一种基于树的超大财务数据集中冗余业务规则检测方法

Nhien-An Le-Khac, S. Markos, Mohand Tahar Kechadi
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引用次数: 22

摘要

资产净值NAV的计算和验证是基金管理人的主要任务。如果基金的资产净值计算错误,对基金管理人的影响是巨大的;例如金钱补偿、名誉损失或业务损失。一般来说,这些公司使用相同的方法来计算基金的资产净值;然而,所讨论的基金类型决定了用于验证这一点的业务规则集。今天,由于缺乏自动化的标准化解决方案,大多数基金管理人严重依赖人力资源,然而,由于经济环境和效率和降低成本的需要,许多银行现在正在寻找一种自动化的解决方案,尽量减少人力互动;即直通式加工STP。在一个专注于为NAV验证构建最佳解决方案的协作项目的范围内,作者将提出一种检测相关业务规则的新方法,并展示他们如何使用现实世界的财务数据来评估这种方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Tree-Based Approach for Detecting Redundant Business Rules in Very Large Financial Datasets
Net Asset Value NAV calculation and validation is the principle task of a fund administrator. If the NAV of a fund is calculated incorrectly then there is huge impact on the fund administrator; such as monetary compensation, reputational loss, or loss of business. In general, these companies use the same methodology to calculate the NAV of a fund; however the type of fund in question dictates the set of business rules used to validate this. Today, most Fund Administrators depend heavily on human resources due to the lack of an automated standardized solutions, however due to economic climate and the need for efficiency and costs reduction many banks are now looking for an automated solution with minimal human interaction; i.e., straight through processing STP. Within the scope of a collaboration project that focuses on building an optimal solution for NAV validation, the authors will present a new approach for detecting correlated business rules and show how they evaluate this approach using real-world financial data.
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