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In this section, energy flow behavior of the SEn-BS system is modeled by using a stochastic queue.
In the SEn-BS system, energy flow behavior of the SEn-BS system is modeled using a stochastic queue.
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Uncertainty is considered using a stochastic ToBloOM.
This implies using a stochastic imputation.
Mathematical models of SEn-BS system components are provided in Section 3. In Section 3, energy flow behavior of the system is modeled as a stochastic queue.
The UPE project has used a stochastic approach instead.
We use a stochastic, individual- and network-based simulation approach.
The energy flow behavior of the system was modeled by using the stochastic queue model, and then dynamics of the constructed model (i.e., energy harvesting rate, energy consumption interval, and state probability of energy) were analyzed mathematically.
In order to measure the dynamic behavior of queues at signalized intersections with waiting areas, this paper develops a stochastic queueing model to analytically simulate the evolution process of queues.
Specifically, the main contributions are described as follows: 1) The energy flow behavior of the SEn-BS system is modeled by using stochastic queue model, jointly considering fluctuation of energy generation, nonlinearity of energy storage, and indeterminacy of traffic load.
Motivated by this challenge, we firstly model the dynamic energy flow behavior of solar energy-powered BS by using stochastic queue model, jointly considering instability of solar energy generation, non-linear effects of energy storage, and time varies of traffic load.
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