Qos-aware Multilayer uav deployment to Provide VoWiFi Service over 5g networks



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Problem Resolution


D Dmax,
A Amax,

ð4Þ
The optimization problem in (4) can be solved through metaheuristics search algorithms. In our previous work [15, 16], we demonstrated the effectiveness of Genetic Algo- rithm and Particle Swarm Optimization, comparing their results with exhaustive search. For simplicity’s sake, and given our previous experience, we will use a PSO algorithm



where XD and XA stand for the collection of valid posi- tions for distribution and access UAVs, respectively; so one could restrict flying zones or establish a range of valid altitudes for each type of UAV.
The previous expression optimizes the location of Distri- bution and Access UAVs (D, A, respectively) that mini- mizes the total number of UAVs deployed (D + A) while maximizing user coverage (C/U) subject to the following constraints:



    1. User coverage ratio, C/U, must exceed a threshold (Cmin).

! ! ! !
(further proposed by other authors [43]) in this paper.



    1. Search Algorithm. Algorithm 1 contains the pseudocode of the search algorithm used to solve the optimization prob- lem in (4). The input of the algorithm is the set of valid posi- tions for UAVs (X), the set of ground users’ location (U), and the problem constraints (Dmax, Cmin, Rmin, Smax). This

algorithm looks for the optimal location of UAVs (D, A)
that meets the problem constraint and increases the number of drones (A, and D) until a valid solution is found. For a given number of drones (D A), their positioning is jointly optimized by the SolveOptim_PSO function.
On each iteration, the SolveOptim_PSO (see Algo-

    1. Offered speech quality, Rðdi, a jÞ∀ d i ∈ D, a j ∈ C

rithm 2) is called to find the optimal location (D, A) for






Algorithm 1: Search algorithm pseudocode.

      1. The UpdateParticle function updates the set of par- ticles (P ) by considering the best-found location for each particle (P )


      2. i
        The Check function contains the fitness evaluation that returns a score for a given location. Then, the algorithm evaluates if the candidate position is valid (f i > 0), and if it improves the best-found location for that particle (f i < f ). If so, the best-found loca- tion for that particle is updated

      3. The algorithm finishes when the exit criterion is achieved (e.g., the overall improvement between two consecutive generations is lower than 103). It returns the location for Distribution and Access UAVs (D and A) if any, or an empty set otherwise

The next section elaborates on the fitness evaluation procedure (Check function); the reader can find rest of the PSO-related functions in our previous work [16], along with some implementation details.


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