CPB:一个双聚类模型

Debahuti Mishra, A. Rath
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引用次数: 3

摘要

挖掘既具有一致趋势又具有相似波动程度的趋势的双聚类对生物信息学研究至关重要。然而,现有的双聚类方法在挖掘此类双聚类时效率不高。大多数双聚类模型,包括那些用于子空间聚类的模型,通过基因表达数据中所有维度或仅一小部分维度的距离来定义不同对象之间的相似性。然而,距离函数并不总是足以捕捉物体之间的相互关系。事实上,一组物体之间即使通过距离函数测量它们彼此相距很远,也可能仍然存在强的相互关系。在CPB (Coherent Pattern bicclustering)模型下,如果两个对象在一个子集的维度上表现出一致的模式,则它们是相似的。例如,在DNA微阵列分析中,两个基因的表达水平可能在一系列环境刺激下同步上升或下降。虽然它们的表达水平的大小可能不接近,但它们表现出的模式可能非常相似。我们提出的模型感兴趣的是找到这种基因双簇的连贯模式,并对许多基因参与多种不同过程的生物过程有一般的理解。
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CPB: A Model for Biclustering
Mining biclusters that exhibit both consistent trends and trends with similar degrees of fluctuations is vital to bioinformatics research. However, existing biclustering methods are not very efficient and effective at mining such biclusters. Most biclustering models, including those used in subspace clustering, define similarity among different objects by distances over either all or only a subset of dimensions in gene expression data. However, distance functions are not always adequate in capturing co-relations among the objects. In fact, strong co-relations may still exist among a set of objects even if they are far apart from each other as measured by the distance function.Under the CPB (Coherent Pattern Biclustering) model, we proposed, two objects are similar if they exhibit coherent pattern on a subset of dimensions. For instances, in DNA microarray analysis, the expression levels of two genes may rise or fall synchronously in response to a set of environmental stimuli. Though the magnitude of their expression levels may not be close, but the pattern they exhibit can be very much similar. Our proposed model is interested in finding such coherent patterns of biclusters of genes and with a general understanding of biological processes that many genes participate in multiple different processes.
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