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1.
Sensors (Basel) ; 20(18)2020 Sep 10.
Artículo en Inglés | MEDLINE | ID: mdl-32927721

RESUMEN

The swarm intelligence (SI)-based bio-inspired algorithm demonstrates features of heterogeneous individual agents, such as stability, scalability, and adaptability, in distributed and autonomous environments. The said algorithm will be applied to the communication network environment to overcome the limitations of wireless sensor networks (WSNs). Herein, the swarm-intelligence-centric routing algorithm (SICROA) is presented for use in WSNs that aim to leverage the advantages of the ant colony optimization (ACO) algorithm. The proposed routing protocol addresses the problems of the ad hoc on-demand distance vector (AODV) and improves routing performance via collision avoidance, link-quality prediction, and maintenance methods. The proposed method was found to improve network performance by replacing the periodic "Hello" message with an interrupt that facilitates the prediction and detection of link disconnections. Consequently, the overall network performance can be further improved by prescribing appropriate procedures for processing each control message. Therefore, it is inferred that the proposed SI-based approach provides an optimal solution to problems encountered in a complex environment, while operating in a distributed manner and adhering to simple rules of behavior.


Asunto(s)
Inteligencia Artificial , Redes de Comunicación de Computadores , Tecnología Inalámbrica , Algoritmos
2.
Sensors (Basel) ; 18(11)2018 Nov 20.
Artículo en Inglés | MEDLINE | ID: mdl-30463363

RESUMEN

Crop diseases cannot be accurately predicted by merely analyzing individual disease causes. Only through construction of a comprehensive analysis system can users be provided with predictions of highly probable diseases. In this study, cloud-based technology capable of handling the collection, analysis, and prediction of agricultural environment information in one common platform was developed. The proposed Farm as a Service (FaaS) integrated system supports high-level application services by operating and monitoring farms as well as managing associated devices, data, and models. This system registers, connects, and manages Internet of Things (IoT) devices and analyzes environmental and growth information. In addition, the IoT-Hub network model was constructed in this study. This model supports efficient data transfer for each IoT device as well as communication for non-standard products, and exhibits high communication reliability even in poor communication environments. Thus, IoT-Hub ensures the stability of technology specialized for agricultural environments. The integrated agriculture-specialized FaaS system implements specific systems at different levels. The proposed system was verified through design and analysis of a strawberry infection prediction system, which was compared with other infection models.


Asunto(s)
Agricultura , Fragaria/crecimiento & desarrollo , Enfermedades de las Plantas/prevención & control , Dióxido de Carbono/análisis , Humedad , Concentración de Iones de Hidrógeno , Internet , Redes Neurales de la Computación , Tecnología de Sensores Remotos/métodos , Temperatura
3.
Sensors (Basel) ; 10(12): 11189-211, 2010.
Artículo en Inglés | MEDLINE | ID: mdl-22163520

RESUMEN

This paper proposes an agricultural environment monitoring server system for monitoring information concerning an outdoors agricultural production environment utilizing Wireless Sensor Network (WSN) technology. The proposed agricultural environment monitoring server system collects environmental and soil information on the outdoors through WSN-based environmental and soil sensors, collects image information through CCTVs, and collects location information using GPS modules. This collected information is converted into a database through the agricultural environment monitoring server consisting of a sensor manager, which manages information collected from the WSN sensors, an image information manager, which manages image information collected from CCTVs, and a GPS manager, which processes location information of the agricultural environment monitoring server system, and provides it to producers. In addition, a solar cell-based power supply is implemented for the server system so that it could be used in agricultural environments with insufficient power infrastructure. This agricultural environment monitoring server system could even monitor the environmental information on the outdoors remotely, and it could be expected that the use of such a system could contribute to increasing crop yields and improving quality in the agricultural field by supporting the decision making of crop producers through analysis of the collected information.


Asunto(s)
Agricultura/instrumentación , Redes de Comunicación de Computadores/instrumentación , Monitoreo del Ambiente/instrumentación , Tecnología de Sensores Remotos/instrumentación , Tecnología Inalámbrica/instrumentación , Agricultura/métodos , Algoritmos , Arquitectura , Monitoreo del Ambiente/métodos , Regulación y Control de Instalaciones , Sistemas de Información Geográfica/instrumentación , Modelos Biológicos , Tecnología de Sensores Remotos/métodos , Vitis
4.
Sensors (Basel) ; 10(12): 11566-89, 2010.
Artículo en Inglés | MEDLINE | ID: mdl-22163543

RESUMEN

Wireless Sensor Network (WSN) technology can facilitate advances in productivity, safety and human quality of life through its applications in various industries. In particular, the application of WSN technology to the agricultural area, which is labor-intensive compared to other industries, and in addition is typically lacking in IT technology applications, adds value and can increase the agricultural productivity. This study attempts to establish a ubiquitous agricultural environment and improve the productivity of farms that grow paprika by suggesting a 'Ubiquitous Paprika Greenhouse Management System' using WSN technology. The proposed system can collect and monitor information related to the growth environment of crops outside and inside paprika greenhouses by installing WSN sensors and monitoring images captured by CCTV cameras. In addition, the system provides a paprika greenhouse environment control facility for manual and automatic control from a distance, improves the convenience and productivity of users, and facilitates an optimized environment to grow paprika based on the growth environment data acquired by operating the system.


Asunto(s)
Agricultura/instrumentación , Capsicum/crecimiento & desarrollo , Redes de Comunicación de Computadores/instrumentación , Tecnología de Sensores Remotos/instrumentación , Tecnología Inalámbrica/instrumentación , Agricultura/métodos , Algoritmos , Automatización , Productos Agrícolas/crecimiento & desarrollo , Ambiente Controlado , Diseño de Equipo , Regulación y Control de Instalaciones , Humanos , Modelos Biológicos , Tecnología de Sensores Remotos/métodos
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