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Clement Vignac

3 accepted papers

2024

Generative Modelling of Structurally Constrained Graphs

NeurIPS 2024poster

Graph diffusion models have emerged as state-of-the-art techniques in graph generation; yet, integrating domain knowledge into these models remains challenging. Domain knowledge is particularly important in real-world scenarios, where invalid generated graphs hinder deployment in practical applicat…

2023

DiGress: Discrete Denoising diffusion for graph generation

ICLR 2023poster

This work introduces DiGress, a discrete denoising diffusion model for generating graphs with categorical node and edge attributes. Our model utilizes a discrete diffusion process that progressively edits graphs with noise, through the process of adding or removing edges and changing the categories.…