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A Fast Action Recognition Strategy Based on Motion Trajectory Occurrences

机译:一种基于运动轨迹出现的快速动作识别策略

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摘要

A few light stimuli coherently distributed in the space and time are the essential input that a visual system needs to perceive motion. Inspired in such fact, a compact motion descriptor is herein proposed to describe patterns of neighboring trajectories for human action recognition. The proposed method introduces a strategy that models the local distribution of neighboring points by defining a spatial point process around motion trajectories. Particularly, a two-level occurrence analysis is carried out to discover motion patterns that underlying on trajectory points representation. Firstly, local occurrence words are computed over a circular grid layout that is centered in a fixed position for each trajectory. Then, a regional occurrence description is achieved by representing actions as the most frequent local words that occur in a particular video. This second occurrence layer could be computed for the entire video or by each frame to achieve an online recognition. This compact descriptor, with local size of 72 and sequence descriptor size of 400, acquires importance in real-time applications and environments with hardware restrictions. The proposed strategy was evaluated on KTH and Weizmann dataset, achieving an average accuracy of 91.2 and 78%, respectively. Moreover, a further online recognition was performed over UT-Interaction achieving an accuracy of 67% by using only the first 25% of video sequences.
机译:在空间和时间中连贯地分布的一些光刺激是视觉系统需要感知运动的基本输入。在此事实中启发了一种紧凑的运动描述符,以描述用于人类行动识别的相邻轨迹的模式。所提出的方法介绍了一种策略,其通过在运动轨迹周围定义空间点处理来模拟相邻点的局部分布。特别地,执行两级发生分析,以发现在轨迹点表示上的底层的运动模式。首先,在圆形网格布局上计算局部发生词,该圆形网格布局以每个轨迹为中心的固定位置。然后,通过表示作为特定视频中发生的最常见的本地词的动作来实现区域发生描述。可以为整个视频或每个帧计算第二发生层以实现在线识别。这种紧凑的描述符,具有72的本地大小和400的序列描述符大小,在具有硬件限制的实时应用程序和环境中获取重要性。拟议的策略是在Kth和Weizmann DataSet上进行评估,分别实现了91.2和78%的平均准确性。此外,通过仅使用仅使用前25%的视频序列实现了67%的准确度的UT相互作用进行了进一步的在线识别。

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