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From Opinion Mining to Financial Argument Mining

Chen, Chung-Chi - Personal Name; Huang, Hen-Hsen - Personal Name; Chen, Hsin-Hsi - Personal Name;

Opinion mining is a prevalent research issue in many domains. In the financial domain, however, it is still in the early stages. Most of the researches on this topic only focus on the coarse-grained market sentiment analysis, i.e., 2-way classification for bullish/bearish. Thanks to the recent financial technology (FinTech) development, some interdisciplinary researchers start to involve in the in-depth analysis of investors' opinions. These works indicate the trend toward fine-grained opinion mining in the financial domain.

When expressing opinions in finance, terms like bullish/bearish often spring to mind. However, the market sentiment of the financial instrument is just one type of opinion in the financial industry. Like other industries such as manufacturing and textiles, the financial industry also has a large number of products. Financial services are also a major business for many financial companies, especially in the context of the recent FinTech trend. For instance, many commercial banks focus on loans and credit cards. Although there are a variety of issues that could be explored in the financial domain, most researchers in the AI and NLP communities only focus on the market sentiment of the stock or foreign exchange.
This open access book addresses several research issues that can broaden the research topics in the AI community. It also provides an overview of the status quo in fine-grained financial opinion mining to offer insights into the futures goals. For a better understanding of the past and the current research, it also discusses the components of financial opinions one-by-one with the related works and highlights some possible research avenues, providing a research agenda with both micro- and macro-views toward financial opinions.


Availability
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220120784
Available
Detail Information
Series Title
SpringerBriefs in Computer Science (BRIEFSCOMPUTER)
Call Number
001 CHE o
Publisher
Singapore : Springer Singapore., 2021
Collation
X, 95
Language
English
ISBN/ISSN
978-981-16-2881-8
Classification
001
Content Type
text
Media Type
computer
Carrier Type
online resource
Edition
-
Subject(s)
Natural Language Processing (NLP)
Specific Detail Info
-
Statement of Responsibility
Chung-Chi Chen , Hen-Hsen Huang , Hsin-Hsi Chen
Other Information
Cataloger
-
Source
-
Validator
Maya
Digital Object Identifier (DOI)
https://doi.org/10.1007/978-981-16-2881-8
Journal Volume
-
Journal Issue
-
Subtitle
-
Parallel Title
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No other version available

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  • From Opinion Mining to Financial Argument Mining
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