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DMMRL: Disentangled Multi-Modal Representation Learning via Variational Autoencoders for Molecular Property Prediction

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Molecular property prediction constitutes a cornerstone of drug discovery and materials science, necessitating models capable of disentangling complex structure-property relationships across diverse molecular modalities. Existing approaches frequently exhibit entangled representations--conflating structural, chemical, and functional factors--thereby limiting interpretability and transferability. Furthermore, conventional methods inadequately exploit complementary information from graphs, sequences, and geometries, often relying on naive concatenation that neglects inter-modal dependencies. In this work, we propose DMMRL, which employs variational autoencoders to disentangle molecular representations into shared (structure-relevant) and private (modality-specific) latent spaces, enhancing both interpretability and predictive performance. The proposed variational disentanglement mechanism effectively isolates the most informative features for property prediction, while orthogonality and alignment regularizations promote statistical independence and cross-modal consistency. Additionally, a gated attention fusion module adaptively integrates shared representations, capturing complex inter-modal relationships. Experimental validation across seven benchmark datasets demonstrates DMMRL's superior performance relative to state-of-the-art approaches. The code and data underlying this article are freely available at https://github.com/xulong0826/DMMRL.

Long Xu, Junping Guo, Jianbo Zhao, Jianbo Lu, Yuzhong Peng• 2026

Related benchmarks

TaskDatasetResultRank
Molecular property predictionBACE
ROC-AUC92.5
55
Molecular property predictionBBBP
ROC AUC0.968
48
Molecular property predictionClinTox
ROC AUC93.5
47
Molecular Property Prediction (Regression)ESOL
RMSE0.535
36
Molecular Property Prediction (Regression)Lipophilicity
RMSE0.599
34
RegressionFreeSolv
RMSE0.825
33
Molecular property predictionTox21
ROC AUC84.2
29
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