Similarity Measure Functions for Strategy-Based Biometrics

نویسندگان

  • Roman V. Yampolskiy
  • Venu Govindaraju
چکیده

Functioning of a biometric system in large part depends on the performance of the similarity measure function. Frequently a generalized similarity distance measure function such as Euclidian distance or Mahalanobis distance is applied to the task of matching biometric feature vectors. However, often accuracy of a biometric system can be greatly improved by designing a customized matching algorithm optimized for a particular biometric application. In this paper we propose a tailored similarity measure function for behavioral biometric systems based on the expert knowledge of the feature level data in the domain. We compare performance of a proposed matching algorithm to that of other well known similarity distance functions and demonstrate its superiority with respect to the chosen domain. Keywords—Behavioral Biometrics, Euclidian Distance, Matching, Similarity Measure.

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تاریخ انتشار 2009