Generative Modeling

Latest papers 347

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  1. Efficient Synthetic Network Generation via Latent Embedding Reconstruction

    May 31, 2026Feifan Jiang, Yinan Bu, Shihao Wu +2Graph GenerationSynthetic Data Generation

  2. A Unifying View of Variational Generative Wasserstein Flows

    May 29, 2026Paul Caucheteux, Clément Bonet, Anna KorbaWasserstein Gradient FlowsGenerative Modeling

  3. Constrained Flow Optimization via Sequential Fine Tuning for Molecular Design

    May 28, 2026Sven Gutjahr, Riccardo De Santi, Luca Schaufelberger +2Constrained Generative ModelingMolecular Optimization

  4. Procedural Generation of First Person Shooter Maps using Map-Elites

    May 28, 2026Simone de Donato, Pier Luca Lanzi, Daniele LoiaconoGenerative ModelingProcedural Content Generation

  5. Generative Models and Statistical Validation

    May 28, 2026Sascha Diefenbacher, Sofia Palacios Schweitzer, Gregor KasieczkaGenerative ModelingDensity Estimation

  6. NeuROK: Generative 4D Neural Object Kinematics

    May 28, 2026Chen Geng, Guangzhao He, Yue Gao +3Generative Modeling3D Representation Learning

  7. DC-Motion: Decoupling Structure and Details via Discrete-Continuous Tokens for Human Motion Generation

    May 28, 2026Hequan Wang, Xuean Chen, Jiaxu Zhang +2Text-to-Motion GenerationHuman Motion Generation

  8. The Little Book of Generative AI Foundations: An Intuitive Mathematical Primer

    May 28, 2026Tianhua ChenVariational AutoencodersGenerative Modeling

  9. AnyMo: Scaling Any-Modality Conditional Motion Generation with Masked Modeling

    May 28, 2026Yiheng Li, Zhuo Li, Ruibing Hou +4Cross-Modal LearningUnified Multimodal Models

  10. Conf-Gen: Conformal Uncertainty Quantification for Generative Models

    May 27, 2026Gabriel Loaiza-Ganem, Kevin Zhang, Wei Cui +2Uncertainty QuantificationConformal Prediction

  11. Random Process Flow Matching: Generative Implicit Representations of Multivariate Random Fields

    May 27, 2026Julien Lalanne, David Picard, Lionel Boillot +3Flow MatchingUncertainty Quantification

  12. Sampling Triangulations and Calabi-Yau Threefolds with Autoregressive GNNs

    May 26, 2026Nate MacFaddenGraph Neural NetworksGenerative Modeling

  13. Balancing Fidelity and Diversity in Diffusion Models via Symmetric Attention Decomposition: Hopfield Perspective

    May 26, 2026Hyunmin Cho, Woo Kyoung Han, Kyong Hwan JinSelf-AttentionTransformer Attention

  14. Geometric Flow Matching for Molecular Conformation Generation via Manifold Decomposition

    May 25, 2026Yunqing Liu, Yi Zhou, Wenqi FanFlow MatchingGenerative Modeling

  15. Geometry-Aware Image Flow Matching

    May 24, 2026Junho Lee, Kwanseok Kim, Joonseok LeeFlow MatchingImage Generation

  16. A computational phase transition for learning-to-sample from Ising models

    May 23, 2026Andrej Risteski, Thuy-Duong VuongPhase TransitionsIsing Model

  17. TUBE: Tangent Upper Bound on Evidence for Discrete Diffusion Language Models

    May 22, 2026Arseny Ivanov, Sergei Kholkin, Vladislav Gromadskii +3Masked Diffusion ModelsAutoregressive Language Modeling

  18. Leveraging Foundation Models for Causal Generative Modeling

    May 22, 2026Aneesh Komanduri, Xintao WuCausal Counterfactual GenerationImage Generation

  19. LLM-driven design of physics-constrained constitutive models: two agents are better than one

    May 22, 2026Marius Tacke, Matthias Busch, Kian Abdolazizi +4Neural Surrogate ModelingMulti-Agent LLM Systems

  20. Valid and Expressive Copulas for Irregular Multivariate Time Series

    May 22, 2026Christian Klötergens, Tom Hanika, Lars Schmidt-Thieme +1Irregular Time-Series ModelingCopula Models

  21. Reinforcement Learning for Graph Generation under a Hard Assortativity Constraint

    May 22, 2026Hoyun Choi, Junghyo Jo, Deok-Sun LeeGraph RewiringGraph Generation

  22. Generative Modeling by Value-Driven Transport

    May 21, 2026Pablo Moreno-Muñoz, Adrian Müller, Gergely NeuValue Function EstimationStochastic Optimal Control

  23. Memorisation, convergence and generalisation in generative models

    May 20, 2026Antoine Maillard, Sebastian GoldtNeural Network MemorizationMemorization in Generative Models

  24. Latent Process Generator Matching

    May 19, 2026Lukas Billera, Hedwig Nora Nordlinder, Ben MurrellGenerative Modeling

  25. When Does Model Collapse Occur in Structured Interactive Learning?

    May 19, 2026Yuchen Wu, Kangjie Zhou, Weijie SuModel CollapseGenerative Modeling

  26. Probability-Conserving Flow Guidance

    May 19, 2026Parsa Esmati, Junha Hyung, Amirhossein Dadashzadeh +2Diffusion Model GuidanceClassifier-Free Guidance

  27. Tail Annealing for Heavy-Tailed Flow Matching

    May 19, 2026Jean PachebatFlow MatchingGenerative Modeling