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HW-SC/panpe-xrr-reflectometry
panpe-xrr-reflectometry is a other model from HW-SC. Use it for the other task on the model card, and read the license before you ship it in a product. It is set up for pytorch. The card lists the license as mit.
Pre-trained model weights for Fast and Reliable Probabilistic Reflectometry Inversion with Prior-Amortized Neural Posterior Estimation.
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Updated Sep 29, 2025
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From the Hugging Face model README
Pre-trained model weights for Fast and Reliable Probabilistic Reflectometry Inversion with Prior-Amortized Neural Posterior Estimation.
Note: This repository provides model weights for community access. The original work and model training were performed by Vladimir Starostin and colleagues. This is not an official repository by the original authors, but rather a community contribution to make the pre-trained weights easily accessible via HuggingFace.
This repository contains the trained neural network weights for the PANPE (Prior-Amortized Neural Posterior Estimation) model designed for Bayesian reflectometry analysis. The model enables fast and reliable probabilistic inversion of X-ray reflectometry data.
To use these weights, you need the full PANPE package. Get the complete code and installation instructions from:
saved_models/model_panpe-2layers-xrr.pt: Pre-trained PyTorch model weightsconfigs/panpe-2layers-xrr.yaml: Model configuration fileLICENSE.txt: MIT LicenseThis project is licensed under the MIT License - see the LICENSE.txt file for details.