Big Data: Techniques and Technologies in Geoinformatics
Editat de Hassan A. Karimien Limba Engleză Hardback – 18 feb 2014
Providing a perspective based on analysis of time, applications, and resources, this book familiarizes readers with geospatial applications that fall under the category of big data. It explores new trends in geospatial data collection, such as geo-crowdsourcing and advanced data collection technologies such as LiDAR point clouds. The book features a range of topics on big data techniques and technologies in geoinformatics including distributed computing, geospatial data analytics, social media, and volunteered geographic information.
With chapters contributed by experts in geoinformatics and in domains such as computing and engineering, the book provides an understanding of the challenges and issues of big data in geoinformatics applications. The book is a single collection of current and emerging techniques, technologies, and tools that are needed to collect, analyze, manage, process, and visualize geospatial big data.
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Specificații
ISBN-13: 9781466586512
ISBN-10: 1466586516
Pagini: 312
Ilustrații: 111 black & white illustrations, 24 black & white tables
Dimensiuni: 156 x 234 x 20 mm
Greutate: 0.52 kg
Ediția:New.
Editura: CRC Press
Colecția CRC Press
ISBN-10: 1466586516
Pagini: 312
Ilustrații: 111 black & white illustrations, 24 black & white tables
Dimensiuni: 156 x 234 x 20 mm
Greutate: 0.52 kg
Ediția:New.
Editura: CRC Press
Colecția CRC Press
Public țintă
Academic and Professional Practice & DevelopmentCuprins
Part I: Geospatial Data Collection and Applications. Advanced Geospatial Data Collection Technologies. Geo-Crowdsourcing: A New Trend in Collecting Geospatial Data. Big Data in Location-Based Services. Big Data in Satellite Imagery. Part II: Geospatial Data Analytics. Geostatistics. Geospatial Data Mining. Machine Learning. Geovisualization. Part III: Data-Intensive Geospatial Computing. Distributed Geospatial Data-Intensive Computing. Grid Computing for Geospatial Data-Intensive Problems. Cloud Computing for Geospatial Data-Intensive Problems. Parallel Computing for Geospatial Data-Intensive Problems.
Descriere
Big Data is defined as "a collection of data sets so large and complex that it becomes difficult to process using on-hand database management tools". The challenges include capture, storage, search, sharing, analysis, and visualization." Big Data has always been a major challenge in geoinformatics as geospatial databases are inherently very large. This book will integrate in one single volume techniques and technologies for storing and managing very large geospatial databases and help developing new geoinformatics software and systems that involve very large databases.
Notă biografică
Hassan A. Karimi is a Professor and the Director of the Geoinformatics Laboratory in the School of Computing and Information at the University of Pittsburgh. He earned a PhD in geomatics engineering at the University of Calgary. Dr. Karimi’s research interests include computational geometry and topology, machine learning, spatial data analytics, navigation techniques and applications, location-based services, mobile computing, and distributed/parallel computing. His research in geoinformatics has resulted in over 230 publications in peer-reviewed journals and conference proceedings, as well as in many workshops and presentations at national and international forums. Dr. Karimi has published the following books with Taylor & Francis: Geospatial Data Science Techniques and Applications (2018), Indoor Wayfinding and Navigation (2015), Big Data: Techniques and Technologies in Geoinformatics (2014), Advanced Location-Based Technologies and Services (2013), CAD and GIS Integration (2010), and Telegeoinformatics: Location-Based Computing and Services (2004). He has published Universal Navigation on Smartphones (2011) with Springer and Handbook of Research on Geoinformatics (2009) with IGI.