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Fruitseg30_segmentation Dataset & Mask Annotations: A Novel Dataset for Diverse Fruit Segmentation and Classification

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dc.contributor.author Shamrat, F.M. Javed Mehedi
dc.contributor.author Shakil, Rashiduzzaman
dc.contributor.author Idris, Mohd Yamani Idna
dc.contributor.author Akter, Bonna
dc.contributor.author Zhou, Xujuan
dc.date.accessioned 2025-07-03T04:20:09Z
dc.date.available 2025-07-03T04:20:09Z
dc.date.issued 2024-08-10
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/13823
dc.description.abstract Fruits are mature ovaries of flowering plants that are integral to human diets, providing essential nutrients such as vitamins, minerals, fiber and antioxidants that are crucial for health and disease prevention. Accurate classification and segmentation of fruits are crucial in the agricultural sector for enhancing the efficiency of sorting and quality control processes, which significantly benefit automated systems by reducing labor costs and improving product consistency. This paper introduces the “FruitSeg30_Segmentation Dataset & Mask Annotations”, a novel dataset designed to advance the capability of deep learning models in fruit segmentation and classification. Comprising 1969 high-quality images across 30 distinct fruit classes, this dataset provides diverse visuals essential for a robust model. Utilizing a U-Net architecture, the model trained on this dataset achieved training accuracy of 94.72 %, validation accuracy of 92.57 %, precision of 94 %, recall of 91 %, f1-score of 92.5 %, IoU score of 86 %, and maximum dice score of 0.9472, demonstrating superior performance in segmentation tasks. The FruitSeg30 dataset fills a critical gap and sets new standards in dataset quality and diversity, enhancing agricultural technology and food industry applications. en_US
dc.language.iso en_US en_US
dc.publisher Elsevier en_US
dc.subject Antioxidants en_US
dc.subject Segmentation en_US
dc.subject Dataset en_US
dc.title Fruitseg30_segmentation Dataset & Mask Annotations: A Novel Dataset for Diverse Fruit Segmentation and Classification en_US
dc.type Article en_US


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