A Multi-Biometric System Based on Multi-Level Hybrid Feature Fusion

被引:6
作者
Mehraj, Haider [1 ]
Mir, Ajaz Hussain [1 ]
机构
[1] Natl Inst Technol Srinagar, Dept Elect & Commun Engn, Srinagar 190006, Jammu & Kashmir, India
关键词
multi-biometric system; feature level fusion; multi-level feature fusion; CNN; HOG features; SCORE-LEVEL FUSION; FACE RECOGNITION; EAR; DESCRIPTORS; ROBUST; VOICE; VEIN; ECG;
D O I
10.1134/S1019331621020039
中图分类号
N09 [自然科学史]; B [哲学、宗教];
学科分类号
01 ; 0101 ; 010108 ; 060207 ; 060305 ; 0712 ;
摘要
In a multimodal biometric recognition system, the integration of multiple features derived from various biometric modalities seeks to overcome the several drawbacks found in a unimodal biometric system. In this paper, we have proposed a novel multimodal biometric recognition system based on a multi-level hybrid feature fusion mechanism to compact knowledge from multiple feature vectors. Several pre-trained networks with transfer learning, namely AlexNet, Inceptionv2, Densenet201, Resnet101, and Resnet-Inceptionv2, are employed to extract feature vectors to fuse with handcrafted feature vectors based on HOG feature descriptor. Canonical correlation analysis (CCA) and Discriminant Correlation Analysis (DCA) are utilized at a multi-level hybrid mechanism. To test the proposed framework, we used three biometric features: Ear, Face, and Gait. Numerical results have proved that our model outperformed other state of the art recent variants.
引用
收藏
页码:176 / 196
页数:21
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