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Privacy, Big Data, and the Public Good

Privacy, Big Data, and the Public Good

Privacy, Big Data, and the Public Good

Frameworks for Engagement
Julia Lane, American Institutes for Research, Washington DC
Victoria Stodden, Columbia University, New York
Stefan Bender, Institute for Employment Research of the German Federal Employment Agency
Helen Nissenbaum, New York University
August 2014
Available
Paperback
9781107637689

    Massive amounts of data on human beings can now be analyzed. Pragmatic purposes abound, including selling goods and services, winning political campaigns, and identifying possible terrorists. Yet 'big data' can also be harnessed to serve the public good: scientists can use big data to do research that improves the lives of human beings, improves government services, and reduces taxpayer costs. In order to achieve this goal, researchers must have access to this data - raising important privacy questions. What are the ethical and legal requirements? What are the rules of engagement? What are the best ways to provide access while also protecting confidentiality? Are there reasonable mechanisms to compensate citizens for privacy loss? The goal of this book is to answer some of these questions. The book's authors paint an intellectual landscape that includes legal, economic, and statistical frameworks. The authors also identify new practical approaches that simultaneously maximize the utility of data access while minimizing information risk.

    • Structured in three easy-to-understand sections
    • Written in a very accessible format
    • Touches upon three crucial areas: privacy, data access and big data

    Awards

    A Choice Outstanding Academic Title 2015

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    Reviews & endorsements

    "Big data' - the collection, aggregation or federation, and analysis of vast amounts of increasingly granular data - present[s] serious challenges not only to personal privacy but also to the tools we use to protect it. Privacy, Big Data, and the Public Good focuses valuable attention on two of these tools: notice and consent, and de-identification - the process of preventing a person's identity from being linked to specific data. [It] presents a collection of essays from a variety of perspectives, in chapters by some of the heavy hitters in the privacy debate, who make a convincing case that the current framework for dealing with consumer privacy does not adequately address issues posed by big data … As society becomes more 'datafied' - a term coined to describe the digital quantification of our existence - our privacy is ever more at risk, especially if we continue to rely on the tools that we employ today to protect it. [This book] represents a useful and approachable introduction to these important issues.' Science

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    Product details

    August 2014
    Paperback
    9781107637689
    339 pages
    228 × 152 × 19 mm
    0.48kg
    4 b/w illus.
    Available

    Table of Contents

    • Part I. Conceptual Framework: Editors' introduction Julia Lane, Victoria Stodden, Stefan Bender and Helen Nissenbaum
    • 1. Monitoring, datafication, and consent: legal approaches to privacy in the big data context Katherine J. Strandburg
    • 2. Big data's end run around anonymity and consent Solon Barocas and Helen Nissenbaum
    • 3. The economics and behavioral economics of privacy Alessandro Acquisti
    • 4. The legal and regulatory framework: what do the rules say about data analysis? Paul Ohm
    • 5. Enabling reproducibility in big data research: balancing confidentiality and scientific transparency Victoria Stodden
    • Part II. Practical Framework: Editors' introduction Julia Lane, Victoria Stodden, Stefan Bender and Helen Nissenbaum
    • 6. The value of big data for urban science Steven E. Koonin and Michael J. Holland
    • 7. The new role of cities in creating value Robert Goerge
    • 8. A European perspective Peter Elias
    • 9. Institutional controls: the new deal on data Daniel Greenwood, Arkadiusz Stopczynski, Brian Sweatt, Thomas Hardjono and Alex Pentland
    • 10. The operational framework: engineered controls Carl Landwehr
    • 11. Portable approaches to informed consent and open data John Wilbanks
    • Part III. Statistical Framework: Editors' introduction Julia Lane, Victoria Stodden, Stefan Bender and Helen Nissenbaum
    • 12. Extracting information from big data Frauke Kreuter and Roger Peng
    • 13. Using statistics to protect privacy Alan F. Karr and Jerome P. Reiter
    • 14. Differential privacy: a cryptographic approach to private data analysis Cynthia Dwork.
      Contributors
    • Julia Lane, Victoria Stodden, Stefan Bender, Helen Nissenbaum, Katherine Strandburg, Solon Barocas, Alessandro Acquisiti, Paul Ohm, Steve Koonin, Mike Holland, Robert Goerge, Peter Elias, Daniel Greenwood, Arek Stopczynski, Brian Sweatt, Thomas Hardjono, Alex Pentland, Carl Landwehr, John Wilbanks, Frauke Kreuter, Roger Peng, Alan Karr, Jerry Reiter, Cynthia Dwork

    • Editors
    • Julia Lane , American Institutes for Research, Washington DC

      Julia Lane is Senior Managing Economist for the American Institutes for Research in Washington, DC. She holds honorary positions as Professor of Economics at the BETA University of Strasbourg CNRS, chercheur associée at Observatoire des Sciences et des Techniques, Paris, and professor at the University of Melbourne's Institute of Applied Economics and Social Research.

    • Victoria Stodden , Columbia University, New York

      Victoria Stodden is Assistant Professor of Statistics at Columbia University and is affiliated with the Columbia University Institute for Data Sciences and Engineering.

    • Stefan Bender , Institute for Employment Research of the German Federal Employment Agency

      Stefan Bender is head of the Research Data Center (RDC) at the German Federal Employment Agency in the Institute for Employment Research (IAB).

    • Helen Nissenbaum , New York University

      Helen Nissenbaum is Professor of Media, Culture, and Communication and Computer Science at New York University, where she is also director of the Information Law Institute.