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    Por favor, use este identificador para citar o enlazar este ítem: https://hdl.handle.net/10259/10545

    Título
    Dataset for defect detection in textile manufacturing
    Autor
    Gil Arroyo, BeatrizAutoridad UBU Orcid
    Marcos Sanz, Juan
    Arroyo Puente, ÁngelAutoridad UBU Orcid
    Urda Muñoz, DanielAutoridad UBU Orcid
    Basurto Hornillos, NuñoAutoridad UBU Orcid
    Herrero Cosío, ÁlvaroAutoridad UBU Orcid
    Publicado en
    Data in Brief. 2025, V. 59, 111451
    Editorial
    Elsevier
    Fecha de publicación
    2025-04
    ISSN
    2352-3409
    DOI
    10.1016/j.dib.2025.111451
    Descripción
    Artículo de datos
    Résumé
    This dataset, collected during November 2022 at Textil Santanderina, a leading textile manufacturer based in Cabezón de la Sal (Cantabria, Spain), comprises high-resolution images of Batavia and Sarga fabrics. The images were captured as part of a project to document and analyze the intricate weaves and patterns of these fabrics. Using a high-resolution camera under controlled lighting conditions, detailed images were obtained to ensure consistent quality and accurate representation of the fabric's texture and colour. The dataset is provided in processed format, where images have been downscaled from 16 bits to 8 bits, cropped, and classified into cases and controls. The primary reuse potential of this dataset lies in its application for Artificial Intelligence (AI) and Machine Learning (ML) models aimed at defect detection in textile manufacturing. By leveraging these high-quality processed images, researchers and developers can train models to identify and classify various types of fabric defects, such as weave inconsistencies, colour variations, and surface irregularities. This can significantly enhance the efficiency and accuracy of quality control processes in textile production. Additionally, the dataset serves as a valuable resource for academic research in textile engineering and material science. It can be used to study the properties and behaviours of Batavia and Sarga weaves under different conditions, contributing to advancements in fabric design and manufacturing techniques. The detailed visual information provided by the processed images also supports the development of new methodologies for automated textile inspection and quality assurance. By making this dataset available, Textil Santanderina and University of Burgos aim to support innovation and improvement in textile quality control through AI-driven solutions, fostering collaboration and development within the industry.
    Palabras clave
    Textile manufacturing
    Textile industry
    Batavia and Sarga fabric
    Defect detection
    Image analysis
    Artificial vision
    Quality inspection
    Materia
    Inteligencia artificial
    Artificial intelligence
    Industria textil
    Textile industry
    URI
    https://hdl.handle.net/10259/10545
    Versión del editor
    https://doi.org/10.1016/j.dib.2025.111451
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    Gil-db_2025.pdf
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