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Vocabulary Tree schema based on SURF descriptor for real time object detection and recognition in video

机译:基于SURF描述符的词汇树模式用于视频中的实时对象检测和识别

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In this paper we describe an automated process of object detection and recognition in real time video scene having a fix background. The objective is to provide a real time system which can detect and recognize any new object introduced in the video. This detection is performed based on an adaptive Gaussian Model which re-estimates the background model permanently. Each detected object is then described with a local detector and descriptor of key points SURF chosen as it is invariant, robust and distinctive. Finally the proposed process leads to a highly performed identification in a database of images based on the structure of the Vocabulary Tree. This paper presents also experimental results to evaluate the performance of the algorithms which confirm the high performance and the robustness of our approach.
机译:在本文中,我们描述了具有固定背景的实时视频场景中物体检测和识别的自动化过程。目的是提供一种实时系统,该系统可以检测和识别视频中引入的任何新对象。该检测是基于自适应高斯模型执行的,该模型永久性地重新估计背景模型。然后,使用本地检测器和关键点SURF的描述符来描述每个检测到的对象,因为关键点SURF具有不变性,鲁棒性和独特性。最终,所提出的过程基于词汇树的结构导致了图像数据库中的高性能识别。本文还提供了实验结果,以评估算法的性能,从而证实了我们方法的高性能和鲁棒性。

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