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3D face reconstructions from photometric stereo using near infrared and visible light

机译:使用近红外和可见光从光度立体图像中重建3D人脸

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This paper seeks to advance the state-of-the-art in 3D face capture and processing via novel Photometric Stereo (PS) hardware and algorithms. The first contribution is a new high-speed 3D data capture system, which is capable of acquiring four raw images in approximately 20 ms. The results presented in this paper demonstrate the feasibility of deploying the device in commercial settings. We show how the device can operate with either visible light or near infrared (NIR) light. The NIR light sources offer the advantages of being less intrusive and more covert than most existing face recognition methods allow. Furthermore, our experiments show that the accuracy of the reconstructions is also better using NIR light. The paper also presents a modified four-source PS algorithm which enhances the surface normal estimates by assigning a likelihood measure for each pixel being in a shadowed region. This likelihood measure is determined by the discrepancies between measured pixel brightnesses and expected values. Where the likelihood of shadow is high, then one light source is omitted from the computation for that pixel, otherwise a weighted combination of pixels is used to determine the surface normal. This means that the precise shadow boundary is not required by our method. The results section of the paper provides a detailed analysis of the methods presented and a comparison to ground truth. We also analyse the reflectance properties of a small number of skin samples to test the validity of the Lambertian model and point towards potential improvements to our method using the Oren-Nayar model.
机译:本文力求通过新颖的光度立体(PS)硬件和算法来提高3D人脸捕获和处理的最新水平。第一个贡献是新的高速3D数据捕获系统,该系统能够在大约20毫秒内获取四个原始图像。本文介绍的结果证明了在商业环境中部署该设备的可行性。我们展示了该设备如何在可见光或近红外(NIR)光下工作。与大多数现有的面部识别方法所允许的相比,NIR光源具有更少的干扰和更隐蔽的优势。此外,我们的实验表明,使用近红外光重建的准确性也更高。本文还提出了一种改进的四源PS算法,该算法通过为阴影区域中的每个像素分配似然度来增强表面法线估计。该似然性度量取决于所测量的像素亮度与期望值之间的差异。如果阴影的可能性很高,则从该像素的计算中忽略一个光源,否则使用像素的加权组合来确定表面法线。这意味着我们的方法不需要精确的阴影边界。本文的结果部分对提出的方法进行了详细分析,并与基本事实进行了比较。我们还分析了少量皮肤样品的反射特性,以测试Lambertian模型的有效性,并指出使用Oren-Nayar模型对我们的方法进行潜在的改进。

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