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Autori principali: Niżeniec, Patryk, Iwanowski, Marcin, Gahbler, Marcin
Natura: Preprint
Pubblicazione: 2026
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Accesso online:https://arxiv.org/abs/2603.27029
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author Niżeniec, Patryk
Iwanowski, Marcin
Gahbler, Marcin
author_facet Niżeniec, Patryk
Iwanowski, Marcin
Gahbler, Marcin
contents YOLO object detectors recently became a key component of vision systems in many domains. The family of available YOLO models consists of multiple versions, each in various variants. The research reported in this paper aims to validate the applicability of members of this family to detect objects located within the robot workspace. In our experiments, we used our custom dataset and the COCO2017 dataset. To test the robustness of investigated detectors, the images of these datasets were subject to distortions. The results of our experiments, including variations of training/testing configurations and models, may support the choice of the appropriate YOLO version for robotic vision tasks.
format Preprint
id arxiv_https___arxiv_org_abs_2603_27029
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle YOLO Object Detectors for Robotics -- a Comparative Study
Niżeniec, Patryk
Iwanowski, Marcin
Gahbler, Marcin
Computer Vision and Pattern Recognition
Machine Learning
YOLO object detectors recently became a key component of vision systems in many domains. The family of available YOLO models consists of multiple versions, each in various variants. The research reported in this paper aims to validate the applicability of members of this family to detect objects located within the robot workspace. In our experiments, we used our custom dataset and the COCO2017 dataset. To test the robustness of investigated detectors, the images of these datasets were subject to distortions. The results of our experiments, including variations of training/testing configurations and models, may support the choice of the appropriate YOLO version for robotic vision tasks.
title YOLO Object Detectors for Robotics -- a Comparative Study
topic Computer Vision and Pattern Recognition
Machine Learning
url https://arxiv.org/abs/2603.27029