Abstract
It is well recognised that data mining and statistical analysis pose a serious treat to privacy. This is true for financial, medical, criminal and marketing research. Numerous techniques have been proposed to protect privacy, including restriction and data modification. Recently proposed privacy models such as differential privacy and k-anonymity received a lot of attention and for the latter there are now several improvements of the original scheme, each removing some security shortcomings of the previous one. However, the challenge lies in evaluating and comparing privacy provided by various techniques. In this paper we propose a novel entropy based security measure that can be applied to any generalisation, restriction or data modification technique. We use our measure to empirically evaluate and compare a few popular methods, namely query restriction, sampling and noise addition.
| Original language | English |
|---|---|
| Title of host publication | Combinatorial Algorithms, IWOCA 2014 |
| Editors | Jan, K., Miller, M., Froncek, D. |
| Place of Publication | United Kingdom |
| Publisher | Springer, Cham |
| Pages | 24-36 |
| ISBN (Print) | 9783319193151, 9783319193144 |
| DOIs | |
| Publication status | Published - 1 Jan 2015 |
| Event | IWOCA 2014: 25th International Workshop on Combinatorial Algorithms - Duluth, MN, USA, Duluth, USA Duration: 15 Oct 2014 → 17 Oct 2014 |
Publication series
| Name | Lecture Notes in Computer Science |
|---|---|
| Number | 8986 |
| ISSN (Print) | 0302-9743 |
| ISSN (Electronic) | 1611-3349 |
Conference
| Conference | IWOCA 2014: 25th International Workshop on Combinatorial Algorithms |
|---|---|
| City | Duluth, USA |
| Period | 15/10/14 → 17/10/14 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 16 Peace, Justice and Strong Institutions
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