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Occlusion and visible background and foreground areas in stereo: aBayesian approach

机译:立体声中的遮挡以及可见的背景和前景区域:一种贝叶斯方法

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摘要

Efficient techniques are introduced in this paper for the identification of the occlusion and visible background and foreground areas in a noisy stereoscopic image pair. Three different Bayes decision methods are tested for this purpose. The first, and uses three hypotheses for the formulation of the Bayes decision rules, adopting the right image as a reference. After performing a dual-Bayes decision test having each time as a different image of the stereo pair as reference, consistency checking is added to these tests to form the second method. Finally, four compound hypotheses are used in the third method, which is the most accurate but also the more detailed and computationally involved of three. Experimental results illustrating the performance of the techniques are presented and evaluated
机译:本文介绍了有效的技术,用于识别嘈杂的立体图像对中的遮挡以及可见的背景和前景区域。为此,测试了三种不同的贝叶斯决策方法。第一种,并使用三个假设来制定贝叶斯决策规则,并采用正确的图像作为参考。在执行每次都以立体声对的不同图像作为参考的双贝叶斯决策测试后,将一致性检查添加到这些测试中以形成第二种方法。最后,在第三种方法中使用了四个复合假设,这是三个中最准确的假设,但也是更详细和更复杂的计算方法。介绍并评估了说明该技术性能的实验结果

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