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Lexicon-based sentiment analysis for stock movement prediction

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Sentiment analysis is a broad and expanding field that aims to extract and classify opinions from textual data. Lexicon-based approaches are based on the use of a sentiment lexicon, i.e., a list of words each mapped to a sentiment score, to rate the sentiment of a text chunk. Our work focuses on predicting stock price change using a sentiment lexicon built from financial conference call logs. We present a method to generate a sentiment lexicon based upon an existing probabilistic approach. By using a domain-specific lexicon, we outperform traditional techniques and demonstrate that domain-specific sentiment lexicons provide higher accuracy than generic sentiment lexicons when predicting stock price change.
Title: Lexicon-based sentiment analysis for stock movement prediction
Description:
Sentiment analysis is a broad and expanding field that aims to extract and classify opinions from textual data.
Lexicon-based approaches are based on the use of a sentiment lexicon, i.
e.
, a list of words each mapped to a sentiment score, to rate the sentiment of a text chunk.
Our work focuses on predicting stock price change using a sentiment lexicon built from financial conference call logs.
We present a method to generate a sentiment lexicon based upon an existing probabilistic approach.
By using a domain-specific lexicon, we outperform traditional techniques and demonstrate that domain-specific sentiment lexicons provide higher accuracy than generic sentiment lexicons when predicting stock price change.

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