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NON-PARAMETRIC STATISTICAL METHODS AND DATA TRANSFORMATIONS IN AGRICULTURAL PEST POPULATION STUDIES

机译:农业害虫种群研究中的非参数统计方法和数据转换

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Analyzing data from agricultural pest populations regularly detects that they do not fulfill the theoretical requirements to implement classical ANOVA. Box-Cox transformations and nonparametric statistical methods are commonly used as alternatives to solve this problem. In this paper, we describe the results of applying these techniques to data from Thrips palmi Karny sampled in potato ( Solanum tuberosum L.) plantations. The Χ2 test was used for the goodness-of-fit of negative binomial distribution and as a test of independence to investigate the relationship between plant strata and insect stages. Seven data transformations were also applied to meet the requirements of classical ANOVA, which failed to eliminate the relationship between mean and variance. Given this negative result, comparisons between insect population densities were made using the nonparametric Kruskal-Wallis ANOVA test. Results from this analysis allowed selecting the insect larval stage and plant middle stratum as keys to design pest sampling plans.
机译:对农业害虫种群的数据进行定期分析,发现它们不符合实施经典ANOVA的理论要求。 Box-Cox变换和非参数统计方法通常用作解决此问题的替代方法。在本文中,我们描述了将这些技术应用于从马铃薯(Solanum tuberosum L.)人工林中采样的棕榈蓟马的数据中获得的结果。 χ 2 检验用于负二项式分布的拟合优度,并用作独立性检验,以调查植物地层与昆虫阶段之间的关系。还应用了七个数据转换来满足经典方差分析的要求,该模型未能消除均值和方差之间的关系。鉴于此负面结果,使用非参数Kruskal-Wallis ANOVA检验对昆虫种群密度进行了比较。分析的结果允许选择昆虫幼虫阶段和植物中间层作为设计害虫采样计划的关键。

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