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For nrtPS connections, the differences of throughput ratios are not controlled in priority-only scheduler.
Simulations and performance analysis verify the efficiency of proposed scheme, showing that our approach can outperform existing schemes in terms of bandwidth utilization, quality of experience (QoE) of service success, delay and throughput ratios, and normalized users' profit.
Through analytical modeling, we demonstrate that by assigning appropriate different attempt probabilities (or contention window sizes) to stations of different classes, it is feasible to provide (proportional) service differentiation and achieve pre-specified targeted throughput ratios among different classes, while at the same time, maximizing the total system capacity.
In Tables 8 and 9 and Figures 14 and 15, the throughput ratios of e-TICA and TICA over the maximum achievable throughput for 25 different realizations of the random topology for the 36-node network and the 100-node network are shown, respectively.
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Figure 10a shows the Min/Max throughput ratio.
Simulation results show that both mechanisms provide weighted throughput within 1% of the given throughput ratio.
The results showed that with increasing load the throughput ratio dropped across all schemes.
Figure 9b plots the Min/Max throughput ratio as a function of the number of nodes.
Figure 15 Comparison of throughput ratio for 100-node network (e-TICA versus TICA).
The purpose of this setting is to make the throughput ratio equal to one.
Fig. 9 Performance analysis of the throughput ratio property for the several configurations.
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