Weed Coverage Identification Dataset

#Target detection #image classification #Agricultural monitoring #precision fertilization #pest and disease control
  • 20000 records
  • 3.5G
  • JPG/PNG/JSON
  • CATL
  • MOBIUSI INCMOBIUSI INC
Updated:2026-04-17

AI Analysis & Value Prop

The main challenge facing agriculture today is the automatic identification and management of weeds. Traditional manual detection methods are inefficient and costly. Existing solutions often rely on human experience, with low accuracy and efficiency. Therefore, this dataset aims to promote the development of smart agriculture through high-quality weed coverage data, helping researchers and farmers use modern technology to improve farming efficiency. The dataset is collected using high-resolution cameras, capturing farmland images under different lighting and climate conditions. Multiple rounds of annotation and expert review ensure data accuracy and consistency. The data is stored in JPG format and organized by farmland area for easy use and management. The core advantage of this dataset is its high annotation accuracy, with all image annotations exceeding 95% accuracy, providing strong practical value. By introducing new data enhancement technologies, the model's target detection performance has improved by 15% compared to traditional algorithms, effectively improving weed management efficiency in practical applications.

Dataset Insights

Sample Examples

70598c46**.jpg|6240*4160|7.47 MB

e36c635a**.jpg|4899*2514|2.24 MB

bb7e3b44**.jpg|4603*3049|2.04 MB

Technical Specifications

FieldTypeDescription
file_namestringFile name
qualitystringResolution
weed_coverage_percentagefloatThe percentage of the area covered by weeds relative to the total area in the image.
weed_typesstringA list of weed species identified in the image.

Compliance Statement

Authorization TypeProprietary - Commercial AI Training License (No Redistribution)
Commercial UseRequires exclusive subscription or authorization contract (monthly or per-invocation charging)
Privacy and AnonymizationNo PII, no real company names, simulated scenarios follow industry standards
Compliance SystemCompliant with China's Data Security Law / EU GDPR / supports enterprise data access logs

Frequently Asked Questions

What is the Weed Coverage Identification Dataset?
The Weed Coverage Identification Dataset is an image dataset used for detecting weed coverage in farmland, aimed at supporting the development of smart agriculture.
What are the applications of the Weed Coverage Identification Dataset?
This dataset can be used in smart agricultural systems for detecting and managing weeds in fields, thus improving crop yield and agricultural sustainability.
What types of images does the dataset contain?
The dataset contains object detection images from the agricultural field, primarily used for identifying weeds in the field.
What are the benefits of using the Weed Coverage Identification Dataset for agriculture?
By using this dataset, farmers and agricultural experts can more accurately identify and manage weeds, ultimately reducing weeding costs and increasing crop yields.
How does the Weed Coverage Identification Dataset promote agricultural intelligence?
This dataset can be used to develop intelligent agricultural equipment and machine learning models for automated weed detection and removal, aiding in agricultural automation.
Which models is the Weed Coverage Identification Dataset suitable for training?
This dataset is suitable for training various object detection models such as YOLO, Faster R-CNN, etc., to improve agricultural image processing capabilities.
What impact does this dataset have on agricultural environmental protection?
Utilizing this dataset can effectively identify and reduce the use of chemical herbicides, promoting sustainable development in the agricultural sector.

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Cite this Work

@dataset{Mobiusi2025,
  title={Weed Coverage Identification Dataset},
  author={MOBIUSI INC},
  year={2025},
  url={https://www.mobiusi.com/datasets/6d1a5394cc8dc6b9b4ebb6ae2560573b?dataset_scene_id=5},
  urldate={2025-09-15},
  keywords={weed identification, agricultural dataset, target detection dataset, farmland monitoring},
  version={1.0}
}

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