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Title: | Joint Mobility-Driven Adaptive Power Control and Priority-Aware Bandwidth Allocation for AoI and Energy Optimization in WBANs Joint Mobility-Driven Adaptive Power Control and Priority-Aware Bandwidth Allocation for AoI and Energy Optimization in WBANs Joint Mobility-Driven Adaptive Power Control and Priority-Aware Bandwidth Allocation for AoI and Energy Optimization in WBANs Joint Mobility-Driven Adaptive Power Control and Priority-Aware Bandwidth Allocation for AoI and Energy Optimization in WBANs |
Authors: | ALAM, MUHAMMAD MORSHED ALAM, MUHAMMAD MORSHED ALAM, MUHAMMAD MORSHED ALAM, MUHAMMAD MORSHED ARAFAT, TAMIM HOSSAIN ARAFAT, TAMIM HOSSAIN ARAFAT, TAMIM HOSSAIN ARAFAT, TAMIM HOSSAIN LABIB, MD. LABIBUL HAQUE LABIB, MD. LABIBUL HAQUE LABIB, MD. LABIBUL HAQUE LABIB, MD. LABIBUL HAQUE KAMAL, MD. SHAFKAT KAMAL, MD. SHAFKAT KAMAL, MD. SHAFKAT KAMAL, MD. SHAFKAT NAYEM, MD. RAKIBUR RAHMAN NAYEM, MD. RAKIBUR RAHMAN NAYEM, MD. RAKIBUR RAHMAN NAYEM, MD. RAKIBUR RAHMAN ISLAM, MD. RATUL ISLAM, MD. RATUL ISLAM, MD. RATUL ISLAM, MD. RATUL MD. NOOR-A-RAHIM, RAHIM MD. NOOR-A-RAHIM, RAHIM MD. NOOR-A-RAHIM, RAHIM MD. NOOR-A-RAHIM, RAHIM PESCH, DIRK PESCH, DIRK PESCH, DIRK PESCH, DIRK |
Keywords: | Age of information Particle filter Resource allocation WBAN Lagrange KKT conditions |
Issue Date: | 30-Sep-2025 30-Sep-2025 30-Sep-2025 30-Sep-2025 |
Publisher: | IEEE IEEE IEEE IEEE |
Citation: | 0 0 0 0 |
Abstract: | Wireless Body Area Networks (WBANs) are recognized as innovative technology for personal health monitoring. In WBANs, physiological sensor data must be transmitted to the local processing unit (LPU) with minimal age of information (AoI) based on sensor data priority. However, the limited resources of sensors, such as energy, computational capacity, caching and bandwidth, make AoI minimization challenging. Additionally, dynamic radio links caused by body movement and interference further complicate the task. This study aims to minimize the weighted cost of time average AoI and energy consumption by adaptively controlling the transmit power based on real-time distance variations between the sensor and LPU, while allocating priority-aware bandwidth under quality of service and resource constraints in continuous decision space. To solve the non-linear problem, a particle filter-assisted Lagrange relaxation with Karush–Kuhn–Tucker conditions (PF-LKKT) framework is proposed. A recursive particle filter based on received signal strength and motion-sensor data is employed for accurate distance estimation. Then, according to the distance variation adaptively transmit power and data priority-aware bandwidth is jointly allocated. Simulation results demonstrate the superiority of the proposed framework over existing techniques. |
URI: | http://dspace.aiub.edu:8080/jspui/handle/123456789/2890 |
ISSN: | 2644-125X 2644-125X 2644-125X 2644-125X |
Appears in Collections: | Publications From Faculty of Engineering |
Files in This Item:
File | Description | Size | Format | |
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Dr Alam_Sept_2025_JPBA.docx | 2.96 MB | Microsoft Word XML | View/Open |
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