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Upon estimation of E[T], network throughput efficiency can be calculated using the expected reward E[R] per renewal event duration E[T] as follows: ℑ = E [ R ] E [ T ], (13).
However, for certain applications the potential throughput efficiency can be impeded enough since the multiprotocol encapsulation-forward error correction (MPE-FEC) frame may be marked as incorrect even if it happens that some self-contained parts of it are error-free.
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Our results demonstrate that the communication efficiency can be improved three times and the effective throughput is improved four times over the traditional static communication systems.
When nodes can vary transmission power then the network spatial reuse potential and power efficiency can be increased, and when variable rates are allowed then network throughput and the benefit from network coding can be improved.
Here, energy efficiency can be expressed in terms of the radio of area spectral efficiency (network throughput, T tot) and network power consumption (P tot) as: eta = frac{T_{text{tot}}}{P_{text{tot}}}.
Scale efficiency can be measured by dividing the CRS efficiency score by the VRS efficiency score.
Economic efficiency can be assessed in terms of technical efficiency and allocative efficiency.
Efficacy, but also efficiency can be determined.
"Our work efficiency can be improved.
Still, these efficiencies can be self-defeating.
In other words, the throughput that can be achieved compared with the travel cost, which is defined as efficiency in Section 4.2, can be very low for the low-load case.
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