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Development of an ultrasonic wave emission system based on multimedia database in a smart farm

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Abstract

Due to the development of the recent ICT (Information and Communication Technology), ICT has been applied to the agriculture and it is improving the productivity and quality of the crop through its utilization. In addition, with the realization of fast networks like 5G, IoT (Internet of Things) technology which can link various things around us has been applied in various aspects of life. Consequently, the services and related markets applying it are expected to grow greatly in the future. On the other hand, in the field of crop cultivation, it was possible to improve productivity by spraying fertilizer or pesticide on crops in the past, but for consumers who seek healthy food, they want to be eco-friendly, and cause no harm to the health of crops. In this paper, we develop an ultrasonic wave emission system based on multimedia database in a smart farm using ICT. Through this, environmental information of crops growing in smart farm is collected by using IoT device and is managed by multimedia database. In addition, by providing an optimal environment through ultrasonic wave emission, we can promote crop growth and suppress diseases and pests. Also, this system stores and manages multimedia data such as temperature, humidity, and ultrasonic waves, and suggests a method of extracting knowledge information for ultrasonic emission based on this. In order to prevent transmission delay time between each component, we also propose optimization methods for database processing. Using the system developed in this paper, it will be possible to make consumers interested in finding healthy food by cultivating more eco-friendly crops.

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References

  1. AlZu’bi S, Hawashin B, Mujahed M, Jararweh Y, Gupta BB (2019) An efficient employment of internet of multimedia things in smart and future agriculture. Multimed Tools Appl 78:1–25. https://doi.org/10.1007/s11042-019-7367-0

    Article  Google Scholar 

  2. Andrews D (2014). Modelling of Ultrasonic Transducers and Ultrasonic Wave Propagation for Commercial Applications using Finite Elements with Experimental Visualization of Waves for Validation, Excerpt from the Proceedings of the 2014 COMSOL Conference in Cambridge: 1–7

  3. Baral C, Gonzalez G, Son T (1998) Conceptual modeling and querying in multimedia databases. Multimed Tools Appl 7(1–2):37–66

    Article  Google Scholar 

  4. Chowdhury MEK, Lim H-S, Bae H (2014) Update on the effects of sound wave on plants. Research in Plant Disease 20(1):1–7

    Article  Google Scholar 

  5. Creath K, Schwartz GE (2004) Measuring effects of music, noise, and healing energy using a seed germination bioassay. J Altern Complement Med 10(1):113–122

    Article  Google Scholar 

  6. Gopal BG, Kuppusamy PG (2015) A comparative study on 4G and 5G technology for wireless applications. IOSR Journal of Electronics and Communication Engineering 10(6):67–72

    Google Scholar 

  7. Gubbi J, Buyya R, Marusic S, Palaniswami M (2013) Internet of things (IoT): a vision, architectural elements, and future directions. Futur Gener Comput Syst 29(7):1645–1660

    Article  Google Scholar 

  8. Hiratsuka A, Pathak DR (2013) Application of ultrasonic waves for the improvement of water treatment. Journal of Water Resource and Protection 5:604–610. https://doi.org/10.4236/jwarp.2013.56061

    Article  Google Scholar 

  9. Kamilaris A, Gao F, Prenafeta-Boldú F X, Ali M I (2016) Agri-IoT: a semantic framework for internet of things-enabled smart farming applications. In: 2016 IEEE 3rd world forum on internet of things (WF-IoT) (pp. 442-447). IEEE

  10. Kim YG, Son YR, Park BR (2012) Analysis of physiological alterations in development and mating behavior by ultrasound treatment in the beet armyworm, Spodoptera exigua. Korean Journal of Applied Entomology 51(3):223–230. https://doi.org/10.5656/KSAE.2012.05.0.029

    Article  Google Scholar 

  11. Lim LJ, Sambas H, MarcusGoh NC, Kawada T, JosephNg PS (2017) ScareDuino: smart-farming with IoT. International Journal of Scientific Engineering and Technology 6(6):207–210

    Article  Google Scholar 

  12. Torbjilrn Lofqvist (1997). Ultrasonic wave attenuation and phase velocity in a paper-fibre suspension, 1997 Ieee Ultrasonics Symposium: 841–844

  13. Mishra D, Vijayakumar P, Sureshkumar V, Amin R, Islam SH, Gope P (2018) Efficient authentication protocol for secure multimedia communications in IoT-enabled wireless sensor networks. Multimed Tools Appl 77(14):18295–18325

    Article  Google Scholar 

  14. Park Y, Na MH, Cho W (2019) Determination on environmental factors and growth factors affecting tomato yield using pattern recognition techniques. Multimed Tools Appl 78, 28815-28834. https://doi.org/10.1007/s11042-019-7212-5

  15. Pivoto D, Waquil PD, Talamini E, Finocchio CP, Dalla Corte VF, de Vargas MG (2018) Scientific development of smart farming technologies and their application in Brazil. Information Processing in Agriculture 5(1):21–32

    Article  Google Scholar 

  16. Prasad S, Kumar PS, Ghosh D (2017) An efficient low vision plant leaf shape identification system for smart phones. Multimed Tools Appl 76(5):6915–6939

    Article  Google Scholar 

  17. RAMTEKE AA, Meshram UP, Yaul AR (2015) Effect of Ultrasonic Waves on Seed Germination of Lycopersicon esculentum and Anethum graveolens. International Journal of Chemical and Physical Sciences 4 Special Issue–NCSC:333–336

    Google Scholar 

  18. Ray PP (2017) Internet of things for smart agriculture: technologies, practices and future direction. Journal of Ambient Intelligence and Smart Environments 9(4):395–420

    Article  Google Scholar 

  19. Shin J, Liu Z, Kim CM, Mun HJ (2018) Writer identification using intra-stroke and inter-stroke information for security enhancements in P2P systems. Peer-to-Peer Networking and Applications 11(6):1166–1175

    Article  Google Scholar 

  20. Shirehjini AA, Semsar A (2017) Human interaction with IoT-based smart environments. Multimed Tools Appl 76(11):13343–13365

    Article  Google Scholar 

  21. Wang Y, Song K (2011) A new approach to realize UART. In: Proceedings of 2011 international conference on Electronic & Mechanical Engineering and information technology (Vol. 5, pp. 2749-2752). IEEE

  22. Zha YP, Lei CL (2012) Effects of ultrasound-stress on antioxidant enzyme activities of Helicoverpa armigera (Hu¨bner) (Lepidoptera: Noctuidae). Journal of Agricultural and Urban Entomology 28:34–41

    Article  Google Scholar 

  23. Zhang L, Yang Y, Wei X, Yao W (2018) The study of non-detection zones in conventional long-distance ultrasonic guided wave inspection on square steel bars. Appl Sci 8(1):129. https://doi.org/10.3390/app8010129

    Article  Google Scholar 

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Correspondence to Hyung-Jin Mun.

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Choi, SH., Ghil, MS. & Mun, HJ. Development of an ultrasonic wave emission system based on multimedia database in a smart farm. Multimed Tools Appl 80, 34767–34785 (2021). https://doi.org/10.1007/s11042-019-08369-4

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