دورية أكاديمية

IMPROVING CONTROL BASED IMPORTANCE SAMPLING STRATEGIES FOR METASTABLE DIFFUSIONS VIA ADAPTED METADYNAMICS.

التفاصيل البيبلوغرافية
العنوان: IMPROVING CONTROL BASED IMPORTANCE SAMPLING STRATEGIES FOR METASTABLE DIFFUSIONS VIA ADAPTED METADYNAMICS.
المؤلفون: BORRELL, ENRIC RIBERA, QUER, JANNES, RICHTER, LORENZ, SCHUTTE, CHRISTOF
المصدر: SIAM Journal on Scientific Computing; 2024, Vol. 46 Issue 2, pS298-S323, 26p
مصطلحات موضوعية: STOCHASTIC control theory, DYNAMICAL systems, SAMPLING methods
مستخلص: Sampling rare events in metastable dynamical systems is often a computationally expensive task and one needs to resort to enhanced sampling methods such as importance sampling. Since we can formulate the problem of finding optimal importance sampling controls as a stochastic optimization problem, this then brings additional numerical challenges and the convergence of corresponding algorithms might suffer from metastabilty. In this article, we address this issue by combining systematic control approaches with the heuristic adaptive metadynamics method. Crucially, we approximate the importance sampling control by a neural network, which makes the algorithm in principle feasible for high-dimensional applications. We can numerically demonstrate in relevant metastable problems that our algorithm is more effective than previous attempts and that only the combination of the two approaches leads to a satisfying convergence and therefore to an efficient sampling in certain metastable settings. [ABSTRACT FROM AUTHOR]
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قاعدة البيانات: Complementary Index
الوصف
تدمد:10648275
DOI:10.1137/22M1503464