CNN-based Multimodal Touchless Biometric Recognition System using Gait and Speech

Author:

Sarin Sumit1,Mittal Antriksh1,Chugh Anirudh1,Srivastava Smriti1

Affiliation:

1. Netaji Subhas Institute of Technology, Sector-3, Dwarka, New Delhi, India

Abstract

Person identification using biometric features is an effective method for recognizing and authenticating the identity of a person. Multimodal biometric systems combine different biometric modalities in order to make better predictions as well as for achieving increased robustness. This paper proposes a touchless multimodal person identification model using deep learning techniques by combining the gait and speech modalities. Separate pipelines for both the modalities were developed using Convolutional Neural Networks. The paper also explores various fusion strategies for combining the two pipelines and shows how various metrics get affected with different fusion strategies. Results show that weighted average and product fusion rules work best for the data used in the experiments.

Publisher

IOS Press

Subject

Artificial Intelligence,General Engineering,Statistics and Probability

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