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Birds Bring Flues? Mining Frequent and High Weighted Cliques from Birds Migration Networks

机译:鸟带烟吗?从鸟类迁徙网络中挖掘频繁和高权重集团

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Recent advances in satellite tracking technologies can provide huge amount of data for biologists to understand continuous long movement patterns of wild bird species. In particular, highly correlated habitat areas are of great biological interests. Biologists can use this information to strive potential ways for controlling highly pathogenic avian influenza. We convert these biological problems into graph mining problems. Traditional models for frequent graph mining assign each vertex label with equal weight. However, the weight difference between vertexes can make strong impact on decision making by biologists. In this paper, by considering different weights of individual vertex in the graph, we develop a new algorithm, Helen, which focuses on identifying cliques with high weights. We introduce "graph-weighted support framework" to reduce clique candidates, and then filter out the low weighted cliques. We evaluate our algorithm on real life birds' migration data sets, and show that graph mining can be very helpful for ecologists to discover unanticipated bird migration relationships.
机译:卫星跟踪技术的最新进展可以为生物学家提供大量数据,以帮助他们了解野生鸟类的连续长时间运动模式。特别地,高度相关的栖息地具有重要的生物学意义。生物学家可以利用这些信息来寻找控制高致病性禽流感的潜在方法。我们将这些生物学问题转换为图挖掘问题。用于频繁图挖掘的传统模型为每个顶点标签分配相同的权重。但是,顶点之间的权重差异可能会对生物学家的决策产生重大影响。在本文中,通过考虑图中各个顶点的权重不同,我们开发了一种新算法Helen,该算法着重于识别具有高权重的群体。我们引入“图形加权支持框架”以减少候选群体,然后过滤掉低权重的群体。我们在现实鸟类的迁徙数据集上评估了我们的算法,并表明图挖掘对于生态学家发现意外的鸟类迁徙关系非常有帮助。

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