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Towards a Similarity Metric for Comparing Machine-Readable Privacy Policies

Sammendrag

Current approaches to privacy policy comparison use strict evaluation criteria (e.g. user preferences) and are unable to state how close a given policy is to fulfil these criteria. More flexible approaches for policy comparison is a prerequisite for a number of more advanced privacy services, e.g. improved privacy-enhanced search engines and automatic learning of privacy preferences. This paper describes the challenges related to policy comparison, and outlines what solutions are needed in order to meet these challenges in the context of preference learning privacy agents.
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Kategori

Vitenskapelig artikkel

Språk

Engelsk

Forfatter(e)

  • Inger Anne Tøndel
  • Åsmund Ahlmann Nyre

Institusjon(er)

  • SINTEF Digital / Software Engineering, Safety and Security

År

2012

Publisert i

Lecture Notes in Computer Science (LNCS)

ISSN

0302-9743

Forlag

Springer

Årgang

7039

Side(r)

89 - 103

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