2022
DOI: 10.17485/ijst/v15i46.1442
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Monitoring Environment Parameters of Gerbera Flower Cultivation in Greenhouse using Internet of Things

Abstract: Objectives: To propose a system based on monitoring and analyzing of greenhouse environment, built for cultivating Gerbera with advanced technologies like the Internet of Things(IoT), Android applications, and cloud. Methods: To ensure optimal growth of the plant in a greenhouse, smart applications with sensors and Mobile apps are implemented for remote monitoring. Sensors are attached to the Arduino interface which collects and broadcasts the data onto the IoT cloud. This cloud platform (Ubidots) creates real… Show more

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Cited by 1 publication
(3 citation statements)
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“…Chakraborty A et al 's (3) integration of neural networks for pest detection contributes to more accurate monitoring in agriculture, aiding in the development of crop recommendation models by identifying and mitigating potential threats to crop health. Srivani P et al 's (4) monitoring of environment parameters in Gerbera flower cultivation using IoT contributes to the development of more responsive and adaptive crop recommendation models. Arshad J et al 's (19) intelligent greenhouse monitoring and control scheme contributes to the optimization of environmental conditions for crop growth, influencing the development of more accurate crop recommendation models.…”
Section: Related Workmentioning
confidence: 99%
See 2 more Smart Citations
“…Chakraborty A et al 's (3) integration of neural networks for pest detection contributes to more accurate monitoring in agriculture, aiding in the development of crop recommendation models by identifying and mitigating potential threats to crop health. Srivani P et al 's (4) monitoring of environment parameters in Gerbera flower cultivation using IoT contributes to the development of more responsive and adaptive crop recommendation models. Arshad J et al 's (19) intelligent greenhouse monitoring and control scheme contributes to the optimization of environmental conditions for crop growth, influencing the development of more accurate crop recommendation models.…”
Section: Related Workmentioning
confidence: 99%
“…Limitations in the current state of crop recommendation systems hinder their ability to manage complex datasets that mirror the dynamic interactions within agricultural environments. Traditional machine learning (ML) techniques often fall short of adequately addressing these complexities, leading to recommendations that may not be sufficiently accurate or adaptable to evolving conditions (3,4) . The burgeoning field of advanced ensemble learning has begun to demonstrate its capacity to overcome these challenges by providing more robust and accurate decision support (5)(6)(7) .…”
Section: Introductionmentioning
confidence: 99%
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