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UsmanGhias/IceAge
IceAge is a machine learning model from UsmanGhias. Use it for the machine learning task on the model card, and read the license before you ship it in a product. The card lists the license as apache-2.0.
Here's a complete and enhanced version of your Gradio interface documentation for the SGDNet model. This documentation can be part of your model card on Hugging Face or included as a README.md in your project reposito…
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From the Hugging Face model README
Here's a complete and enhanced version of your Gradio interface documentation for the SGDNet model. This documentation can be part of your model card on Hugging Face or included as a README.md in your project repository. It provides clear instructions on setup, usage, and how to interact with the model through Gradio.
This is a Gradio interface for the SGDNet model, designed to extract glacier boundaries from multisource remote sensing data. The interface provides a user-friendly method to upload satellite images and visualize the predicted glacier boundaries.
Follow these steps to get the Gradio interface up and running on your local machine:
Ensure you have Python installed on your system. The interface is built using Gradio, and the model is implemented in TensorFlow.
Clone the repository: Ensure you have git installed and then clone the repository containing the SGDNet model and the Gradio interface code.
git clone https://huggingface.co/your_username/SGDNet-gradio
cd SGDNet-gradio
Install the required packages:
Use pip to install the required Python packages from the requirements.txt file.
pip install -r requirements.txt
Start the Gradio app: Run the Gradio interface using the command below. This command executes the Python script that launches the Gradio interface.
python gradio_app.py
Access the Interface:
Open your web browser and navigate to the URL provided in the command line output (typically http://127.0.0.1:7860). This URL hosts your interactive Gradio interface.