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Increased statistical efficiency in a lognormal mean model
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نویسنده
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skrepnek g.h. ,sahai a.
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منبع
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journal of probability and statistics - 2014 - دوره : 2014 - شماره : 0
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چکیده
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Within the context of clinical and other scientific research,a substantial need exists for an accurate determination of the point estimate in a lognormal mean model,given that highly skewed data are often present. as such,logarithmic transformations are often advocated to achieve the assumptions of parametric statistical inference. despite this,existing approaches that utilize only a sample's mean and variance may not necessarily yield the most efficient estimator. the current investigation developed and tested an improved efficient point estimator for a lognormal mean by capturing more complete information via the sample's coefficient of variation. results of an empirical simulation study across varying sample sizes and population standard deviations indicated relative improvements in efficiency of up to 129.47 percent compared to the usual maximum likelihood estimator and up to 21.33 absolute percentage points above the efficient estimator presented by shen and colleagues (2006). the relative efficiency of the proposed estimator increased particularly as a function of decreasing sample size and increasing population standard deviation. © 2014 grant h. skrepnek and ashok sahai.
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آدرس
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college of pharmacy,peggy and charles stephenson cancer center,university of oklahoma health sciences center,1110 north stonewall avenue,oklahoma city, United States, department of mathematics and statistics,faculty of science and technology,university of the west indies, Trinidad and Tobago
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Authors
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