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Contour-based Classification of Video Objects

机译:基于轮廓的视频对象分类

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摘要

The recognition of objects that appear in a video sequence is an essential aspect of any video content analysis system. We present an approach which classifies a segmented video object based on its appearance (object views) in successive video frames. The classification is performed by matching curvature features of the contours of these object views to a database containing preprocessed views of prototypical objects using a modified curvature scale space technique. By integrating the results of a number of successive frames and by using the modified curvature scale space technique as an efficient representation of object contours, our approach enables the robust, tolerant and rapid object classification of video objects.
机译:识别视频序列中出现的对象是任何视频内容分析系统的重要方面。我们提出一种基于分段视频对象在连续视频帧中的外观(对象视图)对其进行分类的方法。通过使用改进的曲率标度空间技术将这些对象视图的轮廓的曲率特征与包含原型对象的预处理视图的数据库进行匹配来执行分类。通过整合多个连续帧的结果并使用改进的曲率标度空间技术作为对象轮廓的有效表示,我们的方法实现了视频对象的鲁棒,宽容和快速的对象分类。

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