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步道上的老虎:聚类抽样的占有模型。

Tigers on trails: occupancy modeling for cluster sampling.

机构信息

United States Geological Survey, Patuxent Wildlife Research Center, Laurel, Maryland 20708, USA.

出版信息

Ecol Appl. 2010 Jul;20(5):1456-66. doi: 10.1890/09-0321.1.

Abstract

Occupancy modeling focuses on inference about the distribution of organisms over space, using temporal or spatial replication to allow inference about the detection process. Inference based on spatial replication strictly requires that replicates be selected randomly and with replacement, but the importance of these design requirements is not well understood. This paper focuses on an increasingly popular sampling design based on spatial replicates that are not selected randomly and that are expected to exhibit Markovian dependence. We develop two new occupancy models for data collected under this sort of design, one based on an underlying Markov model for spatial dependence and the other based on a trap response model with Markovian detections. We then simulated data under the model for Markovian spatial dependence and fit the data to standard occupancy models and to the two new models. Bias of occupancy estimates was substantial for the standard models, smaller for the new trap response model, and negligible for the new spatial process model. We also fit these models to data from a large-scale tiger occupancy survey recently conducted in Karnataka State, southwestern India. In addition to providing evidence of a positive relationship between tiger occupancy and habitat, model selection statistics and estimates strongly supported the use of the model with Markovian spatial dependence. This new model provides another tool for the decomposition of the detection process, which is sometimes needed for proper estimation and which may also permit interesting biological inferences. In addition to designs employing spatial replication, we note the likely existence of temporal Markovian dependence in many designs using temporal replication. The models developed here will be useful either directly, or with minor extensions, for these designs as well. We believe that these new models represent important additions to the suite of modeling tools now available for occupancy estimation in conservation monitoring. More generally, this work represents a contribution to the topic of cluster sampling for situations in which there is a need for specific modeling (e.g., reflecting dependence) for the distribution of the variable(s) of interest among subunits.

摘要

占据模型主要关注于通过时间或空间重复来推断生物在空间上的分布,从而可以对检测过程进行推断。基于空间重复的推断严格要求重复是随机选择和有放回的,但这些设计要求的重要性还没有得到很好的理解。本文主要关注一种越来越流行的抽样设计,这种设计基于的空间重复不是随机选择的,并且预计会表现出马尔可夫依赖性。我们为这种设计下收集的数据开发了两种新的占据模型,一种基于空间相关性的潜在马尔可夫模型,另一种基于具有马尔可夫检测的陷阱响应模型。然后,我们根据马尔可夫空间相关性模型模拟数据,并将数据拟合到标准占据模型和这两个新模型中。标准模型的占据估计偏差较大,新的陷阱响应模型的偏差较小,新的空间过程模型的偏差可以忽略不计。我们还将这些模型拟合到最近在印度西南部卡纳塔克邦进行的一项大型老虎占据调查的数据中。除了提供老虎占据与栖息地之间存在正相关关系的证据外,模型选择统计数据和估计值强烈支持使用具有马尔可夫空间相关性的模型。这个新模型为检测过程的分解提供了另一个工具,这有时是正确估计所必需的,并且也可能允许进行有趣的生物学推断。除了使用空间重复的设计外,我们还注意到在许多使用时间重复的设计中可能存在时间马尔可夫依赖性。这里开发的模型可以直接使用,也可以进行少量扩展,以适用于这些设计。我们相信,这些新模型是在保护监测中用于占据估计的建模工具套件中的重要补充。更一般地说,这项工作代表了对特定建模(例如,反映相关性)的需要的情况下的聚类抽样的一个贡献,这些情况涉及感兴趣的变量(或变量)在子单元之间的分布。

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