DocumentCode :
1273082
Title :
Dynamic Vehicle Routing for Robotic Systems
Author :
Bullo, Francesco ; Frazzoli, Emilio ; Pavone, Marco ; Savla, Ketan ; Smith, Stephen L.
Author_Institution :
Dept. of Mech. Eng., Univ. of California in Santa Barbara, Santa Barbara, CA, USA
Volume :
99
Issue :
9
fYear :
2011
Firstpage :
1482
Lastpage :
1504
Abstract :
Recent years have witnessed great advancements in the science and technology of autonomy, robotics, and networking. This paper surveys recent concepts and algorithms for dynamic vehicle routing (DVR), that is, for the automatic planning of optimal multivehicle routes to perform tasks that are generated over time by an exogenous process. We consider a rich variety of scenarios relevant for robotic applications. We begin by reviewing the basic DVR problem: demands for service arrive at random locations at random times and a vehicle travels to provide on-site service while minimizing the expected wait time of the demands. Next, we treat different multivehicle scenarios based on different models for demands (e.g., demands with different priority levels and impatient demands), vehicles (e.g., motion constraints, communication, and sensing capabilities), and tasks. The performance criterion used in these scenarios is either the expected wait time of the demands or the fraction of demands serviced successfully. In each specific DVR scenario, we adopt a rigorous technical approach that relies upon methods from queueing theory, combinatorial optimization, and stochastic geometry. First, we establish fundamental limits on the achievable performance, including limits on stability and quality of service. Second, we design algorithms, and provide provable guarantees on their performance with respect to the fundamental limits.
Keywords :
mobile robots; multi-robot systems; optimisation; queueing theory; stability; DVR; automatic planning; combinatorial optimization; dynamic vehicle routing; exogenous process; optimal multivehicle route; quality of service; queueing theory; rigorous technical approach; robotic system; stability; stochastic geometry; Adaptive algorithms; Algorithm design and analysis; Heuristic algorithms; Multirobot systems; Queueing analysis; Routing; Unmanned aerial vehicles; Vehicle dynamics; Adaptive algorithm; cooperative systems; intelligent robots; mobile agents; multirobot systems; partitioning algorithms; queueing analysis; unmanned aerial vehicles;
fLanguage :
English
Journal_Title :
Proceedings of the IEEE
Publisher :
ieee
ISSN :
0018-9219
Type :
jour
DOI :
10.1109/JPROC.2011.2158181
Filename :
5954127
Link To Document :
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