Measurement Error Models

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出版者:John Wiley & Sons Inc
作者:Fuller, Wayne A.
出品人:
页数:440
译者:
出版时间:2006-8
价格:0
装帧:Paperback
isbn号码:9780470095713
丛书系列:
图书标签:
  • 测量误差
  • 误差模型
  • 统计学
  • 数据分析
  • 心理测量
  • 计量学
  • 回归分析
  • 结构方程模型
  • 信度与效度
  • 纵向数据
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具体描述

The Wiley-Interscience Paperback Series consists of selected books that have been made more accessible to consumers in an effort to increase global appeal and general circulation. With these new unabridged softcover volumes, Wiley hopes to extend the lives of these works by making them available to future generations of statisticians, mathematicians, and scientists. "The effort of Professor Fuller is commendable ...[the book] provides a complete treatment of an important and frequently ignored topic. Those who work with measurement error models will find it valuable. It is the fundamental book on the subject, and statisticians will benefit from adding this book to their collection or to university or departmental libraries." -Biometrics "Given the large and diverse literature on measurement error/errors-in-variables problems, Fuller's book is most welcome. Anyone with an interest in the subject should certainly have this book." -Journal of the American Statistical Association "The author is to be commended for providing a complete presentation of a very important topic. Statisticians working with measurement error problems will benefit from adding this book to their collection." -Technometrics " ...this book is a remarkable achievement and the product of impressive top-grade scholarly work." -Journal of Applied Econometrics Measurement Error Models offers coverage of estimation for situations where the model variables are observed subject to measurement error. Regression models are included with errors in the variables, latent variable models, and factor models. Results from several areas of application are discussed, including recent results for nonlinear models and for models with unequal variances. The estimation of true values for the fixed model, prediction of true values under the random model, model checks, and the analysis of residuals are addressed, and in addition, procedures are illustrated with data drawn from nearly twenty real data sets.

“测量误差模型”是一本深入探讨统计分析中测量误差影响的重要参考书。这本书全面介绍了如何识别、量化和修正因数据收集过程中出现的误差问题。内容涵盖了从基础概念到实际应用的多种章节,帮助读者理解不同类型测量误差对实验结果和统计分析的深远影响。书中详细展示了各种常见误差源,如仪器精度不足、样本选择偏差以及数据处理中的错误,提供科学且系统的解决方法。 在这一书中,研究者可以学习到多种有效的校正技术,以提升研究结果的可靠性和准确性。这包括但不限于贝叶斯推断法、回归分析方法以及误差模型的构建与验证。书中还特别强调了理论与实践结合的重要性,通过丰富的案例分析,让读者能够更直观地理解如何在真实研究场景中应用这些知识。 作者不仅提供详细的数据处理流程,还注重讲解每一阶段的逻辑和注意事项,帮助读者掌握科学严谨的分析思路。书中的章节结构清晰,内容有条理,适合初学者深入学习,也适合具有一定统计背景的专业人士进一步巩固基础。同时,书中还引用了大量最新的研究文献和技术进展,使得内容始终保持前沿性。 “测量误差模型”不仅是一本理论深度的参考,更是一个系统性的学习工具,能够帮助读者建立更精准的数据分析能力,从而提升科学研究和实务工作中的决策水平。这本书以严谨的逻辑展开每个概念,并结合实际案例,使其成为任何对测量误差感兴趣的人的必备参考。 书中详细描述了如何从数据收集到最终分析各个环节进行风险控制,帮助读者建立科学可靠的研究框架。这部分内容特别重要,它为处理复杂实验数据和提高结果信度提供了有力保障。通过学习这些知识,读者能够更加自如地应对各种测量误差挑战,在实践中不断优化工作方法。 总体来说,这本书不仅展示了理论知识,更强调实际应用的价值。它适合希望提升统计分析能力、深度理解测量误差影响的研究人员和从业者,同时也为广大学习者提供了一份系统性的知识储备,帮助他们在数据科学领域取得更大的进步。这是对严谨学术研究和专业实践的重要补充。

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