网络数据收集中的差异隐私

O. Javidbakht, P. Venkitasubramaniam
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引用次数: 5

摘要

在路由开销约束下,研究了网络数据采集中的目标隐私问题。在单播和组播模式下,利用差分隐私作为度量来量化目标目的地的隐私,研究了最优概率路由方案。当开销加权等于到达预定目的地的路由成本时,表明单播私有路由的最优解决方案与旅行销售人员解决方案相同。当开销权重与预期路由开销严格不同时,最优解表示为线性规划问题的解。结果表明,最优解可以以分散的方式实现。在多播模式下,开销加权等于预期开销时的最优解是斯坦纳树问题的一个变体。总的来说,证明了组播私有路由是一个np完全问题。给出了随机图上私有单播路由和组播路由的仿真和数值结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Differential privacy in networked data collection
The problem of destination privacy in networked data collection is investigated under constraints on routing overhead. Using differential privacy as a metric to quantify the privacy of the intended destination, optimal probabilistic routing schemes are investigated under unicast and multicast paradigms. When the overhead is weighted equally to the incurred routing cost to intended destination, it is shown that the optimal solution for unicast private routing is identical to a traveling sales man solution. When the overhead weight is strictly different to the intended routing cost, the optimal solution is expressed as a solution to a linear programming problem. It is shown that the optimal solution can be implemented in decentralized manner. Under a multicast paradigm, the optimal solution when overhead is weighted equal to the intended cost, the optimal solution is shown to be a variant of the Steiner tree problem. In general, it is proved that multicast private routing is an np-complete problem. Simulations and numerical results for both private unicast and multicast routing on random graphs are presented.
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