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Interactive foreground segmentation and shape reconstruction from RGBD images

机译:RGBD图像的交互式前景分割和形状重建

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摘要

Three dimensional shape reconstruction of objects in complex scenes has important applications in intelligent transportation systems and medical image processing. This paper aims to segment and locate the foreground object through the interactive segmentation with multiple cues including saliency, depth and color. The desired foreground object is obtained by using the foreground and background information provided by saliency map and heatmap. Then, the multi-view point cloud information of the foreground object is recovered by depth information, and a multi-view point cloud registration algorithm based on color information is proposed. The three-dimensional shape model of the object is reconstructed through a multi-view point cloud registration algorithm combined with motion averaging and low-rank sparse matrix decomposition. The validity of the framework is empirically assessed with comparative experiments. (C) 2019 Elsevier Ltd. All rights reserved.
机译:复杂场景中对象的三维形状重建在智能运输系统和医学图像处理中具有重要应用。 本文旨在通过具有多个线索的交互式分段进行段和定位前景对象,包括显着性,深度和颜色。 通过使用所需图和热图提供的前景和背景信息获得所需的前景对象。 然后,通过深度信息恢复前景对象的多视点云信息,提出了一种基于颜色信息的多视点云登记算法。 通过多视点云登记算法重建对象的三维形状模型,与运动平均和低秩稀疏矩阵分解组合。 框架的有效性与比较实验进行了经验评估。 (c)2019年elestvier有限公司保留所有权利。

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