实验室医学中的非线性曲线拟合方法。

Peter A C McPherson
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引用次数: 0

摘要

非线性曲线拟合是实验室医学中的一个重要过程,尤其是随着高灵敏度抗体检测方法的使用越来越多。虽然这一过程通常由市面上的软件自动完成,但临床科学家和医生必须认识到各种方法的局限性,并能选择最合适的模型。本文总结了主要的非线性函数,并演示了它们在常见实验室数据中的应用。随后,介绍了模型统计比较的基本概况,然后讨论了非线性曲线拟合中使用的重要算法。随附的 Microsoft Excel 工作簿可用于探讨本文内容。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Approaches to nonlinear curve fitting in laboratory medicine.

Nonlinear curve fitting is an important process in laboratory medicine, particularly with the increased use of highly sensitive antibody-based assays. Although the process is often automated in commercially available software, it is important that clinical scientists and physicians recognize the limitations of the various approaches used and are able to select the most appropriate model. This article summarizes the key nonlinear functions and demonstrates their application to common laboratory data. Following this, a basic overview of the statistical comparison of models is presented and then a discussion of important algorithms used in nonlinear curve fitting. An accompanying Microsoft Excel workbook is available that can be used to explore the content of this article.

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