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SEMANTIC OBJECT EXTRACTION IN STEREO VIDEO SEQUENCES

机译:立体视频序列中的语义对象提取

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This paper presents an efficient technique for unsupervised content-based segmentation in stereoscopic video sequences by appropriately combined different content descriptors in a hierarchical framework. Three main modules are involved in the proposed scheme; extraction of reliable depth information, image partition into color and depth regions and a constrained fusion algorithm of color segments using information derived from the depth map. In the first module, each stereo pair is analyzed and the disparity field and depth map are estimated. In the following phase, color and depth regions are created using a novel complexity-reducing multiresolution implementation of the Recursive Shortest Spanning Tree algorithm (M-RSST). While depth segments provide a coarse representation of the image content, color regions describe very accurately object boundaries. For this reason, in the final phase, a new segmentation fusion algorithm is employed which projects color segments onto depth segments.
机译:本文通过在分层框架中适当组合的不同内容描述符提出了对立体视频序列中的无监督基于内容的分割的有效技术。三个主要模块涉及拟议方案;利用深度映射的信息提取可靠深度信息,图像分区和深度区域的颜色和深度区域和约束融合算法。在第一模块中,分析每个立体对,并且估计视差场和深度图。在以下阶段中,使用递归最短生成树算法(M-RSST)的新型复杂性降低的多分辨率实现来创建颜色和深度区域。虽然深度段提供图像内容的粗略表示,但颜色区域描述了非常精确的对象边界。因此,在最终阶段,采用新的分段融合算法将颜色段投影到深度段上。

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