Application of fuzzy multiple attribute decision making on company analysis for stock selection

T. Chu, Chung-Tsen Tsao, Yeou-Ren Shiue
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引用次数: 37

Abstract

The investor has to consider many factors when making a decision on which stocks to buy. However, judgements on these factors are usually linguistic, fuzzy, and conflicting. Therefore, selection of stocks is a fuzzy multiple attribute decision making (FMADM) problems. A hierarchical composite structure for factors and subfactors is developed for company analysis. A weight model is presented. Values of each subfactor are assumed to have normal distribution in order to build up the membership function of the ascending half-trapezoid. By multiplying the weight matrix with the corresponding fuzzy judgement matrix for each factor and calculating the weighted summation of weighted matrices, the authors make the fuzzy decision by grades. A numerical example of selecting the first priority stock among seven listed companies of the cement industry in Taiwan's stock market is applied to verify this model.
模糊多属性决策在公司选股分析中的应用
投资者在决定买哪只股票时必须考虑许多因素。然而,对这些因素的判断通常是语言上的、模糊的和相互矛盾的。因此,股票选择是一个模糊多属性决策问题。提出了一种用于公司分析的因子和子因子的分层复合结构。提出了一个权重模型。为了建立上升半梯形的隶属函数,假设每个子因子的值都具有正态分布。通过将权重矩阵与各因素对应的模糊判断矩阵相乘,计算加权矩阵的加权和,进行分级模糊决策。以台湾股市水泥行业7家上市公司中选择第一优先股为例,对该模型进行了验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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