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Abundance-Based Similarity Indices and Their Estimation When There Are Unseen Species in Samples

机译:abundance-Based similarity Indices and Their Estimation When There are Unseen species in samples

摘要

A wide variety of similarity indices for comparing two assemblages based on species incidence (i.e., presence/absence) data have been proposed in the literature. These indices are generally based on three simple incidence counts: the number of species shared by two assemblages and the number of species unique to each of them. We provide a new probabilistic derivation for any incidence-based index that is symmetric (i.e., the index is not affected by the identity ordering of the two assemblages) and homogeneous (i.e., the index is unchanged if all counts are multiplied by a constant). The probabilistic approach is further extended to formulate abundance-based indices. Thus any symmetric and homogeneous incidence index can be easily modified to an abundance-type version. Applying the Laplace approximation formulas, we propose estimators that adjust for the effect of unseen shared species on our abundance-based indices. Simulation results show that the adjusted estimators significantly reduce the biases of the corresponding unadjusted ones when a substantial fraction of species is missing from samples. Data on successional vegetation in six tropical forests are used for illustration. Advantages and disadvantages of some commonly applied indices are briefly discussed.
机译:在文献中已经提出了用于基于物种发生率(即,存在/不存在)数据比较两个集合的各种各样的相似性指数。这些指数通常基于三个简单的发生率计数:两个集合所共有的物种数量以及每个集合所独有的物种数量。我们为对称(即,该索引不受两个组合的标识顺序的影响)和均质(即,如果所有计数都乘以一个常数,则该索引不变)的任何基于事件的索引提供新的概率推导。概率方法进一步扩展为制定基于丰度的指标。因此,任何对称且均匀的入射指数都可以轻松地修改为丰度类型。应用拉普拉斯逼近公式,我们提出了针对未见共享物种对基于丰度的指数的影响进行调整的估算器。仿真结果表明,当样本中缺少很大一部分物种时,调整后的估计量会显着降低相应未调整后的估计量的偏差。关于六个热带森林中演替性植被的数据用于说明。简要讨论了一些常用指标的优缺点。

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