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A New Probabilistic Representation of Color Image Pixels and Its Applications

机译:彩色图像像素的新概率表示法及其应用

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This paper proposes a novel probabilistic representation of color image (PRCI) pixels and investigates its applications to similarity construction in motion estimation and image segmentation problems. The PRCI explores the mixture representation of the input image(s) as prior information and describes a given color pixel in terms of its membership in the mixture. Such representation greatly simplifies the estimation of the probability density function from limited observations and allows us to derive a new probabilistic pixel-wise similarity measure based on the continuous domain Bhattacharyya coefficient. This yields a convenient expression of the similarity measure in terms of the pixel memberships. Furthermore, this pixel-wise similarity is extended to measure the similarity between two image regions. The usefulness of the proposed pixel/region-wise similarities is demonstrated by incorporating them, respectively, in a dense image descriptor-based multi-layered motion estimation problem and an unsupervised image segmentation problem. Experimental results show that: 1) the integration of the proposed pixel-wise similarity in dense image-descriptor construction yields improved peak signal to noise ratio performance and higher tracking accuracy in the multi-layered motion estimation problem and 2) the proposed similarity measures give the best performance in terms of all quantitative measurements in the unsupervised superpixel-based image segmentation of the MSRC and BSD300 datasets.
机译:本文提出了一种新颖的彩色图像(PRCI)像素概率表示方法,并研究了其在运动估计和图像分割问题的相似性构造中的应用。 PRCI探索输入图像的混合表示形式作为先验信息,并根据其在混合中的成员身份描述给定的彩色像素。这样的表示极大地简化了从有限的观察中概率密度函数的估计,并允许我们基于连续域Bhattacharyya系数来推导新的概率的像素级相似性度量。这产生了根据像素隶属度的相似性度量的方便表达。此外,该像素方向的相似性被扩展以测量两个图像区域之间的相似性。通过分别将它们合并在基于密集图像描述符的多层运动估计问题和无监督图像分割问题中,证明了所提出的像素/区域相似性的有用性。实验结果表明:1)在稠密的图像描述符构造中集成拟议的逐像素相似性可改善多层运动估计问题中的峰值信噪比性能,并提高跟踪精度; 2)拟议的相似性度量给出在MSRC和BSD300数据集的无监督基于超像素的图像分割中,在所有定量测量方面均具有最佳性能。

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