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Comparison of Ordinal and Nominal Classification Trees to Predict Ordinal Expert-Based Occupational Exposure Estimates in a Case–Control Study

机译:在病例对照研究中比较序数和名义分类树以预测基于序数专家的职业接触估计

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摘要

Objectives:To evaluate occupational exposures in case–control studies, exposure assessors typically review each job individually to assign exposure estimates. This process lacks transparency and does not provide a mechanism for recreating the decision rules in other studies. In our previous work, nominal (unordered categorical) classification trees (CTs) generally successfully predicted expert-assessed ordinal exposure estimates (i.e. none, low, medium, high) derived from occupational questionnaire responses, but room for improvement remained. Our objective was to determine if using recently developed ordinal CTs would improve the performance of nominal trees in predicting ordinal occupational diesel exhaust exposure estimates in a case–control study.
机译:目标:为了在病例对照研究中评估职业暴露,暴露评估者通常会单独审查每个工作以分配暴露估计。该过程缺乏透明度,并且没有提供在其他研究中重新创建决策规则的机制。在我们先前的工作中,名义(无序分类)分类树(CT)通常成功地预测了由职业调查问卷回复得出的专家评估的序数暴露估计值(即无,低,中,高),但仍有改进的余地。我们的目标是确定在病例对照研究中,使用最新开发的序贯CT能否提高名义树木在预测序贯职业柴油机废气暴露估计值方面的性能。

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