Manual Spraying Action Recognition Dataset

#action recognition #object detection #video analysis #agricultural production #pesticide spraying #crop monitoring
  • 15000 records
  • 1.2G
  • JPG/PNG/JSON
  • CATL
  • MOBIUSI INCMOBIUSI INC
Updated:2026-04-11

AI Analysis & Value Prop

The current agricultural sector faces challenges such as low spraying efficiency and environmental pollution caused by improper use of pesticides. Existing solutions often rely on manual monitoring, which is inefficient and prone to errors. This dataset aims to help developers create computer vision-based automated recognition systems by providing high-quality manual spraying action data, thereby enhancing the automation and intelligence level of spraying operations. Data collection is performed using high-resolution cameras in real agricultural environments to ensure data authenticity and diversity. We conducted multiple rounds of annotation and consistency checks, reviewed by professionals to ensure high data quality and reliability. Data is stored in JPG format with corresponding metadata for each image, facilitating subsequent processing and analysis. The core advantage of this dataset lies in its high annotation accuracy and integrity, with annotation consistency reaching over 95%, significantly surpassing the industry average. By introducing new data augmentation techniques, the model's performance in complex environments is effectively improved. In practical applications, models trained using this dataset have seen a 15% increase in spraying action recognition accuracy, greatly improving pesticide use efficiency and reducing environmental pollution risks.

Dataset Insights

Sample Examples

59785037**.jpg|5716*3215|2.12 MB

Technical Specifications

FieldTypeDescription
file_namestringFile name
qualitystringResolution
object_typestringThe type of pesticide spraying related object detected in the image, such as person, sprayer, etc.
action_typestringIdentified manual spraying actions, such as spraying, pausing, and moving.
environment_contextstringThe environmental context where the spraying action takes place, such as field or greenhouse.

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 Artificial Spraying Action Recognition Dataset?
The Artificial Spraying Action Recognition Dataset is an object detection dataset designed for recognizing agricultural spraying actions to support the development of smart agriculture.
What are the main applications of the Artificial Spraying Action Recognition Dataset?
The main applications of this dataset are in the field of smart agriculture, where it helps improve automation and precision management by recognizing spraying actions.
How can the Artificial Spraying Action Recognition Dataset be used for image analysis?
Machine learning and deep learning algorithms can be employed to analyze the images within this dataset to identify and detect different spraying actions.
Why is the Artificial Spraying Action Recognition Dataset important for agricultural technology?
This dataset is important because it helps improve the safety and efficiency of spraying operations in agricultural technology, which can reduce labor costs and the amount of chemicals used.
What image modalities does the Artificial Spraying Action Recognition Dataset contain?
This dataset contains image modalities used for recognizing spraying actions, capturing various human spraying actions.

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Cite this Work

@dataset{Mobiusi2025,
  title={Manual Spraying Action Recognition Dataset},
  author={MOBIUSI INC},
  year={2025},
  url={https://www.mobiusi.com/datasets/03c7f24555a6c604a79e7ea1dadb5952?dataset_scene_id=5},
  urldate={2025-09-15},
  keywords={manual spraying, object detection, agricultural dataset, action recognition, pesticide spraying},
  version={1.0}
}

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