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Face recognition/detection by probabilistic decision-based neural network

Published: 01 January 1997 Publication History

Abstract

This paper proposes a face recognition system, based on probabilistic decision-based neural networks (PDBNN). With technological advance on microelectronic and vision system, high performance automatic techniques on biometric recognition are now becoming economically feasible. Among all the biometric identification methods, face recognition has attracted much attention in recent years because it has potential to be most nonintrusive and user-friendly. The PDBNN face recognition system consists of three modules: First, a face detector finds the location of a human face in an image. Then an eye localizer determines the positions of both eyes in order to generate meaningful feature vectors. The facial region proposed contains eyebrows, eyes, and nose, but excluding mouth (eye-glasses will be allowed). Lastly, the third module is a face recognizer. The PDBNN can be effectively applied to all the three modules. It adopts a hierarchical network structures with nonlinear basis functions and a competitive credit-assignment scheme. The paper demonstrates a successful application of PDBNN to face recognition applications on two public (FERET and ORL) and one in-house (SCR) databases. Regarding the performance, experimental results on three different databases such as recognition accuracies as well as false rejection and false acceptance rates are elaborated. As to the processing speed, the whole recognition process (including PDBNN processing for eye localization, feature extraction, and classification) consumes approximately one second on Sparc10, without using hardware accelerator or co-processor

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  • (2024)Residual feature decomposition and multi-task learning-based variation-invariant face recognitionNeural Computing and Applications10.1007/s00521-024-10234-x36:32(20147-20166)Online publication date: 1-Nov-2024
  • (2021)An Extensive Study on Traditional-to-Recent Transformation on Face Recognition SystemWireless Personal Communications: An International Journal10.1007/s11277-021-08170-3118:4(3075-3128)Online publication date: 1-Jun-2021
  • (2021)Weighted Discriminative Sparse Representation for Image ClassificationNeural Processing Letters10.1007/s11063-021-10489-853:3(2047-2065)Online publication date: 1-Jun-2021
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Published In

cover image IEEE Transactions on Neural Networks
IEEE Transactions on Neural Networks  Volume 8, Issue 1
January 1997
186 pages

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IEEE Press

Publication History

Published: 01 January 1997

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Cited By

View all
  • (2024)Residual feature decomposition and multi-task learning-based variation-invariant face recognitionNeural Computing and Applications10.1007/s00521-024-10234-x36:32(20147-20166)Online publication date: 1-Nov-2024
  • (2021)An Extensive Study on Traditional-to-Recent Transformation on Face Recognition SystemWireless Personal Communications: An International Journal10.1007/s11277-021-08170-3118:4(3075-3128)Online publication date: 1-Jun-2021
  • (2021)Weighted Discriminative Sparse Representation for Image ClassificationNeural Processing Letters10.1007/s11063-021-10489-853:3(2047-2065)Online publication date: 1-Jun-2021
  • (2020)General decay anti-synchronization of multi-weighted coupled neural networks with and without reaction–diffusion termsNeural Computing and Applications10.1007/s00521-019-04313-732:12(8417-8430)Online publication date: 1-Jun-2020
  • (2019)Face detection techniquesArtificial Intelligence Review10.1007/s10462-018-9650-252:2(927-948)Online publication date: 1-Aug-2019
  • (2018)Using Convolutional Neural Networks for Assembly Activity Recognition in Robot Assisted Manual ProductionHuman-Computer Interaction. Interaction in Context10.1007/978-3-319-91244-8_31(381-397)Online publication date: 15-Jul-2018
  • (2017)Linking face images captured from the optical phenomenon in the wild for forensic science2017 IEEE International Joint Conference on Biometrics (IJCB)10.1109/BTAS.2017.8272770(781-786)Online publication date: 1-Oct-2017
  • (2017)Stability and Control of Fractional Chaotic Complex Networks with Mixed Interval UncertaintiesAsian Journal of Control10.1002/asjc.133319:1(106-115)Online publication date: 1-Jan-2017
  • (2016)Biometric Recognition in Automated Border ControlACM Computing Surveys10.1145/293324149:2(1-39)Online publication date: 30-Jun-2016
  • (2016)A comparative study of feature extraction methods and their application to P-RBF NNs in face recognition problemFuzzy Sets and Systems10.1016/j.fss.2015.11.018305:C(131-148)Online publication date: 15-Dec-2016
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