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ExpertLens: A system for eliciting opinions from a large pool of non-collocated experts with diverse knowledge

机译:ExpertLens:一种系统,用于从大量具有不同知识的并置专家中征求意见

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The complexity of policy decision-making raises the need to elicit opinions from large and heterogeneous groups of stakeholders with broad and diverse sets of expertise. Existing options for elicitation include small face-to-face panels of experts by using the Nominal Group Technique (NGT), large Delphi panels whose members do not interact with each other face-to-face, and crowdsourcing, which involves an open call for input issued to a large community of people. In an attempt to close the gap between the practical needs of policy makers and the methodological challenges associated with eliciting opinions of large, diverse, and distributed groups, we have developed a new online elicitation system and methodology called ExpertLens. By optimizing the direct interactions of NGT with the larger number of Delphi participants and the wisdom of "selected crowds," our approach is designed to save on the costs associated with traditional expert panels, while increasing accuracy in elicitation by reducing the potential for group process losses that can occur in large, diverse, and non-collocated panels whose members interact via asynchronous online discussion boards. The ExpertLens approach is iterative, does not require participants to develop consensus, and determines what the group "thinks" by statistically analyzing data collected in all rounds of the elicitation. This paper describes the ExpertLens system and methodology, briefly discusses recent ExpertLens trials, provides conceptual arguments for why it is an appropriate model for eliciting expert opinions, illustrates its main components and analytics by using an infrastructure investment example, and discusses a research agenda for testing the underlying tenets of the ExpertLens approach.
机译:政策决策的复杂性导致需要从具有广泛而多样的专业知识的大型,异类利益相关者团体中征求意见。现有的启发方法包括使用名义小组技术(NGT)的小型专家面对面小组,成员之间不相互面对面互动的大型Delphi小组以及众包,这涉及公开征集投入发布给广大人群。为了缩小决策者的实际需求和与引起庞大,多样且分散的群体的意见有关的方法挑战之间的差距,我们开发了一种新的在线启发系统和方法,称为ExpertLens。通过优化NGT与更多Delphi参与者的直接互动以及“选定人群”的智慧,我们的方法旨在节省与传统专家小组相关的成本,同时通过减少小组流程的潜力来提高引诱的准确性损失可能发生在大型,多样化且非并置的面板中,其成员通过异步在线讨论板进行交互。 ExpertLens方法是迭代的,不需要参与者达成共识,并通过统计分析在所有启发过程中收集的数据来确定小组的“想法”。本文介绍了ExpertLens系统和方法,简要讨论了ExpertLens的最新试验,提供了概念性的论证,说明了为什么它是引发专家意见的合适模型,并通过基础设施投资示例说明了其主要组成部分和分析方法,并讨论了用于测试的研究议程ExpertLens方法的基本原则。

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