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      A Localization Method for Underwater Wireless Sensor Networks Based on Mobility Prediction and Particle Swarm Optimization Algorithms

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          Abstract

          Due to their special environment, Underwater Wireless Sensor Networks (UWSNs) are usually deployed over a large sea area and the nodes are usually floating. This results in a lower beacon node distribution density, a longer time for localization, and more energy consumption. Currently most of the localization algorithms in this field do not pay enough consideration on the mobility of the nodes. In this paper, by analyzing the mobility patterns of water near the seashore, a localization method for UWSNs based on a Mobility Prediction and a Particle Swarm Optimization algorithm (MP-PSO) is proposed. In this method, the range-based PSO algorithm is used to locate the beacon nodes, and their velocities can be calculated. The velocity of an unknown node is calculated by using the spatial correlation of underwater object’s mobility, and then their locations can be predicted. The range-based PSO algorithm may cause considerable energy consumption and its computation complexity is a little bit high, nevertheless the number of beacon nodes is relatively smaller, so the calculation for the large number of unknown nodes is succinct, and this method can obviously decrease the energy consumption and time cost of localizing these mobile nodes. The simulation results indicate that this method has higher localization accuracy and better localization coverage rate compared with some other widely used localization methods in this field.

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          Underwater sensor networks: applications, advances and challenges.

          This paper examines the main approaches and challenges in the design and implementation of underwater wireless sensor networks. We summarize key applications and the main phenomena related to acoustic propagation, and discuss how they affect the design and operation of communication systems and networking protocols at various layers. We also provide an overview of communications hardware, testbeds and simulation tools available to the research community.
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            Computational Intelligence in Wireless Sensor Networks: A Survey

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                Author and article information

                Contributors
                Role: Academic Editor
                Journal
                Sensors (Basel)
                Sensors (Basel)
                sensors
                Sensors (Basel, Switzerland)
                MDPI
                1424-8220
                06 February 2016
                February 2016
                : 16
                : 2
                : 212
                Affiliations
                [1 ]College of Information Engineering, Shanghai Maritime University, Shanghai 201306, China; yingzhang@ 123456shmtu.edu.cn (Y.Z.); liangjixing501@ 123456163.com (J.L.); smjiang@ 123456shmtu.edu.cn (S.J.)
                [2 ]Department of Computer Science, Tennessee State University, Nashville, TN 37209, USA
                Author notes
                [* ]Correspondence: wchen@ 123456tnstate.edu ; Tel.: +1-615-963-5878; Fax: +1-615-963-5847
                Article
                sensors-16-00212
                10.3390/s16020212
                4801588
                26861348
                ab505969-ebf3-4202-aef7-3d935c04090e
                © 2016 by the authors; licensee MDPI, Basel, Switzerland.

                This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 27 December 2015
                : 03 February 2016
                Categories
                Article

                Biomedical engineering
                underwater wireless sensor networks,mobility patterns,localization,mobility prediction,particle swarm optimization

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