Emoji Driven Crypto Assets Market Reactions

Xiaorui Zuo, Yao-Tsung Chen*, Wolfgang Karl Härdle

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

In the burgeoning realm of cryptocurrency, social media platforms like Twitter have become pivotal in influencing market trends and investor sentiments. In our study, we leverage GPT-4 and a fine-tuned transformer-based BERT model for a multimodal sentiment analysis, focusing on the impact of emoji sentiment on cryptocurrency markets. By translating emojis into quantifiable sentiment data, we correlate these insights with key market indicators such as BTC Price and the VCRIX index. Our architecture’s analysis of emoji sentiment demonstrated a distinct advantage over FinBERT’s pure text sentiment analysis in such predicting power. This approach may be fed into the development of trading strategies aimed at utilizing social media elements to identify and forecast market trends. Crucially, our findings suggest that strategies based on emoji sentiment can facilitate the avoidance of significant market downturns and contribute to the stabilization of returns. This research underscores the practical benefits of integrating advanced AI-driven analyzes into financial strategies, offering a nuanced perspective on the interaction between digital communication and market dynamics in an academic context.
Original languageAmerican English
Pages (from-to)158-178
Number of pages21
JournalManagement and Marketing
Volume19
Issue number2
DOIs
StatePublished - 13 Jul 2024

Keywords

  • emoji
  • LLM
  • VCRIX
  • crypto
  • bitcoin

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