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20102026
most citedAttention-Based Transformers for Instance Segmentation of Cells in Microstructures

96 citations · 203 across the 28 of their papers we have counts for

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10 papers · 1 filter

cs.LG2023

Entropic Matching for Expectation Propagation of Markov Jump Processes

Yannick Eich, Bastian Alt, Heinz Koeppl

We propose a novel, tractable latent state inference scheme for Markov jump processes, for which exact inference is often intractable. Our approach is based on an entropic matching…

cs.LG2023

Learning Decentralized Partially Observable Mean Field Control for Artificial Collective Behavior

Kai Cui, Sascha Hauck, Christian Fabian +1

Recent reinforcement learning (RL) methods have achieved success in various domains. However, multi-agent RL (MARL) remains a challenge in terms of decentralization, partial observ…

cs.LG20222 cited

Markov Chain Monte Carlo for Continuous-Time Switching Dynamical Systems

Lukas Köhs, Bastian Alt, Heinz Koeppl

Switching dynamical systems are an expressive model class for the analysis of time-series data. As in many fields within the natural and engineering sciences, the systems under stu…

cs.LG2021

Variational Inference for Continuous-Time Switching Dynamical Systems

Lukas Köhs, Bastian Alt, Heinz Koeppl

Switching dynamical systems provide a powerful, interpretable modeling framework for inference in time-series data in, e.g., the natural sciences or engineering applications. Since…

cs.LG2021

Moment-Based Variational Inference for Stochastic Differential Equations

Christian Wildner, Heinz Koeppl

Existing deterministic variational inference approaches for diffusion processes use simple proposals and target the marginal density of the posterior. We construct the variational…

cs.LG20204 cited

POMDPs in Continuous Time and Discrete Spaces

Bastian Alt, Matthias Schultheis, Heinz Koeppl

Many processes, such as discrete event systems in engineering or population dynamics in biology, evolve in discrete space and continuous time. We consider the problem of optimal de…