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首页> 外文期刊>Clinical chemistry and laboratory medicine: CCLM >Reduction of multi-dimensional laboratory data to a two-dimensional plot: a novel technique for the identification of laboratory error.
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Reduction of multi-dimensional laboratory data to a two-dimensional plot: a novel technique for the identification of laboratory error.

机译:将多维实验室数据简化为二维图:一种用于识别实验室错误的新技术。

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Background: The clinical laboratory generates large amounts of patient-specific data. Detection of errors that arise during pre-analytical, analytical, and post-analytical processes is difficult. We performed a pilot study, utilizing a multidimensional data reduction technique, to assess the utility of this method for identifying errors in laboratory data. Methods: We evaluated 13,670 individual patient records collected over a 2-month period from hospital inpatients and outpatients. We utilized those patient records that contained a complete set of 14 different biochemical analytes. We used two-dimensional generative topographic mapping to project the 14-dimensional record to a two-dimensional space. Results and conclusions: The use of a two-dimensional generative topographic mapping technique to plot multi-analyte patient data as a two-dimensional graph allows for the rapid identification of potentially anomalous data. Although we performed a retrospective analysis, this technique has the benefit of being able to assess laboratory-generated data in real time, allowing for the rapid identification and correction of anomalous data before they are released to the physician. In addition, serial laboratory multi-analyte data for an individual patient can also be plotted as a two-dimensional plot. This tool might also be useful for assessing patient wellbeing and prognosis. Clin Chem Lab Med 2007;45:749-52.
机译:背景:临床实验室会生成大量患者特定数据。很难检测分析前,分析和分析后过程中出现的错误。我们利用多维数据约简技术进行了一项试点研究,以评估此方法在实验室数据中识别错误的效用。方法:我们评估了在两个月内从医院住院患者和门诊患者收集的13,670份个人患者记录。我们利用了包含完整14种不同生化分析物的患者记录。我们使用二维生成地形图将14维记录投影到二维空间。结果与结论:使用二维生成地形图技术将多分析物患者数据绘制为二维图可以快速识别潜在的异常数据。尽管我们进行了回顾性分析,但该技术的优势在于能够实时评估实验室生成的数据,从而可以在将异常数据发布给医生之前进行快速识别和纠正。此外,单个患者的串行实验室多分析物数据也可以绘制为二维图。该工具对于评估患者的健康状况和预后也可能有用。 Clin Chem Lab Med 2007; 45:749-52。

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