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Similarity Scores Based on Background Samples

机译:基于背景样本的相似度评分

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Evaluating the similarity of images and their descriptors by employing discriminative learners has proven itself to be an effective face recognition paradigm. In this paper we show how "background samples", that is, examples which do not belong to any of the classes being learned, may provide a significant performance boost to such face recognition systems. In particular, we make the following contributions. First, we define and evaluate the "Two-Shot Similarity" (TSS) score as an extension to the recently proposed "One-Shot Similarity" (OSS) measure. Both these measures utilize background samples to facilitate better recognition rates. Second, we examine the ranking of images most similar to a query image and employ these as a descriptor for that image. Finally, we provide results underscoring the importance of proper face alignment in automatic face recognition systems. These contributions in concert allow us to obtain a success rate of 86.83% on the Labeled Faces in the Wild (LFW) benchmark, outperforming current state-of-the-art results.
机译:通过使用判别学习者来评估图像及其描述符的相似性已被证明是一种有效的人脸识别范例。在本文中,我们展示了“背景样本”(即不属于正在学习的任何类别的例子)如何为此类人脸识别系统提供显着的性能提升。特别是,我们做出了以下贡献。首先,我们定义和评估“两次相似度”(TSS)分数,作为对最近提出的“一次相似度”(OSS)测度的扩展。这两种措施都利用背景样本来提高识别率。其次,我们检查与查询图像最相似的图像的排名,并将其用作该图像的描述符。最后,我们提供的结果强调了自动面部识别系统中正确面部对齐的重要性。这些共同的贡献使我们在野外标记面孔(LFW)基准上获得了86.83%的成功率,超过了当前的最新结果。

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