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Real-Time Optimization-Based Planning in Dynamic Environments Using GPUs

Conference Paper Short Papers Algorithms and Complexity · Artificial Intelligence · Automated Planning and Scheduling

Abstract

We present a novel algorithm to compute collision-free trajectories in dynamic environments. Our approach is general and makes no assumption about the obstacles or their motion. We use a replanning framework that interleaves optimization-based planning with execution. Furthermore, we describe a parallel formulation that exploits high number of cores on commodity graphics processors (GPUs) to compute a high-quality path in a given time interval. Overall, we show that search in configuration spaces can be significantly accelerated by using GPU parallelism.

Authors

Keywords

  • Robot Motion Planning
  • Dynamic Environment
  • Real-time Planning

Context

Venue
International Symposium on Combinatorial Search
Archive span
2010-2024
Indexed papers
598
Paper id
816500554687574065
v2026.09.13