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Machine Learning Based Climate Projections for Sustainable Potato Production in Prince Edward Island

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Release : 2021
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Kind : eBook
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Book Synopsis Machine Learning Based Climate Projections for Sustainable Potato Production in Prince Edward Island by : Junaid Maqsood

Download or read book Machine Learning Based Climate Projections for Sustainable Potato Production in Prince Edward Island written by Junaid Maqsood. This book was released on 2021. Available in PDF, EPUB and Kindle. Book excerpt: Prince Edward Island (PEI) is the largest potato-producing province in Canada, and most of its croplands are rainfed. Climate change impacts all fields of life, including agriculture. Thus, there is a need to understand better the historical variations and future projections of climate change and its patterns for PEI. Climate change and its impacts on potato tuber yield have been evaluated in this thesis under three objectives. For the first objective, twenty climate extreme indices were computed with the help of ClimPACT2 software for 30 years (1989-2018) to assess their impacts on the potato tuber yield. The average of daily mean temperature, mean daily minimum temperature (TNm), and the occurrence of continuous dry days (CDD) significantly increased, while daily temperature range (DTR), frost days, cold days, cold nights, and warmest days (TXx) showed decreasing trends during the potato growing seasons (May-October) for the past three decades. The principal component analysis results showed that DTR, TXx, CDD, and TNm were the main indices, defining ~39% variations in tuber yield. However, DTR, TXx, CDD, and TNm individual contributions to the variations in tuber yield were recorded to be 21, 19, 16, and 4%, respectively. For the second objective, the Hargreaves method was used to calculate reference evapotranspiration (ET0) for western, central, and eastern parts of PEI using their two input parameters: daily maximum temperature (Tmax) and daily minimum temperature (Tmin). The Tmax and Tmin from the Canadian Earth System Model Second Generation (CanESM2) were downscaled with the help of statistical downscaling model (SDSM) for three future periods, i.e., the 2020s (2011-2040), 2050s (2041-2070), and 2080s (2071-2100) under three representative concentration pathways (RCP's) including RCP2.6, 4.5, and 8.5. Temporally, there were major changes in Tmax, Tmin, and ET0 for the 2080s under RCP8.5. In the next steps, a one-dimensional convolutional neural network (1D-CNN), long-short term memory (LSTM), and multilayer perceptron (MLP) were used for estimating ET0 for historical and future periods. High coefficient of correlation (r > 0.95) values for both calibration and validation periods showed the potential of the artificial neural networks in ET0 estimation. For the third objective, SDSM, MLP, random forest (RF), and support vector regression (SVR) were used to downscale Tmax, Tmin, and precipitation at eight meteorological stations located in PEI. The comparison results depicted the better performance of MLP to downscale the climatic parameters (Tmax, Tmin, and precipitation). Therefore, the MLP algorithm was used to project the climatic parameters for the future period (2006-2100) under RCP2.6, 4.5, and 8.5. The linear scaling method was used to reduce the biases in the projected data and get real results. The results of the analysis of the data from the annual and the growing season showed that Tmax and Tmin continually increased in the future under all the RCPs, but maximum increment was noticed under RCP8.5. The spatial patterns of average annual precipitation in the growing season showed high, moderate, and low precipitation at the PEI's eastern, central, and western parts for the historical (1976-2003) and future periods. This study will help the decision-makers and farmers to understand better the variations and patterns of the climatic parameters for the historical and future periods in relation to agriculture. The results may also help to develop irrigation scheduling in response to climate change to meet sustainable development goals.

