???jsp.display-item.identifier??? http://earchive.tpu.ru/handle/11683/36151
???metadata.dc.title???: Face recognition based on the proximity measure clustering
???metadata.dc.contributor.author???: Nemirovskiy, Viktor Borisovich
Stoyanov, Aleksandr Kirillovich
Goremykina, Darjya Sergeevna
???metadata.dc.subject???: кластеризация; картография; нейроны; расстояние Кульбака-Лейблера; распознавание лиц
???metadata.dc.date.issued???: 2016
???metadata.dc.publisher???: Томский политехнический университет
???metadata.dc.identifier.citation???: Nemirovskiy V. B. Face recognition based on the proximity measure clustering / V. B. Nemirovskiy, A. K. Stoyanov, D. S. Goremykina // Компьютерная оптика. — 2016. — Т. 40, № 5. — [P. 740-745].
???metadata.dc.description.abstract???: In this paper problems of featureless face recognition are considered. The recognition is based on clustering the proximity measures between the distributions of brightness clusters cardinality for segmented images. As a proximity measure three types of distances are used in this work: the Euclidean, cosine and Kullback-Leibler distances. Image segmentation and proximity measure clustering are carried out by means of a software model of the recurrent neural network. Results of the experimental studies of the proposed approach are presented.
???metadata.dc.identifier.uri???: http://earchive.tpu.ru/handle/11683/36151
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