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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >GI-Cluster: Detecting genomic islands via consensus clustering on multiple features
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GI-Cluster: Detecting genomic islands via consensus clustering on multiple features

机译:GI-Cluster:通过多个特征的共识聚类检测基因组群岛

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The accurate detection of genomic islands (GIs) in microbial genomes is important for both evolutionary study and medical research, because GIs may promote genome evolution and contain genes involved in pathogenesis. Various computational methods have been developed to predict GIs over the years. However, most of them cannot make full use of GI-associated features to achieve desirable performance. Additionally, many methods cannot be directly applied to newly sequenced genomes. We develop a new method called GI-Cluster, which provides an effective way to integrate multiple GI-related features via consensus clustering. GI-Cluster does not require training datasets or existing genome annotations, but it can still achieve comparable or better performance than supervised learning methods in comprehensive evaluations. Moreover, GI-Cluster is widely applicable, either to complete and incomplete genomes or to initial GI predictions from other programs. GI-Cluster also provides plots to visualize the distribution of predicted GIs and related features. GI-Cluster is available at https://github.com/icelu/GI Cluster.
机译:微生物基因组中基因组岛(GIS)的准确检测对于进化研究和医学研究至关重要,因为GIS可能促进基因组进化并含有参与发病机制的基因。已经开发了各种计算方法来预测多年来GIS。然而,大多数人不能充分利用GI相关的特征来实现所需的性能。另外,许多方法不能直接应用于新序列的基因组。我们开发一种名为GI-Cluster的新方法,它提供了一种通过共识群集集成多个GI相关功能的有效方法。 GI-Cluster不需要培训数据集或现有的基因组注释,但它仍然可以实现比综合评估中的监督学习方法相当或更好的性能。此外,GI-Cluster广泛适用于完成和不完整的基因组或来自其他程序的初始GI预测。 GI-Cluster还提供了可视化预测GIS和相关特征的分布的图。 gi-cluster可在https://github.com/icelu/gi集群中获得。

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