New approach to understand recurrent policies as FSMs without minimization.
arXiv research
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Tool converts industrial systems to RL environments for optimization.
Proposes FSM-IRL to learn invariant network representations considering feature and structural shifts.
This work optimizes MCMC algorithms for modern accelerators without synchronization overheads.
To realize efficient computational fluid dynamics (CFD) prediction of two-phase flow, a multi-scale framework was proposed in this paper by applying a physics-guided data-driven approach. Instrumental to this framework, Feature Similarity Measurement (FSM) technique was developed for error estimation in two-phase flow …
Score-fPINN tackles high-dimensional FPL equations using fractional score functions.
Review and benchmark 58 feature selection methods for ML applications.
Study shows challenges in converting RNNs to FSMs due to computational complexity.
Enhanced fuzzy system predicts chaotic time series with improved accuracy.