Integrating Predictive and Generative Capabilities by Latent Space Design via the DKL-VAE Model

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Hauptverfasser: Slautin, Boris N., Pratiush, Utkarsh, Lupascu, Doru C., Ziatdinov, Maxim A., Kalinin, Sergei V.
Format: Preprint
Veröffentlicht: 2025
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author Slautin, Boris N.
Pratiush, Utkarsh
Lupascu, Doru C.
Ziatdinov, Maxim A.
Kalinin, Sergei V.
author_facet Slautin, Boris N.
Pratiush, Utkarsh
Lupascu, Doru C.
Ziatdinov, Maxim A.
Kalinin, Sergei V.
contents We introduce a Deep Kernel Learning Variational Autoencoder (VAE-DKL) framework that integrates the generative power of a Variational Autoencoder (VAE) with the predictive nature of Deep Kernel Learning (DKL). The VAE learns a latent representation of high-dimensional data, enabling the generation of novel structures, while DKL refines this latent space by structuring it in alignment with target properties through Gaussian Process (GP) regression. This approach preserves the generative capabilities of the VAE while enhancing its latent space for GP-based property prediction. We evaluate the framework on two datasets: a structured card dataset with predefined variational factors and the QM9 molecular dataset, where enthalpy serves as the target function for optimization. The model demonstrates high-precision property prediction and enables the generation of novel out-of-training subset structures with desired characteristics. The VAE-DKL framework offers a promising approach for high-throughput material discovery and molecular design, balancing structured latent space organization with generative flexibility.
format Preprint
id arxiv_https___arxiv_org_abs_2503_02978
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Integrating Predictive and Generative Capabilities by Latent Space Design via the DKL-VAE Model
Slautin, Boris N.
Pratiush, Utkarsh
Lupascu, Doru C.
Ziatdinov, Maxim A.
Kalinin, Sergei V.
Machine Learning
Materials Science
We introduce a Deep Kernel Learning Variational Autoencoder (VAE-DKL) framework that integrates the generative power of a Variational Autoencoder (VAE) with the predictive nature of Deep Kernel Learning (DKL). The VAE learns a latent representation of high-dimensional data, enabling the generation of novel structures, while DKL refines this latent space by structuring it in alignment with target properties through Gaussian Process (GP) regression. This approach preserves the generative capabilities of the VAE while enhancing its latent space for GP-based property prediction. We evaluate the framework on two datasets: a structured card dataset with predefined variational factors and the QM9 molecular dataset, where enthalpy serves as the target function for optimization. The model demonstrates high-precision property prediction and enables the generation of novel out-of-training subset structures with desired characteristics. The VAE-DKL framework offers a promising approach for high-throughput material discovery and molecular design, balancing structured latent space organization with generative flexibility.
title Integrating Predictive and Generative Capabilities by Latent Space Design via the DKL-VAE Model
topic Machine Learning
Materials Science
url https://arxiv.org/abs/2503.02978