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  5. Automatic Construction of Generalization Hierarchies for Publishing Anonymized Data
 
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Automatic Construction of Generalization Hierarchies for Publishing Anonymized Data

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Author(s)
Ayala-Rivera, Vanessa 
Murphy, Liam, B.E. 
Thorpe, Christina 
Uri
http://hdl.handle.net/10197/8768
Date Issued
07 October 2016
Date Available
18T12:49:17Z September 2017
Abstract
Concept hierarchies are widely used in multiple fields to carry out data analysis. In data privacy, they are known as Value Generalization Hierarchies (VGHs), and are used by generalization algorithms to dictate the data anonymization. Thus, their proper specification is critical to obtain anonymized data of good quality. The creation and evaluation of VGHs require expert knowledge and a significant amount of manual effort, making these tasks highly error-prone and timeconsuming. In this paper we present AIKA, a knowledge-based framework to automatically construct and evaluate VGHs for the anonymization of categorical data. AIKA integrates ontologies to objectively create and evaluate VGHs. It also implements a multi-dimensional reward function to tailor the VGH evaluation to different use cases. Our experiments show that AIKA improved the creation of VGHs by generating VGHs of good quality in less time than when manually done. Results also showed how the reward function properly captures the desired VGH properties.
Sponsorship
Science Foundation Ireland
Type of Material
Conference Publication
Publisher
Springer
Keywords
  • Generalization hierar...

  • Anonymization

  • Data privacy

  • Knowledge-based frame...

DOI
10.1007/978-3-319-47650-6_21
Language
English
Status of Item
Peer reviewed
Part of
Lehner, F. and Fteimi, N. (eds.) Lecture Notes in Computer Science (LNCS, volume 9983)
Description
International Conference on Knowledge Science, Engineering and Management (KSEM), Passau, Germany, October, 2016
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by-nc-nd/3.0/ie/
Owning collection
Computer Science Research Collection
Scopus© citations
2
Acquisition Date
Jan 25, 2023
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Jan 26, 2023
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