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Codebook-based Background Subtraction to Generate Photorealistic Avatars in a Walkthrough Simulator

机译:基于码本的背景减法,以在演练模拟器中生成照片仪器的头像

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摘要

Foregrounds extracted from the background, which are intended to be used as photorealistic avatars for simulators in a variety of virtual worlds, should satisfy the following four requirements: 1) real-time implementation, 2) memory minimization, 3) reduced noise, and 4) clean boundaries. Accordingly, the present paper proposes a codebook-based Markov Random Field (MRF) model for background subtraction that satisfies these requirements. In the proposed method, a codebook-based approach is used for real-time implementation and memory minimization, and an edge-preserving MRF model is used to eliminate noises and clarify boundaries. The MRF model requires probabilistic measurements to estimate the likelihood term, but the codebook does not use any probabilities to subtract the background. Therefore, the proposed method estimates the probabilities of each codeword in the codebook using an online mixture of Gaussian (MoG), and then MAP-MRF (MRF: Maximum A-Posteriori) approaches using a graph-cuts method are used to subtract the background. In experiments, the proposed method showed better performance than MoG-based and codebook-based methods on the Microsoft DataSet and was found to be suitable for generating photorealistic avatars.
机译:从背景中提取的前景,该前景旨在用作各种虚拟世界中的模拟器的光电环境仪器,应该满足以下四个要求:1)实时实现,2)内存最小化,3)降低噪音和4 )清洁边界。因此,本文提出了一种基于码本的马尔可夫随机字段(MRF)模型,用于满足这些要求的背景减法。在所提出的方法中,基于码本的方法用于实时实现和存储器最小化,并且使用边缘保留MRF模型来消除噪声并阐明边界。 MRF模型需要概率测量来估计可能性术语,但码本不使用任何概率来减去背景。因此,所提出的方法估计使用Gaussian(MOG)的在线混合,然后使用Graph-Cuts方法的Map-MRF(MRF:最大A-Bouthiori)方法来估计码本中每个码字的概率。使用图形切割方法来减去背景。在实验中,所提出的方法显示出比Microsoft DataSet上的基于MOG和Codebook的方法更好的性能,并且被发现适合于产生光电型化身。

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