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A Framework for Sub-Seasonal to Seasonal Integrated Agricultural Drought Prediction System overIndia.

Implementing Organization

IIT Bombay, Maharashtra,
Principal Investigator
PI: Dr. Karthikeyan Lanka Centre of Studies in Resources Engineering (CSRE)
IIT Bombay, Maharashtra, Powai, Mumbai, Maharashtra 400076 PI: Dr. Karthikeyan Lanka Centre of Studies in Resources Engineering (CSRE), IIT Bombay, Maharashtra, Powai, Mumbai, Maharashtra 400076
karthikl@iitb.ac.in

Project Overview

Agricultural droughts – which occur due to deficit in soil water content – threaten the food security due to theirimpact on crop yields. There is a need to model these droughts to assist the stakeholders (government and farmers) for an effective crop management to sustain the crop productivity. Satellite remote sensing has enabled observation soil moisture, precipitation and vegetation dynamics, among others, at continental and global scales over the past four decades. Machine learning gained importance recently due to theability to learn from the abundant data that has been accumulated from satellite sensors and other sources. This project aims to use state-of-the-art machine learning techniques to model and forecast agricultural droughts at sub-seasonal to seasonal (S2S) scales over India. The agricultural drought shallbe modelled in an integrated manner by accounting the effects of soil moisture and vegetation. The project proposes a hybrid forecasting system that combines statistical and dynamical forecasts, which are obtained from ML algorithms. The methodology shall be implemented over India. This project cansupport NADAMS, an existing drought monitoring system by Government of India, and shall contribute towards establishing a near-real-time S2S drought forecasting system in India.
Funding Organization
Quick Information
Area of Research
Earth, Atmosphere & Environment Sciences
Focus Area
Atmospheric Science
Start Date
2022
Status
ongoing
Output
No. of Research Paper
00
Technologies (If Any)
00
No. of PhD Produced
00
Publications
00
No. of Patents
Filed : 00
Grant : 00
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