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Shape-based object recognition in videos using 3D synthetic object models

机译:使用3D合成对象模型的视频中基于形状的对象识别

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摘要

In this paper we address the problem of recognizing moving objects in videos by utilizing synthetic 3D models. We use only the silhouette space of the synthetic models making thus our approach independent of appearance. To deal with the decrease in discriminability in the absence of appearance, we align sequences of object masks from video frames to paths in silhouette space. We extract object silhouettes from video by an integration of feature tracking, motion grouping of tracks, and co-segmentation of successive frames. Subsequently, the object masks from the video are matched to 3D model silhouettes in a robust matching and alignment phase. The result is a matching score for every 3D model to the video, along with a pose alignment of the model to the video. Promising experimental results indicate that a purely shape-based matching scheme driven by synthetic 3D models can be successfully applied for object recognition in videos.
机译:在本文中,我们解决了通过利用合成3D模型识别视频中的运动对象的问题。我们仅使用合成模型的轮廓空间,因此我们的方法与外观无关。为了应对在不存在外观的情况下可分辨性的降低,我们将对象蒙版的序列从视频帧对齐到轮廓空间中的路径。我们通过特征跟踪,轨迹的运动分组和连续帧的共同分段的集成从视频中提取对象轮廓。随后,在稳健的匹配和对齐阶段,将视频的对象蒙版与3D模型轮廓进行匹配。结果是每个3D模型与视频的匹配得分,以及模型与视频的姿势对齐。有希望的实验结果表明,由合成3D模型驱动的纯粹基于形状的匹配方案可以成功地应用于视频中的对象识别。

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