Green Pepper Fruit Segmentation Dataset

#Image segmentation #object recognition #Crop monitoring #fruit recognition #precision agriculture
  • 2000 records
  • 1.5G
  • JPG/PNG/JSON
  • CC-BY-NC-SA 4.0
  • MOBIUSI INCMOBIUSI INC
Updated:2026-02-04

AI Analysis & Value Prop

Green pepper cultivation is an important economic crop in agriculture, but during the harvesting and management process, the identification and segmentation of fruit still face many challenges. For example, traditional manual identification is slow and prone to errors, affecting production efficiency. Therefore, existing automated detection technologies often have technical limitations and lack professional datasets for green pepper characteristics. This dataset aims to provide high-quality green pepper fruit images and their semantic segmentation annotations to help researchers and developers improve the accuracy and efficiency of fruit detection. The dataset contains 2000 precisely annotated images of green pepper fruits, each accompanied by corresponding segmentation masks. During data collection, a high-resolution camera was used under natural light conditions, with special attention given to capturing images at various growth stages and in different environments. To ensure data quality, multiple rounds of annotation and consistency checks were implemented, with all annotations reviewed by experts in the agricultural field to ensure accuracy and consistency. Data is organized in JPEG format for quick access and processing.

Dataset Insights

Sample Examples

21900437**.jpg|5184*3456|2.58 MB

Technical Specifications

FieldTypeDescription
file_namestringFile name
qualitystringResolution
ripeness_levelstringDescribes the ripeness of the green pepper, such as unripe or ripe.
image_conditionstringDescribes the conditions under which the image was taken, such as lighting and weather situations.
background_clutterbooleanIndicates whether there are distracting objects in the background of the image.
pepper_countintegerThe total number of green peppers in the image.
presence_of_defectsbooleanMarks whether there are any defects on the green pepper.

Compliance Statement

Authorization TypeCC-BY-NC-SA 4.0 (Attribution–NonCommercial–ShareAlike)
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 does the Green Pepper Fruit Segmentation Dataset include?
This dataset includes high-quality images of green peppers and their corresponding segmentation annotations for accurate fruit detection.
What are the application scenarios for the Green Pepper Fruit Segmentation Dataset?
This dataset is suitable for applications like agricultural automation detection, smart agriculture tool development, and related academic research.
What benefits can be gained from using the Green Pepper Fruit Segmentation Dataset?
Using this dataset can improve fruit detection accuracy, aid in the development of automated systems, and enhance agricultural production efficiency.
Can the Green Pepper Fruit Segmentation Dataset be used for machine learning model training?
Yes, this dataset is well-suited for training and validating machine learning models, especially for semantic segmentation tasks in deep learning algorithms.
How to evaluate the quality of the Green Pepper Fruit Segmentation Dataset?
The quality of this dataset can be evaluated by examining image resolution, annotation accuracy, and annotation consistency.

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Cite this Work

@dataset{Mobiusi2025,
  title={Green Pepper Fruit Segmentation Dataset},
  author={MOBIUSI INC},
  year={2025},
  url={https://www.mobiusi.com/datasets/48652702d72dcaf136a93c8303fb2bd8?dataset_scene_id=5},
  urldate={2025-10-22},
  keywords={Green pepper dataset, fruit segmentation, agricultural image recognition, semantic segmentation dataset},
  version={1.0}
}

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