Agriculture 5.0: artificial intelligence, IoT and machine learning
Material type: TextPublication details: CRC Press Boco Raton 2021Description: xvii, 224 pISBN:- 9780367646080
- 630.208563 AHM
Item type | Current library | Collection | Call number | Copy number | Status | Date due | Barcode | |
---|---|---|---|---|---|---|---|---|
Book | Indian Institute of Management LRC General Stacks | IT & Decisions Sciences | 630.208563 AHM (Browse shelf(Opens below)) | 1 | Available | 004200 |
Browsing Indian Institute of Management LRC shelves, Shelving location: General Stacks, Collection: IT & Decisions Sciences Close shelf browser (Hides shelf browser)
625.725028563 KAN Artificial intelligence in highway location and alignment optimization: | 629.8924019 NAM Trust in human-robot interaction | 629.895 HAR Statistical process monitoring using advanced data-driven and deep learning approaches: | 630.208563 AHM Agriculture 5.0: | 650 URB Digitalization cases: how organizations rethink their business for the digital age | 650.0285 COM Blockchain for business: IT principles into practice | 650.0285 HOD Business analytics using R - a practical approach |
Table of Contents
Chapter 1 Introduction to Precision Agriculture
Chapter 2 Smart Intelligent Precision Agriculture
Chapter 3 Adoption of Wireless Sensor Network (WSN) in
Smart Precision Agriculture
Chapter 4 IoT (Internet of Things) Based Agricultural
Systems
Chapter 5 AI (Artificial Intelligence) Driven Smart Agriculture
Chapter 6 Machine Learning (ML) Driven Agriculture
Chapter 7 Data-Driven Smart Farming
Chapter 8 Decision-Making and Decision-Support Systems
Chapter 9 Agriculture 5.0 – The Future
Chapter 10 Social and Economic Impacts
Chapter 11 Environmental Impact and Regulations
Agriculture 5.0: Artificial Intelligence, IoT & Machine Learning provides an interdisciplinary, integrative overview of latest development in the domain of smart farming. It shows how the traditional farming practices are being enhanced and modified by automation and introduction of modern scalable technological solutions that cut down on risks, enhance sustainability, and deliver predictive decisions to the grower, in order to make agriculture more productive. An elaborative approach has been used to highlight the applicability and adoption of key technologies and techniques such WSN, IoT, AI and ML in agronomic activities ranging from collection of information, analysing and drawing meaningful insights from the information which is more accurate, timely and reliable.It synthesizes interdisciplinary theory, concepts, definitions, models and findings involved in complex global sustainability problem-solving, making it an essential guide and reference. It includes real-world examples and applications making the book accessible to a broader interdisciplinary readership.
This book clarifies hoe the birth of smart and intelligent agriculture is being nurtured and driven by the deployment of tiny sensors or AI/ML enabled UAV’s or low powered Internet of Things setups for the sensing, monitoring, collection, processing and storing of the information over the cloud platforms. This book is ideal for researchers, academics, post-graduate students and practitioners of agricultural universities, who want to embrace new agricultural technologies for Determination of site-specific crop requirements, future farming strategies related to controlling of chemical sprays, yield, price assessments with the help of AI/ML driven intelligent decision support systems and use of agri-robots for sowing and harvesting. The book will be covering and exploring the applications and some case studies of each technology, that have heavily made impact as grand successes. The main aim of the book is to give the readers immense insights into the impact and scope of WSN, IoT, AI and ML in the growth of intelligent digital farming and Agriculture revolution 5.0.The book also focuses on feasibility of precision farming and the problems faced during adoption of precision farming techniques, its potential in India and various policy measures taken all over the world. The reader can find a description of different decision support tools like crop simulation models, their types, and application in PA.
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