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Network evaluation from the consistency of the graph structure with the measured data

机译:从图结构与实测数据的一致性进行网络评估

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摘要

BackgroundA knowledge-based network, which is constructed by extracting as many relationships identified by experimental studies as possible and then superimposing them, is one of the promising approaches to investigate the associations between biological molecules. However, the molecular relationships change dynamically, depending on the conditions in a living cell, which suggests implicitly that all of the relationships in the knowledge-based network do not always exist. Here, we propose a novel method to estimate the consistency of a given network with the measured data: i) the network is quantified into a log-likelihood from the measured data, based on the Gaussian network, and ii) the probability of the likelihood corresponding to the measured data, named the graph consistency probability (GCP), is estimated based on the generalized extreme value distribution.
机译:背景技术以知识为基础的网络是通过提取尽可能多的实验研究确定的关系,然后将它们叠加而构成的,是研究生物分子之间关联的有前途的方法之一。然而,取决于活细胞中的条件,分子关系会动态变化,这暗示着基于知识的网络中的所有关系并不总是存在。在这里,我们提出了一种新颖的方法来估计给定网络与测量数据的一致性:i)基于高斯网络,将网络从测量数据量化为对数似然,并且ii)可能性的概率根据广义的极值分布估算与测量数据相对应的值,称为图形一致性概率(GCP)。

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