The evolution of data gathering static and mobility models in underwater wireless sensor networks: a survey
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[1] D. Kavitha,et al. Retraction Note to: Designing an IoT based autonomous vehicle meant for detecting speed bumps and lanes on roads , 2022, Journal of Ambient Intelligence and Humanized Computing.
[2] Mohamed Elhoseny,et al. Deep learning model for real-time image compression in Internet of Underwater Things (IoUT) , 2020, Journal of Real-Time Image Processing.
[3] N. Sivakumar,et al. Enhancing coverage and connectivity using energy prediction method in underwater acoustic WSN , 2020, J. Ambient Intell. Humaniz. Comput..
[4] B. Paramasivan,et al. An improved range based localization using Whale Optimization Algorithm in underwater wireless sensor network , 2020, J. Ambient Intell. Humaniz. Comput..
[5] M. Ayyadurai,et al. Optimisation of data reliability in UASN using adaptive Buffalo algorithm , 2020, Journal of Ambient Intelligence and Humanized Computing.
[6] Wei Liu,et al. Trust data collections via vehicles joint with unmanned aerial vehicles in the smart Internet of Things , 2020, Trans. Emerg. Telecommun. Technol..
[7] Zhiwen Zeng,et al. An AUV-Assisted Data Gathering Scheme Based on Clustering and Matrix Completion for Smart Ocean , 2020, IEEE Internet of Things Journal.
[8] Govind P. Gupta,et al. Load balanced clustering scheme using hybrid metaheuristic technique for mobile sink based wireless sensor networks , 2020, Journal of Ambient Intelligence and Humanized Computing.
[9] Bo Jiang,et al. Trust based energy efficient data collection with unmanned aerial vehicle in edge network , 2020, Trans. Emerg. Telecommun. Technol..
[10] S. Jayashri,et al. An optimal mobile data gathering in small scale WSN by power saving adaptive clustering techniques , 2020, Journal of Ambient Intelligence and Humanized Computing.
[11] Anil Kumar Verma,et al. SAPDA: Secure Authentication with Protected Data Aggregation Scheme for Improving QoS in Scalable and Survivable UWSNs , 2020, Wireless Personal Communications.
[12] Jie Zhang,et al. Cellular Clustering-Based Interference-Aware Data Transmission Protocol for Underwater Acoustic Sensor Networks , 2020, IEEE Transactions on Vehicular Technology.
[13] Nadeem Javaid,et al. Fair energy management with void hole avoidance in intelligent heterogeneous underwater WSNs , 2018, Journal of Ambient Intelligence and Humanized Computing.
[14] Luiz F. M. Vieira,et al. A Joint Anypath Routing and Duty-Cycling Model for Sustainable Underwater Sensor Networks , 2019, IEEE Transactions on Sustainable Computing.
[15] Zhiyong Yu,et al. Data recovery in wireless sensor networks based on attribute correlation and extremely randomized trees , 2019, J. Ambient Intell. Humaniz. Comput..
[16] Ming He,et al. A reliable routing protocol against hotspots and burst for UASN-based fog systems , 2018, Journal of Ambient Intelligence and Humanized Computing.
[17] Yuanguo Bi,et al. A Scheme for Delay-Sensitive Spatiotemporal Routing in SDN-Enabled Underwater Acoustic Sensor Networks , 2019, IEEE Transactions on Vehicular Technology.
[18] Yalew Zelalem Jembre,et al. An energy-efficient data collection protocol with AUV path planning in the Internet of Underwater Things , 2019, J. Netw. Comput. Appl..
[19] Mohsen Guizani,et al. Prediction-Based Delay Optimization Data Collection Algorithm for Underwater Acoustic Sensor Networks , 2019, IEEE Transactions on Vehicular Technology.
[20] Guangjie Han,et al. District Partition-Based Data Collection Algorithm With Event Dynamic Competition in Underwater Acoustic Sensor Networks , 2019, IEEE Transactions on Industrial Informatics.
[21] Mohsen Guizani,et al. An AUV Location Prediction-Based Data Collection Scheme for Underwater Wireless Sensor Networks , 2019, IEEE Transactions on Vehicular Technology.
[22] Jameela Al-Jaroodi,et al. An Architecture for Using Autonomous Underwater Vehicles in Wireless Sensor Networks for Underwater Pipeline Monitoring , 2019, IEEE Transactions on Industrial Informatics.
[23] Nasir Saeed,et al. Optical camera communications: Survey, use cases, challenges, and future trends , 2018, Phys. Commun..
