首页> 外文期刊>Bioelectromagnetics: Journal of the Bioelectromagnetics Society >Personal exposure to mobile communication networks and well-being in children--a statistical analysis based on a functional approach.
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Personal exposure to mobile communication networks and well-being in children--a statistical analysis based on a functional approach.

机译:个人接触移动通信网络和儿童幸福感——基于功能方法的统计分析。

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摘要

The MobilEe-study was the first cross-sectional population-based study to investigate possible health effects of mobile communication networks on children using personal dosimetry. Exposure was assessed every second resulting in 86,400 measurements over 24 h for each participant. Therefore, a functional approach to analyze the exposure data was considered appropriate. The aim was to categorize exposure taking into account the course of the measurements over 24 h. The analyses were based on the 480 maxima of each 3 min time interval. Exposure was classified using a nonparametric functional method. Heterogeneity of a sample of functional data was assessed by comparing the functional mode and mean of the distribution of a functional variable. The partition was built within a descending hierarchical method. The resulting exposure groups were compared with categories derived from a standard method, which used the average exposure over 24 h and set the cut-off at the 90th percentile. The functional classification resulted in a splitting of the exposure data into two groups. Plots of the mean curves showed that the groups could be interpreted as children with "low exposure" (88) and "higher exposure" (12). These groups were comparable with categories of the standard method. No association between the categorized exposure and well-being was observed in logistic regression models. The functional classification approach yielded a plausible partition of the exposure data. The comparability with the standard approach might be due to the data structure and should not be generalized to other exposures.
机译:MobilEe研究是第一个基于人群的横断面研究,该研究使用个人剂量学调查移动通信网络对儿童可能产生的健康影响。每秒评估一次暴露,导致每个参与者在 24 小时内进行了 86,400 次测量。因此,分析暴露数据的功能方法被认为是合适的。目的是在考虑 24 小时内的测量过程的情况下对暴露进行分类。分析基于每 3 分钟时间间隔的 480 个最大值。使用非参数函数方法对暴露进行分类。通过比较功能变量分布的函数模式和均值来评估功能数据样本的异质性。分区是在降序分层方法中构建的。将得到的暴露组与从标准方法得出的类别进行比较,该方法使用24小时内的平均暴露量,并将临界值设置为第90个百分位数。功能分类导致暴露数据分为两组。平均曲线图显示,这些组可以解释为“低暴露”(88%)和“高暴露”(12%)的儿童。这些组与标准方法的类别具有可比性。在逻辑回归模型中未观察到分类暴露与幸福感之间的关联。功能分类方法对暴露数据进行了合理的划分。与标准方法的可比性可能是由于数据结构造成的,不应推广到其他风险。

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