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Capturing expert knowledge for threatened species assessments: a case study using NatureServe conservation status ranks

机译:为濒危物种评估获取专家知识:使用NatureServe保护状态等级的案例研究

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Assessments for assigning the conservation status of threatened species that are based purely on subjective judgements become problematic because assessments can be influenced by hidden assumptions, personal biases and perceptions of risks, making the assessment process difficult to repeat. This can result in inconsistent assessments and misclassifications, which can lead to a lack of confidence in species assessments. It is almost impossible to Understand an expert's logic or visualise the underlying reasoning behind the many hidden assumptions used throughout the assessment process. In this paper, we formalise the decision making process of experts, by capturing their logical ordering of information, their assumptions and reasoning, and transferring them into a set of decisions rules. We illustrate this through the process used to evaluate the conservation status of species under the NatureServe system (Master, 1991). NatureServe status assessments have been used for over two decades to set conservation priorities for threatened species throughout North America. We develop a conditional point-scoring method, to reflect the current subjective process. In two test comparisons, 77% of species' assessments using the explicit NatureServe method matched the qualitative assessments done subjectively by NatureServe staff. Of those that differed, no rank varied by more than one rank level under the two methods. In general, the explicit NatureServe method tended to be more precautionary than the subjective assessments. The rank differences that emerged from the comparisons may be due, at least in part, to the flexibility of the qualitative system, which allows different factors to be weighted on a species-by-species basis according to expert judgement. The method outlined in this study is the first documented attempt to explicitly define a transparent process for weighting and combining factors under the NatureServe system. The process of eliciting expert knowledge identifies how information is combined and highlights any inconsistent logic that may not be obvious in Subjective decisions. The method provides a repeatable, transparent, and explicit benchmark for feedback, further development, and improvement. (C) 2004 Elsevier SAS. All rights reserved.
机译:仅基于主观判断来分配受威胁物种保护状况的评估就变得有问题,因为评估可能会受到隐含的假设,个人偏见和对风险的感知的影响,从而使评估过程难以重复。这可能导致评估结果不一致和分类错误,从而可能导致对物种评估缺乏信心。几乎不可能理解专家的逻辑或形象化整个评估过程中使用的许多隐藏假设背后的潜在原因。在本文中,我们通过捕获专家的信息逻辑顺序,他们的假设和推理,并将他们转化为一套决策规则,来规范专家的决策过程。我们通过评估NatureServe系统下物种保护状况的过程来说明这一点(Master,1991)。 NatureServe状态评估已使用了二十多年,为整个北美受威胁物种设定了保护优先级。我们开发了一种条件得分方法,以反映当前的主观过程。在两次测试比较中,使用显式NatureServe方法进行的物种评估有77%与NatureServe员工进行的主观定性评估相匹配。在这两种不同的方法中,在两种方法下,等级变化不超过一个等级。通常,与主观评估相比,显式NatureServe方法倾向于更具预防性。从比较中得出的等级差异可能至少部分是由于定性系统的灵活性,它允许根据专家的判断在不同物种之间加权不同的因素。这项研究概述的方法是第一个有记录的尝试,试图明确定义在NatureServe系统下加权和合并因子的透明过程。激发专家知识的过程确定了信息的组合方式,并突出了主观决策中可能不明显的任何不一致的逻辑。该方法为反馈,进一步开发和改进提供了可重复,透明和明确的基准。 (C)2004 Elsevier SAS。版权所有。

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