Utilize este identificador para referenciar este registo: https://hdl.handle.net/10316/108075
Título: A Framework for Knowledge Discovery from Wireless Sensor Networks in Rural Environments: A Crop Irrigation Systems Case Study
Autor: González-Briones, Alfonso
Castellanos-Garzón, José A. 
Mezquita Martín, Yeray
Prieto, Javier
Corchado, Juan M.
Data: 2018
Editora: Hindawi
Projeto: European Social Fund (Operational Programme 2014–2020 for Castilla y Le´on, EDU/128/2015 BOCYL) 
“MOVIURBAN:Máquina Social para la Gestión Sostenible de Ciudades Inteligentes: Movilidad Urbana, Datos Abiertos, Sensores Móviles”, ID SA070U 16, project cofinanced by Junta Castilla y León, Consejería de Educación, and FEDER funds 
Título da revista, periódico, livro ou evento: Wireless Communications and Mobile Computing
Volume: 2018
Resumo: This paper presents the design and development of an innovativemultiagent system based on virtual organizations.Themultiagent system manages information from wireless sensor networks for knowledge discovery and decision making in rural environments. The multiagent system has been built over the cloud computing paradigm to provide better flexibility and higher scalability for handling both small- and large-scale projects.The development of wireless sensor network technology has allowed for its extension and application to the rural environment, where the lives of the people interacting with the environment can be improved. The use of “smart” technologies can also improve the efficiency and effectiveness of rural systems. The proposed multiagent system allows us to analyse data collected by sensors for decision making in activities carried out in a rural setting, thus, guaranteeing the best performance in the ecosystem. Since water is a scarce natural resource that should not be wasted, a case study was conducted in an agricultural environment to test the proposed system’s performance in optimizing the irrigation system in corn crops. The architecture collects information about the terrain and the climatic conditions through a wireless sensor network deployed in the crops. This way, the architecture can learn about the needs of the crop and make efficient irrigation decisions. The obtained results are very promising when compared to a traditional automatic irrigation system.
URI: https://hdl.handle.net/10316/108075
ISSN: 1530-8669
1530-8677
DOI: 10.1155/2018/6089280
Direitos: openAccess
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