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A Machine Learning Dataset for Classification of Common Coffee Leaf Diseases in Uganda.

Domaine:

agriculture

Type de record:

dataset
Créateur:
cheAniMaySse
Éditeur:
Sor
Éditeur:
Men
Hôte:avatar
This dataset provides a well-structured collection of 3,312 labeled images of coffee leaves captured from farms in Uganda. The images are categorized into three main classes: Healthy, Coffee Leaf Rust , and Phoma disease. Each class is stored in separate folders to facilitate easy retrieval and processing. All images are in JPEG format with a resolution of 256 × 256 pixels. The Healthy folder contains 1,179 images of disease-free coffee leaves, the CLR folder holds 1,023 images of leaves affected by Coffee Leaf Rust, and the Phoma folder contains 1,110 images showing Phoma disease symptoms. Image augmentation techniques, including rotation, flipping, and brightness adjustment, were applied to address class imbalance and increase dataset diversity for machine learning tasks. This dataset is valuable for research in computer vision applications like image classification and disease detection in coffee plants.

Visit

doi.orgdata.mendeley.com

Tasks

computer visionimage classification

Tags

Coffee

Licenses

info:eu-repo/semantics/openAccessCreative Commons Attribution 4.0 Internationalhttps://creativecommons.org/licenses/by/4.0/legalcode

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