Subway Platform Boundary Violation Detection Image Dataset

#object detection #behavior recognition #image classification #subway safety monitoring #rail transit safety #behavior detection
  • 500 records
  • 1.3G
  • JPG
  • CC-BY-NC-SA 4.0
  • MOBIUSI INCMOBIUSI INC
Updated:2026-02-04

AI Analysis & Value Prop

In modern cities, subways have become an important mode of transportation for urban residents, but safety issues remain a major challenge for the industry, particularly accidents that may be caused by platform boundary violations. Existing monitoring systems have shortcomings such as false positives and false negatives, unable to timely identify and warn of potential dangerous behaviors. The Subway Platform Boundary Violation Detection Image Dataset aims to address these issues by providing high-quality image data to support the training and optimization of intelligent monitoring systems, thereby enhancing the safety management capabilities of subway platforms. The dataset collection method includes obtaining images from subway platform surveillance cameras in actual operational environments, supplemented by specific scenario simulations to enrich data diversity. Quality control is ensured through multiple rounds of annotation and expert review, ensuring data consistency and accuracy. The annotation team consists of experts with backgrounds in computer vision and traffic management, with a size of 20 people. Data preprocessing uses image enhancement techniques, such as resolution adjustment and color balance, and is ultimately stored in JPG format. The structured organization facilitates inspection and use.

Dataset Insights

Sample Examples

0aaddc81**.jpg|5712*4284|2.20 MB

0086a393**.jpg|1440*1920|179.56 KB

e282dbb9**.jpg|540*675|62.17 KB

Technical Specifications

FieldTypeDescription
file_namestringFile name
qualitystringResolution
intrusion_detectedbooleanIndicates whether any boundary crossing behavior by subway passengers is detected in the image.
number_of_peopleintThe total number of people present in the image.
person_positionstringDescribes the position of people on the platform in the image, such as near the platform edge or in the waiting area.
platform_safety_signbooleanIndicates whether safety signs are clearly visible in the image.
lighting_conditionstringThe lighting conditions at the time the image was taken, such as bright or dim.

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 is the Subway Platform Boundary Violation Detection Image Dataset?
The Subway Platform Boundary Violation Detection Image Dataset is an image dataset designed to help enhance the safety monitoring capabilities of rail transit.
What are the application scenarios of the Subway Platform Boundary Violation Detection Image Dataset?
The dataset is primarily used for detecting boundary violation behaviors on subway platforms, thereby enhancing the safety of rail transit.
How can the Subway Platform Boundary Violation Detection Image Dataset be used to enhance safety monitoring capabilities?
The dataset can be used to train security algorithms in monitoring systems to improve the identification and real-time monitoring of boundary violations.
What is the industry domain of the Subway Platform Boundary Violation Detection Image Dataset?
The dataset belongs to the general daily life industry domain.

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Cite this Work

@dataset{Mobiusi2026,
  title={Subway Platform Boundary Violation Detection Image Dataset},
  author={MOBIUSI INC},
  year={2026},
  url={https://www.mobiusi.com/datasets/8b728072c859b794e91f282142b26bfa},
  urldate={2026-02-04},
  keywords={subway safety dataset, behavior detection data, platform boundary images},
  version={1.0}
}

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