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Forecasting the Natural Gas Price Trend - Evaluation of a Sentiment Analysis

机译:预测天然气价格趋势-情感分析评估

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Nowadays, text messages are of interest, because they quickly convey information about events. For this reason, we analyze, whether a prevailing sentiment in a text-based financial news has impact on the price trend of natural gas at an energy exchange. This prediction method supports utility companies, because it allows faster trading decisions on the natural gas market and thus reduce associated business risks. It is also transferable into other business domains. We initially applied text mining methods to gain first results and moved over to sentiment analysis (SAN) to be able to evaluate their capability to support trading decisions. The calculated performance metrics of SAN made obvious that the consideration of the sentiment in the text is suitable for identifying no price influences, but is weak for identifying the impact of text news on the price trend itself. This results demands further research on applying different approaches on text analysis.
机译:如今,短信很受关注,因为它们可以快速传达有关事件的信息。因此,我们分析了基于文本的财经新闻中的普遍情绪是否会对能源交易所的天然气价格趋势产生影响。这种预测方法为公用事业公司提供了支持,因为它可以加快天然气市场上的交易决策,从而降低相关的业务风险。它也可以转移到其他业务领域。我们最初使用文本挖掘方法来获得第一个结果,然后转到情感分析(SAN),以便能够评估其支持交易决策的能力。通过计算得出的SAN性能指标,很明显,考虑文本中的情感适合于识别没有价格影响,但是识别文本新闻对价格趋​​势本身的影响较弱。这一结果需要对在文本分析中应用不同方法的进一步研究。

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