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CLORDFS-Optimized Routing and Data Forwarding Scheme for Underwater Acoustic Wireless Sensor Networks using Cross-Layer Parameters

B. UmaComputer Science and Engineering, JyothishmathiInstitute of Technology and Science Karimnagar, Affiliated to Jawaharlal Nehru Technological University Hyderabad, Telangana, India.Naseer AhmadSchool of Global Convergence Studies, INHA University, Incheon, South Korea & School of Computer and Information EngineeringE ZanajE GambiB ZanajD DishaN KolaS ClimentA SanchezJ CapellaN MeratniaJ SerranoA GuqhaimanO AkanbiA AljaediC ChowI AkyildizD PompiliT MelodiaZ GuoG ColombiB WangJ CuiD MaggioriniG RossiN NicolaouA SeeP XieL LaoA HarrisIiiM StojanovicM ZorziS BlancP YusteA PerlesA WahidS LeeD KimJ NamgungN YunS ParkC KimJ JeonR JurdakC LopesP BaldiL WeiY GuoS CaiJ ChoF AhmedE ShitiriH ChoL QianS ZhangM LiuQ ZhangY HanY FeiS HanY NohR LiangY ChenY ChengM GerlaZ ZhouZ PengZ JiangP RahmanA KarmakerM AlamM HoqueW LambertH KimT ImK AwanP ShahK IqbalS GillaniW AhmadY NamH YanZ ShiU Lee
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Underwater Acoustic Wireless Sensor Networks (UAWSN) is a collection of sensor nodes that are strategically placed at different depths under water to monitor the activities of interest. In contrast to Terrestrial Wireless Sensor Networks (TWSN), a UAWSN is constrained by several challenges like limited bandwidth, multipath propagation, path-loss, noise, Doppler spread, etc. Also, other parameters like salinity, depth and pressure influence the propagation speed and in turn the achieved throughput. Most of the existing works in this direction focus on designing new medium access control protocols to minimize collisions and maximize bandwidth utilization. Other existing routing and data forwarding protocols use different metrics to maximize network objectives like network lifetime, increase network throughput, minimize energy drain, etc. In this paper, we propose a routing and data forwarding mechanism using link bandwidth by considering path-loss and multipath propagation effects. These crosslayer metrics allow us to select high-capacity links increasing overall network throughput. In addition, we propose different optimizations to the data forwarding and routing mechanisms to save energy and increase lifetime of the network. The simulation results show that the proposed mechanism improves 6% packet delivery ratio, 10% throughput, and minimizes energy consumption in comparison to state-of-the-art protocol CLOR.

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