Please use this identifier to cite or link to this item: http://hdl.handle.net/20.500.12188/24041
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dc.contributor.authorKulakov, Andreaen_US
dc.contributor.authorDavchev, Danchoen_US
dc.date.accessioned2022-11-01T12:26:49Z-
dc.date.available2022-11-01T12:26:49Z-
dc.date.issued2007-07-01-
dc.identifier.urihttp://hdl.handle.net/20.500.12188/24041-
dc.description.abstractAn adaptation of one popular model of neuralnetworks algorithm (ART model) in the field of wireless sensor networks is demonstrated in this paper. The important advantages of the ART class algorithms such as simple parallel distributed computation, distributed storage, data robustness and autoclassification of sensor readings are confirmed within the proposed architecture consisting of one clusterhead which collects only classified input data from the other units. This architecture provides a high dimensionality reduction and additional communication savings, since only identification numbers of the classified input data are passed to the clusterhead instead of the whole input samples. We have adapted and implemented the FuzzyART neural-network algorithm and used it for initial clustering of the sensor data as a sort of pattern recognition. This adaptation was made specifically for MicaZ sensor motes by solving mainly problems concerning the small memory capacity ofthe motes. At the final clusterhead - server, the data are stored in a database and the results of the data processing are continuously presented in a classification graph.en_US
dc.publisherIEEEen_US
dc.titleIntelligent wireless sensor networks using fuzzyart neural-networksen_US
dc.typeProceedingsen_US
dc.relation.conference2007 12th IEEE Symposium on Computers and Communicationsen_US
item.fulltextWith Fulltext-
item.grantfulltextopen-
crisitem.author.deptFaculty of Computer Science and Engineering-
crisitem.author.deptFaculty of Computer Science and Engineering-
Appears in Collections:Faculty of Computer Science and Engineering: Conference papers
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