dc.contributorUniversidade de São Paulo (USP)
dc.contributorUniversidade Estadual Paulista (Unesp)
dc.date.accessioned2014-05-27T11:26:56Z
dc.date.available2014-05-27T11:26:56Z
dc.date.created2014-05-27T11:26:56Z
dc.date.issued2012-08-22
dc.identifierProceedings of the International Joint Conference on Neural Networks.
dc.identifierhttp://hdl.handle.net/11449/73507
dc.identifier10.1109/IJCNN.2012.6252477
dc.identifier2-s2.0-84865104073
dc.description.abstractWireless Sensor Networks (WSN) are a special kind of ad-hoc networks that is usually deployed in a monitoring field in order to detect some physical phenomenon. Due to the low dependability of individual nodes, small radio coverage and large areas to be monitored, the organization of nodes in small clusters is generally used. Moreover, a large number of WSN nodes is usually deployed in the monitoring area to increase WSN dependability. Therefore, the best cluster head positioning is a desirable characteristic in a WSN. In this paper, we propose a hybrid clustering algorithm based on community detection in complex networks and traditional K-means clustering technique: the QK-Means algorithm. Simulation results show that QK-Means detect communities and sub-communities thus lost message rate is decreased and WSN coverage is increased. © 2012 IEEE.
dc.languageeng
dc.relationProceedings of the International Joint Conference on Neural Networks
dc.rightsAcesso aberto
dc.sourceScopus
dc.subjectCluster head
dc.subjectCluster-head nodes
dc.subjectClustering techniques
dc.subjectCommunity detection
dc.subjectComplex networks
dc.subjectHybrid clustering algorithm
dc.subjectK-means
dc.subjectK-means clustering techniques
dc.subjectPhysical phenomena
dc.subjectRadio coverage
dc.subjectSmall clusters
dc.subjectClustering algorithms
dc.subjectNeural networks
dc.subjectPopulation dynamics
dc.subjectSensor nodes
dc.titleQK-Means: A clustering technique based on community detection and K-Means for deployment of cluster head nodes
dc.typeActas de congresos


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