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2024
DOI: 10.20944/preprints202404.0563.v1
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Development of Context-based Sentiment Classification for Intelligent Stock Market Prediction

Nurmaganbet Smatov,
Ruslan Kalashnikov,
Amandyk Kartbayev

Abstract: This paper presents a novel approach to sentiment analysis specifically customized for predicting stock market movements, bypassing the need for external dictionaries which are often unavailable for many languages. Our methodology directly analyzes textual data, with a particular focus on context-specific sentiment words within neural network models. This specificity ensures our sentiment analysis is both relevant and accurate in identifying trends in the stock market. We employ sophisticated mathematical mode… Show more

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