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Spectral data quality assessment based on variability analysis: application to noninvasive hemoglobin measurement by dynamic spectrum

机译:基于变异性分析的光谱数据质量评估:动态光谱在无创血红蛋白测量中的应用

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The quality of spectral data is crucial to the accuracy of quantitative spectral analysis, especially the noninvasive measurement of blood components. As an important part of research, establishing an effective and reliable quality assessment metric to select data before modelling is indispensable. According to the principle of Dynamic Spectrum (DS) and the characteristics of the photoplethysmogram (PPG), a novel method to assess the spectral quality a€“ stability coefficient (SC) a€“ is proposed in this study and we propose an analytical formula. To verify the feasibility, in simulation analysis, we calculated the stability coefficient of simulated spectra and evaluated the performance of extraction by the Root Mean Square Error (RMSE). The result shows a negative correlation between the stability coefficient and RMSE. After simulation analysis, we conducted a control experiment based on data from 427 subjects by developing calibration models between the DS data and hemoglobin concentration. The average correlation coefficient is 0.875 in the test set of the experimental group, while that of the control group is only 0.715. The actual experimental result is consistent with the simulation analysis, which demonstrates that the assessment method can evaluate the quality of spectral data efficiently and accurately. This new quantitative method provides a reliable way to assess and screen spectral data. It could be applied not only to the noninvasive measurement of blood components but also to other related fields such as spectral analysis, and signal measurement and processing.
机译:光谱数据的质量对于定量光谱分析的准确性至关重要,尤其是血液成分的无创测量。作为研究的重要组成部分,建立有效而可靠的质量评估指标以在建模之前选择数据是必不可少的。根据动态光谱原理和光电体积描记图的特点,提出了一种新的光谱质量评价方法,即“稳定系数(SC)”,并提出了解析公式。 。为了验证可行性,在模拟分​​析中,我们计算了模拟光谱的稳定性系数,并通过均方根误差(RMSE)评估了提取性能。结果表明,稳定性系数与RMSE之间呈负相关。经过模拟分析,我们通过开发DS数据和血红蛋白浓度之间的校准模型,基于427位受试者的数据进行了对照实验。实验组测试集的平均相关系数为0.875,而对照组仅为0.715。实际实验结果与仿真分析结果吻合,表明该评估方法能够有效,准确地评估光谱数据的质量。这种新的定量方法提供了评估和筛选光谱数据的可靠方法。它不仅可以应用于血液成分的非侵入性测量,而且可以应用于其他相关领域,例如光谱分析以及信号测量和处理。

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