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Improving retouched Bloom filter for trading off selected false positives against false negatives

机译:改进修饰的布隆过滤器,以权衡选定的误报与误报

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摘要

Where distributed agents must share voluminous set membership information, Bloom filters provide a compact, though lossy, way for them to do so. Numerous recent networking papers have examined the trade-offs between the bandwidth consumed by the transmission of Bloom filters, and the error rate, which takes the form of false positives. This paper is about the retouched Bloom filter (RBF). An RBF is an extension that makes the Bloom filter more flexible by permitting the removal of false positives, at the expense of introducing false negatives, and that allows a controlled trade-off between the two. We analytically show that creating RBFs through a random process decreases the false positive rate in the same proportion as the false negative rate that is generated. We further provide some simple heuristics that decrease the false positive rate more than the corresponding increase in the false negative rate, when creating RBFs. These heuristics are more effective than the ones we have presented in prior work. We further demonstrate the advantages of an RBF over a Bloom filter in a distributed network topology measurement application. We finally discuss several networking applications that could benefit from RBFs instead of standard Bloom filters.
机译:在分布式代理必须共享大量集合成员身份信息的地方,Bloom筛选器为他们提供了一种紧凑但有损的方法。最近的许多网络论文都检查了布隆过滤器的传输所消耗的带宽与误码率之间的权衡,误码率以误报的形式出现。本文是关于修饰的布隆滤镜(RBF)。 RBF是一种扩展,它通过允许消除误报而使布隆过滤器更灵活,但以引入误报为代价,并且允许在两者之间进行受控的折衷。我们的分析表明,通过随机过程创建RBF会降低误报率,其比例与所产生的误报率相同。我们还提供了一些简单的启发式方法,在创建RBF时,它们会降低误报率,而不是相应增加误报率。这些启发式方法比我们先前工作中介绍的方法更有效。我们进一步证明了在分布式网络拓扑测量应用程序中,RBF优于Bloom过滤器。最后,我们讨论可以从RBF代替标准Bloom过滤器的几种联网应用程序。

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