3D Reconstruction of Video Sign Language Dictionaries

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dc.contributor.author Riazantsev, Roman
dc.date.accessioned 2020-01-28T12:53:29Z
dc.date.available 2020-01-28T12:53:29Z
dc.date.issued 2020
dc.identifier.citation Riazantsev, Roman. 3D Reconstruction of Video Sign Language Dictionaries : Master Thesis : manuscript rights / Maksym Davydov ; Supervisor Dr. Rostyslav Hryniv ; Ukrainian Catholic University, Department of Computer Sciences. – Lviv : [s.n.], 2020. – 34 p. : ill. uk
dc.identifier.uri http://er.ucu.edu.ua/handle/1/1902
dc.language.iso en uk
dc.subject MANO model uk
dc.subject 3D reconstruction uk
dc.subject 2D key point detection uk
dc.title 3D Reconstruction of Video Sign Language Dictionaries uk
dc.type Preprint uk
dc.status Публікується вперше uk
dc.description.abstracten Today virtual and augmented reality applications become more and more popular. Such a trend creates a demand for 3D processing algorithms which may be applied to many areas. This work is focused on sign language video sequences. There are a lot of prerecorded photo and video dictionaries that can be transformed into 3D and unified in one place. We research nuances of hand pose video sequence analysis as well as the influence of results refinement for 2D and 3D keypoint detection. Besides that, we designed a solution for the parametrization of hand shape and engineered system for 3D hand pose reconstruction. Model show good results on train data but lack generalization. Retraining on multiple datasets and usage of various data augmentation techniques will improve performance. uk


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