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Nonparametric estimation of Shannon's index of diversity when there are unseen species in sample

机译:样本中存在未知物种时,香农多样性指数的非参数估计

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A biological community usually has a large number of species with relatively small abundances. When a random sample of individuals is selected and each individual is classified according to species identity, some rare species may not be discovered. This paper is concerned with the estimation of Shannon's index of diversity when the number of species and the species abundances are unknown. The traditional estimator that ignores the missing species underestimates when there is a non-negligible number of unseen species. We provide a different approach based on unequal probability sampling theory because species have different probabilities of being discovered in the sample. No parametric forms are assumed for the species abundances. The proposed estimation procedure combines the Horvitz-Thompson (1952) adjustment for missing species and the concept of sample coverage, which is used to properly estimate the relative abundances of species discovered in the sample. Simulation results show that the proposed estimator works well under various abundance models even when a relatively large fraction of the species is missing. Three real data sets, two from biology and the other one from numismatics, are given for illustration.
机译:生物群落通常具有大量物种,其丰度相对较小。当选择个体的随机样本并根据物种身份对每个个体进行分类时,可能不会发现一些稀有物种。当物种数量和物种丰度未知时,本文涉及香农多样性指数的估计。当存在数量不可忽略的未知物种数量时,忽略缺失物种的传统估计器会低估。我们基于不等概率抽样理论提供了一种不同的方法,因为物种在样本中被发现的概率不同。没有假设物种丰度的参数形式。提出的估算程序结合了针对缺失物种的Horvitz-Thompson(1952)调整和样本覆盖率的概念,该概念可用于正确估算样本中发现的物种的相对丰度。仿真结果表明,即使缺少很大一部分物种,该估计器在各种丰度模型下也能很好地工作。为了说明,给出了三个真实的数据集,两个来自生物学,另一个来自钱币学。

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