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FISim: A new similarity measure between transcription factor binding sites based on the fuzzy integral

机译:FISim:基于模糊积分的转录因子结合位点之间的新相似性度量

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摘要

BackgroundRegulatory motifs describe sets of related transcription factor binding sites (TFBSs) and can be represented as position frequency matrices (PFMs). De novo identification of TFBSs is a crucial problem in computational biology which includes the issue of comparing putative motifs with one another and with motifs that are already known. The relative importance of each nucleotide within a given position in the PFMs should be considered in order to compute PFM similarities. Furthermore, biological data are inherently noisy and imprecise. Fuzzy set theory is particularly suitable for modeling imprecise data, whereas fuzzy integrals are highly appropriate for representing the interaction among different information sources.
机译:背景调控基序描述了相关转录因子结合位点(TFBS)的集合,可以表示为位置频率矩阵(PFM)。 TFBS的从头鉴定是计算生物学中的关键问题,其中包括将推定的基序相互比较以及与已知基序进行比较的问题。为了计算PFM相似度,应考虑PFM中给定位置内每个核苷酸的相对重要性。此外,生物学数据本质上是嘈杂且不精确的。模糊集理论特别适合于对不精确的数据进行建模,而模糊积分则非常适合于表示不同信息源之间的相互作用。

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