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作 者:袁先智 周云鹏 严诚幸 刘海洋 钱国骐[4] 王帆[5] 韦立坚[5] 李志勇 李波 李祥林 曾途 Yuan Xianzhi;Zhou Yunpeng;Yan Chengxing;Liu Haiyang;Qian Guoqi;Wang Fan;Wei Lijian;Li Zhiyong;Li Bo;David Li;Zeng Tu
机构地区:[1]成都大学商学院,成都610106 [2]中山大学管理学院,广州510275 [3]成都数联铭品科技有限公司(BBD),成都610000 [4]墨尔本大学数学与统计学院,澳大利亚墨尔本VIC3010 [5]中山大学管理学院 [6]西南财经大学金融学院,成都611137 [7]重庆理工大学理学院,重庆400054 [8]上海高级金融学院,上海200030
出 处:《复印报刊资料(财务与会计导刊)(理论版)》2022年第7期53-64,共12页FINANCE & ACCOUNTING GUIDE
基 金:国家自然科学基金资助项目(U1811462,71971031)。
摘 要:本文从金融科技大数据出发,以人工智能的吉布斯随机搜索(GibbsSampling)算法为工具,在大数据框架下建立了针对公司财务欺诈风险的特征因子筛选的一般处理方法与特征提取推断原理,并结合上市公司的财务报表数据进行实证分析,结合从2017年1月到2018年12月证监会对上市公司财务报表信息披露违规的数据样本,筛选出刻画财务欺诈的特征因子并进行了验证测试,支持财务欺诈的识别。本文提出的框架和模型方法可以加强和提升对上市公司财务欺诈风险的识别能力,并实现对公司财务在欺诈方面的探测与预测(Detecting and Predicting)功能。By employing the Gibbs sampling skill under the Markov Chain Monte Carlo(MCMC),we establish a general framework for corporate financial fraud detection by using fintech method related big data analysis.In the empirical analysis,based on those event"bad"samples from Chinese A-share listed companies enquired by China Securities Regulatory Commission(CSRC)due to behaviors such as violating(at least potentially violating)the rules of the disclosure during time period from the beginning of year 2017 to the end of year 2018 under the Rule of the Disclo-sure from CSRC,the analysis for key risk factors which could represent the information for the exposure of financial fraud behavior is conducted by detecting the difference between their financial reports from others.In general,the fea-ture extraction(or variable selection)from around two hundred related factors of financial reports will be a NP problem because of the diversity of financial ratio indexes.However,in this paper by employing the Gibbs sampling method un-der MCMC,8 key factors are extracted which are highly correlated with the behavior of corporate financial fraud.They are:ROE,the growth construction-in-process,the growth of advance payment,interest expense/revenue,investment income/revenue,other income/revenue,other receivables/total assets,andlong term loan/total assets.The key contribution of this paper is that a general framework is established for the extraction of key risk factors which could be used not only to detect the behavior of financial fraud,but also to predict the financial fraud under the supporting of ROC testing numerical results based on more than 3,500 Ashare listed companies in China.
关 键 词:大数据 吉布斯随机搜索(Gibbs Sampling)抽样 随机搜索算法 SAS99 财务欺诈风险 舞弊三角理论 特征提取推断原理
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