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Determine the therapeutic role of radiotherapy in administrative data: a data mining approach

机译:确定放射疗法在行政数据中的治疗作用:一种数据挖掘方法

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Background Clinical data gathered for administrative purposes often lack sufficient information to separate the records of radiotherapy given for palliation from those given for cure. An absence, incompleteness, or inaccuracy of such information could hinder or bias the study of the utilization and outcome of radiotherapy. This study has three specific purposes: 1) develop a method to determine the therapeutic role of radiotherapy (TRR); 2) assess the accuracy of the method; 3) report the quality of the information on treatment “intent” recorded in the clinical data in Ontario, Canada. A general purpose is to use this study as a prototype to demonstrate and test a method to assess the quality of administrative data. Methods This is a population based retrospective study. A random sample was drawn from the treatment records with “intent” assigned in treating hospitals. A decision tree is grown using treatment parameters as predictors and “intent” as outcome variable to classify the treatments into curative or palliative. The tree classifier was applied to the entire dataset, and the classification results were compared with those identified by “intent”. A manual audit was conducted to assess the accuracy of the classification. Results The following parameters predicted the TRR, from the strongest to the weakest: radiation dose per fraction, treated body-region, disease site, and time of treatment. When applied to the records of treatments given between 1990 and 2008 in Ontario, Canada, the classification rules correctly classified 96.1% of the records. The quality of the “intent” variable was as follows: 77.5% correctly classified, 3.7% misclassified, and 18.8% did not have an “intent” assigned. Conclusions The classification rules derived in this study can be used to determine the TRR when such information is unavailable, incomplete, or inaccurate in administrative data. The study demonstrates that data mining approach can be used to effectively assess and improve the quality of large administrative datasets.
机译:背景出于管理目的而收集的临床数据通常缺乏足够的信息,无法将用于缓解的放疗记录与用于治疗的放疗记录分开。此类信息的缺乏,不完整或不准确可能会妨碍或偏向放疗利用和结果的研究。这项研究具有三个特定目的:1)开发一种确定放射治疗(TRR)的治疗作用的方法; 2)评估方法的准确性; 3)报告加拿大安大略省临床数据中记录的“意图”治疗信息的质量。一般的目的是将这项研究作为原型来证明和测试一种评估行政数据质量的方法。方法这是一项基于人群的回顾性研究。从治疗记录中抽取随机样本,并在治疗医院分配“意图”。使用治疗参数作为预测变量并使用“意图”作为结果变量来生长决策树,以将治疗分为治愈性或姑息性。将树分类器应用于整个数据集,并将分类结果与“意图”识别的结果进行比较。进行了人工审核以评估分类的准确性。结果以下参数预测了TRR,从最强到最弱:每个部分的辐射剂量,治疗的身体部位,疾病部位和治疗时间。将分类规则应用于1990年至2008年在加拿大安大略省提供的治疗记录时,分类规则正确地对记录的96.1%进行了分类。 “意图”变量的质量如下:正确分类的占77.5%,错误分类的占3.7%,未分配“意图”的占18.8%。结论本研究中得出的分类规则可用于在行政数据中没有此类信息,信息不完整或不准确时确定TRR。该研究表明,数据挖掘方法可用于有效评估和改善大型管理数据集的质量。

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