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IDENTIFICATION OF NOVEL NETWORK COMPONENTS FROM TEMPORAL MICROARRAY PROFILES OF MALARIA PARASITE

机译:从疟疾寄生虫颞微阵列概况鉴定新的网络组分

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A significant roadblock to the use of genomic data for understanding gene networks in infectious pathogens is our inability to assign functionality to a large fraction of the genes. Nowhere is this more problematic than in the malaria parasite Plasmodium falciparum, in which 60% of the genes are annotated as "hypothetical". To circumvent this problem we proposed to employ wavelets, feature extraction, kernel based supervised learning, and pattern recognition algorithms to explore temporal expression profiles from the complex and dynamic developmental cycle in the parasite and discover crucial network components.
机译:用于使用基因组数据以了解传染病病原体的基因网络的重要障碍是我们无法将功能分配给大部分基因。 无处存在于疟疾寄生虫疟原虫疟原虫的问题,其中60%的基因被注释为“假设”。 为了规避这个问题,我们提出使用小波,特征提取,基于内核的监督学习和模式识别算法,以探讨寄生虫中的复杂和动态发育周期的时间表达谱,并发现关键的网络组件。

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