Epidemic Analytics for Decision Supports in COVID19 Crisis

Epidemic Analytics for Decision Supports in COVID19 Crisis
Author: Joao Alexandre Lobo Marques
Publisher: Springer Nature
Total Pages: 161
Release: 2022-05-20
Genre: Technology & Engineering
ISBN: 3030952819


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Covid-19 has hit the world unprepared, as the deadliest pandemic of the century. Governments and authorities, as leaders and decision makers fighting against the virus, enormously tap on the power of AI and its data analytics models for urgent decision supports at the greatest efforts, ever seen from human history. This book showcases a collection of important data analytics models that were used during the epidemic, and discusses and compares their efficacy and limitations. Readers who from both healthcare industries and academia can gain unique insights on how data analytics models were designed and applied on epidemic data. Taking Covid-19 as a case study, readers especially those who are working in similar fields, would be better prepared in case a new wave of virus epidemic may arise again in the near future.

Predictive Models for Decision Support in the COVID-19 Crisis

Predictive Models for Decision Support in the COVID-19 Crisis
Author: Joao Alexandre Lobo Marques
Publisher: Springer
Total Pages: 98
Release: 2020-12-01
Genre: Technology & Engineering
ISBN: 9783030619121


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COVID-19 has hit the world unprepared, as the deadliest pandemic of the century. Governments and authorities, as leaders and decision makers fighting the virus, enormously tap into the power of artificial intelligence and its predictive models for urgent decision support. This book showcases a collection of important predictive models that used during the pandemic, and discusses and compares their efficacy and limitations. Readers from both healthcare industries and academia can gain unique insights on how predictive models were designed and applied on epidemic data. Taking COVID19 as a case study and showcasing the lessons learnt, this book will enable readers to be better prepared in the event of virus epidemics or pandemics in the future.

Predictive Models for Decision Support in the COVID-19 Crisis

Predictive Models for Decision Support in the COVID-19 Crisis
Author: Joao Alexandre Lobo Marques
Publisher:
Total Pages: 0
Release: 2021
Genre:
ISBN: 9783030619145


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COVID-19 has hit the world unprepared, as the deadliest pandemic of the century. Governments and authorities, as leaders and decision makers fighting the virus, enormously tap into the power of artificial intelligence and its predictive models for urgent decision support. This book showcases a collection of important predictive models that used during the pandemic, and discusses and compares their efficacy and limitations. Readers from both healthcare industries and academia can gain unique insights on how predictive models were designed and applied on epidemic data. Taking COVID19 as a case study and showcasing the lessons learnt, this book will enable readers to be better prepared in the event of virus epidemics or pandemics in the future.

COVID-19: Prediction, Decision-Making, and its Impacts

COVID-19: Prediction, Decision-Making, and its Impacts
Author: K.C. Santosh
Publisher: Springer Nature
Total Pages: 137
Release: 2020-12-11
Genre: Technology & Engineering
ISBN: 9811596824


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The book aims to outline the issues of AI and COVID-19, involving predictions,medical support decision-making, and possible impact on human life. Starting withmajor COVID-19 issues and challenges, it takes possible AI-based solutions forseveral problems, such as public health surveillance, early (epidemic) prediction,COVID-19 positive case detection, and robotics integration against COVID-19.Beside mathematical modeling, it includes the necessity of changes in innovationsand possible COVID-19 impacts. The book covers a clear understanding of AI-driven tools and techniques, where pattern recognition, anomaly detection, machinelearning, and data analytics are considered. It aims to include the wide range ofaudiences from computer science and engineering to healthcare professionals.

Data Analytics for Pandemics

Data Analytics for Pandemics
Author: Gitanjali Rahul Shinde
Publisher: CRC Press
Total Pages: 85
Release: 2020-08-30
Genre: Computers
ISBN: 1000204413


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Epidemic trend analysis, timeline progression, prediction, and recommendation are critical for initiating effective public health control strategies, and AI and data analytics play an important role in epidemiology, diagnostic, and clinical fronts. The focus of this book is data analytics for COVID-19, which includes an overview of COVID-19 in terms of epidemic/pandemic, data processing and knowledge extraction. Data sources, storage and platforms are discussed along with discussions on data models, their performance, different big data techniques, tools and technologies. This book also addresses the challenges in applying analytics to pandemic scenarios, case studies and control strategies. Aimed at Data Analysts, Epidemiologists and associated researchers, this book: discusses challenges of AI model for big data analytics in pandemic scenarios; explains how different big data analytics techniques can be implemented; provides a set of recommendations to minimize infection rate of COVID-19; summarizes various techniques of data processing and knowledge extraction; enables users to understand big data analytics techniques required for prediction purposes.

Decision Sciences for COVID-19

Decision Sciences for COVID-19
Author: Said Ali Hassan
Publisher: Springer Nature
Total Pages: 475
Release: 2022-02-28
Genre: Business & Economics
ISBN: 3030870197


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This book presents best practices involving applications of decision sciences, business tactics and behavioral sciences for COVID-19. Addressing concrete problems in these vital fields, it focuses on theoretical and methodological investigations of managerial decisions that drive production and service enterprises’ productivity and success. Moreover, it presents optimization techniques and tools that can also be adopted for other applications in various research areas after a thorough analysis of the specific problem. The book is intended for researchers and practitioners seeking optimum solutions to real-life problems in various application areas concerning COVID-19, helping them make scientifically founded decisions.

