Risk-Aware Stochastic Shortest Path
Tobias Meggendorfer
Abstract
We treat the problem of risk-aware control for stochastic shortest path (SSP) on Markov decision processes (MDP). Typically, expectation is considered for SSP, which however is oblivious to the incurred risk. We present an alternative view, instead optimizing conditional value-at-risk (CVaR), an established risk measure. We treat both Markov chains as well as MDP and introduce, through novel insights, two algorithms, based on linear programming and value iteration, respectively. Both algorithms offer precise and provably correct solutions. Evaluation of our prototype implementation shows that risk-aware control is feasible on several moderately sized models.
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Install the CLIlune papers fulltext 745729e0-d2ae-4a96-a0c2-d3cccf34ec50Cited by top-tier papers5
- Stopping Criteria for Value Iteration on Stochastic Games with Quantitative ObjectivesJan Kretínský, Tobias Meggendorfer, Maximilian WeiningerLICS 2023 · 10 citations
- Risk-averse Total-reward MDPs with ERM and EVaRXihong Su, Marek Petrik, Julien Grand-ClémentAAAI 2025 · 3 citations
- MDPs as Distribution Transformers: Affine Invariant Synthesis for Safety ObjectivesS. Akshay, Krishnendu Chatterjee, Tobias Meggendorfer, Dorde ZikelicCAV 2023 · 2 citations
- Risk-aware Markov Decision Processes Using Cumulative Prospect TheoryThomas Brihaye, Krishnendu Chatterjee, Stefanie Mohr, Maximilian WeiningerLICS 2025 · 1 citation
- Risk-Averse Total-Reward Reinforcement LearningXihong Su, Jia Lin Hau, Gersi Doko, Kishan Panaganti et al.NeurIPS 2025
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