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首页> 外文期刊>Computer Vision, IET >Converting video classification problem to image classification with global descriptors and pre-trained network
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Converting video classification problem to image classification with global descriptors and pre-trained network

机译:将视频分类问题转换为具有全局描述符和预先培训的网络的图像分类

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摘要

Motion history image (MHI) is a spatio-temporal template that temporal motion information is collapsed into a single image where intensity is a function of recency of motion. Also, it consists of spatial information. Energy image (EI) based on the magnitude of optical flow is a temporal template that shows only temporal information of motion. Each video can be described in these templates. So, four new methods are introduced in this study. The first three methods are called basic methods. In method 1, each video splits into N groups of consecutive frames and MHI is calculated for each group. Transfer learning with fine-tuning technique has been used for classifying these templates. EIs are used for classifying in method 2 similar to method 1. Fusing two streams of these templates is introduced as method 3. Finally, spatial information is added in method 4. Among these methods, method 4 outperforms others and it is called the proposed method. It achieves the recognition accuracy of 92.30 and 94.50% for UCF Sport and UCF-11 action data sets, respectively. Also, the proposed method is compared with the state-of-the-art approaches and the results show that it has the best performance.
机译:运动历史图像(MHI)是一种时空模板,即时间运动信息被折叠到一个图像中,其中强度是运动的函数。此外,它包括空间信息。基于光流量的能量图像(EI)是仅显示运动的时间信息的时间模板。这些视频可以在这些模板中描述。因此,本研究介绍了四种新方法。前三种方法称为基本方法。在方法1中,针对每个组计算每个视频分割成N个连续帧和MHI。使用微调技术传输学习已被用于对这些模板进行分类。 EIS用于在类似于方法2的方法2中进行分类1.融合这些模板的两个流作为方法3.最后,在方法4中添加了空间信息。在这些方法中,方法4优于其他方法,并且它被称为所提出的方法。它可以分别实现UCF运动和UCF-11行动数据集92.30和94.50%的识别准确性。此外,将所提出的方法与最先进的方法进行比较,结果表明它具有最佳性能。

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