The Bibliometric Analysis of Possibilistic Portfolio Selection Models

Furkan Göktaş
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Abstract

Possibility theory is one of the most used uncertainty theories in decision-making. This study aims to examine possibilistic portfolio selection models. In this context, we perform their bibliometric analysis with the Web of Science (WOS) data, using the Bibliometrix, without limiting the timespan. We get many results by analyzing the data of 303 documents, of which timespan is from 1995 to 2023. We see that W. G. Zhang is the most influential author in this field. The paper introducing the possibilistic mean-variance (MV) model is the most influential document in this field. The paper introducing Markowitz’s MV model is the most influential reference. China is the most productive country in this field, whereas The South China University of Technology is the most productive institution in this field. Fuzzy Sets and Systems is the most influential journal in this field. Variance originated from Markowitz’s MV model is the most critical keyword plus in this field. It has also maintained its trend topic position for a long time. To the best of our knowledge, this is the first paper making a bibliometric analysis of possibilistic portfolio selection models.
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可能性组合选择模型的文献计量分析
可能性理论是决策中最常用的不确定性理论之一。本研究旨在研究可能性组合选择模型。在此背景下,我们使用 Bibliometrix 对科学网(WOS)数据进行了文献计量分析,并没有限制时间跨度。我们通过分析 303 篇文献的数据(时间跨度为 1995 年至 2023 年)得到了许多结果。我们发现,W. G. Zhang 是该领域最有影响力的作者。介绍可能性均值方差(MV)模型的论文是该领域最有影响力的文献。介绍马科维茨均值方差模型的论文是该领域最有影响力的参考文献。中国是该领域成果最多的国家,而华南理工大学是该领域成果最多的机构。模糊集与系统》是该领域最有影响力的期刊。源于马科维茨 MV 模型的方差是该领域最关键的关键词。它也长期保持着其热门话题的地位。据我们所知,这是第一篇对可能性投资组合选择模型进行文献计量分析的论文。
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The Bibliometric Analysis of Possibilistic Portfolio Selection Models Bireylerin Sağlığa İlişkin Algılarının İnformal Ödeme Tutumlarına ve İnformal Ödemeleri Yapmaya Yönelten Unsurlara Etkisi Vergi Usul Kanunu Uyarınca Tutulması Gereken Defterlerde Dijital Dönüşüm: e-Defter ve Defter Beyan Sistemi Human Resources Management Application Selection with Fuzzy MAIRCA Method Based on Fuzzy PIPRECIA Firma Borçlanma Maliyetlerini Etkileyen Faktörlerin Sektörel Verilerle Analizi
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