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



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3110572-конвертирован (1)

i

j

min

i

j

i
R.!d , !a Σ ≥ R , ∀!d ∈ D,∀!a ∈ C.!d Σ, ð17Þ




50




40



z (m)
30


20


10

0
100




80 60


D-UAV
40


y (m)

20 0 0




Associated users
50

x (m)


100

.! Σ


A-UAV Non covered users
Figure 3: Example solution.

!



    1. FER

ð!u ÞΣτð!u ÞQ!


.1 − τ







.!i ΣΣ1

S d i
Smax, ∀ d i ∈ D: ð18Þ
SWiFi
.!a Σ = 〠 B
i u∈S
C · L
PDU,

To verify these constraints, one has to estimate end-to- end performance parameters such as packet loss ratio, delay, and effective throughput. Then, as introduced in Section 3.2,


!uC ð!a Þ@


ð!a Þ
E½T]
A
ð21Þ

the end-to-end speech quality (e.g., see R factor in (1)) can be estimated through the E-model. This requires to know the end-to-end packet loss ratio (Ppl) and delay (d). More- over, Ppl and d can be further decomposed (see Equations
(2) and (3)) considering the three networks traversed in the proposed network architecture: (a) the WiFi access net- work, (b) the WiFi distribution network, and (c) the 5G link SLA. Notice that the delay and loss in the 5G link can be agreed with the service provider (i.e., the telco operator) and hence can be seen as constant values. However, the first two (WiFi networks) have to be estimated.
To derive the VoIP Capacity of any AP in our system, we extend Bianchi’s Markov-chain analytical model [49] of the IEEE 802.11 MAC sublayer performance. Our analytical

ð Þ
model takes the location of the access point (e.g., !a ) and its associated stations (C !a ) as input parameters and returns a τ expression for each contending station as its probability of transmission attempt. The output of our ana- lytical model can be used to derive the estimated delay, packet loss ratio, and aggregated throughput at a given AP as follows:
.1 − FERð!a ÞΣτð!a ÞQ .1 − τð!u ÞΣ


where FER stands for the average Frame Error Rate at

½ ]

½ ]
the access point, which can be derived from its SINR and Modulation and Coding Scheme (MCS); E B is the expected number of back-off slots that a packet waits before transmis- sion; and E T is the average slot duration and it can be cal- culated by averaging the duration of each type of event (e.g., transmission, collision) with its probability. The reader is encouraged to read a more detailed derivation of all these parameters in our previous works [15, 16, 40]. Finally, λ and LPDU represent the number of packets transmitted per
second and their payload length, respectively (e.g., 50
packets/second and 160 Bytes for G.711 codec).
Finally, (2) and (3) can be completed as
Ppl =1 ..1 LWiFi.!d iΣΣ.1 LWiFi.!a jΣΣð1 L5G−SLAÞΣ,
ð22Þ

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