Work place: Department of ECE, Swarnandra College of Engineering and Technology, Narasapur - 534280, India
E-mail: maramduvva04@gmail.com
Website: https://orcid.org/0000-0001-5738-1148
Research Interests:
Biography
Dr. Maram Koteswara Rao received his Ph.D. from JNTU Kakinada and has 24 years of teaching experience. He is currently working as a Professor in the Department of Electronics and Communication Engineering at Swarnandhra College of Engineering and Technology, Narsapur. His research interests include speech, signal and image processing, embedded systems, the Internet of Things, communication systems, computer vision, and AI-based engineering applications. He has contributed research articles to national and international journals and conferences, with recent scholarly work covering deep-learning-based image segmentation and antenna-performance analysis. He also actively participates in professional development programmes in emerging areas such as generative AI, quantum computing, and high-performance computing.
By Appala Raju Uppala D. Naga Ravikiran M. Koteswara Rao Srinivasa Rao Thamanam Gangolu Rajesh K. Sudha Rani
DOI: https://doi.org/10.5815/ijwmt.2026.04.06, Pub. Date: 8 Aug. 2026
Wireless Mesh Networks (WMNs) provide low-cost, self-organizing and self-healing connectivity, but multi-hop interference, hidden-node effects and unbalanced load make delay-sensitive Voice over Internet Protocol (VoIP) communication difficult to support. This paper presents a Particle Swarm Optimization (PSO)-driven node monitoring and traffic scheduling framework for QoS-aware VoIP in WMNs. In the revised method, multi-level monitoring is explicitly defined through three measurable levels: node-state monitoring (identifier, residual energy and queue occupancy), link-quality monitoring (delivery probability, loss, delay and interference), and traffic/QoS monitoring (VoIP classification and priority scheduling). These normalized features are combined in a dimensionally consistent PSO fitness function that jointly maximizes packet delivery ratio and residual energy while minimizing delay, packet loss and hop count. A MATLAB-based discrete-event simulation was conducted for WMNs with 50-300 nodes, bidirectional CBR/UDP VoIP flows, IEEE 802.11 CSMA/CA access and common channel/interference assumptions. Under the modeled conditions, the proposed PSO-MLNM-EPDR method achieved 97.7-98.8% packet delivery ratio, compared with 94.1-95.2% for RAAOR-WMN and 92.7-93.7% for FDOE-WMN, while keeping one-way delay within 7.4-8.6 ms. The study is limited to controlled simulation settings without mobility or field deployment; therefore, future work should validate the method under realistic traffic bursts, mobility and heterogeneous radio environments.
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