文化大學機構典藏 CCUR:Item 987654321/32082
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    Please use this identifier to cite or link to this item: https://irlib.pccu.edu.tw/handle/987654321/32082


    Title: Combined soft computing model for value stock selection based on fundamental analysis
    Authors: Shen, Kao-Yi
    Tzeng, Gwo-Hshiung
    Contributors: 財金系
    Keywords: Stock selection problem
    Investment rule
    Fundamental analysis (FA)
    Dominance based rough set approach (DRSA)
    Formal concept analysis (FCA)
    Decision making trial and evaluation laboratory (DEMATEL)
    Date: 2015-12
    Issue Date: 2016-02-26 09:30:08 (UTC+8)
    Abstract: The stock selection problem is one of the major issues in the investment industry, which is mainly solved by analyzing financial ratios. However, considering the complexity and imprecise patterns of the stock market, obvious and easy-to-understand investment rules, based on fundamental analysis, are difficult to obtain. Therefore, in this paper, we propose a combined soft computing model for tackling the value stock selection problem, which includes dominance-based rough set approach, formal concept analysis, and decision-making trial and evaluation laboratory technique. The objectives of the proposed approach are to (1) obtain easy-to-understand decision rules, (2) identify the core attributes that may distinguish value stocks, (3) explore the cause-effect relationships among the attributes or criteria in the strong decision rules to gain more insights. To examine and illustrate the proposed model, this study used a group of IT stocks in Taiwan as an empirical case. The findings contribute to the in-depth understanding of the value stock selection problem in practice. (C) 2015 Elsevier B.V. All rights reserved.
    Relation: APPLIED SOFT COMPUTING 卷: 37 頁碼: 142-155
    Appears in Collections:[Department of Banking & Finance ] periodical articles

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