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Uncertainty in big data analytics: survey, opportunities, and challenges
by
Hariri, Reihaneh H.
, Bowers, Kate M.
, Fredericks, Erik M.
in
Agriculture
/ Analytics
/ Artificial intelligence
/ Big Data
/ Big data analytics
/ Clinical decision making
/ Communications Engineering
/ Computational Science and Engineering
/ Computer Science
/ Cyber-physical systems
/ Data analysis
/ Data management
/ Data Mining and Knowledge Discovery
/ Database Management
/ Datasets
/ Decision analysis
/ Decision making
/ Digital media
/ Domains
/ Health care
/ Health care expenditures
/ Health services
/ Inconsistency
/ Information Storage and Retrieval
/ Internet
/ Internet of Things
/ Machine learning
/ Mass media
/ Massive data points
/ Mathematical analysis
/ Mathematical Applications in Computer Science
/ Natural language processing
/ Networks
/ Polls & surveys
/ Smart cities
/ Social media
/ Social networks
/ Survey Paper
/ Uncertainty
2019
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Uncertainty in big data analytics: survey, opportunities, and challenges
by
Hariri, Reihaneh H.
, Bowers, Kate M.
, Fredericks, Erik M.
in
Agriculture
/ Analytics
/ Artificial intelligence
/ Big Data
/ Big data analytics
/ Clinical decision making
/ Communications Engineering
/ Computational Science and Engineering
/ Computer Science
/ Cyber-physical systems
/ Data analysis
/ Data management
/ Data Mining and Knowledge Discovery
/ Database Management
/ Datasets
/ Decision analysis
/ Decision making
/ Digital media
/ Domains
/ Health care
/ Health care expenditures
/ Health services
/ Inconsistency
/ Information Storage and Retrieval
/ Internet
/ Internet of Things
/ Machine learning
/ Mass media
/ Massive data points
/ Mathematical analysis
/ Mathematical Applications in Computer Science
/ Natural language processing
/ Networks
/ Polls & surveys
/ Smart cities
/ Social media
/ Social networks
/ Survey Paper
/ Uncertainty
2019
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Do you wish to request the book?
Uncertainty in big data analytics: survey, opportunities, and challenges
by
Hariri, Reihaneh H.
, Bowers, Kate M.
, Fredericks, Erik M.
in
Agriculture
/ Analytics
/ Artificial intelligence
/ Big Data
/ Big data analytics
/ Clinical decision making
/ Communications Engineering
/ Computational Science and Engineering
/ Computer Science
/ Cyber-physical systems
/ Data analysis
/ Data management
/ Data Mining and Knowledge Discovery
/ Database Management
/ Datasets
/ Decision analysis
/ Decision making
/ Digital media
/ Domains
/ Health care
/ Health care expenditures
/ Health services
/ Inconsistency
/ Information Storage and Retrieval
/ Internet
/ Internet of Things
/ Machine learning
/ Mass media
/ Massive data points
/ Mathematical analysis
/ Mathematical Applications in Computer Science
/ Natural language processing
/ Networks
/ Polls & surveys
/ Smart cities
/ Social media
/ Social networks
/ Survey Paper
/ Uncertainty
2019
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Uncertainty in big data analytics: survey, opportunities, and challenges
Journal Article
Uncertainty in big data analytics: survey, opportunities, and challenges
2019
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Overview
Big data analytics has gained wide attention from both academia and industry as the demand for understanding trends in massive datasets increases. Recent developments in sensor networks, cyber-physical systems, and the ubiquity of the Internet of Things (IoT) have increased the collection of data (including health care, social media, smart cities, agriculture, finance, education, and more) to an enormous scale. However, the data collected from sensors, social media, financial records, etc. is inherently uncertain due to noise, incompleteness, and inconsistency. The analysis of such massive amounts of data requires advanced analytical techniques for efficiently reviewing and/or predicting future courses of action with high precision and advanced decision-making strategies. As the amount, variety, and speed of data increases, so too does the uncertainty inherent within, leading to a lack of confidence in the resulting analytics process and decisions made thereof. In comparison to traditional data techniques and platforms, artificial intelligence techniques (including machine learning, natural language processing, and computational intelligence) provide more accurate, faster, and scalable results in big data analytics. Previous research and surveys conducted on big data analytics tend to focus on one or two techniques or specific application domains. However, little work has been done in the field of uncertainty when applied to big data analytics as well as in the artificial intelligence techniques applied to the datasets. This article reviews previous work in big data analytics and presents a discussion of open challenges and future directions for recognizing and mitigating uncertainty in this domain.
Publisher
Springer International Publishing,Springer Nature B.V,SpringerOpen
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