DocumentCode :
1984586
Title :
Scalable Force Directed Graph Layout Algorithms Using Fast Multipole Methods
Author :
Yunis, Enas ; Yokota, Rio ; Ahmadia, Aron
Author_Institution :
King Abdullah Univ. of Sci. & Technol., Thuwal, Saudi Arabia
fYear :
2012
fDate :
25-29 June 2012
Firstpage :
180
Lastpage :
187
Abstract :
We present an extension to ExaFMM, a Fast Multipole Method library, as a generalized approach for fast and scalable execution of the Force-Directed Graph Layout algorithm. The Force-Directed Graph Layout algorithm is a physics-based approach to graph layout that treats the vertices V as repelling charged particles with the edges E connecting them acting as springs. Traditionally, the amount of work required in applying the Force-Directed Graph Layout algorithm is O(|V|2 + |E|) using direct calculations and O(|V| log |V| + |E|) using truncation, filtering, and/or multi-level techniques. Correct application of the Fast Multipole Method allows us to maintain a lower complexity of O(|V| + |E|) while regaining most of the precision lost in other techniques. Solving layout problems for truly large graphs with millions of vertices still requires a scalable algorithm and implementation. We have been able to leverage the scalability and architectural adaptability of the ExaFMM library to create a Force-Directed Graph Layout implementation that runs efficiently on distributed multicore and multi-GPU architectures.
Keywords :
computational complexity; data visualisation; directed graphs; graphics processing units; multiprocessing systems; parallel architectures; ExaFMM library; architectural adaptability; complexity; distributed multicore architectures; fast multipole method library; multiGPU architectures; multilevel techniques; physics-based approach; scalable force directed graph layout algorithms; truncation; Electrostatics; Force; Graphics processing unit; Layout; Libraries; Runtime; Springs; Fast multipole methods; Force directed graph layout; Multi-GPUs;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel and Distributed Computing (ISPDC), 2012 11th International Symposium on
Conference_Location :
Munich/Garching, Bavaria
Print_ISBN :
978-1-4673-2599-8
Type :
conf
DOI :
10.1109/ISPDC.2012.32
Filename :
6341510
Link To Document :
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