Dynamic evolution of causal relationships among cryptocurrencies: an analysis via Bayesian networks
Rasoul Amirzadeh,
Dhananjay Thiruvady,
Asef Nazari
et al.
Abstract:Understanding the relationships between cryptocurrencies is important for making informed investment decisions in this financial market. Our study utilises Bayesian networks to examine the causal interrelationships among six major cryptocurrencies: Bitcoin, Binance Coin, Ethereum, Litecoin, Ripple, and Tether. Beyond understanding the connectedness, we also investigate whether these relationships evolve over time. This understanding is crucial for developing profitable investment strategies and forecasting met… Show more
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