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首页> 外文期刊>Procedia Computer Science >Framework Formation of Financial Data Classification Standard in the Era of the Big Data
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Framework Formation of Financial Data Classification Standard in the Era of the Big Data

机译:大数据时代的财务数据分类标准框架形成

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摘要

Deeper excavation of relevance of data and a top-down thinking to take apart financial data into blocks for more efficient analysis are essential for the big data, as well as to eliminate data noise and to remove data redundancy in the process1. The financial data classification standard, which always performs excellently in these aspects, is an essential premise for data mining and analysis in the big data2. To find a method to form the classification standard framework that can meet diverse purposes is very important. This research proposes a way to form the framework of financial data classification standard based on uniform classification standard and relative books, improved by comparing with classification standard of existed financial database and verified by practice with financial data sources. This framework can adapt to trends in the era of the big data and improve data storage mode.
机译:深入挖掘数据的相关性以及自上而下的思想将财务数据分解成块以进行更有效的分析,对于大数据以及消除数据噪声和消除流程中的数据冗余都是必不可少的。在这些方面始终表现出色的财务数据分类标准是大数据中数据挖掘和分析的必要前提2。寻找一种能够形成能够满足各种目的的分类标准框架的方法非常重要。本研究提出了一种基于统一分类标准和相关书籍形成财务数据分类标准框架的方法,通过与现有财务数据库分类标准进行比较,并通过实践与财务数据源进行验证。该框架可以适应大数据时代的趋势,并改善数据存储模式。

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