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This article is cited in 24 scientific papers (total in 24 papers)
IMAGE PROCESSING, PATTERN RECOGNITION
Human localiztion in video frames using a growing neural gas algorithm and fuzzy inference
O. S. Amosov, Yu. S. Ivanov, S. V. Zhiganov Komsomolsk-on-Amur State Technical University, Komsomolsk-on-Amur, Russia
Abstract:
A problem of human body localization in video frames using growing neural gas and feature description based on the Histograms of Oriented Gradients is solved. The original neuro-fuzzy model of growing neural gas for reinforcement learning (GNG-FIS) is used as a basis of the algorithm. A modification of the GNG-FIS algorithm using a two-pass training with fuzzy remarking of classes and building of a heat map is also proposed.
As follows from the experiments, the index of the correct localizations of the developed classifier from 90.5% to 93.2%, depending on the conditions of the scene, that allows the use of the algorithm in real systems of situational video analytics.
Keywords:
human localization, growing neural gas, clustering, fuzzy inference.
Received: 21.07.2016 Accepted: 20.01.2017
Citation:
O. S. Amosov, Yu. S. Ivanov, S. V. Zhiganov, “Human localiztion in video frames using a growing neural gas algorithm and fuzzy inference”, Computer Optics, 41:1 (2017), 46–58
Linking options:
https://www.mathnet.ru/eng/co357 https://www.mathnet.ru/eng/co/v41/i1/p46
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Abstract page: | 521 | Full-text PDF : | 145 | References: | 41 |
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