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At the beginning of each scheduling period our scheduler decides the channel and slots to be assigned to each reader by maximizing (with respect to these variables) the expected throughput using a simulated annealing solver.
In [12] and [13], the authors considered a gradient-based scheduling algorithm which maximizes the weighted sum rate at the beginning of each scheduling interval.
For the DL channels, similar to the UL channel, the handshaking is also executed between FD BS and the kth DL user to promote the DL channel estimation at the beginning of each scheduling slot.
In conclusion, the scheduling algorithm determines the probabilistic transmission rates of the users under different scenarios which can be calculated at the beginning of each scheduling period, and then the users randomly access the network using the calculated probabilities.
For the UL channel, by performing handshaking between FD BS and UL user, the UL CSI can be reliably estimated at the FD BS through measuring the pilots from UL user in the handshaking signals via channel reciprocity at the beginning of each scheduling slot.
At the beginning of each scheduling time, the transmitter broadcasts the training (i.e., preamble) sequence to all users, which allows each user to calculate its CSI, and decides to feedback partial CSI information, which in our case will be the SNR value.
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At the beginning of each round of scheduling, the scheduler should decide one of the sessions for transmission.
In other words, at the beginning of each 28-day period of scheduling, the new schedule is generated to assign shifts to the nurses.
Once the effective sensing range is determined, it is broadcast to the neighboring nodes at the beginning of each round before the coverage scheduling takes place.
In other words, at the beginning of each 28-day period of scheduling, each nurse determines his/her preferences to work on each shift in each week and to be off in each weekend.
The algorithm operates at every beginning of the scheduling interval.
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