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Tracking Progress in Multi-Agent Path Finding
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Tracking Progress in Multi-Agent Path Finding
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Multi-Agent Path Finding (MAPF) is an important core problem for many new and emerging industrial applications. Many works appear on this topic each year, and a large number of substantial advancements and performance improvements have been reported. Yet measuring overall progress in MAPF is difficult: there are many potential competitors, and the computational burden for comprehensive experimentation is prohibitively large. Moreover, detailed data from past experimentation is usually unavailable. In this work, we introduce a set of methodological and visualisation tools which can help the community establish clear indicators for state-of-the-art MAPF performance and which can facilitate large-scale comparisons between MAPF solvers. Our objectives are to lower the barrier of entry for new researchers and to further promote the study of MAPF, since progress in the area and the main challenges are made much clearer.
Forward citations
Cited by 2 Pith papers
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Cooperative-ORCA*: Real-Time Proactive Deadlock Avoidance for Continuous-Space Multi-Agent Navigation
C-ORCA* and C-ORCA*-MAPF proactively prevent deadlocks in continuous MAPF using entire trajectories and spatial dependencies, outperforming prior methods in solve rate, runtime, and flowtime.
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Adaptive-Horizon Conflict-Based Search for Closed-Loop Multi-Agent Path Finding
ACCBS is a closed-loop CBS variant whose planning horizon grows with the available computation budget while reusing a single constraint tree, giving anytime behavior and conditional asymptotic optimality.
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