SETS uses the eigenvectors of the local controllability Gramian as tree branches in Monte Carlo Tree Search, giving a real-time planner with a proved error bound for continuous deterministic robot MDPs.
Constrained Hierarchical Monte Carlo Belief-State Planning
1 Pith paper cite this work. Polarity classification is still indexing.
abstract
Optimal plans in Constrained Partially Observable Markov Decision Processes (CPOMDPs) maximize reward objectives while satisfying hard cost constraints, generalizing safe planning under state and transition uncertainty. Unfortunately, online CPOMDP planning is extremely difficult in large or continuous problem domains. In many large robotic domains, hierarchical decomposition can simplify planning by using tools for low-level control given high-level action primitives (options). We introduce Constrained Options Belief Tree Search (COBeTS) to leverage this hierarchy and scale online search-based CPOMDP planning to large robotic problems. We show that if primitive option controllers are defined to satisfy assigned constraint budgets, then COBeTS will satisfy constraints anytime. Otherwise, COBeTS will guide the search towards a safe sequence of option primitives, and hierarchical monitoring can be used to achieve runtime safety. We demonstrate COBeTS in several safety-critical, constrained partially observable robotic domains, showing that it can plan successfully in continuous CPOMDPs while non-hierarchical baselines cannot.
citation-role summary
citation-polarity summary
fields
cs.RO 1years
2024 1verdicts
CONDITIONAL 1roles
background 1polarities
unclear 1representative citing papers
citing papers explorer
-
Monte Carlo Tree Search with Spectral Expansion for Planning with Dynamical Systems
SETS uses the eigenvectors of the local controllability Gramian as tree branches in Monte Carlo Tree Search, giving a real-time planner with a proved error bound for continuous deterministic robot MDPs.