系统仿真学报 ›› 2025, Vol. 37 ›› Issue (7): 1770-1790.doi: 10.16182/j.issn1004731x.joss.25-0135

• 特约综述 • 上一篇    

大型社会模拟器:前沿与展望

朴景华1,2, 高宸2, 张芳3, 苏竣3, 李勇1,2   

  1. 1.清华大学 电子工程系,北京 100084
    2.清华大学 信息科学与技术国家研究中心,北京 100084
    3.清华大学 公共管理学院,北京 100084
  • 收稿日期:2025-02-26 修回日期:2025-04-23 出版日期:2025-07-18 发布日期:2025-07-30
  • 通讯作者: 李勇
  • 第一作者简介:朴景华(1997-),女,朝鲜族,博士生,研究方向为计算社会科学。
  • 基金资助:
    国家自然科学基金(2024YFC3307600);国家重点研发计划(U23B2030);国家重点研发计划(62272262);国家重点研发计划(72342032);国家重点研发计划(72442026);国家重点研发计划(72474117)

Large-scale Social Simulator: Frontiers and Perspectives

Piao Jinghua1,2, Gao Chen2, Zhang Fang3, Su Jun3, Li Yong1,2   

  1. 1.Department of Electronic Engineering, Tsinghua University, Beijing 100084, China
    2.Beijing National Research Center for Information Science and Technology, Tsinghua University, Beijing 100084, China
    3.School of Public Policy & Management, Tsinghua University, Beijing 100084, China
  • Received:2025-02-26 Revised:2025-04-23 Online:2025-07-18 Published:2025-07-30
  • Contact: Li Yong

摘要:

社会实验,作为一种典型的社会科学研究方法,通过观察个体、组织或社会群体在真实或模拟环境中的行为反应,以研究特定社会现象或政策的影响。然而,传统社会实验方法因随机偏误、成本限制、伦理风险等问题,难以满足日益复杂的研究需求。在此背景下,计算社会实验应运而生,研究者能够依托于计算模拟环境,开展不受随机偏误限制、低成本且风险可控的社会实验。与此同时,我国正处于转型发展的关键时期,经济转型、社会矛盾、多元化诉求与全球化冲击等复杂问题日益凸显。这些问题已超出传统社会实验的适用范围,对于计算社会实验及其模拟环境的规模、复杂度和真实性提出了更高要求。为满足学术研究和国家战略双重需求,亟需构建大型社会模拟器,以实现对复杂社会系统的大规模、高精度模拟,支撑多种计算社会实验,推动新一代社会实验的发展。介绍了社会实验的概念与方法,并从学术发展与国家战略需求的双重视角,论述了构建大型社会模拟器的必要性及其应用价值。介绍了大模型技术在人类行为仿真领域的研究进展,并分析了其在提高社会模拟真实性方面的技术优势。提出了大型社会模拟器的整体方案,并通过经济系统模拟、社会网络模拟和认知极化模拟3个典型案例,验证了所提方案在不同领域社会实验中的真实性与广泛适用性。展望了大型社会模拟器在模拟核心技术发展、社会科学实验平台构建、社会治理应用、规范标准和政策监管等方面的未来研究方向和发展趋势。

关键词: 社会实验, 计算社会实验, 大模型, 社会模拟, 大模型智能体

Abstract:

Social experiments, as a typical research method in social sciences, aim to study specific social phenomena or the impacts of policies by observing the behaviors of individuals, organizations, or social groups in real or simulated environments. However, traditional social experiment methods often face challenges such as random bias, high costs, and ethical risks, making them inadequate to address increasingly complex research demands. Against this backdrop, computational social experiments have emerged, enabling researchers to conduct social experiments within computational simulation environments that are free from random bias, cost-efficient, and ethically manageable. Meanwhile, China is currently undergoing a critical period of transformative development, characterized by economic transition, intensifying social conflicts, diversified demands, and the challenges of globalization. These complex issues have surpassed the capabilities of traditional social experiments, placing higher demands on the scale, complexity, and authenticity of computational social experiments and their simulation environments. To address the dual needs of academic research and national strategies, there is an urgent need to construct large-scale social simulators capable of high-precision and large-scale simulations of complex social systems, supporting diverse computational social experiments and advancing the next generation of social experiments. This paper first introduced the concepts and methods of social experiments and discussed the necessity and application value of constructing large-scale social simulators from the dual perspectives of academic development and national strategic needs. It further reviewed the research progress of large language model technologies in simulating human behavior and analyzed their technical advantages in enhancing the authenticity of social simulations. Based on these insights, this paper proposed an overall framework for large-scale social simulators and validated its authenticity and broad applicability in social experiments in different fields through three typical cases: economic system simulation, social network simulation, and cognitive polarization simulation. Finally, this paper explored the future research directions and development trends of large-scale social simulators in areas such as the advancement of core simulation technologies, the construction of social science experimental platforms, applications in social governance, and the development of standards and policy regulation.

Key words: social experiment, computational social experiment, large language model, social simulation, large language model-empowered agent

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