文化大學機構典藏 CCUR:Item 987654321/41968
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    jsp.display-item.identifier=請使用永久網址來引用或連結此文件: https://irlib.pccu.edu.tw/handle/987654321/41968


    题名: Integrated news mining technique and AI-based mechanism for corporate performance forecasting
    作者: Chang, TM (Chang, Te-Min)
    Hsu, MF (Hsu, Ming-Fu)
    Lin, SJ (Lin, Sin-Jin)
    贡献者: 會計學系暨研究所
    关键词: STRUCTURAL EMBEDDEDNESS
    SOCIAL NETWORKS
    MODEL
    PERSPECTIVE
    CENTRALITY
    DECISION
    INNOVATION
    SELECTION
    SET
    日期: 2018-01
    上传时间: 2019-01-23 11:01:42 (UTC+8)
    摘要: The deterioration in a corporation's profitability not only threatens its interests and sustainable development but also causes tremendous losses to other investors. Hence, constructing an effective pre-warning model for performance forecasting is an urgent requirement. Most previous studies only analyzed monetary-based ratios, but merely considering such ratios does not depict the full perspective of a corporation's business conditions. This study thus extends monetary-based ratios to non-monetary-based ratios and aggregates them through the analytic network process (ANP) with a risk-adjusted strategy to establish performance ranks of corporations. Analyzing a corporation's business relationships can help it to react to changes in the market and improve profit margins, as it draws upon such relationship networks for the transfer of scarce resources and knowledge. We believe that no current study adopts such a method to construct a forecasting model. To fill this gap in the literature, this study implements the social network (SN) technique to examine a corporation's competitive edge from seemingly noisy big media data, which are subsequently fed into an artificial intelligence (AI)-based technique to construct the model. The introduced model, examined through real-life cases under numerous conditions, offers a promising alternative for performance forecasting. (C) 2017 Elsevier Inc. All rights reserved.
    显示于类别:[會計學系暨研究所 ] 期刊論文

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