Pooled shrinkage estimator for quadratic discriminant classifier: an analysis for small sample sizes in face recognition
The quadratic discriminant classifier (QDC) is a well-known parametric Bayesian classifier that has been successfully applied to statistical pattern recognition problems. One such application is in automatic face recognition where the number of training images per subject is often found to be much l...
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Published in | International journal of machine learning and cybernetics Vol. 9; no. 3; pp. 507 - 522 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Berlin/Heidelberg
Springer Berlin Heidelberg
01.03.2018
Springer Nature B.V |
Subjects | |
Online Access | Get full text |
ISSN | 1868-8071 1868-808X |
DOI | 10.1007/s13042-016-0549-4 |
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Abstract | The quadratic discriminant classifier (QDC) is a well-known parametric Bayesian classifier that has been successfully applied to statistical pattern recognition problems. One such application is in automatic face recognition where the number of training images per subject is often found to be much less than the length of the facial features. In such a case, the QDC cannot be used because the class-specific covariance matrix on which it depends is either poorly estimated or singular thereby resulting in unacceptable classifier performance. High dimensional covariance estimation techniques such as shrinkage can alleviate this problem but only to a certain extent. This paper presents a computationally simple yet effective solution for further improving the QDC performance in small sample size scenarios. The proposed technique adopts a strategy of combining the class-specific shrinkage estimates of the covariance matrix to obtain a pooled shrinkage estimate, which is then plugged into the QDC. Experiments indicate that the proposed classifier leads to remarkable improvement in face recognition accuracy as compared to the existing classifiers such as the nearest neighbor, support vector machine and naive Bayes, irrespective of the nature of the database and feature extraction method. Monte Carlo simulations reveal that this improvement is due to the much lower mean squared error of the pooled shrinkage estimator which offers greater stability to the QDC. |
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AbstractList | The quadratic discriminant classifier (QDC) is a well-known parametric Bayesian classifier that has been successfully applied to statistical pattern recognition problems. One such application is in automatic face recognition where the number of training images per subject is often found to be much less than the length of the facial features. In such a case, the QDC cannot be used because the class-specific covariance matrix on which it depends is either poorly estimated or singular thereby resulting in unacceptable classifier performance. High dimensional covariance estimation techniques such as shrinkage can alleviate this problem but only to a certain extent. This paper presents a computationally simple yet effective solution for further improving the QDC performance in small sample size scenarios. The proposed technique adopts a strategy of combining the class-specific shrinkage estimates of the covariance matrix to obtain a pooled shrinkage estimate, which is then plugged into the QDC. Experiments indicate that the proposed classifier leads to remarkable improvement in face recognition accuracy as compared to the existing classifiers such as the nearest neighbor, support vector machine and naive Bayes, irrespective of the nature of the database and feature extraction method. Monte Carlo simulations reveal that this improvement is due to the much lower mean squared error of the pooled shrinkage estimator which offers greater stability to the QDC. |
Author | Ali, Syed Shahnewaz Rahman, S. M. Mahbubur Howlader, Tamanna |
Author_xml | – sequence: 1 givenname: Syed Shahnewaz surname: Ali fullname: Ali, Syed Shahnewaz organization: Institute of Statistical Research and Training, Dhaka University – sequence: 2 givenname: Tamanna surname: Howlader fullname: Howlader, Tamanna organization: Institute of Statistical Research and Training, Dhaka University – sequence: 3 givenname: S. M. Mahbubur surname: Rahman fullname: Rahman, S. M. Mahbubur email: mahbubur@eee.buet.ac.bd organization: Department of Electrical and Electronic Engineering, Bangladesh University of Engineering and Technology |
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CitedBy_id | crossref_primary_10_1007_s13042_018_00905_2 crossref_primary_10_1109_TFUZZ_2019_2899809 crossref_primary_10_35940_ijainn_B1027_061321 crossref_primary_10_54105_ijainn_B1027_061321 |
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Keywords | Monte Carlo simulations Quadratic discriminant classifier Face recognition High dimensional covariance estimation Shrinkage estimator |
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SubjectTerms | Artificial Intelligence Biometric identification Biometrics Classification Classifiers Complex Systems Computational Intelligence Control Covariance matrix Discriminant analysis Engineering Face recognition Feature extraction Mechatronics Monte Carlo simulation Optimization techniques Original Article Pattern Recognition Robotics Sample size Shrinkage Support vector machines Systems Biology |
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Title | Pooled shrinkage estimator for quadratic discriminant classifier: an analysis for small sample sizes in face recognition |
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