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Fig. 6 Network performance under the shortest map-based mobility with different node buffer sizes.
Fig. 4 Network performance under the shortest map-based mobility with different node speeds.
Fig. 7 A comparison of QM-EBRP and OGK under the shortest map-based mobility with different node speeds.
Fig. 8 Network performance under the shortest map-based mobility with different number of source/destination pairs.
Fig. 5 A comparison of QM-EBRP against OGK under the shortest map-based mobility with different node speeds.
Table 4 showed the magnitude of GTV centroid mobility with different positional and attachment status.
Similar(54)
We consider a total of eight mobility traces, with different vehicle densities.
Fig. 11 Network performance under the random mobility model with different node buffer sizes.
As we demonstrate later, the three algorithms perform differently with different mobility assumptions on the users.
Moreover, in order to allow a more exhaustive evaluation it is important to determine the protocol's ability to handle mobility phenomena, introducing dynamic scenarios with different mobility models.
Altogether, we conclude from these results that heterogeneous mobility between groups with different initial skills does not seem to be important enough to account for the observed differences in intergenerational mobility between the ethnic groups.
Related(18)
difficulty with different
locomotion with different
motility with different
traffic with different
rotation with different
mobility with other
move with different
moves with different
mobility with unexpected
mobility with small
mobility with stochastic
mobility with short
mobility with proper
mobility with fast
mobility with financial
mobility with hybrid
mobility with electric
mobility with price-based
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