论文标题

自拍生物识别技术的超级分辨率:面部和虹膜的介绍和应用

Super-Resolution for Selfie Biometrics: Introduction and Application to Face and Iris

论文作者

Alonso-Fernandez, Fernando, Farrugia, Reuben A., Fierrez, Julian, Bigun, Josef

论文摘要

缺乏分辨率会对基于图像的生物识别技术的性能产生负面影响。许多在移动设备中变得无处不在的应用程序在受控的环境中没有运行,由于缺乏像素分辨率,它们的性能大大下降。尽管已经研究了许多通用的超分辨率技术以恢复生物识别技术的低分辨率图像,但所获得的结果并非总是如此。这些通用方法通常旨在增强场景的视觉外观。但是,产生生物特征图像的总体视觉增强不一定与更好的识别性能相关。这样的技术旨在恢复通用图像,因此不利用在生物特征图像(例如虹膜或面部)中发现的特定结构,这导致溶液是优化的。因此,必须将超分辨率技术适应特定生物识别方式的图像的特殊性。近年来,人们对将超分辨率应用于不同生物识别方式(例如面虹膜,步态或指纹)的兴趣增加。本章概述了面部和虹膜图像的超分辨率重建的最新进展,这是自拍生物识别技术的两种普遍方式。我们还使用几种最先进的重建算法提供了实验结果,证明了在分类前使用超分辨率提高面部和虹膜图像的质量的好处。在报道的实验中,我们使用实验设置很好地代表了自拍生物识别方案。

The lack of resolution has a negative impact on the performance of image-based biometrics. Many applications which are becoming ubiquitous in mobile devices do not operate in a controlled environment, and their performance significantly drops due to the lack of pixel resolution. While many generic super-resolution techniques have been studied to restore low-resolution images for biometrics, the results obtained are not always as desired. Those generic methods are usually aimed to enhance the visual appearance of the scene. However, producing an overall visual enhancement of biometric images does not necessarily correlate with a better recognition performance. Such techniques are designed to restore generic images and therefore do not exploit the specific structure found in biometric images (e.g. iris or faces), which causes the solution to be sub-optimal. For this reason, super-resolution techniques have to be adapted for the particularities of images from a specific biometric modality. In recent years, there has been an increased interest in the application of super-resolution to different biometric modalities, such as face iris, gait or fingerprint. This chapter presents an overview of recent advances in super-resolution reconstruction of face and iris images, which are the two prevalent modalities in selfie biometrics. We also provide experimental results using several state-of-the-art reconstruction algorithms, demonstrating the benefits of using super-resolution to improve the quality of face and iris images prior to classification. In the reported experiments, we study the application of super-resolution to face and iris images captured in the visible range, using experimental setups that represent well the selfie biometrics scenario.

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