外汇新闻的细粒度情绪分析

Cheng Zhou, Qi Tianmei, Wang Jixiang, Zhou Yu, Wang Zhihong, G. Yi, Zhao Junfeng
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引用次数: 1

摘要

外汇新闻在外汇市场的资产定价、风险评估和汇率预测中起着重要作用。在这项工作中,我们利用机器学习算法来探测外汇新闻的情绪取向和情绪强度。在情感倾向方面,通过两种情况(文本嵌入向量和情感词权重融合)来研究情感倾向。并采用混淆矩阵对分类结果进行进一步分析。在情感强度方面,考虑了三类词,并采用网格搜索寻求词的权重。实验表明,本文在情感分析方面取得了较好的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fine-grained Sentiment Analysis of Foreign Exchange News
Foreign exchange (Forex) news plays a significant role in asset pricing, risk assessment and exchange rate forecasting in Forex markets. In this work, we leverage machine learning algorithms to probe the sentiment orientation and sentiment intensity of Forex news. In the aspect of sentiment orientation, two cases (text embedding to the vector and fusion of sentiment words' weights) are evaluated to investigate the sentiment orientation. Moreover, confusion matrix is adopted to further analyze the classification results. In terms of sentiment intensity, three categories of words are considered and grid search is applied to seek the weights of words. Experiments indicate that this paper has achieved relatively good results in sentiment analysis.
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