Supporting the COVID-19 Pandemic Response

Supporting the COVID-19 Pandemic Response
Author: Amanda Kvalsvig
Publisher:
Total Pages:
Release: 2020
Genre: COVID-19 (Disease)
ISBN:


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"The information plan presented here is designed to support decision-makers to anticipate information needs and prioritise information resources to align with the relevant pandemic phase" --Introduction.

Data Science Advancements in Pandemic and Outbreak Management

Data Science Advancements in Pandemic and Outbreak Management
Author: Asimakopoulou, Eleana
Publisher: IGI Global
Total Pages: 255
Release: 2021-04-09
Genre: Computers
ISBN: 1799867382


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Pandemics are disruptive. Thus, there is a need to prepare and plan actions in advance for identifying, assessing, and responding to such events to manage uncertainty and support sustainable livelihood and wellbeing. A detailed assessment of a continuously evolving situation needs to take place, and several aspects must be brought together and examined before the declaration of a pandemic even happens. Various health organizations; crisis management bodies; and authorities at local, national, and international levels are involved in the management of pandemics. There is no better time to revisit current approaches to cope with these new and unforeseen threats. As countries must strike a fine balance between protecting health, minimizing economic and social disruption, and respecting human rights, there has been an emerging interest in lessons learned and specifically in revisiting past and current pandemic approaches. Such approaches involve strategies and practices from several disciplines and fields including healthcare, management, IT, mathematical modeling, and data science. Using data science to advance in-situ practices and prompt future directions could help alleviate or even prevent human, financial, and environmental compromise, and loss and social interruption via state-of-the-art technologies and frameworks. Data Science Advancements in Pandemic and Outbreak Management demonstrates how strategies and state-of-the-art IT have and/or could be applied to serve as the vehicle to advance pandemic and outbreak management. The chapters will introduce both technical and non-technical details of management strategies and advanced IT, data science, and mathematical modelling and demonstrate their applications and their potential utilization within the identification and management of pandemics and outbreaks. It also prompts revisiting and critically reviewing past and current approaches, identifying good and bad practices, and further developing the area for future adaptation. This book is ideal for data scientists, data analysts, infectious disease experts, researchers studying pandemics and outbreaks, IT, crisis and disaster management, academics, practitioners, government officials, and students interested in applicable theories and practices in data science to mitigate, prepare for, respond to, and recover from future pandemics and outbreaks.

Research prioritization exercise for pandemic and epidemic intelligence

Research prioritization exercise for pandemic and epidemic intelligence
Author: World Health Organization
Publisher: World Health Organization
Total Pages: 24
Release: 2024-05-22
Genre: Medical
ISBN: 9240094520


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Robust evidence from high-quality research is vital for pandemic and epidemic intelligence, forming the basis for effective collaborative surveillance and informed public health decisions. The COVID-19 pandemic has spurred innovation in data and laboratory science and improved our ability to detect, assess and respond to health threats. However, research on surveillance methods and tools requires greater coherence and more efficient ways to translate research for evidence-based policy-making. The WHO Pandemic Hub has coordinated a process to set research priorities that should be particularly relevant for routine public health surveillance practices in collaboration with the Global Research Collaboration for Infectious Disease Preparedness (GloPID-R), Charité University Hospital Berlin and the WHO Science Division and with a financial contribution and observer role of Wellcome Trust. The goal was to identify the key research areas that would generate high-quality evidence and methods to better inform decision-making in global health emergencies. This technical brief outlines the priorities for research in pandemic and epidemic intelligence identified through the prioritization process.

Computerized Systems for Diagnosis and Treatment of COVID-19

Computerized Systems for Diagnosis and Treatment of COVID-19
Author: Joao Alexandre Lobo Marques
Publisher: Springer Nature
Total Pages: 210
Release: 2023-06-26
Genre: Technology & Engineering
ISBN: 3031307887


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This book describes the application of signal and image processing technologies, artificial intelligence, and machine learning techniques to support Covid-19 diagnosis and treatment. The book focuses on two main applications: critical diagnosis requiring high precision and speed, and treatment of symptoms, including those affecting the cardiovascular and neurological systems. The areas discussed in this book range from signal processing, time series analysis, and image segmentation to detection and classification. Technical approaches include deep learning, transfer learning, transformers, AutoML, and other machine learning techniques that can be considered not only for Covid-19 issues but also for different medical applications, with slight adjustments to the problem under study. The Covid-19 pandemic has impacted the entire world and changed how societies and individuals interact. Due to the high infection and mortality rates, and the multiple consequences of the virus infection in the human body, the challenges were vast and enormous. These necessitated the integration of different disciplines to address the problems. As a global response, researchers across academia and industry made several developments to provide computational solutions to support epidemiologic, managerial, and health/medical decisions. To that end, this book provides state-of-the-art information on the most advanced solutions.