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Inter-transaction association rule mining in the Indonesia stock exchange market

机译:印尼股票交易市场的交易间关联规则挖掘

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摘要

Stock exchanges have a major impact on Indonesia economy condition as well as on the global economy. Stock activities forecasting is still a challenging issue which is a high demand for stock actors. Therefore, there is still a need to develop an application that is capable to accurately predict directions of stock price movement. This research proposes a data mining technique to model relationship between company stocks with other company stocks listed in the Indonesia Stock Exchange in a form of association rules. It is expected that extracted rules can be of a help to predict future stock prices movements with significant level of accuracy.
机译:证券交易所对印度尼西亚的经济状况以及全球经济都具有重大影响。股票活动预测仍然是一个具有挑战性的问题,对股票参与者的需求很高。因此,仍然需要开发一种能够准确地预测股票价格走势的应用程序。这项研究提出了一种数据挖掘技术,以关联规则的形式对公司股票与在印尼证券交易所上市的其他公司股票之间的关系进行建模。预计提取的规则将有助于以很高的准确性预测未来的股价走势。

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