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当发生两种类型的观测误差时,提高入住率估计:未检测到和物种误识别。

Improving occupancy estimation when two types of observational error occur: non-detection and species misidentification.

机构信息

United States Geological Survey, Patuxent Wildlife Research Center, 12100 Beech Forest Road, Laurel, Maryland 20708, USA.

出版信息

Ecology. 2011 Jul;92(7):1422-8. doi: 10.1890/10-1396.1.

Abstract

Efforts to draw inferences about species occurrence frequently account for false negatives, the common situation when individuals of a species are not detected even when a site is occupied. However, recent studies suggest the need to also deal with false positives, which occur when species are misidentified so that a species is recorded as detected when a site is unoccupied. Bias in estimators of occupancy, colonization, and extinction can be severe when false positives occur. Accordingly, we propose models that simultaneously account for both types of error. Our approach can be used to improve estimates of occupancy for study designs where a subset of detections is of a type or method for which false positives can be assumed to not occur. We illustrate properties of the estimators with simulations and data for three species of frogs. We show that models that account for possible misidentification have greater support (lower AIC for two species) and can yield substantially different occupancy estimates than those that do not. When the potential for misidentification exists, researchers should consider analytical techniques that can account for this source of error, such as those presented here.

摘要

人们在推断物种出现时经常会出现假阴性,即当一个物种的个体即使在一个地点被占据时也没有被检测到的常见情况。然而,最近的研究表明,也有必要处理假阳性,即当物种被错误识别时发生的情况,即当一个物种被记录为在一个地点未被占据时被检测到。当出现假阳性时,对占有、殖民和灭绝的估计值的偏差可能会很严重。因此,我们提出了同时考虑这两种错误的模型。我们的方法可以用于改进对研究设计的占有估计,其中一部分检测是一种类型或方法,假设不会出现假阳性。我们用三种青蛙的模拟和数据来说明估计器的性质。我们表明,考虑到可能的错误识别的模型具有更大的支持(对于两种物种来说,AIC 更低),并且可以产生与不考虑错误识别的模型大不相同的占有估计值。当存在错误识别的可能性时,研究人员应该考虑可以解释这种误差源的分析技术,例如这里提出的技术。

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