Approach to Normalizing the Tissue Macroimages Set to Determine Raw Material Composition

dc.contributor.authorLianskorunskyi, K.
dc.contributor.authorMolchanova, M.
dc.contributor.authorMazurets, O.
dc.contributor.authorTymofiiev, A.
dc.contributor.authorМазурець, Олександр Вікторович
dc.date.accessioned2026-05-20T11:28:30Z
dc.date.available2026-05-20T11:28:30Z
dc.date.issued2026
dc.description.abstractThe paper presents an approach to normalizing textile macroimage datasets for improving the reliability of automated raw material composition determination using computer vision methods. The study highlights that variations in lighting, scale, texture orientation, sharpness, and shooting conditions significantly affect the stability of textile classification systems. The proposed approach includes informative region selection, geometric and photometric normalization, image quality control, and dataset-level harmonization while preserving diagnostically significant texture features. The methodology is aimed at reducing technical variability and improving the comparability of textile images for further feature extraction and classification. The practical value of the approach lies in its applicability to low-cost textile quality control, automated sorting, and recycling systems based on ordinary digital cameras or mobile devices.
dc.identifier.citationLianskorunskyi K., Molchanova M., Mazurets O., Tymofiiev A. Approach to Normalizing the Tissue Macroimages Set to Determine Raw Material Composition. Proceedings of VI International Scientific and Practical Conference «Science and Information Technologies in the Modern World». April 15-17, 2026. Athens, Greece. Pp. 213-218
dc.identifier.urihttps://elar.khmnu.edu.ua/handle/123456789/21104
dc.language.isoen
dc.titleApproach to Normalizing the Tissue Macroimages Set to Determine Raw Material Composition
dc.typeСтаття
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