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Using a Pheromone Mechanism to Estimate the Size of Unstructured Networks

机译:使用信息素机制估计非结构化网络的大小

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Accurately estimating network size is essential in unstructured networks. In previous studies, proposed sampling mechanisms for estimating network sizes assumed the probability that a peer is sampled is proportional to the number of its neighbors. This assumption leads to a sampling bias in favor of peers with many neighbors - something that commonly occurs in power law networks. To reduce this sampling bias, we propose a pheromone mechanism, that calibrates sampling probability by the amount of pheromone. This mechanism can be adapted to existing size-estimation techniques. Our empirical studies show that by adapting the pheromone mechanism, most size-estimation techniques can be significantly improved (in some cases, by more than 100%).
机译:在非结构化网络中,准确估计网络大小至关重要。在以前的研究中,用于估计网络大小的建议采样机制假设对等方被采样的概率与邻居的数量成正比。这种假设导致抽样偏向于具有许多邻居的同伴-在幂律网络中通常会发生这种情况。为了减少这种采样偏差,我们提出了一种信息素机制,该机制通过信息素的量来校准采样概率。该机制可以适合于现有的尺寸估计技术。我们的经验研究表明,通过采用信息素机制,可以极大地改善大多数大小估计技术(在某些情况下,可以超过100%)。

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