Dynamic Market Modeling With Heterogeneous Agents: Applications In Diverse Markets

Stok Kodu:
9786256627352
Boyut:
16x24
Sayfa Sayısı:
102
Baskı:
1
Basım Tarihi:
2024-09
Kapak Türü:
Ciltsiz
Kağıt Türü:
1. Hamur
%22 indirimli
190,00TL
148,20TL
9786256627352
1345966
Dynamic Market Modeling With Heterogeneous Agents: Applications In Diverse Markets
Dynamic Market Modeling With Heterogeneous Agents: Applications In Diverse Markets
148.20

This book offers an in-depth exploration of financial market behavior through agent-based modeling, uncovering the complexities of trader interactions and market dynamics. It presents two distinct models that delve into the intricate  workings of stock markets. The first model replicates key price features observed in real markets, comparing the performance of various trading strategies—from basic noise traders to advanced, AI-driven approaches. By simulating market conditions, the model  demonstrates the impact of trader intelligence on market performance and liquidity.

The second model builds on these insights by incorporating real market data to  simulate a limit order market, allowing agents to interact with actual order flows. This realistic simulation examines the relationship between order size, price impact, market volatility, and bid-ask spreads across different market environments. It offers a comprehensive view of how stock prices move and the strategies that drive them.

The book contributes to the broader understanding of financial markets, providing  valuable tools for both researchers and practitioners to model, test, and optimize  trading strategies. Future directions include integrating more advanced agents and exploring reinforcement learning techniques in market simulations.

 

This book offers an in-depth exploration of financial market behavior through agent-based modeling, uncovering the complexities of trader interactions and market dynamics. It presents two distinct models that delve into the intricate  workings of stock markets. The first model replicates key price features observed in real markets, comparing the performance of various trading strategies—from basic noise traders to advanced, AI-driven approaches. By simulating market conditions, the model  demonstrates the impact of trader intelligence on market performance and liquidity.

The second model builds on these insights by incorporating real market data to  simulate a limit order market, allowing agents to interact with actual order flows. This realistic simulation examines the relationship between order size, price impact, market volatility, and bid-ask spreads across different market environments. It offers a comprehensive view of how stock prices move and the strategies that drive them.

The book contributes to the broader understanding of financial markets, providing  valuable tools for both researchers and practitioners to model, test, and optimize  trading strategies. Future directions include integrating more advanced agents and exploring reinforcement learning techniques in market simulations.

 

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