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Benchmarking quality-dependent and cost-sensitive score-level multimodal biometric fusion algorithms

Author
Poh, Norman; Bourlai, Thirimachos; Kittler, Josef; Allano, Lorène; Alonso Fernández, Fernando; Ambekar, Onkar; Baker, John P.; Dorizzi, Bernadette; Fatukasi, Omolara; Fiérrez Aguilar, Juliánuntranslated; Ganster, Harald; Ortega García, Javieruntranslated; Maurer, Donald E.; Salah, Albert Ali; Scheidat, Tobias; Vielhauer, Claus
Entity
UAM. Departamento de Ingeniería Informática
Publisher
IEEE
Date
2009-10-20
Citation
10.1109/TIFS.2009.2034885
IEEE transactions on information forensics and security 4.4, (2009): 849-866
 
 
 
ISSN
1556-6013 (print); 1556-6021 (online)
DOI
10.1109/TIFS.2009.2034885
Funded by
This evaluation was made possible thanks to the EU funding from the following projects: BioSecure (www.biosecure.info) and Mobio (www.mobioproject.org). The participating teams are supported by their respective national fund bodies: the Dutch BSIK/BRICKS project and the Spanish project TEC2006-13141-C03-03.
Editor's Version
N. Poh, et al., "Benchmarking Quality-Dependent and Cost-Sensitive Score-Level Multimodal Biometric Fusion Algorithms", IEEE transactions on information forensics and security, vol. 4 no.4, pp. 849-866, December 2009 http://dx.doi.org/10.1109/TIFS.2009.2034885
Subjects
Biometric database; Cost-sensitive fusion; Multimodal biometric authentication; Quality-based fusion; Informática
URI
http://hdl.handle.net/10486/662262
Note
Personal use of this material is permitted. Permission from IEEE must be obtained for all other uses, in any current or future media, including reprinting/republishing this material for advertising or promotional purposes, creating new collective works, for resale or redistribution to servers or lists, or reuse of any copyrighted component of this work in other works.
Rights
© 2009 IEEE

Abstract

Automatically verifying the identity of a person by means of biometrics (e.g., face and fingerprint) is an important application in our day-to-day activities such as accessing banking services and security control in airports. To increase the system reliability, several biometric devices are often used. Such a combined system is known as a multimodal biometric system. This paper reports a benchmarking study carried out within the framework of the BioSecure DS2 (Access Control) evaluation campaign organized by the University of Surrey, involving face, fingerprint, and iris biometrics for person authentication, targeting the application of physical access control in a medium-size establishment with some 500 persons. While multimodal biometrics is a well-investigated subject in the literature, there exists no benchmark for a fusion algorithm comparison. Working towards this goal, we designed two sets of experiments: quality-dependent and cost-sensitive evaluation. The quality-dependent evaluation aims at assessing how well fusion algorithms can perform under changing quality of raw biometric images principally due to change of devices. The cost-sensitive evaluation, on the other hand, investigates how well a fusion algorithm can perform given restricted computation and in the presence of software and hardware failures, resulting in errors such as failure-to-acquire and failure-to-match. Since multiple capturing devices are available, a fusion algorithm should be able to handle this nonideal but nevertheless realistic scenario. In both evaluations, each fusion algorithm is provided with scores from each biometric comparison subsystem as well as the quality measures of both the template and the query data. The response to the call of the evaluation campaign proved very encouraging, with the submission of 22 fusion systems. To the best of our knowledge, this campaign is the first attempt to benchmark quality-based multimodal fusion algorithms. In the presence of changing - - image quality which may be due to a change of acquisition devices and/or device capturing configurations, we observe that the top performing fusion algorithms are those that exploit automatically derived quality measurements. Our evaluation also suggests that while using all the available biometric sensors can definitely increase the fusion performance, this comes at the expense of increased cost in terms of acquisition time, computation time, the physical cost of hardware, and its maintenance cost. As demonstrated in our experiments, a promising solution which minimizes the composite cost is sequential fusion, where a fusion algorithm sequentially uses match scores until a desired confidence is reached, or until all the match scores are exhausted, before outputting the final combined score.
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Google™ Scholar:Poh, Norman - Bourlai, Thirimachos - Kittler, Josef - Allano, Lorène - Alonso Fernández, Fernando - Ambekar, Onkar - Baker, John P. - Dorizzi, Bernadette - Fatukasi, Omolara - Fiérrez Aguilar, Julián - Ganster, Harald - Ortega García, Javier - Maurer, Donald E. - Salah, Albert Ali - Scheidat, Tobias - Vielhauer, Claus

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  • Producción científica en acceso abierto de la UAM [17219]

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