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ІДЕНТИФІКАЦІЯ ОСОБИ У ВІДЕОПОТОЦІ МЕТОДАМИ МАШИННОГО НАВЧАННЯ

Authors :
Кунак, І. С.
Шпінарева, І. М.
Пенко, В. Г.
Source :
Informatics & Mathematical Methods in Simulation / Informatika ta Matematičnì Metodi v Modelûvannì. 2021, Vol. 11 Issue 4, p287-295. 9p.
Publication Year :
2021

Abstract

Successful identification of a person in a real-time video stream is a critical function in a wide range of relevant subject areas. On the other hand, such a task is complex and can be effectively solved only with the help of modern artificial intelligence approaches. In this work, the previously developed MTCNN approach is used as a key algorithm for face image recognition and vectorization, which uses a cascade of several neural networks to identify key points of the face of a recognizable personality. In addition to the main algorithm, an integrated system was implemented that provides the functionality of person identification available to the end user. Additionally, face identification modules were implemented based on vectors representing a person in a video frame, a subsystem for storing and replenishing the database of recognizable persons, and a convenient user interface. Modifications of the MTCNN architecture proposed in this paper made it possible to achieve real-time performance and acceptable identification quality at the level of 0.92 according to the F1-metric. [ABSTRACT FROM AUTHOR]

Details

Language :
Ukrainian
ISSN :
22235744
Volume :
11
Issue :
4
Database :
Academic Search Index
Journal :
Informatics & Mathematical Methods in Simulation / Informatika ta Matematičnì Metodi v Modelûvannì
Publication Type :
Academic Journal
Accession number :
158839263
Full Text :
https://doi.org/10.15276/imms.v11.no4.287