4.6 Article

Patient-Centric HetNets Powered by Machine Learning and Big Data Analytics for 6G Networks

Journal

IEEE ACCESS
Volume 8, Issue -, Pages 85639-85655

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/ACCESS.2020.2992555

Keywords

HetNet uplink optimization; MILP; machine learning; patient-centric; network optimization; naive Bayesian classifier; decision tree; logistic regression; ensemble; 6G; resource allocation; spectrum allocation; big data analytics

Funding

  1. Engineering and Physical Sciences Research Council (EPSRC)
  2. INTERNET [EP/H040536/1]
  3. STAR Projects [EP/K016873/1]
  4. TOWS Projects [EP/S016570/1]
  5. EPSRC [EP/S016570/1, EP/H040536/1, EP/K016873/1] Funding Source: UKRI

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Having a cognitive and self-optimizing network that proactively adapts not only to channel conditions, but also according to its users' needs can be one of the highest forthcoming priorities of future 6G Heterogeneous Networks (HetNets). In this paper, we introduce an interdisciplinary approach linking the concepts of e-healthcare, priority, big data analytics (BDA) and radio resource optimization in a multi-tier 5G network. We employ three machine learning (ML) algorithms, namely, naive Bayesian (NB) classifier, logistic regression (LR), and decision tree (DT), working as an ensemble system to analyze historical medical records of stroke out-patients (OPs) and readings from body-attached internet-of-things (IoT) sensors to predict the likelihood of an imminent stroke. We convert the stroke likelihood into a risk factor functioning as a priority in a mixed integer linear programming (MILP) optimization model. Hence, the task is to optimally allocate physical resource blocks (PRBs) to HetNet users while prioritizing OPs by granting them high gain PRBs according to the severity of their medical state. Thus, empowering the OPs to send their critical data to their healthcare provider with minimized delay. To that end, two optimization approaches are proposed, a weighted sum rate maximization (WSRMax) approach and a proportional fairness (PF) approach. The proposed approaches increased the OPs' average signal to interference plus noise (SINR) by 57% and 95%, respectively. The WSRMax approach increased the system's total SINR to a level higher than that of the PF approach, nevertheless, the PF approach yielded higher SINRs for the OPs, better fairness and a lower margin of error.

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