DocumentCode :
725379
Title :
Distributed Randomized Kaczmarz and Applications to Seismic Imaging in Sensor Network
Author :
Kamath, Goutham ; Ramanan, Paritosh ; Wen-Zhan Song
Author_Institution :
Dept. of Comput. Sci., Georgia State Univ., Atlanta, GA, USA
fYear :
2015
fDate :
10-12 June 2015
Firstpage :
169
Lastpage :
178
Abstract :
Many real-world wireless sensor network applications such as environmental monitoring, structural health monitoring, and smart grid can be formulated as a least-squares problem. In distributed Cyber-Physical System (CPS), each sensor node observes partial phenomena due to spatial and temporal restriction and is able to form only partial rows of least-squares. Traditionally, these partial measurements were gathered at a centralized location. However, with the increase in sensors and their measurements, aggregation is becoming challenging and infeasible. In this paper, we propose distributed randomized kaczmarz that performs in-network computation to solve least-squares over the network by avoiding costly communication. As a case study, we present a volcano monitoring application on a distributed CORE emulator and use real data from Mt. St. Helens to evaluate our proposed method.
Keywords :
geophysical techniques; least mean squares methods; seismology; sensor fusion; wireless sensor networks; CORE emulator; CPS; Mt. St. Helens; distributed cyber-physical system; distributed randomized Kaczmarz; environmental monitoring; least-squares problem; seismic imaging; smart grid; structural health monitoring; wireless sensor network; Algorithm design and analysis; Convergence; Earthquakes; Monitoring; Tomography; Volcanoes; Wireless sensor networks; Distributed Computing; Gossip Methods; Iterative Methods; Least-squares; Mesh Network; Randomized Kaczmarz;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Distributed Computing in Sensor Systems (DCOSS), 2015 International Conference on
Conference_Location :
Fortaleza
Type :
conf
DOI :
10.1109/DCOSS.2015.27
Filename :
7165035
Link To Document :
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