RoCoLe: A Robusta Coffee Leaf Images Dataset
RoCoLe: A Robusta Coffee Leaf Images Dataset
Datasets
RoCoLe: A Robusta Coffee Leaf Images Dataset
File
RoCoLe: A Robusta Coffee Leaf Images Dataset
Use Case
RoCoLe: A Robusta Coffee Leaf Images Dataset
Description
Download the RoCoLe Robusta Coffee Leaf Image Dataset, featuring 1,560 high-quality images categorized into Healthy, Coffee Rust disease, and Spider Mite infestation.
Description:
The RoCoLe Dataset features 1,560 high-resolution images of Robusta coffee leaves, categorized into Healthy, Coffee Rust disease, and Spider Mite infestation. Captured under real-world conditions, it is optimized for machine learning, deep learning, and AI-based plant disease detection.
Download Dataset
The RoCoLe (Robusta Coffee Leaf) Dataset is a publicly available dataset designed for plant disease detection and classification in Robusta coffee leaves. It contains 1,560 high-quality images captured under real-world conditions using a smartphone camera, making it ideal for machine learning, deep learning, and computer vision applications in agriculture and plant health monitoring.
Key Features of the Dataset
✔ 1,560 Labeled Coffee Leaf Images – Divided into three key categories:
- Healthy Leaves – Coffee leaves with no disease or damage.
- Coffee Rust Disease – Leaves infected by the coffee rust fungus.
- Spider Mite Infestation – Leaves affected by spider mites, a common pest.
✔ Captured Under Real-World Conditions – Includes natural lighting variations, different backgrounds, and temperature fluctuations.
✔ High-Resolution & Preprocessed – Optimized for machine learning models, ensuring clear visual representation.
✔ Well-Structured Dataset – Images are classified into respective folders for easy access and implementation.
✔ Potential Annotations – Some versions may include leaf object annotations, disease severity levels, and classification metadata.
Applications of the RoCoLe Dataset
🔹 AI-Powered Plant Disease Detection
🔹 Machine Learning & Deep Learning in Agriculture
🔹 Automated Coffee Leaf Disease Classification
🔹 Precision Farming & Crop Health Monitoring
🔹 Smartphone-Based Disease Recognition Models
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