Crowd Counting Dataset

Crowd Counting Dataset

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Crowd Counting Dataset

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Crowd Counting Dataset

Use Case

Crowd Counting

Description

Explore the Crowd Counting Dataset featuring high-resolution images of crowds ranging from 0 to 5000 individuals.

Crowd Counting Dataset

Description:

The Crowd Counting Dataset is an extensive collection of high-resolution images capturing a wide variety of crowd scenes, with the number of individuals ranging from zero to 5,000 per image. The dataset is meticulously curated to include diverse scenarios such as public events, street gatherings, protests, festivals, and daily commutes, ensuring that it covers a broad spectrum of crowd densities and environmental conditions.

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Key Features:

  • Diverse Scenarios: The dataset features crowds in various settings, from dense urban environments to open public spaces, providing a comprehensive resource for developing and testing crowd counting algorithms across different contexts.
  • High-Quality Annotations: Each image in the dataset is paired with a JSON file that includes precise annotations for every individual in the crowd. The labeling details not only the count of people but also includes classification data such as gender, age group, and activity, enabling multi-dimensional analysis.
  • Versatility in Applications: This dataset is ideal for training and evaluating machine learning models for applications in public safety, event management, urban planning, and retail analysis, where accurate crowd estimation and behavior analysis are critical.
  • Scalable Data: With a wide range of crowd sizes, the dataset is suitable for both low-density and high-density crowd counting tasks, providing a robust foundation for developing scalable AI solutions.
  • Real-World Relevance: The images are sourced from real-world environments, ensuring that models trained on this dataset can generalize well to practical applications, enhancing their reliability in real-time deployments.

Dataset Structure:

  • Images: High-resolution images captured from various angles and lighting conditions.
  • Annotations: JSON files containing detailed labels for each individual, including:
    • Person count
    • Classification attributes (e.g., age group, gender, activity)
    • Positional information within the image for precise localization
  • Categories: The dataset is organized into different categories based on crowd density, scene type, and time of day, allowing users to focus on specific aspects of crowd analysis.

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