Penn-Fudan Database
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Penn-Fudan Database
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Penn-Fudan Database
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Penn-Fudan Database
Use Case
Penn-Fudan Database
Description
The Penn-Fudan Database offers 170 high-resolution images with 345 labeled pedestrians from urban streets and university campuses. Perfect for research, safety systems, and urban planning, this dataset enhances pedestrian detection accuracy.
Description:
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Details:
- Subjects: Pedestrians, with at least one in each image.
- Image Count: 170 images.
- Pedestrian Count: 345 labeled pedestrians.
- Locations: 96 images from the University of Pennsylvania, 74 from Fudan University.
- Pedestrian Heights: Range from 180 to 390 pixels.
- Characteristics: All pedestrians are upright.
Additional Information:
- Use Case: Ideal for experiments in pedestrian detection.
- Annotations: Includes detailed labeling for accurate model training.
- Quality: High-resolution images ensuring clear visibility of pedestrians.
Applications:
- Research: Pedestrian detection in urban environments.
- Safety Systems: Enhancing the accuracy of pedestrian detection in autonomous vehicles.
- Urban Planning: Analyzing pedestrian movement patterns for better infrastructure development.
Conclusion
This dataset provides a strong foundation for developing machine learning models for pedestrian detection and object recognition. It supports applications in autonomous driving, surveillance systems, and urban planning. With its well-annotated and high-quality data, it enables accurate and reliable AI-driven solutions.
This dataset is sourced from Kaggle.
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