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Sentiment analysis of Twitter data within big data distributed environment for stock prediction

机译:大数据分布式环境中Twitter数据的情感分析以进行库存预测

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This paper covers design, implementation and evaluation of a system that may be used to predict future stock prices basing on analysis of data from social media services. The authors took advantage of large datasets available from Twitter micro blogging platform and widely available stock market records. Data was collected during three months and processed for further analysis. Machine learning was employed to conduct sentiment classification of data coming from social networks in order to estimate future stock prices. Calculations were performed in distributed environment according to Map Reduce programming model. Evaluation and discussion of results of predictions for different time intervals and input datasets proved efficiency of chosen approach is discussed here.
机译:本文涵盖了可用于基于社交媒体服务数据分析来预测未来股价的系统的设计,实施和评估。作者利用了可从Twitter微博客平台获得的大型数据集和广泛可获得的股票市场记录。在三个月内收集了数据,并进行了进一步分析。机器学习被用来对来自社交网络的数据进行情感分类,以估计未来的股票价格。根据Map Reduce编程模型在分布式环境中进行计算。对不同时间间隔和输入数据集的预测结果进行评估和讨论,证明了所选方法的有效性。

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