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Mining HIV dynamics using independent component analysis.

机译:使用独立成分分析挖掘HIV动态。

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摘要

MOTIVATION: We implement a data mining technique based on the method of Independent Component Analysis (ICA) to generate reliable independent data sets for different HIV therapies. We show that this technique takes advantage of the ICA power to eliminate the noise generated by artificial interaction of HIV system dynamics. Moreover, the incorporation of the actual laboratory data sets into the analysis phase offers a powerful advantage when compared with other mathematical procedures that consider the general behavior of HIV dynamics. RESULTS: The ICA algorithm has been used to generate different patterns of the HIV dynamics under different therapy conditions. The Kohonen Map has been used to eliminate redundant noise in each pattern to produce a reliable data set for the simulation phase. We show that under potent antiretroviral drugs, the value of the CD4+ cells in infected persons decreases gradually by about 11% every 100 days and the levels of the CD8+ cells increase gradually by about 2% every 100 days. Availability: Executable code and data libraries are available by contacting the corresponding author. IMPLEMENTATION: Mathematica 4 has been used to simulate the suggested model. A Pentium III or higher platform is recommended.
机译:动机:我们基于独立成分分析(ICA)的方法实施数据挖掘技术,以针对不同的HIV疗法生成可靠的独立数据集。我们表明,该技术利用ICA的功能来消除由HIV系统动力学的人为交互产生的噪声。此外,与考虑艾滋病毒动力学一般行为的其他数学程序相比,将实际实验室数据集纳入分析阶段可提供强大的优势。结果:在不同的治疗条件下,ICA算法已被用于生成不同的HIV动态模式。 Kohonen映射已用于消除每个模式中的冗余噪声,从而为仿真阶段生成可靠的数据集。我们表明,在有效的抗逆转录病毒药物的作用下,感染者中CD4 +细胞的价值每100天逐渐降低约11%,CD8 +细胞的水平每100天逐渐增加约2%。可用性:可以通过联系相应的作者来获得可执行的代码和数据库。实施:Mathematica 4已用于模拟建议的模型。建议使用奔腾III或更高版本的平台。

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