自画像到证件的人脸匹配:跨域场景下基于cnn的人脸验证

Filipe Costa, Marcos Vinícius L. Melo, Igor Gadelha, G. Folego, Larissa Gambaro, André Rodrigues
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引用次数: 1

摘要

人脸验证方法确定两张给定的人脸是否来自同一个人。最近,在商业应用中流行的一种新的人脸验证应用需求是自拍照和身份证人脸匹配,即我们将被摄者的自拍照中的人脸与其身份证件照片中的人脸进行比较。在这项工作中,我们提出了一种在跨域场景下进行人脸验证的新方法,假设我们在数据集中每个主题只有两张图像。该方法基于具有三重损失函数的连体结构。实验表明,与其他文献相比,该模型具有较好的跨域人脸验证效果,错误率较低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Self-portrait to ID Document face matching: CNN-Based face verification in cross-domain scenario
Face verification approaches determine whether two given faces are from the same person. Recently, a new demand for face verification application which has become popular in commercial applications is the self-portrait and ID face matching, in which we compare the faces of a selfie shot by a subject and the face in a picture of her identification document. In this work, we proposed a novel approach for face verification in a cross-domain scenario, assuming we have only two images for each subject in the dataset. The method is based on siamese architecture with triplet-loss function. Experiments show the proposed model reaches good effectiveness for cross-domain face verification with low error rates, in comparison to other works of the literature.
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