入了一个能够对这两种成像技术进行建模的统一数学框架[《光学快报》27, 18016 (2019)10.1364/OE.27.018016]。作者利用这个被称为双频空间维格纳分布(TFSWD)的通用前向模型,来讨论组合这两种模式时重建分辨率的影响,但前提是遮挡物几何形状是先验已知的。在这项工作中,我们开发了TFSWD前向模型的图形表示,并将其应用于在NLOS成像中有潜在应用的新型实验装置。此外,我们使用这个统一框架来探索在遮挡物几何形状事先未知的情况下组合这两种成像模式的潜力。

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