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Forecasting Changes in Stock Prices on the Basis of Patterns Identified with the Use of Data Classification Methods

机译:基于数据分类方法识别的模式预测股票价格的变化

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The paper develops the concept of harnessing data classification methods to recognize patterns in stock prices. The author defines a formation as a pattern vector describing the financial instrument. Elements of such a vector can be related to the stock price as well as sales volume and other characteristics of the financial instrument. The study uses data concerning selected companies listed on the stock exchange in New York. It takes into account a number of variables that describe the behavior of prices and volume, both in the short and long term. Partitioning around medoids method has been used for data classification (for pattern recognition). An evaluation of the possibility of using certain formations for practical purposes has also been presented.
机译:本文提出了利用数据分类方法来识别股票价格模式的概念。作者将形态定义为描述金融工具的模式向量。这种向量的元素可以与股票价格,销售量以及金融工具的其他特征相关。该研究使用了有关在纽约证券交易所上市的选定公司的数据。它考虑了描述短期和长期价格和数量行为的许多变量。围绕类固醇分区方法已用于数据分类(用于模式识别)。还提出了将某些地层用于实际目的的可能性的评估。

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