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Intelligent agent-assisted adaptive order simulation system in the artificial stock market

机译:人工股票市场中的智能代理辅助自适应订单模拟系统

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Agent-based computational economics (ACE) has received increased attention and importance over recent years. Some researchers have attempted to develop an agent-based model of the stock market to investigate the behavior of investors and provide decision support for innovation of trading mechanisms. However, challenges remain regarding the design and implementation of such a model, due to the complexity of investors, financial information, policies, and so on. This paper will describe a novel architecture to model the stock market by utilizing stock agent, finance agent and investor agent. Each type of investor agent has a different investment strategy and learning method. A prototype system for supporting stock market simulation and evolution is also presented to demonstrate the practicality and feasibility of the proposed intelligent agent-based artificial stock market system architecture.
机译:近年来,基于代理的计算经济学(ACE)受到越来越多的关注和重视。一些研究人员试图开发一种基于代理的股票市场模型,以调查投资者的行为并为交易机制的创新提供决策支持。但是,由于投资者,财务信息,政策等的复杂性,在设计和实现这种模型方面仍然存在挑战。本文将介绍一种利用股票代理,金融代理和投资者代理对股市进行建模的新颖架构。每种类型的投资者代理人都有不同的投资策略和学习方法。还提出了一个支持股票市场仿真和演化的原型系统,以证明所提出的基于智能代理的人工股票市场系统架构的实用性和可行性。

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