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2008 37th IEEE Applied Imagery Pattern Recognition Workshop
Integrating monomodal biometric matchers through logistic regression rank aggregation approach
Washington, DC, USA
October 15-October 17
ISBN: 978-1-4244-3125-0
| ASCII Text | x | ||
| Md. Maruf Monwar, Marina L. Gavrilova, "Integrating monomodal biometric matchers through logistic regression rank aggregation approach," 2012 IEEE Applied Imagery Pattern Recognition Workshop (AIPR), pp. 1-7, 2008 37th IEEE Applied Imagery Pattern Recognition Workshop, 2008. | |||
| BibTex | x | ||
| @article{ 10.1109/AIPR.2008.4906455, author = {Md. Maruf Monwar and Marina L. Gavrilova}, title = {Integrating monomodal biometric matchers through logistic regression rank aggregation approach}, journal ={2012 IEEE Applied Imagery Pattern Recognition Workshop (AIPR)}, volume = {0}, year = {2008}, isbn = {978-1-4244-3125-0}, pages = {1-7}, doi = {http://doi.ieeecomputersociety.org/10.1109/AIPR.2008.4906455}, publisher = {IEEE Computer Society}, address = {Los Alamitos, CA, USA}, } | |||
| RefWorks Procite/RefMan/Endnote | x | ||
| TY - CONF JO - 2012 IEEE Applied Imagery Pattern Recognition Workshop (AIPR) TI - Integrating monomodal biometric matchers through logistic regression rank aggregation approach SN - 978-1-4244-3125-0 SP1 EP7 A1 - Md. Maruf Monwar, A1 - Marina L. Gavrilova, PY - 2008 VL - 0 JA - 2012 IEEE Applied Imagery Pattern Recognition Workshop (AIPR) ER - | |||
Biometric system relies on person's behavioral and/or physiological characteristics as an alternative means of person authentication (traditional means being password, smart card, ID etc.). However, biometric system based solely on a single biometric may not always meet security requirements. Thus multibiometric systems are emerging as a trend which helps in overcoming limitations of single biometric solutions, such as when a user does not have a quality sample to present to the system and reduces the ability of the system to be tricked fraudulently. A reliable and successful multibiometric system needs an effective fusion scheme to integrate the information presented by multiple matchers. In this research, we integrate results of three monomodal biometric matchers (face, ear and iris) with the logistic regression approach of rank level fusion method. In this approach, not only the outcomes of the three mono-modal matchers are considered, but also their effectiveness, based on previous research, are also considered for final rank aggregation. Experiment results indicate that Logistic Regression method outperform Borda count method or plurality voting method. The system can be a contribution to the homeland and border security or other security applications.
Citation:
Md. Maruf Monwar, Marina L. Gavrilova, "Integrating monomodal biometric matchers through logistic regression rank aggregation approach," aipr, pp.1-7, 2008 37th IEEE Applied Imagery Pattern Recognition Workshop, 2008
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