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Indirect Reference Intervals: Harnessing the Power of Stored Laboratory Data

机译:间接参考间隔:利用存储的实验室数据的力量

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摘要

Reference intervals are relied upon by clinicians when interpreting their patients’ test results. Therefore, laboratorians directly contribute to patient care when they report accurate reference intervals. The traditional approach to establishing reference intervals is to perform a study on healthy volunteers. However, the practical aspects of the staff time and cost required to perform these studies make this approach difficult for clinical laboratories to routinely use. Indirect methods for deriving reference intervals, which utilise patient results stored in the laboratory’s database, provide an alternative approach that is quick and inexpensive to perform. Additionally, because large amounts of patient data can be used, the approach can provide more detailed reference interval information when multiple partitions are required, such as with different age-groups.However, if the indirect approach is to be used to derive accurate reference intervals, several considerations need to be addressed. The laboratorian must assess whether the assay and patient population were stable over the study period, whether data ‘clean-up’ steps should be used prior to data analysis and, often, how the distribution of values from healthy individuals should be modelled. The assumptions and potential pitfalls of the particular indirect technique chosen for data analysis also need to be considered. A comprehensive understanding of all aspects of the indirect approach to establishing reference intervals allows the laboratorian to harness the power of the data stored in their laboratory database and ensure the reference intervals they report are accurate.
机译:临床医生在解释患者的检查结果时会参考间隔。因此,当实验室医师报告准确的参考间隔时,他们会直接为患者护理做出贡献。建立参考间隔的传统方法是对健康志愿者进行研究。但是,进行这些研究所需的人员时间和成本等实际方面使这种方法难以为临床实验室常规使用。利用存储在实验室数据库中的患者结果,间接得出参考间隔的方法提供了一种替代方法,该方法执行起来快速且经济。此外,由于可以使用大量患者数据,因此当需要多个分区(例如不同年龄组)时,该方法可以提供更详细的参考间隔信息。但是,如果要使用间接方法来得出准确的参考间隔,需要考虑几个注意事项。实验室人员必须评估研究期间的测定和患者群体是否稳定,是否应在数据分析之前使用数据“清理”步骤,以及通常应如何建模健康个体的价值分布。还需要考虑为数据分析选择的特定间接技术的假设和潜在陷阱。对间接建立参考间隔的所有方法的全面理解,使实验室人员可以利用存储在其实验室数据库中的数据的力量,并确保他们报告的参考间隔是准确的。

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