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多视角光度立体视觉:针对空间变化各向同性材料的稳健解决方案及基准数据集

Multi-View Photometric Stereo: A Robust Solution and Benchmark Dataset for Spatially Varying Isotropic Materials.

作者信息

Li Min, Zhou Zhenglong, Wu Zhe, Shi Boxin, Diao Changyu, Tan Ping

出版信息

IEEE Trans Image Process. 2020 Jan 28. doi: 10.1109/TIP.2020.2968818.

Abstract

We present a method to capture both 3D shape and spatially varying reflectance with a multi-view photometric stereo (MVPS) technique that works for general isotropic materials. Our algorithm is suitable for perspective cameras and nearby point light sources. Our data capture setup is simple, which consists of only a digital camera, some LED lights, and an optional automatic turntable. From a single viewpoint, we use a set of photometric stereo images to identify surface points with the same distance to the camera. We collect this information from multiple viewpoints and combine it with structure-from-motion to obtain a precise reconstruction of the complete 3D shape. The spatially varying isotropic bidirectional reflectance distribution function (BRDF) is captured by simultaneously inferring a set of basis BRDFs and their mixing weights at each surface point. In experiments, we demonstrate our algorithm with two different setups: a studio setup for highest precision and a desktop setup for best usability. According to our experiments, under the studio setting, the captured shapes are accurate to 0.5 millimeters and the captured reflectance has a relative root-mean-square error (RMSE) of 9%. We also quantitatively evaluate state-of-the-art MVPS on a newly collected benchmark dataset, which is publicly available for inspiring future research.

摘要

我们提出了一种利用多视图光度立体(MVPS)技术来捕捉三维形状和空间变化反射率的方法,该技术适用于一般的各向同性材料。我们的算法适用于透视相机和附近的点光源。我们的数据采集设置很简单,仅由一台数码相机、一些LED灯和一个可选的自动转盘组成。从单个视角出发,我们使用一组光度立体图像来识别与相机距离相同的表面点。我们从多个视角收集这些信息,并将其与运动结构相结合,以获得完整三维形状的精确重建。通过同时推断每个表面点的一组基础双向反射分布函数(BRDF)及其混合权重,来捕捉空间变化的各向同性双向反射分布函数(BRDF)。在实验中,我们用两种不同的设置展示了我们的算法:一种用于最高精度的工作室设置,另一种用于最佳可用性的桌面设置。根据我们的实验,在工作室设置下,捕捉到的形状精确到0.5毫米,捕捉到的反射率具有9%的相对均方根误差(RMSE)。我们还在一个新收集的基准数据集上对最先进的MVPS进行了定量评估,该数据集已公开可用,以激励未来的研究。

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