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dc.contributor.authorAriza-Colpas, Paola
dc.contributor.authorSanchez-Moreno, Hernando
dc.contributor.authorPineres-Melo, Marlon
dc.contributor.authorMorales-Ortega, Roberto
dc.contributor.authorAyala-Mantilla, Cristian
dc.contributor.authorVillate-Daza, Diego
dc.contributor.authorDe-la Hoz-, Franco Emiro
dc.contributor.authorCollazos-Morales, Carlos
dc.date.accessioned2020-04-22T20:38:35Z
dc.date.available2020-04-22T20:38:35Z
dc.date.issued2020
dc.identifier.issn18770509
dc.identifier.urihttps://hdl.handle.net/20.500.12442/5152
dc.description.abstractThis article aims to show the components of a wireless sensor system to measure temperature, conductivity and pressure at the mouth of the Magdalena River - Colombia. This analysis was carried out jointly with the General Maritime Directorate of Colombia. The measurements will be carried out underwater, with the buoys currently available in the navigable channel, which will work with solar energy and the data will be sent via Bluetooth, Wifi or Ethernet. With the data received by the sensor network, different analyzes will be carried out through the implementation of different data mining techniques, which will support the decision making of government entities. Through the implementation of this architecture, different behaviors found in the estuary will be identified and there will be real-time information that favors maritime safety in the navigable channel.eng
dc.format.mimetypepdfspa
dc.language.isoengeng
dc.publisherElseviereng
dc.rightsAttribution-NonCommercial-NoDerivatives 4.0 Internacional*
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/*
dc.sourceProcedia Computer Scienceeng
dc.sourceVol. 170 (2020)
dc.subjectWireless systemeng
dc.subjectConductivity Sensoreng
dc.subjectTemperature Sensoreng
dc.subjectPressure sensoreng
dc.titleImplementation of a wireless system architecture of conductivity temperature and pressure sensors for support the identification of the salt wedge and its impact on safety Maritime in estuary of the Magdalena River - A case studyeng
dc.typearticleeng
dcterms.referencesAtlantic Governorate Departmental Atlantic Leader Development Plan. Available in: http://www.atlantico.gov.co/images/stories/plan_desarrollo/plan_de_desarrollo_2016_2016_definiti vo.pdfeng
dcterms.referencesAkyldiz, I.F., Pompili, D., & Melodia, T. (2005). Underwater acoustic sensor networks. Ad Hoc networks.eng
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dcterms.referencesTrevathan, J., Johnstone, R., Chiffings, T., Atkinson, I., Bergmann, N., Read, W.,... Stevens, T. (2012). SEMAT — The Next Generation of Inexpensive Marine Environmental Monitoring and Measurement Systems. sensors, 9711-9748.eng
dcterms.referencesAbdou, A.A., Shaw, A., Mason, A., Al-Shamma’a, A., Cullen, J., & Wylie, S. (2011). Electromagnetic (EM) wave propagation for the development of an Underwater Wireless Sensor Network (WSN). Paper presented at the sensorseng
dcterms.referencesAriza-Colpas, P., Morales-Ortega, R., Piñeres-Melo, M.A., Melendez-Pertuz, F., Serrano-Torné, G., Hernandez-Sanchez, G., & Martínez-Osorio, H. (2019, September). Teleagro: iot applications for the georeferencing and detection of zeal in cattle. In IFIP International Conference on Computer Information Systems and Industrial Management (pp. 232-239). Springer, Cham.eng
dcterms.referencesAriza-Colpas P., Morales-Ortega R., Piñeres-Melo M.A., Melendez-Pertuz F., Serrano-Torné G., Hernandez-Sanchez G., Collazos-Morales C. Teleagro: Software Architecture of Georeferencing and Detection of Heat of Cattle Workshop on Engineering Applications, Springer, Cham (2019), pp. 159-166 (October).eng
dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
oaire.versioninfo:eu-repo/semantics/publishedVersionspa
dc.type.driverarticleeng
dc.identifier.doihttps://doi.org/10.1016/j.procs.2020.03.070


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