JOURNAL ARTICLE

Cross-entropy temporal logic motion planning

Abstract

This paper presents a method for optimal trajectory generation for discrete-time nonlinear systems with linear temporal logic (LTL) task specifications. Our approach is based on recent advances in stochastic optimization algorithms for optimal trajectory generation. These methods rely on estimation of the rare event of sampling optimal trajectories, which is achieved by incrementally improving a sampling distribution so as to minimize the cross-entropy. A key component of these stochastic optimization algorithms is determining whether or not a trajectory is collision-free. We generalize this collision checking to efficiently verify whether or not a trajectory satisfies a LTL formula. Interestingly, this verification can be done in time polynomial in the length of the LTL formula and the trajectory. We also propose a method for efficiently re-using parts of trajectories that only partially satisfy the specification, instead of simply discarding the entire sample. Our approach is demonstrated through numerical experiments involving Dubins car and a generic point-mass model subject to complex temporal logic task specifications.

Keywords:
Trajectory Temporal logic Computer science Linear temporal logic Entropy (arrow of time) Trajectory optimization Cross entropy Principle of maximum entropy Mathematical optimization Sampling (signal processing) Algorithm Mathematics Theoretical computer science Artificial intelligence Optimal control

Metrics

20
Cited By
3.25
FWCI (Field Weighted Citation Impact)
30
Refs
0.93
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Formal Methods in Verification
Physical Sciences →  Computer Science →  Computational Theory and Mathematics
Simulation Techniques and Applications
Social Sciences →  Decision Sciences →  Management Science and Operations Research
Software Reliability and Analysis Research
Physical Sciences →  Computer Science →  Software

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