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Goodness-of-fit testing for the Gompertz growth curve model

机译:Gompertz生长曲线模型的拟合优度测试

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In this paper we develop some natural "goodness-of-fit" tests for the Gompertz growth curve model (GGCM) based on the empirical estimate of relative growth rate (RGR). Existing approaches of goodness-of-fit tests for growth curve models are mainly based on finite differences of the size data (Bhattacharya et al., Commun Stat Theory Methods 38:340-363, 2009). In growth curve studies the underlying model is often better identified through the rate profile than the size profile (Zotin, Can Bull Fish Aquat Sci 213:27-37, 1985; Bhattacharya et al., J Appl Probab Stat, 4:239-253, 2009; Sibly et al., Science 309:607-610, 2005). The parameters of the GGCM are easily interpretable and a test based on the RGR can be derived more easily by assuming a simple correlation structure among RGRs, rather than modeling the size variable directly (White and Brisbin, Growth 44:97-111, 1980; Sandland and McGilchrist, Biometrics 35:255-271,1979). We therefore expect that a goodness-of-fit test for the GGCM based on the RGR will have substantial practical value. The tests for the GGCM developed here are based on the finite differences of appropriate functions of the empirical relative growth rate. The performance of the theory developed is illustrated through simulation and with several sets of real data.
机译:在本文中,我们基于相对增长率(RGR)的经验估计,为Gompertz生长曲线模型(GGCM)开发了一些自然的“拟合优度”检验。现有的用于增长曲线模型的拟合优度检验方法主要基于大小数据的有限差异(Bhattacharya等人,Commun Stat Theory Methods 38:340-363,2009)。在生长曲线研究中,通过速率分布比通过尺寸分布更好地识别基本模型(Zotin,Can Bull Fish Aquat Sci 213:27-37,1985; Bhattacharya等人,J Appl Probab Stat,4:239-253)。 ,2009; Sible et al。,Science 309:607-610,2005)。 GGCM的参数很容易解释,并且通过假设RGR之间的简单相关结构,而不是直接对大小变量进行建模,可以更轻松地得出基于RGR的测试(White和Brisbin,Growth 44:97-111,1980; Sandland and McGilchrist,Biometrics 35:255-271,1979)。因此,我们期望基于RGR的GGCM拟合优度测试将具有实质性的实用价值。此处开发的GGCM检验基于经验相对增长率的适当函数的有限差异。通过仿真和几组真实数据说明了所开发理论的性能。

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