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Learning Discriminative Aggregation Network for Video-Based Face Recognition and Person Re-identification

机译:学习基于视频的面部识别和人重新识别的判别聚合网络

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摘要

In this paper, we propose a discriminative aggregation network method for video-based face recognition and person re-identification, which aims to integrate information from video frames for feature representation effectively and efficiently. Unlike existing video aggregation methods, our method aggregates raw video frames directly instead of the features obtained by complex processing. By combining the idea of metric learning and adversarial learning, we learn an aggregation network to generate more discriminative images compared to the raw input frames. Our framework reduces the number of image frames per video to be processed and significantly speeds up the recognition procedure. Furthermore, low-quality frames containing misleading information can be well filtered and denoised during the aggregation procedure, which makes our method more robust and discriminative. Experimental results on several widely used datasets show that our method can generate discriminative images from video clips and improve the overall recognition performance in both the speed and the accuracy for video-based face recognition and person re-identification.
机译:在本文中,我们提出了一种用于视频的面部识别和人重新识别的判别聚合网络方法,其目的是有效且有效地将来自视频帧的信息集成到特征表示。与现有的视频聚合方法不同,我们的方法直接聚合原始视频帧,而不是通过复杂处理获得的功能。通过组合度量学习和对抗性学习的想法,我们学习了与原始输入帧相比产生更多辨别图像的聚合网络。我们的框架减少了要处理的每个视频的图像帧数,并显着加速识别过程。此外,在聚集过程中,包含误导信息的低质量帧可以在聚合过程中过滤和去噪,这使得我们的方法更加稳健和辨别。几个广泛使用的数据集上的实验结果表明,我们的方法可以从视频剪辑产生判别图像,并以速度和准确度提高基于视频的面部识别和人重新识别的整体识别性能。

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