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Risk Identification of Public Companies Based on Term Cohesion and Topic Visualization

机译:基于术语衔接和主题可视化的上市公司风险识别

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The purpose of this article is to develop a procedure to identify risks in public companies based on cohesion relationships among terms and topic visualization.Prospectuses of public companies in the industry of computer implication services in China were collected and chapters of "risk factors" in those prospectuses were analyzed.Texts were split into 10 categories corresponding to different risks by coding subtitles of the texts and 10 sub text sets were formed.Ten categories of risk include market risk, operational risk, financial risk, products and technology risk, investment project risk, internal management risk, inter-control risk, human resources risk, industry risk, and political risk.Five major risks in the ten were visualized to identify topics.After the texts were cleaned and parsed, cohesion relationships among terms were expressed by proximity using cosine value.Relationships among each term and its related terms were characterized and grouped in visual spaces using multidimensional scaling (MDS).Topics were identified by clustering terms in a visual space while each topic corresponds to a specific sub-class of risk.A content analysis was employed to illustrate each topic in the visual space.The procedure to identify risks in public companies in our study enriches the analysis method system of public companies and provides supports for decision-making of the government decision-makers, enterprises' managers and securities practitioners and the public investors.
机译:本文的目的是开发一种基于术语之间的内聚关系和主题可视化来识别上市公司风险的程序。收集了中国计算机蕴涵服务行业的上市公司说明书,并在其中列出了“风险因素”一章。通过对文本进行字幕编码,将文本分为10个类别,分别对应不同的风险,形成10个子文本集。十个类别的风险包括市场风险,操作风险,财务风险,产品和技术风险,投资项目风险,内部管理风险,内部控制风险,人力资源风险,行业风险和政治风险。将十个主要风险可视化以识别主题。在对文本进行清理和解析后,通过使用余弦值。在视觉空间中使用多项式对每个术语及其相关术语之间的关系进行特征化和分组维度缩放(MDS)。通过在视觉空间中对术语进行聚类来识别主题,而每个主题对应于特定的风险子类别。内容分析用于说明视觉空间中的每个主题。在公共场所识别风险的过程我们研究中的公司丰富了上市公司的分析方法体系,并为政府决策者,企业经理和证券从业人员以及公众投资者的决策提供了支持。

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