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New method for solving reviewer assignment problem using type-2 fuzzy sets and fuzzy functions

机译:利用类型2模糊集和模糊函数解决审稿人分配问题的新方法

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Reviewer Assignment Problem (RAP) is one of the cardinal problems in Government Funding agencies where the expertise level of the referee reviewing a proposal needs to be optimised to guarantee the selection of good R&D projects. Although many solutions have been proposed for RAP in the past, none of them deals with the inherent imprecision associated with the problem. For instance, it is not possible to determine the “exact expertise level” of a particular reviewer in a particular domain. In this paper, we propose a novel approach for assigning reviewers to proposals. To calculate the expertise of a reviewer in a particular domain, we create a type-2 fuzzy set by assigning relevant weights to the various factors that affect the expertise of the reviewer in that domain. We also create a fuzzy set of the proposal by selecting three keywords that best represent the proposal. We then use a fuzzy functions based equality operator to compute the equality of the type-2 fuzzy set of experts and the fuzzy set of proposal keywords, which is then subjected to a set of relevant constraints to optimize the solution. We consider the four important aspects: workload balancing of reviewers, avoiding Conflicts of Interest, considering individual preferences by incorporating bidding and mapping multiple keywords of a proposal. As an extension to this approach, we further consider the relative importance of each keyword with respect to the submitted proposal by using representative percentage weights to create the FUZZY sets which represent the keywords. Hence, we propose an integrated solution based on the strong mathematical foundation of fuzzy logic, comprised of all the different aspects of expertise modeling and reviewer assignment. An Expert System has also been developed for the same.
机译:审阅者分配问题(RAP)是政府资助机构的主要问题之一,在该领域中,需要优化审阅提案的裁判的专业知识水平,以确保选择好的R&D项目。尽管过去已经针对RAP提出了许多解决方案,但是这些解决方案都无法解决与问题相关的内在不精确性。例如,不可能确定特定域中特定审阅者的“确切专业知识水平”。在本文中,我们提出了一种新颖的方法来将审稿人分配给提案。为了计算特定领域中审阅者的专业知识,我们通过为影响该领域审阅者专业知识的各种因素分配相关权重来创建2型模糊集。我们还通过选择三个最能代表提案的关键字来创建提案的模糊集。然后,我们使用基于模糊函数的相等运算符来计算类型2的专家模糊集和投标关键字的模糊集的相等性,然后对它们进行一组相关约束以优化解决方案。我们考虑了四个重要方面:审核者的工作负载平衡,避免利益冲突,通过合并投标并映射提案的多个关键字来考虑个人的偏好。作为此方法的扩展,我们通过使用代表性的百分比权重来创建代表关键字的FUZZY集,进一步考虑每个关键字相对于提交的提案的相对重要性。因此,我们提出了一个基于模糊逻辑强大数学基础的集成解决方案,其中包括专业知识建模和审阅者分配的所有不同方面。还为此开发了一个专家系统。

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