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불검출 자료를 포함한 작업환경측정 자료의 분석 방법 비교A Comparison of Analysis Methods for Work Environment Measurement Databases Including Left-censored Data

Other Titles
A Comparison of Analysis Methods for Work Environment Measurement Databases Including Left-censored Data
Authors
박주현최상준고동희박동욱성예지
Issue Date
Mar-2022
Publisher
한국산업보건학회
Keywords
Left-censored data; limit of detection; maximum likelihood estimation; β-substitution
Citation
한국산업보건학회지, v.32, no.1, pp 21 - 30
Pages
10
Indexed
KCI
Journal Title
한국산업보건학회지
Volume
32
Number
1
Start Page
21
End Page
30
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/3467
DOI
10.15269/JKSOEH.2022.32.1.21
ISSN
2384-132X
2289-0564
Abstract
Objectives: The purpose of this study is to suggest an optimal method by comparing the analysis methods of work environment measurement datasets including left-censored data where one or more measurements are below the limit of detection (LOD). Methods: A computer program was used to generate left-censored datasets for various combinations of censoring rate (1% to 90%) and sample size (30 to 300). For the analysis of the censored data, the simple substitution method (LOD/2), β-substitution method, maximum likelihood estimation (MLE) method, Bayesian method, and regression on order statistics (ROS)were all compared. Each method was used to estimate four parameters of the log-normal distribution: (1) geometric mean (GM), (2) geometric standard deviation (GSD), (3) 95th percentile (X95), and (4) arithmetic mean (AM) for the censored dataset. The performance of each method was evaluated using relative bias and relative root mean squared error (rMSE). Results: In the case of the largest sample size (n=300), when the censoring rate was less than 40%, the relative bias and rMSE were small for all five methods. When the censoring rate was large (70%, 90%), the simple substitution method was inappropriate because the relative bias was the largest, regardless of the sample size. When the sample size was small and the censoring rate was large, the Bayesian method, the β-substitution method, and the MLE method showed the smallest relative bias. Conclusions: The accuracy and precision of all methods tended to increase as the sample size was larger and the censoring rate was smaller. The simple substitution method was inappropriate when the censoring rate was high, and the β-substitution method, MLE method, and Bayesian method can be widely applied.
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