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From Experimental Investigations with Laser Bio-Photometry to Statistical Models Applied for the Normal and Pathological Tissue

机译:从激光生物光度法的实验研究到用于正常和病理组织的统计模型

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The aim of this paper is to implement a mathematical predictor algorithm to estimate the health-state evolution versus some measurable index. A relatively new medical tool was used for patients monitoring: the laser close infrared spectrum (8S0nm) for in vivo interaction with the human tissues. As a main statistic variable was considered the average reflection coefficient, ARC. The determined ARC coefficient in the intact tissues is an index of the health-state, having a range between 55,7 to 68 mW + 2,1 mW, being very stable in time. The determined average reflection coefficient in the pathologically modified tissues constantly decreases from 58 up to 42 mW + 3,4 mW and varies in time according to the evolution of the pathological process. However, the overlap for the ARC ranges occurs among diseases that induce uncertain diagnosis. Therefore a statistical algorithm is favorable. The laser bio-photometry provides the experimental tables that are processed to compute the statistical parameters and to establish a statistic variable. The developed Evaluation function, E, allows the pathological processes finding, besides to the evaluation and monitoring of their evolution.
机译:本文的目的是实现一种数学预测器算法,以估计健康状态的演变与可衡量的指标之间的关系。一种相对较新的医疗工具用于患者监测:激光近红外光谱(8S0nm),用于与人体组织的体内相互作用。作为主要统计变量,可以考虑平均反射系数ARC。完整组织中确定的ARC系数是健康状态的指标,范围在55.7至68 mW + 2.1 mW之间,并且在时间上非常稳定。在病理改变的组织中确定的平均反射系数不断地从58降低到42 mW + 3,4 mW,并随病理过程的发展而变化。但是,在引起不确定性诊断的疾病之间会出现ARC范围的重叠。因此,统计算法是有利的。激光生物光度法提供的实验表经过处理以计算统计参数并建立统计变量。先进的评估功能E,不仅可以评估和监测其演变,还可以发现病理过程。

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