DocumentCode :
3591175
Title :
GPU parallelization of the stochastic on-time arrival problem
Author :
Abeydeera, Maleen ; Samaranayake, Samitha
Author_Institution :
Electron. & Telecommun. Eng., Univ. of Moratuwa, Moratuwa, Sri Lanka
fYear :
2014
Firstpage :
1
Lastpage :
8
Abstract :
The Stochastic On-Time Arrival (SOTA) problem has recently been studied as an alternative to traditional shortest-path formulations in situations with hard deadlines. The goal is to find a routing strategy that maximizes the probability of reaching the destination within a pre-specified time budget, with the edge weights of the graph being random variables with arbitrary distributions. While this is a practically useful formulation for vehicle routing, the commercial deployment of such methods is not currently feasible due to the high computational complexity of existing solutions. We present a parallelization strategy for improving the computation times by multiple orders of magnitude compared to the single threaded CPU implementations, using a CUDA GPU implementation. A single order of magnitude is achieved via naive parallelization of the problem, and another order of magnitude via optimal utilization of the GPU resources. We also show that the runtime can be further reduced in certain cases using dynamic thread assignment and an edge clustering method for accelerating queries with a small time budget.
Keywords :
graph theory; graphics processing units; parallel architectures; probability; stochastic processes; traffic engineering computing; vehicle routing; CUDA; GPU parallelization; SOTA problem; commercial deployment; dynamic thread assignment; edge clustering method; graph; probability; shortest-path formulations; stochastic on-time arrival problem; vehicle routing; Convolution; Graphics processing units; Instruction sets; Kernel; Memory management; Routing; Runtime;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
High Performance Computing (HiPC), 2014 21st International Conference on
Print_ISBN :
978-1-4799-5975-4
Type :
conf
DOI :
10.1109/HiPC.2014.7116896
Filename :
7116896
Link To Document :
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