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Video Analysis System Using Deep Learning Algorithms

机译:使用深度学习算法的视频分析系统

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Detection of video duplicates is an active field of research, motivated by the protection of intellectual property, the fight against piracy or the tracing of the origin of reused video segments. In this work, a method for the detection of duplicate videos is proposed and implemented, making use of deep learning methods and techniques typical of the field of information recovery. This method has been evaluated with a data set usually used in the field, with which high average accuracies, above 85%, have been obtained. The effect of the different layers of the convolutional neural network used by the algorithm, the aggregation mechanisms that can be used on them, and the influence of the recovery model have been studied, finding a set of parameters that optimize the overall accuracy of the system.
机译:视频复制的检测是一种活跃的研究领域,通过保护知识产权,抗击盗版的斗争或追踪重复使用视频段的追踪。 在这项工作中,提出并实现了一种检测重复视频的方法,利用了信息恢复领域的典型深入学习方法和技术。 已经使用通常用于该字段中使用的数据集进行评估,该方法已经获得了高于85%的高平均精度。 算法使用的卷积神经网络的不同层的效果,研究了可以用于它们的聚合机制,以及恢复模型的影响,找到了一组优化系统的整体精度的参数 。

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