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Cyclic graphs with noisy-max structures and its modeling on signaling pathways

机译:噪声最大结构的循环图及其在信号通路上的建模

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It is common that a real world system with causal or inter-dependent relationships has cyclic or feed-back properties, especially in biological systems. The signaling pathway in a cell is such a typical system. As a fundamental part, it regulates essential functions including growth, protein synthesis, and apoptosis. With randomized experiments of intervening some parts and observing on other parts, pathways are supposed to be revealed by gene expression data. This paper presents a probabilistic framework that allows cyclic relationships. The interactions of the signaling molecules can be represented in it. With interventional data, inference and learning can be driven in this framework. Both analysis and experiments show its effectiveness.
机译:具有因果关系或相互依存关系的现实世界系统具有循环或反馈特性是很常见的,尤其是在生物系统中。细胞中的信号传导途径就是这种典型的系统。作为基本部分,它调节基本功能,包括生长,蛋白质合成和凋亡。通过随机干预某些部分并观察其他部分的实验,推测基因表达数据可以揭示途径。本文提出了一种允许循环关系的概率框架。信号分子的相互作用可以在其中表示。利用介入数据,可以在此框架中推动推理和学习。分析和实验均显示了其有效性。

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