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Virtual Eye is a Streamlit app that integrates MobileNetV2 and a CIFAR-10 model for image classification. Users can upload images and receive predictions with confidence scores from either model. It features a sleek navigation bar for easy switching and real-time results, which is ideal for learning and practical use.

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Virtual Eye

Virtual Eye is a Streamlit app that integrates MobileNetV2 and a CIFAR-10 model for image classification. Users can upload images and receive predictions with confidence scores from either model. It features a sleek navigation bar for easy switching and real-time results, which is ideal for learning and practical use. image

Key Features

  • Dual Model Support:

    • MobileNetV2 (ImageNet): Recognizes 1,000 different classes from the ImageNet dataset, including everyday objects, animals, and vehicles.
    • Custom CIFAR-10 Model: Specializes in classifying images into one of ten specific categories such as airplanes, automobiles, and birds.
  • Intuitive Interface:

    • Navigation Bar: Seamlessly switch between MobileNetV2 and CIFAR-10 models using a sleek sidebar menu.
    • Real-Time Classification: Upload an image to receive immediate predictions with confidence scores.
  • Educational and Practical Use:

    • Ideal for learning about deep learning models and their performance.
    • Useful for practical applications where image classification is needed.

Getting Started

image

Usage

  1. Use the navigation bar to select either the MobileNetV2 or CIFAR-10 model.
  2. Upload an image file (JPG or PNG).
  3. View the classification results and confidence scores.

Contributing

Feel free to fork the repository, open issues, or submit pull requests to contribute to the project.

Acknowledgements

  • Streamlit
  • TensorFlow

About

Virtual Eye is a Streamlit app that integrates MobileNetV2 and a CIFAR-10 model for image classification. Users can upload images and receive predictions with confidence scores from either model. It features a sleek navigation bar for easy switching and real-time results, which is ideal for learning and practical use.

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