Multi-agent simulation model of China's real estate market based on bayesian network decision making

Yang Shen, Yongchen Guo, Zhigeng Fang
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引用次数: 1

Abstract

In recent years, agent-based modeling and simulation (ABMS) methods have attracted the people's attention in the field of management science and is becoming a important tool for solving complex problems. In this paper, the Bayesian network is introduced to ABMS methods, and a multi-agent system of China's real estate market is proposed based on the Bayesian network with uncertain information, which has the abilities of online learning and effect describing for group behavior. China's real estate market ecology is simulated by the system. Simulation results can accurately reproduce the operation of China's real estate market, so to prove the effectiveness of the model. Through simulating for related parameters, some valuable findings on operation rule of estate market are obtained. The model and method developed in the paper provide reference for studying China's real estate market rules.
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基于贝叶斯网络决策的中国房地产市场多智能体仿真模型
近年来,基于智能体的建模与仿真(ABMS)方法在管理科学领域受到了人们的关注,并逐渐成为解决复杂问题的重要工具。本文将贝叶斯网络引入到ABMS方法中,提出了一个基于不确定信息贝叶斯网络的中国房地产市场多智能体系统,该系统具有在线学习和群体行为效果描述的能力。系统模拟了中国房地产市场生态。仿真结果可以准确再现中国房地产市场的运行情况,从而证明模型的有效性。通过对相关参数的模拟,得出了房地产市场运行规律的一些有价值的结论。本文所建立的模型和方法为研究中国房地产市场规律提供了参考。
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