2009/02/23 by Dirk Helbing, Wenjian Yu · 494 citations
Biochemistry, Genetics and Molecular Biology · Physics and Astronomy · Psychology · Social Sciences · #Dilemma #Economics #Evolution and Genetic Dynamics #Evolutionary Game Theory and Cooperation #Friendship #Game theory #Law #Law and economics #Mechanism (biology) #Microeconomics #Opinion Dynamics and Social Influence #Order (exchange) #Political science #Prisoner's dilemma #Psychology #Public good #Public goods game #Reputation #Selfishness #Social dilemma #Social psychology #physics.soc-ph
paper · pdf · doi:10.1073/pnas.0811503106
published in Proceedings of the National Academy of Sciences 106(10), 3680-3685 (National Academy of Sciences)
openalex publication_date 2009/02/23 · arxiv created 2009/03/24 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/05
According to Thomas Hobbes' Leviathan [1651; 2008 (Touchstone, New York), English Ed], "the life of man [is] solitary, poor, nasty, brutish, and short," and it would need powerful social institutions to establish social order. In reality, however, social cooperation can also arise spontaneously, based on local interactions rather than centralized control. The self-organization of cooperative behavior is particularly puzzling for social dilemmas related to sharing natural resources or creating common goods. Such situations are often described by the prisoner's dilemma. Here, we report the sudden outbreak of predominant cooperation in a noisy world dominated by selfishness and defection, when individuals imitate superior strategies and show success-driven migration. In our model, individuals are unrelated, and do not inherit behavioral traits. They defect or cooperate selfishly when the opportunity arises, and they do not know how often they will interact or have interacted with someone else. Moreover, our individuals have no reputation mechanism to form friendship networks, nor do they have the option of voluntary interaction or costly punishment. Therefore, the outbreak of prevailing cooperation, when directed motion is integrated in a game-theoretical model, is remarkable, particularly when random strategy mutations and random relocations challenge the formation and survival of cooperative clusters. Our results suggest that mobility is significant for the evolution of social order, and essential for its stabilization and maintenance.