Sustainable Potato Production and the Impact of Climate Change

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Author :
Release : 2016-11-15
Genre : Technology & Engineering
Kind : eBook
Book Rating : 162/5 ( reviews)

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Book Synopsis Sustainable Potato Production and the Impact of Climate Change by : Londhe, Sunil

Download or read book Sustainable Potato Production and the Impact of Climate Change written by Londhe, Sunil. This book was released on 2016-11-15. Available in PDF, EPUB and Kindle. Book excerpt: The potato is a significant food around the globe in the grand scheme of consumption. However, changes in the Earth’s climate are threatening to negatively impact the growth and production of agriculture, namely potatoes, which in turn will greatly alter the dimensions of food. Sustainable Potato Production and the Impact of Climate Change is an authoritative publication that provides the latest research on potato production in the future climate change scenario. Featuring exhaustive coverage on a variety of topics associated with food fundamentals such as, availability, stability, utilization, and accessibility, this reference work is an essential source for professionals, researchers and students seeking current research on the importance of potato cultivation.

Projection of Potato Production in Prince Edward Island

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Author :
Release : 1970
Genre : Potatoes
Kind : eBook
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Book Synopsis Projection of Potato Production in Prince Edward Island by : Ann Cunningham

Download or read book Projection of Potato Production in Prince Edward Island written by Ann Cunningham. This book was released on 1970. Available in PDF, EPUB and Kindle. Book excerpt:

The Potato Crop

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Author :
Release : 2019-12-03
Genre : Science
Kind : eBook
Book Rating : 835/5 ( reviews)

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Book Synopsis The Potato Crop by : Hugo Campos

Download or read book The Potato Crop written by Hugo Campos. This book was released on 2019-12-03. Available in PDF, EPUB and Kindle. Book excerpt: This book is open access under a CC BY 4.0 license. This book provides a fresh, updated and science-based perspective on the current status and prospects of the diverse array of topics related to the potato, and was written by distinguished scientists with hands-on global experience in research aspects related to potato. The potato is the third most important global food crop in terms of consumption. Being the only vegetatively propagated species among the world’s main five staple crops creates both issues and opportunities for the potato: on the one hand, this constrains the speed of its geographic expansion and its options for international commercialization and distribution when compared with commodity crops such as maize, wheat or rice. On the other, it provides an effective insulation against speculation and unforeseen spikes in commodity prices, since the potato does not represent a good traded on global markets. These two factors highlight the underappreciated and underrated role of the potato as a dependable nutrition security crop, one that can mitigate turmoil in world food supply and demand and political instability in some developing countries. Increasingly, the global role of the potato has expanded from a profitable crop in developing countries to a crop providing income and nutrition security in developing ones. This book will appeal to academics and students of crop sciences, but also policy makers and other stakeholders involved in the potato and its contribution to humankind’s food security.

Deep Learning for Sustainable Agriculture

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Release : 2022-01-09
Genre : Computers
Kind : eBook
Book Rating : 622/5 ( reviews)

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Book Synopsis Deep Learning for Sustainable Agriculture by : Ramesh Chandra Poonia

Download or read book Deep Learning for Sustainable Agriculture written by Ramesh Chandra Poonia. This book was released on 2022-01-09. Available in PDF, EPUB and Kindle. Book excerpt: The evolution of deep learning models, combined with with advances in the Internet of Things and sensor technology, has gained more importance for weather forecasting, plant disease detection, underground water detection, soil quality, crop condition monitoring, and many other issues in the field of agriculture. agriculture. Deep Learning for Sustainable Agriculture discusses topics such as the impactful role of deep learning during the analysis of sustainable agriculture data and how deep learning can help farmers make better decisions. It also considers the latest deep learning techniques for effective agriculture data management, as well as the standards established by international organizations in related fields. The book provides advanced students and professionals in agricultural science and engineering, geography, and geospatial technology science with an in-depth explanation of the relationship between agricultural inference and the decision-support amenities offered by an advanced mathematical evolutionary algorithm. Introduces new deep learning models developed to address sustainable solutions for issues related to agriculture Provides reviews on the latest intelligent technologies and algorithms related to the state-of-the-art methodologies of monitoring and mitigation of sustainable agriculture Illustrates through case studies how deep learning has been used to address a variety of agricultural diseases that are currently on the cutting edge Delivers an accessible explanation of artificial intelligence algorithms, making it easier for the reader to implement or use them in their own agricultural domain

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