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PGPCA

The repository contains the code of the probabilistic geometric principal component analysis (PGPCA) algorithm.

Due to the file size, please download the matfile PGPCA_Simu_T2_3D_ICLR.mat (175 MB) including the sample data from the supplementary material in OpenReview.

Publication

PGPCA has been published at the International Conference on Learning Representations (ICLR) in 2025.

@inproceedings{hsieh2025probabilistic,
    title={Probabilistic Geometric Principal Component Analysis with application to neural data},
    author={Han-Lin Hsieh and Maryam Shanechi},
    booktitle={The Thirteenth International Conference on Learning Representations},
    year={2025},
    url={https://openreview.net/forum?id=mkDam1xIzW}
}

License

Copyright (c) 2025 University of Southern California
See full notice in LICENSE.md
Han-Lin Hsieh and Maryam M. Shanechi
Shanechi Lab, University of Southern California

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The code of the probabilistic geometric principal component analysis (PGPCA)

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