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Mobilna aplikacija za štetje ponovitev fitnes vaj
ID Lavrih, Gašper (Author), ID Skočaj, Danijel (Mentor) More about this mentor... This link opens in a new window

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Abstract
Veliko ljudi zdrav način življenja dosega z aktivno vadbo v fitnesu. Med izvajanjem vadbe so pogosto obremenjeni z več nalogami, kot so npr. koncentracija na pravilno izvedbo vaj, sledenje načrtu treninga, štetje ponovitev posamezne vaje in skrb za zadostno količino hidracije. V tej diplomski nalogi je bil uporabljen računalniški vid za razvoj mobilne spletne aplikacije, ki uporabnika razbremeni naloge štetja ponovitev posamezne vaje. Aplikacija s pomočjo kamere snema uporabnika in z uporabo modela strojnega učenja detektira ključne točke telesa. Te točke so nato uporabljene v nevronski mreži, ki napove, v katerem položaju vaje je uporabnik v določenem trenutku. Na podlagi te informacije se potem štejejo ponovitve izvajane vaje. Aplikacija podpira štetje ponovitev treh najbolj pogostih vaj v fitnesu: mrtvega dviga, počepov in pritiskov nad glavo.

Language:Slovenian
Keywords:umetna inteligenca, strojno učenje, računalniški vid, fitnes aplikacija
Work type:Bachelor thesis/paper
Typology:2.11 - Undergraduate Thesis
Organization:FRI - Faculty of Computer and Information Science
Year:2024
PID:20.500.12556/RUL-154402 This link opens in a new window
COBISS.SI-ID:185898755 This link opens in a new window
Publication date in RUL:13.02.2024
Views:203
Downloads:33
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Secondary language

Language:English
Title:Mobile app for counting the repetitions of fitness exercises
Abstract:
Many people decide to join a gym in order to live a healthy livestyle. When they perform fitness exercises, they are often overloaded with many tasks, such as concentrating on correct exercise form, following their fitness program, counting the number of repetitions of each exercise and hydration. In this thesis we used computer vision and machine learning for the development of a mobile web app, which takes care of one of these tasks. The app counts the number of repetitions for each exercise, while the user is performing it. The app uses a camera to record the user performing the exercise. This footage is then processed by a machine learning model that detects the body keypoints. The keypoints are used in a neural net for fitness pose estimation. A counting algorithm then uses the pose estimation to count the number of repetitions. The app supports counting the number of repetitions for three popular fitness exercises: deadlift, squat and overhead press.

Keywords:artificial inteligence, machine learning, computer vision, fitness app

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