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The system model assumes a coordinated transmission downlink scenario, where M base stations serve N users.
Unlike stacker cranes, the new S/R mechanism has one vertical platform and N horizontal platforms to serve N tiers of an AS/RS rack.
However, we can estimate the probability of being able to serve n voice and m data connections simultaneously, which will be denoted as (P_{n,m}^{text {cov}}), through numerical Monte Carlo simulations.
The base station allocates bandwidth b Mb/s to each resource attempt, so that the LTE eNB and the Wi-Fi AP can serve N L (i.e., B L /b) and N W (i.e., B W /b) UEs, respectively.
The FBA problem is addressed in Section 3, while the OBA problem is considered in Section 4. The extension of the problems to a scenario including HARQ is provided in Section 5. Numerical results on a typical cellular scenario are presented in Section 6. Lastly, conclusions are outlined in Section 7. We consider a cellular system with K BSs that serve N MTs.
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Assume the RN v i serves n destinations {v j, v j +1,..., v j+n -1}.
Using this configuration, if the service provider serves N cities, it operates telephone gateways in only M cities where M<N.
Consider a typical cell which serves N users and the coverage area is A. We assume that there are n users generating requests simultaneously.
As it can be observed, the downlink scenario of a wireless system with a base station (BS) serving N s users is considered.
where f(P R |n,m,k,l) denotes the PDF of the power radiated by the SC when serving n and k voice, and m and l data simultaneous connections at both carriers.
A cellular network is considered as illustrated in Fig. 1, where a cooperation cluster consisting of M BSs, operating in frequency division duplexing (FDD) mode, serves N UEs in the downlink.
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