Work place: Parikrama College of Engineering, Kashti, affiliated to University of Pune, India
E-mail: sprashant1234@gmail.com
Website:
Research Interests: Software Engineering, Computer systems and computational processes, Network Architecture, Network Security
Biography
Suryavanshi Prashant M. received Bachelor degree. Computer Science and engineering. from Dr. B.A.M.U. Aurangabad in May/June-2005, and Master degree from J.N.T.U. Hyderabad in Nov/dec-2013. In 2006 he joined Ionika Interactive S/W solutions, Goregaon Mumbai as a Software Engineer up to 2009. Currently he is working as Assistant Professor in Computer Engineering department of HSBPVT's GOI COE KASHTI, affiliated to University of Pune, M.S., India.
His research areas lie in the area of Computer Network, Software Engineering and Network security.
By Vitthal Suryakant Phad Prakash S. Nalwade Prashant M. Suryavanshi
DOI: https://doi.org/10.5815/ijmecs.2014.07.04, Pub. Date: 8 Jul. 2014
Different approaches have been proposed over the last few years for improving holistic methods for face recognition. Some of them include color processing, different face representations and image processing techniques to increase robustness against illumination changes. There has been also some research about the combination of different recognition methods, both at the feature and score levels. Embedded hidden Markov model (E-HHM) has been widely used in pattern recognition. The performance of Face recognition by E-HMM heavily depends on the choice of model parameters. In this paper, we propose a discriminating set of multi E-HMMs based face recognition algorithm. Experimental results illustrate that compared with the conventional HMM based face recognition algorithm the proposed method obtain better recognition accuracies and higher generalization ability.
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