Papers › Adaptive teachers for amortized samplers

Adaptive teachers for amortized samplers

2 Oct 2024arXiv:2410.01432archive 2025-07-28

Minsu Kim, Sanghyeok Choi, Taeyoung Yun, Emmanuel Bengio, Leo Feng, Jarrid Rector-Brooks, Sungsoo Ahn, Jinkyoo Park, Nikolay Malkin, Yoshua Bengio

Amortized inference is the task of training a parametric model, such as a neural network, to approximate a distribution with a given unnormalized density where exact sampling is intractable. When sampling is implemented as a sequential decision-making process, reinforcement learning (RL) methods, such as generative flow networks, can be used to train the sampling policy. Off-policy RL training facilitates the discovery of diverse, high-reward candidates, but existing methods still face challenges in efficient exploration. We propose to use an adaptive training distribution (the \teacher) to guide the training of the primary amortized sampler (the \student). The \teacher, an auxiliary behavior model, is trained to sample high-loss regions of the \student and can generalize across unexplored modes, thereby enhancing mode coverage by providing an efficient training curriculum. We validate the effectiveness of this approach in a synthetic environment designed to present an exploration challenge, two diffusion-based sampling tasks, and four biochemical discovery tasks demonstrating its ability to improve sample efficiency and mode coverage. Source code is available at https://github.com/alstn12088/adaptive-teacher.

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TeacherGFlowNet alstn12088/adaptive-teacher/discovery/gflownet/GFNs/teacher.py official repository ran no licence file found · pointer only · ad1d91a903c30ac7 · report
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unroll_trajs alstn12088/adaptive-teacher/discovery/gflownet/GFNs/teacher.py official repository ran · our draft was wrong no licence file found · pointer only · 9d260f82cae9af81 · report

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Decision MakingEfficient ExplorationReinforcement Learning (RL)Sequential Decision Making

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