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Multi-View Object Extraction With Fractional Boundaries

机译:具有分数边界的多视图对象提取

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This paper presents an automatic method to extract a multi-view object in a natural environment. We assume that the target object is bounded by the convex volume of interest defined by the overlapping space of camera viewing frustums. There are two key contributions of our approach. First, we present an automatic method to identify a target object across different images for multi-view binary co-segmentation. The extracted target object shares the same geometric representation in space with a distinctive color and texture model from the background. Second, we present an algorithm to detect color ambiguous regions along the object boundary for matting refinement. Our matting region detection algorithm is based on the information theory, which measures the Kullback-Leibler divergence of local color distribution of different pixel bands. The local pixel band with the largest entropy is selected for matte refinement, subject to the multi-view consistent constraint. Our results are high-quality alpha mattes consistent across all different viewpoints. We demonstrate the effectiveness of the proposed method using various examples.
机译:本文提出了一种在自然环境中提取多视点对象的自动方法。我们假定目标对象受感兴趣的凸体积限制,该凸体积由摄像机视锥的重叠空间定义。我们的方法有两个主要贡献。首先,我们提出了一种自动方法,该方法可以识别不同图像之间的目标对象,以实现多视图二进制共分割。提取的目标对象在空间中具有相同的几何表示,并具有与背景不同的颜色和纹理模型。其次,我们提出了一种算法,可以检测沿对象边界的颜色模糊区域以进行消光优化。我们的消光区域检测算法基于信息论,该算法测量不同像素带的局部颜色分布的Kullback-Leibler散度。受多视图一致性约束的影响,选择具有最大熵的局部像素带进行遮罩优化。我们的结果是在所有不同视点上一致的高质量alpha遮罩。我们使用各种示例来证明所提出的方法的有效性。

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