Hospital Corridor Personnel Density Estimation Dataset

#object detection #density estimation #human flow analysis #security monitoring #hospital management #intelligent buildings #human flow analysis
  • 500 records
  • 1.7G
  • MP4
  • CC-BY-NC-SA 4.0
  • MOBIUSI INCMOBIUSI INC
Updated:2026-02-04

AI Analysis & Value Prop

In public places like hospitals, accurately estimating personnel density can effectively enhance safety and management efficiency. However, conventional surveillance systems cannot provide precise personnel density information. Existing solutions typically rely on single-frame image analysis, lacking dynamic tracking and accurate counting. Additionally, single-angle cameras are often subject to occlusion, making it difficult to capture complete information. This dataset aims to address the issue of personnel density estimation in real-time video frames, enhancing the intelligence level of surveillance systems. The data is collected from high-definition video captured by surveillance cameras in hospital corridors. The cameras are installed at a high position to obtain the largest possible view. Regarding quality control, the data is manually annotated in multiple rounds and reviewed by industry experts to ensure annotation accuracy and consistency. The annotation team is composed of ten members with professional backgrounds in computer vision and image processing. Data preprocessing includes background modeling, denoising, frame differencing, etc., to filter noise and enhance information validity. The data is finally stored in MP4 format, organized into directories by date and camera location.

Dataset Insights

Sample Examples

42940b0c**.mp4|720*1280|5.80 MB

Technical Specifications

FieldTypeDescription
file_namestringFile name
durationstringDuration
qualitystringResolution
crowd_densityfloatThe estimated crowd density in the hospital corridor in the video.
number_of_peopleintThe total number of people present simultaneously in the video.
movement_patternstringThe movement pattern of people in the video, such as 'Stationary', 'Moving', or 'Crowded Moving'.
peak_density_timestringThe time point in the video when the highest crowd density occurs.
crowd_flow_directionstringThe main flow direction of the crowd in the video, such as 'Left' or 'Right'.
lighting_conditionsstringThe lighting conditions during the video capture, such as 'Bright', 'Dim', or 'Normal'.
activity_levelstringThe overall activity level of people in the video, such as 'High', 'Medium', 'Low'.

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 Hospital Corridor People Density Estimation Dataset?
The Hospital Corridor People Density Estimation Dataset is a video dataset designed to enhance the accuracy of density estimation models.
Why is this dataset helpful for density estimation models?
This dataset includes real video data of hospital corridors, which aids models in learning and improving the accuracy of people density estimation.
Which research fields is this dataset suitable for?
This dataset is suitable for research in fields like video surveillance, computer vision, and density estimation.
What problems can be solved using this dataset?
This dataset can be used to address the problem of real-time estimation and monitoring of people density in hospital corridors.

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Cite this Work

@dataset{Mobiusi2026,
  title={Hospital Corridor Personnel Density Estimation Dataset},
  author={MOBIUSI INC},
  year={2026},
  url={https://www.mobiusi.com/datasets/f8b562a583f6c74580811ddb8a263b25?dataset_task_cate_id=2},
  urldate={2026-02-04},
  keywords={hospital corridor, personnel density estimation, video surveillance, density analysis dataset},
  version={1.0}
}

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