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With an ever-increasing amount of information on the web, it is
critical to understand the pedigree, quality, and accuracy of your
data. Using provenance, you can ascertain the quality of data based
on its ancestral data and derivations, track back to sources of
errors, allow automatic re-enactment of derivations to update data,
and provide attribution of the data source. Secure Data Provenance
and Inference Control with Semantic Web supplies step-by-step
instructions on how to secure the provenance of your data to make
sure it is safe from inference attacks. It details the design and
implementation of a policy engine for provenance of data and
presents case studies that illustrate solutions in a typical
distributed health care system for hospitals. Although the case
studies describe solutions in the health care domain, you can
easily apply the methods presented in the book to a range of other
domains. The book describes the design and implementation of a
policy engine for provenance and demonstrates the use of Semantic
Web technologies and cloud computing technologies to enhance the
scalability of solutions. It covers Semantic Web technologies for
the representation and reasoning of the provenance of the data and
provides a unifying framework for securing provenance that can help
to address the various criteria of your information systems.
Illustrating key concepts and practical techniques, the book
considers cloud computing technologies that can enhance the
scalability of solutions. After reading this book you will be
better prepared to keep up with the on-going development of the
prototypes, products, tools, and standards for secure data
management, secure Semantic Web, secure web services, and secure
cloud computing.
With an ever-increasing amount of information on the web, it is
critical to understand the pedigree, quality, and accuracy of your
data. Using provenance, you can ascertain the quality of data based
on its ancestral data and derivations, track back to sources of
errors, allow automatic re-enactment of derivations to update data,
and provide attribution of the data source. Secure Data Provenance
and Inference Control with Semantic Web supplies step-by-step
instructions on how to secure the provenance of your data to make
sure it is safe from inference attacks. It details the design and
implementation of a policy engine for provenance of data and
presents case studies that illustrate solutions in a typical
distributed health care system for hospitals. Although the case
studies describe solutions in the health care domain, you can
easily apply the methods presented in the book to a range of other
domains. The book describes the design and implementation of a
policy engine for provenance and demonstrates the use of Semantic
Web technologies and cloud computing technologies to enhance the
scalability of solutions. It covers Semantic Web technologies for
the representation and reasoning of the provenance of the data and
provides a unifying framework for securing provenance that can help
to address the various criteria of your information systems.
Illustrating key concepts and practical techniques, the book
considers cloud computing technologies that can enhance the
scalability of solutions. After reading this book you will be
better prepared to keep up with the on-going development of the
prototypes, products, tools, and standards for secure data
management, secure Semantic Web, secure web services, and secure
cloud computing.
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