Thesis Details

Detekce dopravních prostředků v obraze a videu

Bachelor's Thesis Student: Rozprým Dalimil Academic Year: 2020/2021 Supervisor: Špaňhel Jakub, Ing.
English title
Vehicle Detection in Image and Video
Language
Czech
Abstract

The goal of this thesis is comparison of available multiclass detectors abilities to detect road vehicles on purposely created dataset. As multiclass detectors are chosen neural networks for detection and classification of objects in image. Detectors described in this text and used for experimentation are Mask R-CNN, YOLOv4 and YOLACT++. This selection encompasses multiple different architectures and approaches to object detection. Created dataset used for learning and testing is thoroughly described in this text. Detection capability of detectors is tested on images from casual traffic and separately on partially covered objects. The outcome of this thesis is reusable and expandable dataset, measured performance values and their deeper exploration in this text. 

Keywords

object detection, deep learning, convolutional neural networks, Mask R-CNN, YOLOv4, YOLACT++, mean average precision

Department
Degree Programme
Information Technology
Files
Status
defended, grade C
Date
14 June 2021
Reviewer
Committee
Zemčík Pavel, prof. Dr. Ing. (DCGM FIT BUT), předseda
Burget Lukáš, doc. Ing., Ph.D. (DCGM FIT BUT), člen
Holík Lukáš, doc. Mgr., Ph.D. (DITS FIT BUT), člen
Martínek Tomáš, doc. Ing., Ph.D. (DCSY FIT BUT), člen
Matoušek Petr, doc. Ing., Ph.D., M.A. (DIFS FIT BUT), člen
Citation
ROZPRÝM, Dalimil. Detekce dopravních prostředků v obraze a videu. Brno, 2021. Bachelor's Thesis. Brno University of Technology, Faculty of Information Technology. 2021-06-14. Supervised by Špaňhel Jakub. Available from: https://www.fit.vut.cz/study/thesis/24138/
BibTeX
@bachelorsthesis{FITBT24138,
    author = "Dalimil Rozpr\'{y}m",
    type = "Bachelor's thesis",
    title = "Detekce dopravn\'{i}ch prost\v{r}edk\r{u} v obraze a videu",
    school = "Brno University of Technology, Faculty of Information Technology",
    year = 2021,
    location = "Brno, CZ",
    language = "czech",
    url = "https://www.fit.vut.cz/study/thesis/24138/"
}
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