Velocity adaptation of space-time interest points

I. Laptev, T. Lindeberg
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引用次数: 84

Abstract

The notion of local features in space-time has recently been proposed to capture and describe local events in video. When computing space-time descriptors, however, the result may strongly depend on the relative motion between the object and the camera. To compensate for this variation, we present a method that automatically adapts the features to the local velocity of the image pattern and, hence, results in a video representation that is stable with respect to different amounts of camera motion. Experimentally we show that the use of velocity adaptation substantially increases the repeatability of interest points as well as the stability of their associated descriptors. Moreover, for an application to human action recognition we demonstrate how velocity-adapted features enable recognition of human actions in situations with unknown camera motion and complex, non-stationary backgrounds.
时空兴趣点的速度自适应
近年来,人们提出了时空局部特征的概念来捕捉和描述视频中的局部事件。然而,当计算时空描述符时,结果可能强烈依赖于物体和相机之间的相对运动。为了补偿这种变化,我们提出了一种方法,该方法可以自动适应图像模式的局部速度,从而产生相对于不同数量的摄像机运动稳定的视频表示。实验表明,速度自适应的使用大大增加了兴趣点的可重复性以及它们相关描述符的稳定性。此外,对于人类动作识别的应用,我们展示了速度适应特征如何在未知摄像机运动和复杂,非静止背景的情况下识别人类动作。
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