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Open-view human action recognition based on linear discriminant analysis

机译:基于线性判别分析的开放视野人类动作识别

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摘要

In the last decades, action recognition task has evolved from single view recording to unconstrained environment. Recently, multi-view action recognition has become a hot topic in computer vision. However, we notice that only a few works have focused on the open-view action recognition, which is a common problem in the real world. Open-view action recognition focus on doing action recognition in unseen view without using any information from it. To address this issue, we firstly introduce a novel multi-view surveillance action dataset and benchmark several state-of-the-art algorithms. From the results, we observe that the performance of the state-of-the-art algorithms would drop a lot under open-view constraints. Then, we propose a novel open-view action recognition method based on the linear discriminant analysis. This method can learn a common space for action samples under different view by using their category information, which can achieve a good result in open-view action recognition.
机译:在过去的几十年中,动作识别任务已经从单视图记录演变为不受约束的环境。近来,多视图动作识别已经成为计算机视觉中的热门话题。但是,我们注意到只有少数作品专注于开放视图动作识别,这是现实世界中的常见问题。开放式动作识别专注于在不使用任何可见信息的情况下在看不见的视图中进行动作识别。为了解决这个问题,我们首先介绍了一个新颖的多视图监视动作数据集,并对几种最新算法进行了基准测试。从结果可以看出,在开放视图约束下,最新算法的性能将下降很多。然后,提出了一种基于线性判别分析的新颖的视野开阔动作识别方法。该方法可以利用类别信息为不同视角的动作样本学习一个共同的空间,从而在开放视野动作识别中取得良好的效果。

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