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    1. Samhälle och politik
    2. Samhälle och kultur
    3. Kultur och medier
    4. Referensverk och tvärvetenskap

    Big Data Mining and Complexity

    AvBrian C. Castellani,Rajeev Rajaram

    Häftad, Engelska, 2022

    Del i serien The SAGE Quantitative Research Kit

    685 kr

    Beställningsvara. Skickas inom 3-6 vardagar. Fri frakt över 249 kr.

    Beskrivning

    This book offers a much needed critical introduction to data mining and ‘big data’. Supported by multiple case studies and examples, the authors provide:
    • Digestible overviews of key terms and concepts relevant to using social media data in quantitative research.
    • A critical review of data mining and ‘big data’ from a complexity science perspective, including its future potential and limitations
    • A practical exploration of the challenges of putting together and managing a ‘big data’ database
    • An evaluation of the core mathematical and conceptual frameworks, grounded in a case-based computational modeling perspective, which form the foundations of all data mining techniques  
    Part of The SAGE Quantitative Research Kit, this book will give you the know-how and confidence needed to succeed on your quantitative research journey.

    Produktinformation

    • Utgivningsdatum:2022-03-21
    • Mått:170 x 242 x 18 mm
    • Vikt:380 g
    • Format:Häftad
    • Språk:Engelska
    • Serie:The SAGE Quantitative Research Kit
    • Antal sidor:232
    • Upplaga:1
    • Förlag:SAGE Publications
    • ISBN:9781526423818

    Utforska kategorier

    • Referensverk och tvärvetenskap inom Samhälle och politik
    • Sociologi inom Samhälle och politik

    Mer om författaren

    In addition to being a Professor of Sociology at Durham University, I am currently Adjunct Professor of Psychiatry (Northeast Ohio Medical University), Fellow of the Wolfson Research Institute for Health and Wellbeing, and Co-Editor of the Routledge Complexity in Social Science series. I am also a member of the editorial board for International Journal of Social Research Methodology and Complexity, Governance and Networks. Trained as a sociologist, clinical psychologist and methodologist (statistics and computational social science), I have spent the past ten years developing a new case-based, data-mining approach to modeling complex social systems – called the SACS Toolkit – which my colleagues and I have used to help researchers, policy makers and service providers address and improve complex public health issues such as community health and well-being; infrastructure and grid reliability; mental health and inequality; big data and data mining; and globalization and global civil society.  We have also recently developed the COMPLEX-IT R-studio software app, which allows everyday users seamless access to such high-powered techniques as machine intelligence, neural nets, and agent-based modeling to make better sense of the complex world(s) in which they live and work.Rajeev Rajaram is a Professor of Mathematics at Kent State University. Rajeev’s primary training is in control theory of partial differential equations and he is currently interested in applications of differential equations and ideas from statistical mechanics and thermodynamics to model and measure complexity.  He and Brian Castellani have worked together to create a new case - based method for modeling complex systems, called the SACS Toolkit, which has been used to study topics in health, health care, societal infrastructures, power - grid reliability, restaurant mobility, and depression trajectories.  More recently, he is interested in mathematical properties of entropy based diversity measures for probability distributions.

    Innehållsförteckning

    • Chapter 1: IntroductionPart 1: Thinking Complex and CriticallyChapter 2: The Failure of Quantitative Social ScienceChapter 3: What is Big Data?Chapter 4: What is Data MiningChapter 5: The Complexity TurnPart 2: The Tools and Techniques of Data MiningChapter 6: Case-Based Complexity: A Data Mining VocabularyChapter 7: Classification and ClusteringChapter 8: Machine LearningChapter 9: Predictive Analytics and Data ForecastingChapter 10: Longitudinal AnalysisChapter 11: Geospatial ModelingChapter 12: Complex Network AnalysisChapter 13: Textual and Visual Data MiningChapter 14: Conclusion: Advancing A Complex Digital Social Science