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首页> 外文期刊>Pharmacoepidemiology and drug safety >An algorithm to derive a numerical daily dose from unstructured text dosage instructions.
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An algorithm to derive a numerical daily dose from unstructured text dosage instructions.

机译:一种从非结构化文本剂量指令中导出每日数字剂量的算法。

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PURPOSE: The General Practice Research Database (GPRD) is a database of longitudinal patient records from general practices in the United Kingdom. It is an important data source for pharmacoepidemiology studies, but until now it has been tedious to calculate the daily dose and duration of exposure to drugs prescribed. This is because general practitioners routinely record dosage instructions as free text rather than in a structured way. The objective was to develop and assess the validity of an automated algorithm to derive the daily dose from text dosage instructions. METHODS: A computer program was developed to derive numerical information from unstructured text dosage instructions. It was tested on dosage texts from a random sample of one million prescription entries. A random sample of 1,000 of these converted texts were manually checked for their accuracy. RESULTS: Out of the sample of one million prescription entries, 74.5% had text containing the daily dose, 14.5% had text but did not include a quantitative daily dose statement and 11.0% had no text entered. Of the 1000 texts which were checked manually, 767 stated the daily dose. The program interpreted 758 (98.8%) of these correctly, produced errors in four cases and failed to extract the dose from five texts. CONCLUSIONS: An automated algorithm has been developed which can accurately extract the daily dose from almost 99% of general practitioners' text dosage instructions. It increases the utility of GPRD and other prescription data sources by enabling researchers to estimate the duration of drug exposure more efficiently.
机译:目的:全科医学研究数据库(GPRD)是来自英国全科医学的纵向患者病历数据库。它是药物流行病学研究的重要数据来源,但是到目前为止,计算每日的剂量和处方药暴露时间一直很繁琐。这是因为普通医生通常将剂量说明记录为自由文本,而不是以结构化方式记录。目的是开发和评估一种自动算法的有效性,该算法可从文本剂量说明中得出每日剂量。方法:开发了一种计算机程序,用于从非结构化文本剂量指令中导出数值信息。它是根据一百万个处方条目的随机样本中的剂量文本进行测试的。手动检查了这些转换文本中的1,000个随机样本的准确性。结果:在一百万个处方条目的样本中,74.5%的文本包含每日剂量,14.5%的文本包含但不包括定量的每日剂量说明,11.0%的文本未包含。在手动检查的1000篇文章中,有767条指出了每日剂量。该程序正确地解释了其中的758种(98.8%),在4种情况下产生了错误,并且未能从5种文本中提取剂量。结论:已经开发了一种自动算法,该算法可以从几乎99%的全科医生文字剂量说明中准确提取每日剂量。通过使研究人员更有效地估计药物暴露的持续时间,它增加了GPRD和其他处方数据来源的实用性。

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