Artificial intelligence to predict soil temperatures by development of novel model

被引:14
作者
Mampitiya, Lakindu [1 ]
Rozumbetov, Kenjabek [2 ]
Rathnayake, Namal [3 ]
Erkudov, Valery [4 ]
Esimbetov, Adilbay [2 ]
Arachchi, Shanika [5 ]
Kantamaneni, Komali [6 ,7 ]
Hoshino, Yukinobu [8 ]
Rathnayake, Upaka [9 ]
机构
[1] Water Resources Management & Soft Comp Res Lab, Millennium City 10150, Sri Lanka
[2] Samarkand State Univ Vet Med Anim Husb & Biotechno, Dept Anat Physiol & Biochem Anim, Nukus Branch, Nukus 230100, Uzbekistan
[3] Univ Tokyo, Fac Engn, Dept Civil Engn, 1 Chome-1-1 Yayoi, Bunkyo City, Tokyo 1138656, Japan
[4] St Petersburg State Pediat Med Univ, Dept Normal Physiol, St Petersburg 194100, Russia
[5] Atlantic Technol Univ, Fac Engn & Technol, Dept Elect & Mech Engn, Letterkenny F92 FC93, Ireland
[6] Univ Cent Lancashire, UN SPIDER UK Reg Support Off, Preston PR1 2HE, England
[7] Univ Cent Lancashire, Sch Engn, Preston PR1 2HE, England
[8] Kochi Univ Technol, Sch Syst Engn, 185 Miyanokuchi, Kami, Kochi 7828502, Japan
[9] Atlantic Technol Univ, Fac Engn & Design, Dept Civil Engn & Construct, Sligo F91 YW50, Ireland
关键词
Artificial intelligence; Climatic parameters; Machine learning; Prediction; Soil temperature; Uzbekistan; BLUE PHASE; LIQUID-CRYSTAL; STABILIZATION; ISOMERIZATION;
D O I
10.1038/s41598-024-60549-x
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Soil temperatures at both surface and various depths are important in changing environments to understand the biological, chemical, and physical properties of soil. This is essential in reaching food sustainability. However, most of the developing regions across the globe face difficulty in establishing solid data measurements and records due to poor instrumentation and many other unavoidable reasons such as natural disasters like droughts, floods, and cyclones. Therefore, an accurate prediction model would fix these difficulties. Uzbekistan is one of the countries that is concerned about climate change due to its arid climate. Therefore, for the first time, this research presents an integrated model to predict soil temperature levels at the surface and 10 cm depth based on climatic factors in Nukus, Uzbekistan. Eight machine learning models were trained in order to understand the best-performing model based on widely used performance indicators. Long Short-Term Memory (LSTM) model performed in accurate predictions of soil temperature levels at 10 cm depth. More importantly, the models developed here can predict temperature levels at 10 cm depth with the measured climatic data and predicted surface soil temperature levels. The model can predict soil temperature at 10 cm depth without any ground soil temperature measurements. The developed model can be effectively used in planning applications in reaching sustainability in food production in arid areas like Nukus, Uzbekistan.
引用
收藏
页数:16
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