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Automata-based Optimal Planning with Relaxed Specifications

Disha Kamale, Eleni Karyofylli, Cristian-Ioan Vasile

Year
2021
Citations
22

Abstract

In this paper, we introduce an automata-based framework for planning with relaxed specifications. User relaxation preferences are represented as weighted finite state edit systems that capture permissible operations on the specification, substitution and deletion of tasks, with complex constraints on ordering and grouping. We propose a three-way product automaton construction method that allows us to compute minimal relaxation policies for the robots using shortest path algorithms. The three-way product automaton captures the robot’s motion, specification satisfaction, and available relaxations at the same time. Additionally, we consider a bi-objective problem that balances temporal relaxation of deadlines within specifications with changing and deleting tasks. Finally, we present the runtime performance and a case study that highlights different modalities of our framework.

Keywords

AutomatonComputer scienceRelaxation (psychology)RobotMotion planningFinite-state machineProduct (mathematics)Theoretical computer sciencePath (computing)Shortest path problem

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