← Back to Research Radar
Scientific Literature Scientific Literature

Adaptive energy-efficient and secure clustering-based routing architecture for underwater wireless sensor networks in marine environmental and ecosystem monitoring

Jatin Sharma, Salil Bharany, Abdulrahman Mohammed Alamoudi, Heba G. Mohamed, Abdul Khader Jilani Saudagar, Ateeq Ur Rehman
March 31, 2026
Published Date

Research Abstract & Technology Focus

Introduction Reliable long-term monitoring of coral reefs and other marine ecosystems is limited by the harsh underwater environment, restricted battery capacity of sensor nodes, and the high energy cost of acoustic communication. Underwater Wireless Sensor Networks (UWSNs) have emerged as a promising solution for marine environmental monitoring; however, challenges related to energy efficiency, secure communication, and reliable data collection remain significant. Methods This study proposes an integrated architecture for UWSNs that enhances energy efficiency, security, and data reliability. The framework combines a hybrid Adaptive Swarm Fitness Optimization–Golden Eagle Optimizer with K-Medoids clustering (ASFO–GEO–KM) for optimal cluster head selection, a Tiny Security (TinySec)-enabled Energy-aware Coral-Environmental Reliable Path (E-CERP) routing protocol, and Autonomous Underwater Vehicle (AUV)-assisted data collection. The ASFO–GEO–KM algorithm selects cluster heads based on residual energy, underwater link quality, and node density to improve load balancing and cluster stability. TinySec-enabled E-CERP provides authenticated, energy-aware multi-hop routing while accounting for underwater path loss and propagation delay. AUVs periodically collect aggregated data from cluster heads to reduce long-range acoustic transmissions and conserve node energy. Results Simulation results conducted in a realistic 3D marine environment demonstrate that the proposed framework outperforms existing approaches, including DEDG, AP, ALP, HECRA, GSA, and CTRGWO-CRP. The proposed system achieves a longer network lifetime, a higher packet delivery ratio, and significantly reduced routing overhead. Discussion By enabling secure, energy-efficient, and reliable underwater sensing, the proposed architecture supports long-term coral reef monitoring and marine ecosystem observation. It facilitates early detection of environmental stressors, such as thermal anomalies and turbidity spikes, thereby improving marine ecosystem protection and supporting conservation-oriented decision-making.
Read Full Literature

AI Semantic Synergy Context

Connecting this academic literature to real-world market discussions and products.

openalex.org › research concept
90%
🔥

Adaptive energy-efficient and secure clustering-based routing architecture for underwater wireless sensor networks in marine environmental and ecosystem monitoring

Introduction Reliable long-term monitoring of coral reefs and other marine ecosystems is limited by the harsh underwater environment, restricted battery capacity of sensor nodes, and the high energ...

openalex.org › research concept
0%

Enhancing underwater sensor network security using QKD-enabled acoustic–optical hybrid communication

Underwater Wireless Sensor Networks (UWSNs) function as essential systems which support naval defence operations, environmental monitoring, offshore industrial work and sea-depth exploration activi...

openalex.org › research concept
0%

SmartWSN-IDS: A Hybrid Deep Reservoir and Optimized Tree Model for Routing Attack Detection

Wireless Sensor Networks (WSNs) comprise a large number of low-power sensor nodes deployed in applications such as environmental monitoring, healthcare, military surveillance, and smart cities. Rec...

crossref.org › academic paper
0%

A Faraday Cage‐Inspired Triboelectric Nanogenerator Enabled by Alloy Powder Architecture for Self‐Powered Ocean Sensing

Self‐powered sensing technologies are increasingly sought for intelligent and autonomous marine environmental monitoring. A Faraday cage‐enabled triboelectric nanogenerator (FC‐TENG) is developed b...

openalex.org › research concept
0%

Exploiting Phase Memory in Multicarrier Waveforms for Robust Underwater Acoustic Communication

Reliable underwater acoustic (UWA) communication is fundamental to marine sensing applications, including environmental monitoring, underwater sensor networks, and autonomous platforms, yet remains...

Frequently Asked Questions (FAQ)

Curated market intelligence mapped to this research.

What is the core focus of the research titled 'Adaptive energy-efficient and secure clustering-based routing architecture for underwater wireless sensor networks in marine environmental and ecosystem monitoring'?

This literature focuses on: Introduction Reliable long-term monitoring of coral reefs and other marine ecosystems is limited by the harsh underwater environment, restricted battery capacity of sensor nodes, and the high energy cost of acoustic communication. Underwater Wirel...

What other academic literature is closely related to 'Adaptive energy-efficient and secure clustering-based routing architecture for underwater wireless sensor networks in marine environmental and ecosystem monitoring'?

Yes, highly correlated activity was mapped. An entry titled 'Adaptive energy-efficient and secure clustering-based routing architecture for underwater wireless sensor networks in marine environmental and ecosystem monitoring' discusses this: Introduction Reliable long-term monitoring of coral reefs and other marine ecosystems is limited by the harsh underwater environment, restricted ba...

Cite this Market Intelligence Report

Reference our AI-mapped synergy between this research and the commercial market to instantly build authority.