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Robust foreground object segmentation from handheld camera videos with occlusion map

机译:从具有遮挡图的手持式摄像机视频中进行可靠的前景对象分割

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摘要

Extracting foreground objects from videos captured by a handheld camera has emerged as a new challenge. While existing approaches aim to exploit several clues such as depth and motion to extract the foreground layer, there are limitations in handling partial movement and cast shadow. In this paper, we bring a novel perspective to address these two issues by utilizing occlusion map introduced by object and camera motion and taking the advantage of interactive image segmentation methods. For partial movement, we treat each video frame as an image and synthesize "seeding" user interactions (i.e., user manually marking foreground and background) with both forward and backward occlusion maps to leverage the advances in high quality interactive image segmentation. For cast shadow, we utilize a paired region based shadow detection method to further refine initial segmentation results by removing detected shadow regions. Experimental results from both qualitative evaluation and quantitative evaluation on the Hopkins dataset demonstrate both the effectiveness and the efficiency of our proposed approach.
机译:从手持摄像机拍摄的视频中提取前景物体已成为一项新的挑战。尽管现有方法旨在利用诸如深度和运动之类的线索来提取前景层,但是在处理局部运动和投射阴影方面存在局限性。在本文中,我们利用物体和摄像机运动引入的遮挡图并利用交互式图像分割方法的优势,为解决这两个问题提供了新颖的视角。对于部分运动,我们将每个视频帧都视为图像,并使用前后遮挡图合成“播种”用户交互(即用户手动标记前景和背景),以利用高质量交互式图像分割的进步。对于投射阴影,我们利用基于配对区域的阴影检测方法通过删除检测到的阴影区域来进一步优化初始分割结果。在Hopkins数据集上进行的定性评估和定量评估的实验结果证明了我们提出的方法的有效性和效率。

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