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Strategy Synthesis in Markov Decision Processes Under Limited Sampling Access

  • Christel Baier
  • , Clemens Dubslaff
  • , Patrick Wienhöft (Corresponding author)
  • , Stefan J. Kiebel

Research output: Chapter in Book/Report/Conference proceedingConference contributionAcademicpeer-review

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Abstract

A central task in control theory, artificial intelligence, and formal methods is to synthesize reward-maximizing strategies for agents that operate in partially unknown environments. In environments modeled by gray-box Markov decision processes (MDPs), the impact of the agents’ actions are known in terms of successor states but not the stochastics involved. In this paper, we devise a strategy synthesis algorithm for gray-box MDPs via reinforcement learning that utilizes interval MDPs as internal model. To compete with limited sampling access in reinforcement learning, we incorporate two novel concepts into our algorithm, focusing on rapid and successful learning rather than on stochastic guarantees and optimality: lower confidence bound exploration reinforces variants of already learned practical strategies and action scoping reduces the learning action space to promising actions. We illustrate benefits of our algorithms by means of a prototypical implementation applied on examples from the AI and formal methods communities.

Original languageEnglish
Title of host publicationNASA Formal Methods
Subtitle of host publication15th International Symposium, NFM 2023, Houston, TX, USA, May 16–18, 2023, Proceedings
EditorsKristin Yvonne Rozier, Swarat Chaudhuri
PublisherSpringer
Pages86-103
Number of pages18
ISBN (Electronic)978-3-031-33170-1
ISBN (Print)978-3-031-33169-5
DOIs
Publication statusPublished - 3 Jun 2023
Event15th International Symposium on NASA Formal Methods, NFM 2023 - Houston, United States
Duration: 16 May 202318 May 2023

Publication series

NameLecture Notes in Computer Science (LNCS)
Volume13903
ISSN (Print)0302-9743
ISSN (Electronic)1611-3349

Conference

Conference15th International Symposium on NASA Formal Methods, NFM 2023
Country/TerritoryUnited States
CityHouston
Period16/05/2318/05/23

Funding

The authors are supported by the DFG through the Cluster of Excellence EXC 2050/1 (CeTI, project ID 390696704, as part of Germany’s Excellence Strategy) and the TRR 248 (see https://perspicuous-computing.science, project ID 389792660).

FundersFunder number
Center for Evolutionary and Theoretical Immunology390696704, TRR 248, 389792660
Deutsche ForschungsgemeinschaftEXC 2050/1

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