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Rejection-Based Simulation of Stochastic Spreading Processes on Complex Networks

机译:基于排斥的复杂网络随机扩展过程仿真

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Stochastic processes can model many emerging phenomena on networks, like the spread of computer viruses, rumors, or infectious diseases. Understanding the dynamics of such stochastic spreading processes is therefore of fundamental interest. In this work we consider the wide-spread compartment model where each node is in one of several states (or compartments). Nodes change their state randomly after an exponentially distributed waiting time and according to a given set of rules. For networks of realistic size, even the generation of only a single stochastic trajectory of a spreading process is computationally very expensive. Here, we propose a novel simulation approach, which combines the advantages of event-based simulation and rejection sampling. Our method outperforms state-of-the-art methods in terms of absolute runtime and scales significantly better while being statistically equivalent.
机译:随机过程可以为网络上的许多新兴现象建模,例如计算机病毒的传播,谣言或传染病。因此,了解这种随机传播过程的动态是至关重要的。在这项工作中,我们考虑了广泛的隔离专区模型,其中每个节点处于几种状态(或隔离专区)之一。节点在经过指数分布的等待时间之后并根据一组给定的规则随机更改其状态。对于实际大小的网络,即使仅生成扩展过程的单个随机轨迹在计算上也非常昂贵。在这里,我们提出了一种新颖的仿真方法,该方法结合了基于事件的仿真和拒绝采样的优点。在绝对运行时间方面,我们的方法优于最新方法,并且在统计上等效时,可扩展性明显更好。

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