A Robust Spanning Tree Topology for Data Collection and Dissemination in Distributed Environments
Large-scale distributed applications are subject to frequent disruptions due to resource contention and failure. Such disruptions are inherently unpredictable and, therefore, robustness is a desirable property for the distributed operating environment. In this work, we describe and evaluate a robust...
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| Published in | IEEE transactions on parallel and distributed systems Vol. 18; no. 5; pp. 608 - 620 |
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| Main Authors | , , |
| Format | Journal Article |
| Language | English |
| Published |
New York
IEEE
01.05.2007
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1045-9219 1558-2183 2161-9883 1558-2183 |
| DOI | 10.1109/TPDS.2007.1032 |
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| Abstract | Large-scale distributed applications are subject to frequent disruptions due to resource contention and failure. Such disruptions are inherently unpredictable and, therefore, robustness is a desirable property for the distributed operating environment. In this work, we describe and evaluate a robust topology for applications that operate on a spanning tree overlay network. Unlike previous work that is adaptive or reactive in nature, we take a proactive approach to robustness. The topology itself is able to simultaneously withstand disturbances and exhibit good performance. We present both centralized and distributed algorithms to construct the topology, and then demonstrate its effectiveness through analysis and simulation of two classes of distributed applications: Data collection in sensor networks and data dissemination in divisible load scheduling. The results show that our robust spanning trees achieve a desirable trade-off for two opposing metrics where traditional forms of spanning trees do not. In particular, the trees generated by our algorithms exhibit both resilience to data loss and low power consumption for sensor networks. When used as the overlay network for divisible load scheduling, they display both robustness to link congestion and low values for the makespan of the schedule |
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| AbstractList | Large-scale distributed applications are subject to frequent disruptions due to resource contention and failure. Such disruptions are inherently unpredictable and, therefore, robustness is a desirable property for the distributed operating environment. In this work, we describe and evaluate a robust topology for applications that operate on a spanning tree overlay network. Unlike previous work that is adaptive or reactive in nature, we take a proactive approach to robustness. The topology itself is able to simultaneously withstand disturbances and exhibit good performance. We present both centralized and distributed algorithms to construct the topology, and then demonstrate its effectiveness through analysis and simulation of two classes of distributed applications: Data collection in sensor networks and data dissemination in divisible load scheduling. The results show that our robust spanning trees achieve a desirable trade-off for two opposing metrics where traditional forms of spanning trees do not. In particular, the trees generated by our algorithms exhibit both resilience to data loss and low power consumption for sensor networks. When used as the overlay network for divisible load scheduling, they display both robustness to link congestion and low values for the makespan of the schedule Large-scale distributed applications are subject to frequent disruptions due to resource contention and failure. Such disruptions are inherently unpredictable and, therefore, robustness is a desirable property for the distributed operating environmen [abstract truncated by publisher]. When used as the overlay network for divisible load scheduling, they display both robustness to link congestion and low values for the makespan of the schedule |
| Author | England, D. Bharadwaj Veeravalli Weissman, J.B. |
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| References | ref13 Byrnes (ref29) 2006 ref11 ref10 ref2 ref1 ref17 Bertsekas (ref14) 1997 Ganesan (ref15) ref16 ref19 ref18 ref24 ref23 West (ref12) 2001 ref26 ref25 England (ref28) 2006 ref20 ref22 ref8 ref7 ref9 Drozdowski (ref21) 1997 ref4 Bharadwaj (ref27) 1996 ref6 Oppenheimer (ref3) ref5 |
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| SubjectTerms | Algorithm design and analysis Algorithms Analytical models Data collection Displays Disruption Distributed algorithms distributed computing divisible load scheduling Energy consumption fault tolerance graph theory Large-scale systems Network topology Networks Power generation Resilience Robustness Scheduling Sensors Software Studies Topology Trees wireless sensor networks |
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| Title | A Robust Spanning Tree Topology for Data Collection and Dissemination in Distributed Environments |
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