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A polychotomous, multivariate regression model predicting performance level in a core mathematics course.

机译:预测核心数学课程成绩水平的多变量多元回归模型。

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摘要

Enrolling students in a mathematics course commensurate with their performance ability is of great importance to mathematics departments at all institutions of higher learning. This research will utilize pre-existing historical data from Texas Woman's University containing readily available and easily measured factors, which most institutions of higher learning will have available, to develop a predictive model that can be used to place a student in an appropriate mathematics course. Multiple logistic regression and ordinal logistic regression methods are used to construct dichotomous and polychotomous models predicting performance level in Elementary Statistics and Elementary Analysis. External validation will be conducted on different data sets than those used in model construction to evaluate how accurately the models predict performance. Both dichotomous and polychotomous models were found to have performed well, predicting within four percent for Elementary Statistics and within ten percent for Elementary Analysis.
机译:让学生参加与其表现能力相称的数学课程对于所有高等学校的数学系都非常重要。这项研究将利用得克萨斯女子大学(Texas Woman's University)已有的历史数据,其中包含大多数高等教育机构都可以使用的,容易获得且易于测量的因素,来开发一种预测模型,该模型可用于将学生安排在适当的数学课程中。多元逻辑回归和序数逻辑回归方法用于构建预测基本统计和基本分析中的性能水平的二分和多分模型。外部验证将在与模型构建所使用的数据集不同的数据集上进行,以评估模型预测性能的准确性。发现二分模型和多分模型都表现良好,基本统计预测误差在4%之内,而基本分析预测误差在10%之内。

著录项

  • 作者

    Ingram, Paul Burton.;

  • 作者单位

    Texas Woman's University.;

  • 授予单位 Texas Woman's University.;
  • 学科 Mathematics.;Mathematics education.;Statistics.
  • 学位 M.S.
  • 年度 2008
  • 页码 69 p.
  • 总页数 69
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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