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LLMs and NLP Models in Cryptocurrency Sentiment Analysis: A Comparative Classification Study
by
Tselikas, Nikolaos D.
, Roumeliotis, Konstantinos I.
, Nasiopoulos, Dimitrios K.
in
Accuracy
/ Analysis
/ Classification
/ Comparative studies
/ Computational linguistics
/ crypto signals
/ Crypto-currencies
/ cryptocurrency classification
/ cryptocurrency sentiment analysis
/ Data mining
/ Decision making
/ Deep learning
/ Digital currencies
/ Economic forecasting
/ Financial markets
/ Forecasts and trends
/ International finance
/ Investor behavior
/ Language
/ Language processing
/ Large language models
/ Literature reviews
/ llms cryptocurrency
/ Market analysis
/ Natural language interfaces
/ Natural language processing
/ Neural networks
/ News
/ news sentiment analysis
/ nlp cryptocurrency
/ Performance evaluation
/ Prices
/ Risk management
/ Securities markets
/ Sentiment analysis
/ Social networks
/ Strategic planning (Business)
/ Trends
/ Volatility
2024
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LLMs and NLP Models in Cryptocurrency Sentiment Analysis: A Comparative Classification Study
by
Tselikas, Nikolaos D.
, Roumeliotis, Konstantinos I.
, Nasiopoulos, Dimitrios K.
in
Accuracy
/ Analysis
/ Classification
/ Comparative studies
/ Computational linguistics
/ crypto signals
/ Crypto-currencies
/ cryptocurrency classification
/ cryptocurrency sentiment analysis
/ Data mining
/ Decision making
/ Deep learning
/ Digital currencies
/ Economic forecasting
/ Financial markets
/ Forecasts and trends
/ International finance
/ Investor behavior
/ Language
/ Language processing
/ Large language models
/ Literature reviews
/ llms cryptocurrency
/ Market analysis
/ Natural language interfaces
/ Natural language processing
/ Neural networks
/ News
/ news sentiment analysis
/ nlp cryptocurrency
/ Performance evaluation
/ Prices
/ Risk management
/ Securities markets
/ Sentiment analysis
/ Social networks
/ Strategic planning (Business)
/ Trends
/ Volatility
2024
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Do you wish to request the book?
LLMs and NLP Models in Cryptocurrency Sentiment Analysis: A Comparative Classification Study
by
Tselikas, Nikolaos D.
, Roumeliotis, Konstantinos I.
, Nasiopoulos, Dimitrios K.
in
Accuracy
/ Analysis
/ Classification
/ Comparative studies
/ Computational linguistics
/ crypto signals
/ Crypto-currencies
/ cryptocurrency classification
/ cryptocurrency sentiment analysis
/ Data mining
/ Decision making
/ Deep learning
/ Digital currencies
/ Economic forecasting
/ Financial markets
/ Forecasts and trends
/ International finance
/ Investor behavior
/ Language
/ Language processing
/ Large language models
/ Literature reviews
/ llms cryptocurrency
/ Market analysis
/ Natural language interfaces
/ Natural language processing
/ Neural networks
/ News
/ news sentiment analysis
/ nlp cryptocurrency
/ Performance evaluation
/ Prices
/ Risk management
/ Securities markets
/ Sentiment analysis
/ Social networks
/ Strategic planning (Business)
/ Trends
/ Volatility
2024
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LLMs and NLP Models in Cryptocurrency Sentiment Analysis: A Comparative Classification Study
Journal Article
LLMs and NLP Models in Cryptocurrency Sentiment Analysis: A Comparative Classification Study
2024
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Overview
Cryptocurrencies are becoming increasingly prominent in financial investments, with more investors diversifying their portfolios and individuals drawn to their ease of use and decentralized financial opportunities. However, this accessibility also brings significant risks and rewards, often influenced by news and the sentiments of crypto investors, known as crypto signals. This paper explores the capabilities of large language models (LLMs) and natural language processing (NLP) models in analyzing sentiment from cryptocurrency-related news articles. We fine-tune state-of-the-art models such as GPT-4, BERT, and FinBERT for this specific task, evaluating their performance and comparing their effectiveness in sentiment classification. By leveraging these advanced techniques, we aim to enhance the understanding of sentiment dynamics in the cryptocurrency market, providing insights that can inform investment decisions and risk management strategies. The outcomes of this comparative study contribute to the broader discourse on applying advanced NLP models to cryptocurrency sentiment analysis, with implications for both academic research and practical applications in financial markets.
Publisher
MDPI AG
Subject
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