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Graph-based Clustering under Differential Privacy

10 March 2018
Rafael Pinot
Anne Morvan
Florian Yger
Cédric Gouy-Pailler
Jamal Atif
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Abstract

In this paper, we present the first differentially private clustering method for arbitrary-shaped node clusters in a graph. This algorithm takes as input only an approximate Minimum Spanning Tree (MST) T\mathcal{T}T released under weight differential privacy constraints from the graph. Then, the underlying nonconvex clustering partition is successfully recovered from cutting optimal cuts on T\mathcal{T}T. As opposed to existing methods, our algorithm is theoretically well-motivated. Experiments support our theoretical findings.

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