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Denoising of dynamic 3D meshes via low-rank spectral analysis

机译:通过低阶频谱分析对动态3D网格进行消噪

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摘要

Recently, the new generation of different 3D scanner devices (e.g., conoscopic holography, structured light, photometric systems, etc.) has attracted a lot of attention due to their ability to provide more reliable results. The easiness of capturing real 3D objects has created revolutionary trends in many areas (e.g., gaming, prominence of heritage, military, medicine, etc.) and has significantly increased the interest for static and dynamic 3D models. However, despite the technological evolution of the 3D acquisition devices, there are still limitations, deteriorating the quality of the generated results (e.g., noise, outliers, and other abnormalities). These issues need to be addressed before the 3D models are used by other applications (such as segmentation, object recognition, tracking, etc.). In this paper, we introduce a novel method which exploits similarities at the spectral frequencies of individual meshes in soft or rigid body 3D animations. The noise is mainly distributed over high frequencies, while the spectrum of the graph Fourier transform of sequential meshes in a 3D animation, exhibits a low-rank which can be effectively exploited using robust principal component analysis (RPCA). Extensive evaluation studies, carried out using a variety of different arbitrarily complex 3D animations and noise patterns, verify that the proposed technique achieves plausible denoising results despite the constraints posed by arbitrarily motion scenarios. (C) 2019 Elsevier Ltd. All rights reserved.
机译:近来,由于不同的3D扫描仪设备能够提供更可靠的结果,因此新一代的不同3D扫描仪设备(例如,锥光全息术,结构光,光度学系统等)已经引起了很多关注。捕获真实3D对象的简便性已在许多领域(例如游戏,遗产,军事,医学等领域)产生了革命性的趋势,并且极大地增加了对静态和动态3D模型的兴趣。但是,尽管3D采集设备在技术上有所发展,但仍然存在局限性,从而降低了所生成结果的质量(例如,噪声,异常值和其他异常)。在其他应用程序使用3D模型之前,必须解决这些问题(例如,分段,对象识别,跟踪等)。在本文中,我们介绍了一种新颖的方法,该方法利用了软或刚体3D动画中各个网格的频谱频率上的相似性。噪声主要分布在高频上,而3D动画中的顺序网格图的傅立叶变换图的频谱显示出较低的秩,可以使用鲁棒的主成分分析(RPCA)有效地利用该噪声。使用各种不同的任意复杂的3D动画和噪声模式进行的广泛评估研究证明,尽管受到任意运动场景的限制,所提出的技术仍可以实现合理的降噪结果。 (C)2019 Elsevier Ltd.保留所有权利。

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