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Title:Cultural Heritage analysis with YOLO based object detection
Authors:ID Berus, Lucijano (Author)
ID Pungerčar, Vesna (Author)
Files:URL URL - Source URL, visit https://itis.fis.unm.si/wp-content/uploads/2026/01/ITIS-2025-Proceedings_FINAL.pdf
 
.pdf PDF - Presentation file, download (12,76 MB)
MD5: 793A9FFF738646D7B49519E9359EDFA6
 
Language:English
Typology:1.12 - Published Scientific Conference Contribution Abstract
Organization:Logo RUDOLFOVO - Rudolfovo - Science and Technology Centre Novo Mesto
Abstract:Cultural heritage artefacts that are rich in engraved and embossed ornamentation on vessels, ritual objects, tombstones, and manuscripts. These objects are important for reconstructing social life, ritual practices, and cultural expression a cross regions and periods. To understand a culture, it is not enough to study objects in isolation; systematic comparison across related artefacts is essential to determine whether and how communities were connected. However, such a comparison requires first a robust, scalable detection of their visual content. We therefore study whether a real-time object detection framework can localise and classify ornamentation. In this study, pretrained You Only Look Once version 8 (YOLOv8) and version 11 (YOLOv11) architectures were employed, ranging from their nano to large model versions, to detect ornaments characteristic of Greek and Hallstatt cultural artefacts. YOLOv8 and YOLOv11 were pretrained on Common Objects in Context (COCO) dataset and were able to detect 80different object categories. During the testing of YOLO performance different inherent(YOLO specific) hyper-parameter settings were adopted to detect (localise and classify)ornaments. The models demonstrated promising performance in localising and recognising recurring motifs, yet their accuracy remains constrained by the limited availability of ornament-specific training data. To enhance recognition quality, the development of specialised datasets tailored to cultural ornamentation is essential.
Keywords:cultural heritage, object detection, ornamentation, deep learning, YOLO
Publication status:Published
Publication version:Version of Record
Year of publishing:2025
Number of pages:Str. [208]
PID:20.500.12556/DiRROS-27215 New window
UDC:004.8:004.93:930.85
COBISS.SI-ID:265308675 New window
Note:Nasl. z nasl. zaslona; Opis vira z dne 20. 1. 2026;
Publication date in DiRROS:03.02.2026
Views:151
Downloads:101
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Record is a part of a monograph

Title:16th International Conference on Information Technologies and Information Society : ITIS 2025
Editors:Maruša Gorišek, Tea Golob, Teja Štrempfel
Place of publishing:Novo mesto
Publisher:Faculty of information studies
Year of publishing:2025
ISBN:978-961-96549-2-7
COBISS.SI-ID:263628291 New window

Secondary language

Language:Slovenian
Keywords:kulturna dediščina, zaznavanje predmetov, okraski, globoko učenje, YOLO


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