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Health Data in an Open World

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abstract

With the aim of informing sound policy about data sharing and privacy, we describe successful re-identification of patients in an Australian de-identified open health dataset. As in prior studies of similar datasets, a few mundane facts often suffice to isolate an individual. Some people can be identified by name based on publicly available information. Decreasing the precision of the unit-record level data, or perturbing it statistically, makes re-identification gradually harder at a substantial cost to utility. We also examine the value of related datasets in improving the accuracy and confidence of re-identification. Our re-identifications were performed on a 10% sample dataset, but a related open Australian dataset allows us to infer with high confidence that some individuals in the sample have been correctly re-identified. Finally, we examine the combination of the open datasets with some commercial datasets that are known to exist but are not in our possession. We show that they would further increase the ease of re-identification.

fields

cs.CR 1

years

2019 1

verdicts

CONDITIONAL 1

representative citing papers

Stop the Open Data Bus, We Want to Get Off

cs.CR · 2019-08-14 · conditional · novelty 6.0

Travellers can be uniquely re-identified in the 2018 Myki open dataset using about three known touch-on events, and even a single co-travel event can expose a stranger's full travel history.

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  • Stop the Open Data Bus, We Want to Get Off cs.CR · 2019-08-14 · conditional · none · ref 3 · internal anchor

    Travellers can be uniquely re-identified in the 2018 Myki open dataset using about three known touch-on events, and even a single co-travel event can expose a stranger's full travel history.