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Sequence Obfuscation to Thwart Pattern Matching Attacks

机译:序列混淆对节流模式匹配攻击

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摘要

Suppose we are given a large number of sequences on a given alphabet, and an adversary is interested in identifying (de-anonymizing) a specific target sequence based on its patterns. Our goal is to thwart such an adversary by obfuscating the target sequences by applying artificial (but small) distortions to its values. A key point here is that we would like to make no assumptions about the statistical model of such sequences. This is in contrast to existing literature where assumptions (e.g., Markov chains) are made regarding such sequences to obtain privacy guarantees. We relate this problem to a set of combinatorial questions on sequence construction based on which we are able to obtain provable guarantees. This problem is relevant to important privacy applications: from fingerprinting webpages visited by users through anonymous communication systems to linking communicating parties on messaging applications to inferring activities of users of IoT devices.
机译:假设我们在给定的字母上有大量序列,而对手则有兴趣根据其模式识别(取消匿名)特定的目标序列。我们的目标是通过对目标序列施加人为的(但较小的)失真来混淆目标序列,从而挫败此类对手。这里的关键点是,我们不希望对此类序列的统计模型做出任何假设。这与现有文献相反,现有文献对这些序列进行了假设(例如,马尔可夫链)以获取隐私保证。我们将此问题与一系列关于序列构建的组合问题联系起来,在此基础上,我们能够获得可证明的保证。这个问题与重要的隐私应用程序有关:从用户通过匿名通信系统访问的指纹网页到将消息传递应用程序上的通信方链接到推断IoT设备用户的活动。

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