Variational Flow Matching for Graph Generation
| Authors | |
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| Publication date | 2025 |
| Host editors |
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| Book title | 38th Conference on Neural Information Processing Systems (NeurIPS 2024) |
| Book subtitle | 10-15 December 2024, Vancouver, Canada |
| ISBN (electronic) |
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| Series | Advances in Neural Information Processing Systems |
| Event | 38th Conference on Neural Information Processing Systems, NeurIPS 2024 |
| Pages (from-to) | 11735-11764 |
| Publisher | Neural Information Processing Systems Foundation |
| Organisations |
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| Abstract |
We present a formulation of flow matching as variational inference, which we refer to as variational flow matching (VFM). Based on this formulation we develop CatFlow, a flow matching method for categorical data. CatFlow is easy to implement, computationally efficient, and achieves strong results on graph generation tasks. The key observation in VFM is that we can parameterize the vector field of the flow in terms of a variational approximation of the posterior probability path, which is the distribution over possible end points of a trajectory. We show that this variational interpretation admits both the CatFlow objective and the original flow matching objective as special cases. We also relate VFM to score-based models, in which the dynamics are stochastic rather than deterministic, and derive a bound on the model likelihood based on a reweighted VFM objective. We evaluate CatFlow on one abstract graph generation task and two molecular generation tasks. In all cases, CatFlow exceeds or matches performance of the current state-of-the-art. |
| Document type | Conference contribution |
| Note | Wth supplementary ZIP-file |
| Language | English |
| Published at |
https://doi.org/10.52202/079017-0374
(Final published version)
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| Published at |
https://papers.nips.cc/paper_files/paper/2024/hash/15b780350b302a1bf9a3bd273f5c15a4-Abstract-Conference.html
(Accepted author manuscript)
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| Other links | |
| Downloads |
NeurIPS-2024-variational-flow-matching-for-graph-generation-Paper-Conference
(Accepted author manuscript)
079017-0374open
(Final published version)
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| Supplementary materials | |
| Permalink to this page | |