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A new sensitivity measure for probabilistic Boolean networks based on steady-state distributions

机译:基于稳态分布的概率布尔网络的一种新的灵敏度度量

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Probabilistic Boolean networks model biological processes with the network dynamics. This paper studies the network sensitivity with respect to perturbations to networks, including regulatory rules and the involved parameters, in the long run. We define the network sensitivity based on the steady-state distributions of probabilistic Boolean networks as their underlying model is a finite Markov chain. The steady-state distribution reflects the long-run behavior of the network and the change of steady-state distribution caused by possible perturbations is the key measure for intervention.
机译:概率布尔网络通过网络动力学为生物过程建模。从长远来看,本文研究了网络对网络扰动的敏感性,包括监管规则和相关参数。我们基于概率布尔网络的稳态分布定义网络敏感性,因为它们的基础模型是有限的马尔可夫链。稳态分布反映了网络的长期行为,由可能的扰动引起的稳态分布的变化是进行干预的关键措施。

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