讲座:AI-Powered Trading, Algorithmic Collusion, and Price Efficiency 发布时间:2024-10-16
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题 目:AI-Powered Trading, Algorithmic Collusion, and Price Efficiency
嘉 宾:吉岩 副教授 香港科大商学院
主持人:杨彪 助理教授 BAT365唯一官网
时 间:2024年10月29日(周二)13:30-15:00
地 点:BAT365唯一官网 徐汇校区安泰楼A507室
内容简介:
The integration of algorithmic trading with reinforcement learning, known as AI-powered trading, has significantly impacted capital markets. This study employs a theoretical laboratory characterized by information asymmetry and imperfect competition, where informed AI speculators serve as the subjects of our simulation experiments. It explores how AI technology impacts market power, information rents, price informativeness, market liquidity, and mispricing. Our findings show that informed AI speculators can autonomously learn to sustain collusive supra-competitive profits without any form of agreement, communication, intention, or any interactions that might violate traditional antitrust regulations. AI collusion robustly emerges from two distinct mechanisms: one through price-trigger strategies (``artificial intelligence'') when price efficiency and noise trading risk are both low, and the other through over-pruning bias in learning (``artificial stupidity'') under other conditions.
演讲人简介:
Yan Ji is an Associate Professor of Finance at the Hong Kong University of Science and Technology. His research interests lie in the intersection of asset pricing, industrial organization, and macroeconomics. His recent work focuses on studying the asset pricing implications of imperfect competition in the product and financial markets. He has published in leading academic journals such as Journal of Political Economy, Journal of Finance, Journal of Financial Economics, Review of Financial Studies, Journal of Monetary Economics, and Management Science. He obtained his PhD in Economics from MIT.
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