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Fusion of face and iris biometrics using local and global feature extraction methods - Springer

机译:使用局部和全局特征提取方法融合人脸和虹膜生物特征-Springer

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摘要

Fusion of multiple biometrics combines the strengths of unimodal biometrics to achieve improved recognition accuracy. In this study, face and iris biometrics are used to obtain a robust recognition system by using several feature extractors, score normalization and fusion techniques. Global and local feature extractors are used to extract face and iris features separately, and then, the fusion of these modalities is performed on different subsets of face and iris image databases of ORL, FERET, CASIA and UBIRIS. The proposed method uses Local Binary Patterns local feature extractor and subspace Linear Discriminant Analysis global feature extractor on face and iris images, respectively. Face and iris scores are normalized using tanh normalization, and then, Weighted Sum Rule is applied for the fusion of these two modalities. Improved recognition accuracies are achieved compared to the individual systems and multimodal systems using other local or global feature extractors for both modalities.
机译:多种生物识别技术的融合融合了单峰生物识别技术的优势,从而提高了识别准确性。在这项研究中,通过使用多个特征提取器,分数归一化和融合技术,使用面部和虹膜生物特征识别技术来获得强大的识别系统。全局和局部特征提取器分别用于提取脸部和虹膜特征,然后对ORL,FERET,CASIA和UBIRIS的脸部和虹膜图像数据库的不同子集执行这些模态的融合。该方法分别在人脸和虹膜图像上使用局部二值模式局部特征提取器和子空间线性判别分析全局特征提取器。使用tanh归一化对面部和虹膜得分进行归一化,然后将加权和规则应用于这两种模态的融合。与使用其他本地或全局特征提取器的两种模式相比,单个系统和多模式系统相比,识别精度得到了提高。

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