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Measurement site dependent data preprocessing method for robust calibration and prediction

机译:测量站点相关的数据预处理方法,用于可靠的校准和预测

摘要

A solution for reducing interference in noninvasive spectroscopic measurements of tissue and blood analytes is provided. By applying a basis set representing various tissue components to a collected sample measurement, measurement interferences resulting from the heterogeneity of tissue, sampling site differences, patient-to-patient variation, physiological variation, and instrumental differences are reduced. Consequently, the transformed sample measurements are more suitable for developing calibrations that are robust with respect to sample-to-sample variation, variation through time, and instrument related differences. In the calibration phase, data associated with a particular tissue sample site is corrected using a selected subset of data within the same data set. This method reduces the complexity of the data and reduces the intra-subject, inter-subject, and inter-instrument variations by removing interference specific to the respective data subset. In the measurement phase, the basis set correction is applied using a minimal number of initial samples collected from the sample site(s) where future samples will be collected.
机译:提供一种用于减少对组织和血液分析物的无创光谱测量中的干扰的解决方案。通过将代表各种组织成分的基础集应用于收集的样本测量值,可以减少由于组织异质性,采样位置差异,患者之间的差异,生理差异和仪器差异而引起的测量干扰。因此,转换后的样品测量值更适合开发相对于样品间差异,随时间变化以及仪器相关差异具有鲁棒性的校准。在校准阶段,使用同一数据集中选定的数据子集来校正与特定组织样本部位相关的数据。此方法通过消除特定于各个数据子集的干扰,降低了数据的复杂性并减少了对象内,对象间和仪器间的差异。在测量阶段,使用从样本位置(将收集未来样本的位置)收集的最少初始样本进行基集校正。

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