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A big-data approach to producing descriptive anthropometric references: a feasibility and validation study of paediatric growth charts

机译:产生描述性人力测量参考的大数据方法:儿科生长图表的可行性和验证研究

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摘要

Summary: Background: Both national and WHO growth charts have been found to be poorly calibrated with the physical growth of children in many countries. We aimed to generate new national growth charts for French children in the context of huge datasets of physical growth measurements routinely collected by office-based health practitioners. Methods: We recruited 32 randomly sampled primary care paediatricians and ten volunteer general practitioners from across the French metropolitan territory who used the same electronic medical records software, from which we extracted all physical growth data for the paediatric patients, with anonymisation. We included measurements from all children born from Jan 1, 1990, and aged 1 month to 18 years by Feb 8, 2018, with birthweight greater than 2500 g, to which an automated process of data cleaning developed to detect and delete measurement or transcription errors was applied. Growth charts for weight and height were derived by using generalised additive models for location, scale, and shape with the Box-Cox power exponential distribution. We compared the new charts to WHO growth charts and existing French national growth charts, and validated our charts using growth data from recent national cross-sectional surveys. Findings: After data cleaning, we included 1 458 468 height and 1 690 340 weight measurements from 238 102 children. When compared with the existing French national and WHO growth charts, all height SD and weight percentile curves for the new growth charts were distinctly above those for the existing French national growth charts, as early as age 1 month, with an average difference of −0·75 SD for height and −0·50 SD for weight for both sexes. Comparison with national cross-sectional surveys showed satisfactory calibration, with generally good fit for children aged 5–6 years and 10–11 years in height and weight and small differences at age 14–15 years. Interpretation: We successfully produced calibrated paediatric growth charts by using a novel big-data approach applied to data routinely collected in clinical practice that could be used in many fields other than anthropometry. Funding: The French Ministry of Health; Laboratoires Guigoz—General Pediatrics section of the French Society of Pediatrics—Pediatric Epidemiological Research Group; and the French Association for Ambulatory Pediatrics.
机译:摘要:背景:已发现国家和世卫组织生长图表与孩子的许多国家的体格发育进行校准不当。我们的目的是生成法国儿童在由办公室为基础的保健医生定期收集物理生长测量数据集庞大的背景下新的国家经济增长走势图。方法:我们招募了32名随机抽样的初级保健儿科医师和十个志愿医生来自全国各地谁使用相同的电子病历软件,从中提取的儿科患者的所有物理增长数据,与匿名化的法国本土。我们包括由2018年2月8日从1990年1月1日,和年龄1个月出生至18岁的所有儿童的测量,与出生体重大于2500克,到清洁发展数据的自动处理来检测和删除的测量或抄写错误应用。对于体重和身高生长图表,用广义相加模型的位置,规模和形状与Box-Cox幂指数分布的。我们比较了新的图表世界卫生组织生长曲线图和现有的法国国家增长图表,从近期国家横断面调查验证的使用增长数据我们的图表。结果:数据清洁后,我们包括1 458 468的高度和从238 102名儿童1次690 340重量测量。当与现有的法国国家和世卫组织生长图表相比,所有身高SD和重量百分新的增长图表曲线均明显高于那些现有的法国国家生长曲线图,早在年龄1个月,以平均相差-0 ·75 SD高度和-0·50 SD为重量为两性。国家横断面调查比较显示令人满意的调校,具有普遍看好适合年龄5-6岁和10-11岁的身高和体重,并在年龄14 - 15年的小差异的儿童。解读:我们成功地通过使用应用到临床实践中常规收集的数据可能会比其他人体测量许多领域中使用的新的大数据的方式产生的校准小儿生长图表。资金来源:法国卫生部的;儿科,小儿的法国社会流行病学研究小组的产品Laboratoires Guigoz总小儿科部分;和法国协会的门诊儿科。

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