Comparison and fusion of multiple iris and periocular matchers using near-infrared and visible images

F. Alonso-Fernandez, A. Mikaelyan, J. Bigün
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引用次数: 35

Abstract

Periocular refers to the facial region in the eye vicinity. It can be easily obtained with existing face and iris setups, and it appears in iris images, so its fusion with the iris texture has a potential to improve the overall recognition. It is also suggested that iris is more suited to near-infrared (NIR) illumination, whereas the periocular modality is best for visible (VW) illumination. Here, we evaluate three periocular and three iris matchers based on different features. As experimental data, we use five databases, three acquired with a close-up NIR camera, and two in VW light with a webcam and a digital camera. We observe that the iris matchers perform better than the periocular matchers with NIR data, and the opposite with VW data. However, in both cases, their fusion can provide additional performance improvements. This is specially relevant with VW data, where the iris matchers perform significantly worse (due to low resolution), but they are still able to complement the periocular modality.
近红外与可见光多虹膜及眼周匹配器的比较与融合
眼周是指眼睛附近的面部区域。它可以很容易地从现有的人脸和虹膜设置中获得,并且它出现在虹膜图像中,因此它与虹膜纹理的融合具有提高整体识别的潜力。虹膜更适合近红外(NIR)照明,而眼周模式最适合可见光(VW)照明。在这里,我们基于不同的特征评估了三种眼周和虹膜匹配器。作为实验数据,我们使用了5个数据库,其中3个是用近红外相机拍摄的,另外2个是用网络摄像头和数码相机拍摄的。我们观察到虹膜匹配器在近红外数据下优于眼周匹配器,而在大众数据下则相反。然而,在这两种情况下,它们的融合都可以提供额外的性能改进。这与大众数据特别相关,其中虹膜匹配器的表现明显较差(由于分辨率低),但它们仍然能够补充眼周模态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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