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The Google matrix controls the stability of structured ecological and biological networks

机译:Google矩阵控制结构化生态和生物网络的稳定性

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May’s celebrated theoretical work of the 70’s contradicted the established paradigm by demonstrating that complexity leads to instability in biological systems. Here May’s random-matrix modelling approach is generalized to realistic large-scale webs of species interactions, be they structured by networks of competition, mutualism or both. Simple relationships are found to govern these otherwise intractable models, and control the parameter ranges for which biological systems are stable and feasible. Our analysis of model and real empirical networks is only achievable on introducing a simplifying Google-matrix reduction scheme, which in the process, yields a practical ecological eigenvalue stability index. These results provide an insight into how network topology, especially connectance, influences species stable coexistence. Constraints controlling feasibility (positive equilibrium populations) in these systems are found more restrictive than those controlling stability, helping explain the enigma of why many classes of feasible ecological models are nearly always stable.
机译:梅(May)著名的70年代理论工作证明了复杂性会导致生物系统不稳定,从而与既定范例矛盾。 May的随机矩阵建模方法可以推广到现实的大规模物种相互作用网络,无论它们是由竞争网络,互惠网络还是两者共同构成。发现简单的关系可以控制这些原本难以处理的模型,并控制生物学系统稳定且可行的参数范围。我们对模型和实际经验网络的分析只能通过引入简化的Google矩阵约简方案来实现,在此过程中,它会得出实用的生态特征值稳定性指标。这些结果提供了对网络拓扑(尤其是连接性)如何影响物种稳定共存的见解。发现这些系统中控制可行性的约束(正均衡种群)比控制稳定性的约束更加严格,这有助于解释为什么许多类可行的生态模型几乎总是稳定的谜团。

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