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Analysis of stock market using text mining and natural language processing

机译:使用文本挖掘和自然语言处理对股市进行分析

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Stock market has become one of the major components of economy not only in developed countries but also in third world developing countries. Making decision in stock market is not really easy because a lot of factors are involved with every choice we make. Therefore, a lot of analysis is required to make an optimal move on stock market which may involve price trend, market's nature, company's stability, different news and rumors about stocks etc. The objective of this study is to extract fundamental information from relevant news sources and use them to analyze or sometimes forecast the stock market from the common investor's viewpoint. We surveyed the existing business text mining researches and proposed a framework that uses our text parser and analyzer algorithm with an open source natural language processing tool to analyze (machine learning and text mining), retrieve (natural language processing), forecast (compare with historic data) investment decisions from any text data source on stock market. For our research we used the data of Dhaka Stock Exchange (DSE), capital market of Bangladesh.
机译:股票市场不仅在发达国家而且在第三世界发展中国家也已成为经济的主要组成部分之一。在股票市场做出决定并不是一件容易的事,因为我们做出的每个选择都涉及很多因素。因此,需要进行大量分析才能使股票市场达到最佳走势,这可能涉及价格趋势,市场性质,公司的稳定性,不同的新闻和有关股票的谣言等。本研究的目的是从相关新闻来源中提取基本信息。并使用它们从普通投资者的角度分析或预测股票市场。我们对现有的商业文本挖掘研究进行了调查,并提出了一个框架,该框架使用我们的文本解析器和分析器算法以及开源自然语言处理工具来进行分析(机器学习和文本挖掘),检索(自然语言处理),预测(与历史数据进行比较)数据)来自股票市场上任何文本数据源的投资决策。对于我们的研究,我们使用了孟加拉国资本市场达卡证券交易所(DSE)的数据。

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