QUEST Hierarchy for Hyperspectral Face Recognition
Author(s) -
David M. Ryer,
Trevor Bihl,
Kenneth W. Bauer,
Steven K. Rogers
Publication year - 2012
Publication title -
advances in artificial intelligence
Language(s) - English
Resource type - Journals
eISSN - 1687-7489
pISSN - 1687-7470
DOI - 10.1155/2012/203670
Subject(s) - computer science , qualia , hyperspectral imaging , artificial intelligence , face (sociological concept) , architecture , facial recognition system , process (computing) , sketch recognition , matching (statistics) , human–computer interaction , interface (matter) , matlab , cognitive neuroscience of visual object recognition , computer vision , machine learning , object (grammar) , pattern recognition (psychology) , art , social science , philosophy , gesture , mathematics , maximum bubble pressure method , sociology , visual arts , operating system , epistemology , bubble , parallel computing , gesture recognition , consciousness , statistics
A qualia exploitation of sensor technology (QUEST) motivated architecture using algorithm fusion and adaptive feedback loops for face recognition for hyperspectral imagery (HSI) is presented. QUEST seeks to develop a general purpose computational intelligence system that captures the beneficial engineering aspects of qualia-based solutions. Qualia-based approaches are constructed from subjective representations and have the ability to detect, distinguish, and characterize entities in the environment Adaptive feedback loops are implemented that enhance performance by reducing candidate subjects in the gallery and by injecting additional probe images during the matching process. The architecture presented provides a framework for exploring more advanced integration strategies beyond those presented. Algorithmic results and performance improvements are presented as spatial, spectral, and temporal effects are utilized; additionally, a Matlab-based graphical user interface (GUI) is developed to aid processing, track performance, and to display results
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