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Diffusion Generative Modeling: Progress and Next Steps
Location
Calvin Lab auditorium
Date
Monday, Aug. 3
–
Friday, Aug. 7, 2026
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Schedule | Diffusion Generative Modeling: Progress and Next Steps
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The Workshop
Schedule
Videos
Monday, Aug. 3, 2026
9
–
9:45 a.m.
Coffee and Check-in
9:45
–
10 a.m.
Welcome
10
–
10:45 a.m.
Stochastic dynamics as a proof technique
Andrea Montanari (Stanford University)
Video
10:45
–
11:15 a.m.
Break
11:15 a.m.
–
12 p.m.
High-Accuracy Sampling for Diffusion Models and Log-Concave Distributions
Fan Chen (MIT)
Video
12
–
2 p.m.
Lunch (on your own)
2
–
2:45 p.m.
Efficient Reinforcement Learning for Diffusion Models
Yongxin Chen (Georgia Institute of Technology)
Video
2:45
–
3:30 p.m.
Distributional Diffusion Models
Valentin de Bortoli (Google DeepMind)
Video
3:30
–
4:15 p.m.
Finite-particles rates for drifting models
Krishna Balasubramanian (UC Davis)
Video
4:15
–
5 p.m.
Reception
Tuesday, Aug. 4, 2026
8:30
–
9 a.m.
Coffee and Check-in
9
–
9:45 a.m.
Talk by
Kirill Neklyudov (University of Montreal)
Video
9:45
–
10:30 a.m.
Normalizing Flow Maps
Joey Bose (Imperial College London)
Video
10:30
–
11 a.m.
Break
11
–
11:45 a.m.
Optimal Inference Schedules for Masked Diffusion Models
Jerry Li (University of Washington)
Video
11:45 a.m.
–
2 p.m.
Lunch (on your own)
2
–
2:45 p.m.
Understanding and enhancing diffusion model: a quantification of its generalizability, and a provably scalable test-time scaling method
Molei Tao (Georgia Tech)
Video
2:45
–
3:30 p.m.
Break
3:30
–
4:15 p.m.
Global selection, local completion: a probabilistic anatomy of diffusion U-Net
Zahra Kadkhodaie (MIT)
Video
4:15
–
5 p.m.
A new class of algorithms for trajectory inference
Aram-Alexandre Pooladian (Yale University)
Video
Wednesday, Aug. 5, 2026
8:30
–
9 a.m.
Coffee and Check-in
9
–
9:45 a.m.
Signed Rectified Flow: Negativity-Controlled Generation
Qiang Liu (UT Austin)
Video
9:45
–
10:30 a.m.
How to Build a Modern Diffusion Language Model
Volodymyr Kuleshov (Cornell University)
Video
10:30
–
11 a.m.
Break
11
–
11:45 a.m.
Rare event analysis via stochastic optimal control
Carles Domingo-Enrich (Microsoft Research)
Video
11:45 a.m.
–
2 p.m.
Lunch (on your own)
2
–
5 p.m.
Open Discussion
Thursday, Aug. 6, 2026
8:30
–
9 a.m.
Coffee and Check-in
9
–
9:45 a.m.
Windowed thinning and query complexity for the bouncy particle and Zigzag samplers
Jianfeng Lu (Duke University)
Video
9:45
–
10:30 a.m.
Inference-Time Algorithms: A Theoretical Lens on Tractability and Error Propagation
Andrej Risteski (Carnegie Mellon University)
Video
10:30
–
11 a.m.
Break
11
–
11:45 a.m.
Sampling from the Sherrington-Kirkpatrick model up to β<1/2
Holden Lee (Johns Hopkins University)
Video
11:45 a.m.
–
2 p.m.
Lunch (on your own)
2
–
2:45 p.m.
What Really Separates Autoregression and Diffusion? A Synthesis and Path Beyond
Jiaxin Shi (Meta)
Video
2:45
–
3:30 p.m.
Break
3:30
–
4:15 p.m.
How abundant are good interpolators?
Ahmed El Alaoui (Cornell)
Video
4:15
–
5 p.m.
Score-Based Generative Modeling without Diffusion: Langevin MCMC All the Way
Saeed Saremi (Genentech)
Video
Friday, Aug. 7, 2026
8:30
–
9 a.m.
Coffee and Check-in
9
–
9:45 a.m.
Diffusion in RL and robotics: how expressive policies changed how we use continuous actions
Sergey Levine (UC Berkeley)
Video
9:45
–
10:30 a.m.
Compositional Reasoning with Diffusion Models
Yilun Du (Harvard University)
Video
10:30
–
11 a.m.
Break
11
–
11:45 a.m.
Do we need diffusion in robotics?
Max Simchowitz (Carnegie Mellon University)
Video
11:45 a.m.
–
2 p.m.
Lunch (on your own)
2
–
2:45 p.m.
Functional Stochastic Localization
Kevin Tian (UT Austin)
Video
2:45
–
3:30 p.m.
Break
3:30
–
4:15 p.m.
A computational phase transition for learning-to-sample from Ising models
Thuy-Duong (June) Vuong (UC San Diego)
Video
4:15
–
5 p.m.
Sampling from spherical spin glasses: diffusions and simulated annealing
Brice Huang (Stanford University)
Video
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