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For each diversity scheme, we will calculate the mean and the variance of.
The equalizers for each diversity branch are designed based on the maximum ratio combining (MRC) criteria, presented in [15].
Section 3 examines the ergodic capacity for each diversity scheme and for the case where none of diversity technique is applied.
For the nonfading case, Figure 8 shows that OT cannot outperform MRT with R = 2 for the case of L = 1 due to significant noise enhancement under certain channel conditions (phase offset for each diversity branch) of CCI.
(2) The phase of each interferer relative to the desired signal for each diversity branch is neglected, and thus phase tracking and symbol synchronization are not only perfect for the desired signal, but also for CCI [3 8, 12 17].
where L is the number of diversity branches and G γ l is the moment generating function for each diversity branch defined by G γ l ( s ) = 1 / ( 1 - s γ ̄ l ).
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In Section 5, we give some simulation results showing the advantages of each diversity scheme for different system parameters.
a α diversity (in each latitudinal band) representing local diversity; b β diversity a ratio of regional diversity (γ diversity for each state) and local diversity (α diversity); and c the distribution of forest types that correspond to biodiversity indices.
For clarity of interpretation, each diversity index is multiplied by 100; the larger the index, the greater diversity there is in the area.
For each population, diversity measures including percent polymorphic loci, frequency of heterozygotes across all loci, and genotypic diversity were calculated.
Slow and nonselective Nakagami- fading for each frequency diversity channel are assumed.
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