Reducing Financial Avalanches By Random Investments
arXiv:1309.3639 · doi:10.1103/PhysRevE.88.062814
Abstract
Building on similarities between earthquakes and extreme financial events, we use a self-organized criticality-generating model to study herding and avalanche dynamics in financial markets. We consider a community of interacting investors, distributed on a small-world network, who bet on the bullish (increasing) or bearish (decreasing) behavior of the market which has been specified according to the S&P500 historical time series. Remarkably, we find that the size of herding-related avalanches in the community can be strongly reduced by the presence of a relatively small percentage of traders, randomly distributed inside the network, who adopt a random investment strategy. Our findings suggest a promising strategy to limit the size of financial bubbles and crashes. We also obtain that the resulting wealth distribution of all traders corresponds to the well-known Pareto power law, while the one of random traders is exponential. In other words, for technical traders, the risk of losses is much greater than the probability of gains compared to those of random traders.
8 pages, 8 figures - Revised version accepted for publication in Phys. Rev. E
References in corpus (8)
- Analysis of Self-Organized Criticality in the Olami-Feder-Christensen model and in real earthquakes
- Noise-enhanced classical and quantum capacities in communication networks
- The Peter Principle Revisited: A Computational Study
- Are volatility correlations in financial markets related to Omori processes occurring on all scales?
- The Future of Social Experimenting
- How Natural Selection Can Create Both Self- and Other-Regarding Preferences, and Networked Minds
- Effects of network topology on wealth distributions
- Olami-Feder-Christensen Model on different Networks
Cited by in corpus (15)
- Talent vs Luck: the role of randomness in success and failure
- Modelling Financial Markets by Self-Organized Criticality
- Exploring the Role of Interdisciplinarity in Physics: Success, Talent and Luck
- Continuous transition from the extensive to the non-extensive statistics in an agent-based herding model
- Micro and Macro Benefits of Random Investments in Financial Markets
- Cross-correlation asymmetries and causal relationships between stock and market risk
- Is Poker a Skill Game? New Insights from Statistical Physics
- Poker as a Skill Game: Rational vs Irrational Behaviors
- Symbolic dynamics techniques for complex systems: Application to share price dynamics
- Understanding the nature of the long-range memory phenomenon in socioeconomic systems
- Herding interactions as an opportunity to prevent extreme events in financial markets
- Selective altruism in collective games
- Modelling Surveys Effects in Political Competitions
- Perfect Information vs Random Investigation: Safety Guidelines for a Consumer in the Jungle of Product Differentiation
- Estimating predictability of depinning dynamics by machine learning