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Avtomatska klasifikacija borbenih položajev in sojenje v borilnem športu jiu-jitsu
ID HUDOVERNIK, VALTER (Author), ID Skočaj, Danijel (Mentor) More about this mentor... This link opens in a new window

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Abstract
Zaradi vse večjih zmogljivosti metod računalniškega vida jih je zdaj mogoče uporabiti tudi v najzahtevnejših scenarijih, kot je na primer analiza tekme jiu-jitsa na podlagi videa. Eden največjih izzivov pri takšnih scenarijih so prizori z veliko prekrivanja. Jiu-jitsu je borilna veščina, pri kateri so tekmovalci večino časa v prepletenih položajih, kar predstavlja velik izziv. V tem delu predlagamo metodo za sledenje poz borcev tudi v tovrstnih scenarijih. Prednost naše metode je, da združuje položajne, strukturne in vizualne informacije in se lahko spopade s hudimi zakrivanji. Te podatke uporabimo za avtomatsko napovedovanje položajev borcev z visoko natančnostjo. Na koncu predlagamo nov pristop za avtomatsko točkovanje borbe jiu-jitsa iz videoposnetka z uporabo teh napovedi.

Language:Slovenian
Keywords:avtomatsko sojenje, globoke nevronske mreže, brazilski jiu-jitsu, transformerji, napovedovanje človeške poze, borilne veščine
Work type:Bachelor thesis/paper
Typology:2.11 - Undergraduate Thesis
Organization:FRI - Faculty of Computer and Information Science
Year:2022
PID:20.500.12556/RUL-139158 This link opens in a new window
COBISS.SI-ID:120487427 This link opens in a new window
Publication date in RUL:31.08.2022
Views:509
Downloads:103
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Secondary language

Language:English
Title:Automatic classification of combat positions and automatic scoring in the martial art of jiu-jitsu
Abstract:
Due to the increasing capabilities of computer vision methods, it is now possible to apply them even to the most difficult scenarios, such as for vision-based analysis of a jiu-jitsu match. One of the biggest challenges of such scenarios are heavily occluded scenes. Jiu-jitsu is a grappling martial art in which athletes are interlocked in complex positions most of the time, which produces significant challenges. We propose a method to track the athletes’ poses even in such scenarios. The advantage of our method is that it combines positional, structural, and visual cues to overcome this problem and is able to cope with severe occlusions. We use this data to automatically predict combat positions at a high accuracy. Finally, we propose a novel approach for automatic scoring of a jiu-jitsu match from video using these predictions.

Keywords:automatic scoring, deep neural networks, Brazilian jiu-jitsu, transformers, human pose estimation, martial arts

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