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C3 is the transmit power constraint, and P total is the maximum total transmit power.
The maximum total transmit power, the fixed circuit power, and the dynamic circuit power consumption factor are P max=10W, P C =0.05W, and α=0.01, respectively.
Fig. 2 Average secrecy rate versus the maximum total transmit power constraint P r at R under the error bound δ=0.2. Figure 3 shows the average secrecy rate versus the maximum total transmit power constraint at R for the comparison of both imperfect CSI and perfect CSI cases.
From Fig. 3, it is also observed that the secrecy rate increases with increase of maximum total transmit power at R and exhibits saturation behavior in high relay transmit power due to the constraint (10).
From Fig. 2, it is observed that the average secrecy rate increases as the maximum total transmit power of relay increases and our proposed robust beamforming with CJ scheme is superior to all its counterparts in improving the secrecy rate.
In particular, with regard to the non-robust scheme, we calculate the average minimum harvested power at per ER under different minimum required SINR of IR with fixed maximum total transmit power P = 10 mW.
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Figure 4 shows the analytical results of the maximum allowed total transmit power for the ELs with different BL's capacity loss constraints.
In Section 3, the LFM-based waveform design for limited maximum allowable frequency band and total transmit energy is presented, and the algorithm for solving the optimization problem is given.
The line has been derived in the following way: starting from point (where user 2 does not transmit and user 1 uses the maximum power with the SWF technique) user 2 increases the total transmit power up to the maximum value, when both users transmit with the maximum total power point is reached; finally user 1 decreases the transmit power from the maximum value to zero reaching the point.
Finally, we can use (4) to find the maximum total transmission success rate when transmitting the four messages.
Moreover, user can transmit data with maximum total power.
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Justyna Jupowicz-Kozak
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