2021
DOI: 10.1007/978-3-030-66981-2_11
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Exploring the Predictive Power of News and Neural Machine Learning Models for Economic Forecasting

Abstract: Forecasting economic and financial variables is a challenging task for several reasons, such as the low signal-to-noise ratio, regime changes, and the effect of volatility among others. A recent trend is to extract information from news as an additional source to forecast economic activity and financial variables. The goal is to evaluate if news can improve forecasts from standard methods that usually are not well-specified and have poor out-of-sample performance. In a currently on-going project, our goal is t… Show more

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Cited by 4 publications
(2 citation statements)
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“…Penelitian terkait deep learning telah banyak dilakukan dalam berbagai bidang. Seperti misalnya di bidang social, ekonomi [2] dan bahkan hingga masalah emosi [3], [4] music [5] juga social media [6]. Beberapa penelitian terkait bidang kesehatan adalah deteksi kanker payudara [7], deteksi covid [8], tumor otak [9], klasifikasi image medis [10] dan sebagainya.…”
Section: Pendahuluanunclassified
“…Penelitian terkait deep learning telah banyak dilakukan dalam berbagai bidang. Seperti misalnya di bidang social, ekonomi [2] dan bahkan hingga masalah emosi [3], [4] music [5] juga social media [6]. Beberapa penelitian terkait bidang kesehatan adalah deteksi kanker payudara [7], deteksi covid [8], tumor otak [9], klasifikasi image medis [10] dan sebagainya.…”
Section: Pendahuluanunclassified
“…Measuring the informational content of text in economic and financial news is useful for market participants to adjust their perception and expectations on the dynamics of financial markets. In this context, the incorporation in forecasting models of economic and financial information coming from news media has already demonstrated great potentials [1][2][3]5]. Our endeavour is to study the predictive power of news for forecasting financial variables by leveraging on the recent advances in word embeddings [9,21] and deep learning [17,24] models.…”
Section: Introductionmentioning
confidence: 99%