MARD-Mol: a hybrid autoregressive-diffusion paradigm for coarse-grained molecular modeling
Sizhe Zhang1, Gang Luo1, Wei Fan2
1School of Computer Science and Engineering, Central South University, Changsha, 410083, China.
Motivation:
Deep generative models have transformed drug molecule generation. However, molecules exhibit complex hierarchical structures, requiring models to simultaneously balance macroscopic topological coherence and microscopic chemical self-consistency. Although autoregressive (AR) and discrete diffusion paradigms are highly complementary, integrating their advantages within a unified architecture remains severely limited by traditional "atom-by-atom" fine-grained modeling.
Results:
We propose MARD-Mol, a hybrid AR-diffusion framework based on motif-inspired units. By elevating the representation granularity from atoms to motif-inspired units and introducing a dual-stream hierarchical attention mechanism, it couples inter-unit AR global scaffold planning with intra-unit discrete diffusion generation. To support goal-directed drug discovery, we reformulate property optimization into an iterative "diagnose-and-repair" process, enabling targeted optimization of defective motifs while preserving the global scaffold. Extensive experiments demonstrate that MARD-Mol achieves an 86.0% Quality score in de novo generation and exhibits superior performance in fragment-constrained and multi-objective optimization, establishing a new paradigm for high-quality drug design.
Availability And Implementation:
The source code and datasets used in this study are available at GitHub: https://github.com/CSUBioGroup/MARD-Mol.
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