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TIFS
2010

On the dynamic selection of biometric fusion algorithms

13 years 7 months ago
On the dynamic selection of biometric fusion algorithms
Biometric fusion consolidates the output of multiple biometric classifiers to render a decision about the identity of an individual. We consider the problem of designing a fusion scheme when 1) the number of training samples is limited, thereby affecting the use of a purely density-based scheme and the likelihood ratio test statistic; 2) the output of multiple matchers yields conflicting results; and 3) the use of a single fusion rule may not be practical due to the diversity of scenarios encountered in the probe dataset. To address these issues, a dynamic reconciliation scheme for fusion rule selection is proposed. In this regard, the contribution of this paper is two-fold: 1) the design of a sequential fusion technique that uses the likelihood ratio test-statistic in conjunction with a support vector machine classifier to account for errors in the former; and 2) the design of a dynamic selection algorithm that unifies the constituent classifiers and fusion schemes in order to optimiz...
Mayank Vatsa, Richa Singh, Afzel Noore, Arun Ross
Added 22 May 2011
Updated 22 May 2011
Type Journal
Year 2010
Where TIFS
Authors Mayank Vatsa, Richa Singh, Afzel Noore, Arun Ross
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