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NeTra-V: toward an object-based video representation

机译:NeTra-V:面向基于对象的视频表示

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摘要

We present a prototype video analysis and retrieval system, called NeTra-V, that is being developed to build an object-based video representation for functionalities such as search and retrieval of video objects. A region-based content description scheme using low-level visual descriptors is proposed. In order to obtain regions for local feature extraction, a new spatio-temporal segmentation and region-tracking scheme is employed. The segmentation algorithm uses all three visual features: color, texture, and motion in the video data. A group processing scheme similar to the one in the MPEG-2 standard is used to ensure the robustness of the segmentation. The proposed approach can handle complex scenes with large motion. After segmentation, regions are tracked through the video sequence using extracted local features. The results of tracking are sequences of coherent regions, called “subobjects”. Subobjects are the fundamental elements in our low-level content description scheme, which can be used to obtain meaningful physical objects in a high-level content description scheme. Experimental results illustrating segmentation and retrieval are provided
机译:我们提出了一个名为NeTra-V的原型视频分析和检索系统,该系统正在开发中,以构建基于对象的视频表示,以实现诸如搜索和检索视频对象的功能。提出了一种使用低层视觉描述符的基于区域的内容描述方案。为了获得用于局部特征提取的区域,采用了新的时空分割和区域跟踪方案。细分算法使用视频数据中的所有三个视觉特征:颜色,纹理和运动。使用类似于MPEG-2标准中的分组处理方案来确保分段的鲁棒性。所提出的方法可以处理运动较大的复杂场景。分割后,使用提取的局部特征在视频序列中跟踪区域。跟踪的结果是相干区域的序列,称为“子对象”。子对象是我们低级内容描述方案中的基本元素,可用于在高级内容描述方案中获取有意义的物理对象。提供了说明分割和检索的实验结果

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