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Journal ArticleDOI

A Multimodal Authentication for Biometric Recognition System using Intelligent Hybrid Fusion Techniques.

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TLDR
A new algorithm called Hybrid Adaptive Fusion (HAF) has been proposed which works on the principle of hybrid fusion of two feature inputs such as Hand geometry and iris of the users to strengthen the security algorithms through which the identification can be done in secured manner.
Abstract
Biometric Recognition and Authentication is used in many applications for the secured identification of the persons. Several Researches has been carried out to strengthen the security algorithms through which the identification can be done in secured manner. With this objective, a new algorithm called Hybrid Adaptive Fusion(HAF) has been proposed which works on the principle of hybrid fusion of two feature inputs such as Hand geometry and iris of the users. As mentioned, the proposed algorithm uses the novel and hybrid fusion of feature extraction along with the accurate machine learning classifier. Effective Linear Binary Patterns (ELBP) and Scale Invariant Fourier Transform (SIFT) are stored in the databases for the further verification. The features stored are fed into the Extreme Learning machines for the detection of the verified users. This algorithm has been tested with the CASIA Image Datasets and with the different classifiers such as Neural Networks, Baiyes Networks. The proposed algorithm with ELM has better accuracy of 98.5% when compared with the other machine learning algorithms.

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References
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Journal ArticleDOI

An introduction to biometric recognition

TL;DR: A brief overview of the field of biometrics is given and some of its advantages, disadvantages, strengths, limitations, and related privacy concerns are summarized.
Proceedings ArticleDOI

Personal authentication through biometric technologies

F.L. Podio
TL;DR: Topics, utilization scenarios in the home and an introduction to the state-of-the art of biometrics standards in place will be discussed.
Journal Article

Multimodal Biometric System Using Iris, Palmprint and Finger-Knuckle

TL;DR: This paper presents a multibiometric recognition system using three types of biometrics Iris, Palmprint and Finger_Knuckle Print, and shows that the designed system achieves an excellent recognition rate with total Equal Error Rate EER zero percent.
Proceedings ArticleDOI

An energy-efficient deep learning processor with heterogeneous multi-core architecture for convolutional neural networks and recurrent neural networks

TL;DR: An energy-efficient deep learning processor is proposed for convolutional neural networks and recurrent neural networks in mobile platforms and shows 20× and 4.5× higher energy efficiency compared to the [2] and [3], as well as DNPU.

POLYBIO Multibiometrics Database: Contents, description and interfacing platform

TL;DR: The novel platform for data acquisition and combination - through an integrated device - of the four aforementioned single biometric modalities is de- scribed and the protocols used for this purpose as well as the contents of the data- base and its statistics are presented.
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