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Application of Multilevel Models to Morphometric Data. Part 1. Linear Models and Hypothesis Testing

机译:多级模型在不同数据中的应用。第1部分线性模型和假设检测

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摘要

Morphometric data usually have a hierarchical structure (i.e., cells are nested within patients), which should be taken into consideration in the analysis. In the recent years, special methods of handling hierarchical data, called multilevel models (MM), as well as corresponding software have received considerable development. However, there has been no application of these methods to morphometric data yet. In this paper we report our first experience of analyzing karyometric data by means of MLwiN – a dedicated program for multilevel modeling. Our data were obtained from 34 follicular adenomas and 44 follicular carcinomas of the thyroid. We show examples of fitting and interpreting MM of different complexity, and draw a number of interesting conclusions about the differences in nuclear morphology between follicular thyroid adenomas and carcinomas. We also demonstrate substantial advantages of multilevel models over conventional, single‐level statistics, which have been adopted previously to analyze karyometric data. In addition, some theoretical issues related to MM as well as major statistical software for MM are briefly reviewed.
机译:形态测量数据通常具有分层结构(即,细胞嵌套在患者内),在分析中应该考虑到这一点。近年来,处理分层数据的特殊方法,称为多级模型(mm),以及相应的软件已接受相当大的开发。但是,尚未将这些方法应用于不同数据。在本文中,我们通过MLWIN报告了通过MLWIN分析Karyometric数据的第一经验 - 用于多级模型的专用程序。我们的数据是从34个卵泡腺瘤和甲状腺的44个卵泡癌。我们展示了不同复杂性的拟合和解释mm的例子,并在滤泡甲状腺腺瘤和癌核形态之间的核形态差异中提取了一些有趣的结论。我们还展示了多级模型在传统的单级统计数据上进行了实质性的,以前通过以前采用以分析Karyometric数据。此外,简要介绍了与MM相关的一些理论问题以及MM的主要统计软件。

著录项

  • 作者

    O. Tsybrovskyy; A. Berghold;

  • 作者单位
  • 年度 2003
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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