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Application of Soft Computing to Tax Fraud Detection in Small Businesses

机译:软计算在小企业中税收欺诈检测的应用

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摘要

In this paper, we present a soft computing model for tax fraud detection in small firms and businesses. Inputs to the model are periodical finance reports and related information about market and inspection firms, and outputs are an inference of the tax fraud status. First, after using fuzzy inferences, the system determines a close business class to which the inspected firms belong. Next, training by statistical data from the business class, Neural Network (NN) is used to determine the fraud status of the inspected firm. Training data for the NN is periodical finance reports, market information of the business class and fraud history of the inspected firms. Finally, we describe initial evaluations and our future works.
机译:在本文中,我们在小公司和企业中展示了一种用于税务欺诈检测的软计算模型。 该模型的输入是关于市场和检验公司的期刊财务报告和相关信息,产出是税务欺诈状态的推理。 首先,在使用模糊推论之后,系统确定检查的公司所属的关闭商业类。 接下来,通过商业类的统计数据训练,神经网络(NN)用于确定检查公司的欺诈状态。 NN的培训数据是经过周期性的财务报告,商业班级的市场信息和被检查公司的欺诈历史。 最后,我们描述了初步评估和我们未来的作品。

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