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The first experiment, shown in Figure 12, consists of a ZigBee link transmitting at a maximal throughput at the start of the experiment.
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We now formulate an optimization problem aimed at obtaining the maximal throughput guarantee B [bits], which can be achieved within a time-window of T W [seconds].
Fig. 7 The maximal throughput of secondary system w.r.t.
Figure 10 shows the maximal throughput of secondary system w.r.t.
Investigations of the possible maximal throughput and different band broadening effects are discussed.
On the another hand, the maximal throughput will be decreased with the declining of p a. Fig. 11 The maximal throughput of secondary system w.r.t.
On the other hand, a conventional receiver has a maximal throughput per slot Tps = 0.368 for a frame size equal to the tag population size Fopt/N = 1, and at the SNR = 15 dB, Tps15 dB = 0.212.
This determines the maximal throughput per slot for an FSA system.
Here, we investigate the different algorithms with the objective of the minimal interference and maximal throughput.
Table 4 shows the maximal throughput considering the number of decoding iterations and the decoding mode.
The maximal throughput of the individual SU is set to 16 Mbit/s, using 64-QAM modulation, as an upper limit of the achievable individual SU throughput.
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Justyna Jupowicz-Kozak
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