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Use of Random Forest in FTIR Analysis of LDL Cholesterol and Tri-Glycerides for Hyperlipidemia

机译:随机森林在高脂血症低密度脂蛋白胆固醇和甘油三酯的FTIR分析中的应用

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A quantitative determination method for the diagnosis of hyperlipidemia was developed using Fourier transform infrared (FTIR) spectroscopy. Random forest (RF) was demonstrated as a potential multivariate algorithm for the FTIR analysis of low-density lipoprotein cholesterol (LDL-C) and tri-glycerides (TG) in human serum samples. The informative wavebands for LDL-C and TG were selected based on the Gini importance. The selected wavebands were mainly within the fingerprint region. The RF modeling results were better than those derived using PLS in validation process, because the chance for over-fitting was possibly eliminated in RF algorithm. ARF also demonstrated favorable results in the test process. The prospective model exhibited a higher than 90% true prediction in negative/positive properties for male and female samples. These clinical statistical results indicated the optimization of RF algorithm performed accurately in the FTIR determination of LDL-C and TG. RF is evaluated as a promising tool for diagnosing and controlling hyperlipidemia in populations. The parameter optimization methodology is useful in the improving model accuracy using FTIR spectroscopic technology. (C) 2015 American Institute of Chemical Engineers
机译:使用傅立叶变换红外光谱(FTIR)光谱技术开发了定量测定高脂血症的方法。随机森林(RF)被证明是用于FTIR分析人类血清样品中低密度脂蛋白胆固醇(LDL-C)和甘油三酸酯(TG)的潜在多元算法。根据基尼重要性选择了LDL-C和TG的信息波段。所选波段主要在指纹区域内。 RF建模结果优于在验证过程中使用PLS得出的结果,因为在RF算法中可能消除了过度拟合的机会。 ARF在测试过程中也显示出良好的结果。前瞻性模型在男性和女性样本的阴性/阳性特性方面显示出高于90%的真实预测。这些临床统计结果表明,在FTIR测定LDL-C和TG中准确执行了RF算法。 RF被评估为诊断和控制人群高脂血症的有前途的工具。参数优化方法学对于使用FTIR光谱技术提高模型准确性很有用。 (C)2015美国化学工程师学会

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