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Finding the Minimal Gene Regulatory Function in the Presence of Undefined Transitional States Using a Genetic Algorithm

机译:使用遗传算法在不确定的过渡状态下找到最小的基因调控功能

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After the sequencing of whole genomes and the identification of the genes contained in them, one of the main challenges remaining is to understand the mechanisms that regulate the expression of genes within the genome in order to gain knowledge about structural, biochem ical, physiological and behavioral characteristics of organisms. Some of these mechanisms are controlled by so-called Genetic Regulatory Net works (GRNs). Boolean networks can help model biological GRNs. In this paper, a genetic algorithm is used to make inferences in Boolean networks, in combination with the Quine-McCluskey algorithm, when not all the output states of the genes have been determined. This lack of information could be treated as "don't care" states. Genetic algorithms are useful in multi-objective optimization problems, such as minimiza tion of Gene Regulatory Functions, where it is important not only to have the smallest quantity of disjunctions, but also the smallest quantity of genes involved in the regulation.
机译:在对整个基因组进行测序并确定其中包含的基因后,剩下的主要挑战之一是了解调节基因组内基因表达的机制,以获取有关结构,生化,生理和行为的知识。生物的特征。其中一些机制由所谓的基因调控网络(GRN)控制。布尔网络可以帮助对生物GRN进行建模。在本文中,当尚未确定基因的所有输出状态时,结合Quine-McCluskey算法,使用遗传算法在布尔网络中进行推理。信息的缺乏可被视为“无关”状态。遗传算法在多目标优化问题中很有用,例如最小化基因调控功能,在遗传问题中,不仅要使分离最少,而且要使调控涉及的基因最少也很重要。

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