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Human and Artificial Agents in a Crash-Prone Financial Market

Todd Feldman, Daniel Friedman

发表年份
2010
引用次数
4
访问权限
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摘要

We introduce human traders into an agent based financial market simulation prone to bubbles and crashes. We find that human traders earn lower profits overall than do the simulated agents (“robots”) but earn higher profits in the most crash-intensive periods. Inexperienced human traders tend to destabilize the smaller (10 trader) markets, but have little impact on bubbles and crashes in larger (30 trader) markets and when they are more experienced. Humans’ buying and selling choices respond to the payoff gradient in a manner similar to the robot algorithm. Similarly, following losses, humans’ choices shift towards faster selling.

关键词

CrashStochastic gameFinancial marketBusinessFinanceEconomicsMicroeconomicsComputer science

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