Social Web and Health Research

Social Web and Health Research
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Benefits, Limitations, and Best Practices
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Artikel-Nr:
9783030147167
Veröffentl:
2020
Einband:
Paperback
Erscheinungsdatum:
01.08.2020
Seiten:
288
Autor:
Jiang Bian
Gewicht:
441 g
Format:
235x155x16 mm
Sprache:
Englisch
Beschreibung:

Jiang Bian

Dr. Bian is an Assistant Professor of Biomedical Informatics in the Department of Health Outcomes and Biomedical Informatics at the University of Florida. He is also the Director of Cancer Informatics and eHealth Core for the University of Florida Health Cancer Center. He has a diverse yet strong multi-disciplinary background and extensive expertise in social media analysis, machine learning, natural language processing, network science, ontology development and evaluation, semantic web technology and software engineering.

Yi Guo

Dr. Yi Guo is an Assistant Professor in the Department of Health Outcomes and Biomedical Informatics in the College of Medicine at University of Florida. He is a health outcomes researcher and data scientist with expertise in data integration and discovery, multilevel and longitudinal models, health risk prediction models, quality measurement and psychometric analysis, and power and sample size analysis.

Zhe He

Dr. Zhe He is an Assistant Professor in the School of Information at the Florida State University. He is an Associate Editor of BMC Medical Informatics and Decision Making. His research lies in biomedical and health informatics, clinical research informatics, knowledge discovery, knowledge representation, and ontology-enhanced data analytics. His research aims to improve the population health and advance biomedical research through the collection, analysis, and application of electronic health data from heterogeneous sources.

Xia Hu

Dr. Xia "Ben" Hu is currently a tenure-track Assistant Professor at Texas A&M University in the Department of Computer Science and Engineering. Dr. Hu has published nearly 100 papers in several major academic venues, including WWW, SIGIR, KDD, ICDM, SDM, WSDM, IJCAI, AAAI, CIKM, ICWSM, etc. His work on deep collaborative filtering, anomaly detection and knowledge graph have been included in the TensorFlow package, Apple production system and Bing production system, respectively.



This book presents state-of-the-art research methods, results, and applications in social media and health research. It aims to help readers better understand the different aspects of using social web platforms in health research. Throughout the chapters, the benefits, limitations, and best practices of using a variety of social web platforms in health research are discussed with concrete use cases. This is an ideal book for biomedical researchers, clinicians, and health consumers (including patients) who are interested in learning how social web platforms impact health and healthcare research.

Covers state-of-art techniques and applications for harnessing social web in health research
1. A literature Review of Social Media-based Data Mining for Health Outcomes Research.- 2. Social Media-Based Health Interventions: Where Are We Now?.- 3. Quantifying and Visualizing the Research Status of Social Media & Health Research Field.- 4. Social Media in Health Communication.- 5. Consumers' Selection of Sources in Searching for Health Information.- 6. Understanding and Bridging the Language and Terminology Gap between Health Professionals and Consumers using Social Media.- 7. Dissemination of Information on Stigmatized Health Issues on Social Media.- 8. Learning Wellness Profiles of Users on Social Networks: The Case of Diabetes.- 9. Social Media and Psychological Disorder.- 10. Content Analysis of the 2015 #SmearForSmear Campaign Using Deep Learning.- 11. How to Improve Public Health via Mining Social Media Platforms: A Case Study of Human Papillomaviruses (HPV).- 12. Learning Hormonal Therapy Medication Adherence from an Online Breast Cancer Forum.- 13. Ethics in Health Research using Social Media.

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