缺失数据对24小时活动模式分析的影响及估算方法

IF 2.1 Q3 CLINICAL NEUROLOGY Clocks & Sleep Pub Date : 2022-09-27 DOI:10.3390/clockssleep4040039
Lara Weed, Renske Lok, Dwijen Chawra, Jamie Zeitzer
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引用次数: 5

摘要

本研究的目的是表征失活数据的时间和持续时间对日间稳定性(is)和日内变异性(IV)计算的影响。对三种缺失数据插值方法(线性插值、平均时间(ToD)和中位数ToD插值)估计IV和IS的性能也进行了测试。对于单个和多个丢失的数据轮,在一系列时间和持续时间内,没有无磨损或丢失时间序列数据的一周活动记录被零或“非数字”(NaN)掩盖。IV和IS分别对真实、掩码和输入(即线性插值、平均ToD和中位数ToD输入)时间序列数据进行计算,并用于生成每种条件下的Bland-Alman图。使用热图来分析比赛时间和持续时间的影响。模拟的缺失数据产生了IV和IS的偏差,持续时间更长,中午交叉,以及在连续几天的类似时间。中位数ToD法在各方法中产生的偏差最小。在数据缺失的情况下,建议用ToD中位数补插来概括IV和is少于24小时。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The Impact of Missing Data and Imputation Methods on the Analysis of 24-Hour Activity Patterns.

The purpose of this study is to characterize the impact of the timing and duration of missing actigraphy data on interdaily stability (IS) and intradaily variability (IV) calculation. The performance of three missing data imputation methods (linear interpolation, mean time of day (ToD), and median ToD imputation) for estimating IV and IS was also tested. Week-long actigraphy records with no non-wear or missing timeseries data were masked with zeros or 'Not a Number' (NaN) across a range of timings and durations for single and multiple missing data bouts. IV and IS were calculated for true, masked, and imputed (i.e., linear interpolation, mean ToD and, median ToD imputation) timeseries data and used to generate Bland-Alman plots for each condition. Heatmaps were used to analyze the impact of timings and durations of and between bouts. Simulated missing data produced deviations in IV and IS for longer durations, midday crossings, and during similar timing on consecutive days. Median ToD imputation produced the least deviation among the imputation methods. Median ToD imputation is recommended to recapitulate IV and IS under missing data conditions for less than 24 h.

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来源期刊
Clocks & Sleep
Clocks & Sleep Multiple-
CiteScore
4.40
自引率
0.00%
发文量
0
审稿时长
7 weeks
期刊最新文献
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