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A Case Study of Cluster-based and Histogram-based Multivariate Anomaly Detection Approach in General Ledgers

机译:一种案例研究总帐中总帐基于簇和直方图的多变量异常检测方法

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The rapid development of financial markets results in data variability and unpredictability. Anomaly detection in financial data is a very important issue. Finding anomalies can result in error reduction and corrections in due time. The main aim of this research was to find anomalies in general ledgers of a real company in Bosnia and Herzegovina. Anomalies are defined as input errors of accountants. Main concepts of anomaly detection are defined, a summary of the current progress is given, and challenges of future work are presented. Cluster-based and histogram-based anomaly detections were performed on a real-life dataset of a microcredit organization. Results of algorithms were presented, as well as results achieved using synthetic data.
机译:金融市场的快速发展导致数据变异性和不可预测性。金融数据中的异常检测是一个非常重要的问题。发现异常可能导致误差减少和校正。该研究的主要目的是在波斯尼亚和黑塞哥维那的真正公司的总体中找到异常。异常被定义为会计师的输入错误。定义了异常检测的主要概念,给出了当前进展的摘要,并提出了未来工作的挑战。基于集群和基于直方图的异常检测在小额信贷组织的实际数据集上执行。提出了算法的结果,以及使用合成数据实现的结果。

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