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Agri-informatics and eco-friendly innovations for a secure food future
紀錄類型:
書目-語言資料,印刷品 : Monograph/item
正題名/作者:
Agri-informatics and eco-friendly innovations for a secure food future/ edited by Suraj Kumar Singh ... [et al.].
其他作者:
Singh, Suraj Kumar.
出版者:
Cham :Springer Nature Switzerland : : 2025.,
面頁冊數:
vii, 430 p. :ill., digital ; : 24 cm.;
Contained By:
Springer Nature eBook
標題:
Agriculture - Remote sensing. -
電子資源:
https://doi.org/10.1007/978-3-032-02118-2
ISBN:
9783032021182
Agri-informatics and eco-friendly innovations for a secure food future
Agri-informatics and eco-friendly innovations for a secure food future
[electronic resource] /edited by Suraj Kumar Singh ... [et al.]. - Cham :Springer Nature Switzerland :2025. - vii, 430 p. :ill., digital ;24 cm. - Smart agriculture,v. 142731-3484 ;. - Smart agriculture ;v. 7..
Advanced Remote Sensing Techniques for Cropland Monitoring using the AquaCrop Model -- Enhancing Phosphorus Sustainability in Mungbean via PROM and Microbial Inoculants -- Biparjoy Cyclone Assessment -- Crop Acreage and Yield Estimation Using Remote Sensing -- Multi Criteria Land Suitability Analysis for Agriculture in Jalpaiguri District West Bengal Using AHP and GIS Techniques.
Food security is a critical global challenge, aiming to provide sufficient and healthy food for all. The United Nations has set Sustainable Development Goals (SDGs) to achieve global prosperity while ensuring environmental protection. Machine learning (ML) techniques play a crucial role in understanding and predicting food security. Key applications include cropland mapping, crop type identification, yield prediction, and field delineation. Challenges include handling complex data and ensuring rigorous evaluation. Looking ahead, advanced techniques such as AI and interdisciplinary collaborations will drive progress toward a hunger-free and sustainable future. This book concentrates on the fundamentals and uses of environment science perspective on Food security using cutting-edge methods of spatial information and artificial intelligence. Experts and researchers in the fields of agriculture, environmental science and engineering, disaster management, remote sensing, and geographic information systems have contributed to this volume.
ISBN: 9783032021182
Standard No.: 10.1007/978-3-032-02118-2doiSubjects--Topical Terms:
715013
Agriculture
--Remote sensing.
LC Class. No.: G143
Dewey Class. No.: 630.2085
Agri-informatics and eco-friendly innovations for a secure food future
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Food security is a critical global challenge, aiming to provide sufficient and healthy food for all. The United Nations has set Sustainable Development Goals (SDGs) to achieve global prosperity while ensuring environmental protection. Machine learning (ML) techniques play a crucial role in understanding and predicting food security. Key applications include cropland mapping, crop type identification, yield prediction, and field delineation. Challenges include handling complex data and ensuring rigorous evaluation. Looking ahead, advanced techniques such as AI and interdisciplinary collaborations will drive progress toward a hunger-free and sustainable future. This book concentrates on the fundamentals and uses of environment science perspective on Food security using cutting-edge methods of spatial information and artificial intelligence. Experts and researchers in the fields of agriculture, environmental science and engineering, disaster management, remote sensing, and geographic information systems have contributed to this volume.
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