[24] Anand Nayyar,et al. Comprehensive Analysis of Routing Protocols Surrounding Underwater Sensor Networks (UWSNs) , 2018, Data Management, Analytics and Innovation.
[25] Mayank Dave,et al. A novel fault detection and recovery technique for cluster‐based underwater wireless sensor networks , 2018, Int. J. Commun. Syst..
[26] Damla Turgut,et al. Path Finding for Maximum Value of Information in Multi-Modal Underwater Wireless Sensor Networks , 2018, IEEE Transactions on Mobile Computing.
[27] Anil Kumar Verma,et al. Improved Data Aggregation for Cluster Based Underwater Wireless Sensor Networks , 2017 .
[28] Mazleena Salleh,et al. Routing protocols based on node mobility for Underwater Wireless Sensor Network (UWSN): A survey , 2017, J. Netw. Comput. Appl..
[29] Syed Hassan Ahmed,et al. Delay Tolerance in Underwater Wireless Communications: A Routing Perspective , 2016, Mob. Inf. Syst..
[30] Mayank Dave,et al. Energy Efficient Architecture for Intra and Inter Cluster Communication for Underwater Wireless Sensor Networks , 2016, Wirel. Pers. Commun..
[31] Eric Rogers,et al. Co-operative Use of Marine Autonomous Systems to Enhance Navigational Accuracy of Autonomous Underwater Vehicles , 2016, TAROS.
[32] Tarek R. Sheltami,et al. Wireless sensor networks for leak detection in pipelines: a survey , 2016, J. Ambient Intell. Humaniz. Comput..
[33] Seyed Mohammad Ghoreyshi,et al. A Novel Cooperative Opportunistic Routing Scheme for Underwater Sensor Networks , 2016, Sensors.
[34] Azzedine Boukerche,et al. A novel void node recovery paradigm for long-term underwater sensor networks , 2015, Ad Hoc Networks.
[35] Jun Liu,et al. An adaptive routing protocol in underwater sparse acoustic sensor networks , 2015, Ad Hoc Networks.
[36] Zhuo Wang,et al. ADCNC-MAC: asynchronous duty cycle with network-coding MAC protocol for underwater acoustic sensor networks , 2015, EURASIP J. Wirel. Commun. Netw..
[37] Seyed Mohammad Ghoreyshi,et al. An inherently void avoidance routing protocol for Underwater Sensor Networks , 2015, 2015 International Symposium on Wireless Communication Systems (ISWCS).
[38] Michel Barbeau,et al. Location-free link state routing for underwater acoustic sensor networks , 2015, 2015 IEEE 28th Canadian Conference on Electrical and Computer Engineering (CCECE).
[39] Lillykutty Jacob,et al. Delay and Lifetime Performance of Underwater Wireless Sensor Networks with Mobile Element Based Data Collection , 2015, Int. J. Distributed Sens. Networks.
[40] Rakesh Kumar,et al. A Survey on Data Aggregation And Clustering Schemes in Underwater Sensor Networks , 2014 .
[41] Andrew W. Eckford,et al. A Comprehensive Survey of Recent Advancements in Molecular Communication , 2014, IEEE Communications Surveys & Tutorials.
[42] Azzedine Boukerche,et al. GEDAR: Geographic and opportunistic routing protocol with Depth Adjustment for mobile underwater sensor networks , 2014, 2014 IEEE International Conference on Communications (ICC).
[43] Awais Ahmad,et al. AEERP: AUV aided energy efficient routing protocol for underwater acoustic sensor network , 2013, PM2HW2N '13.
[44] Antonio Alfredo Ferreira Loureiro,et al. DCR: Depth-Controlled Routing protocol for underwater sensor networks , 2013, 2013 IEEE Symposium on Computers and Communications (ISCC).
[45] Mario Gerla,et al. VAPR: Void-Aware Pressure Routing for Underwater Sensor Networks , 2013, IEEE Transactions on Mobile Computing.
[46] Y. Ahmet Sekercioglu,et al. A Survey on Distributed Topology Control Techniques for Extending the Lifetime of Battery Powered Wireless Sensor Networks , 2013, IEEE Communications Surveys & Tutorials.
[47] Dongkyun Kim,et al. DFR: an efficient directional flooding-based routing protocol in underwater sensor networks , 2012, Wirel. Commun. Mob. Comput..
[48] Yuh-Shyan Chen,et al. A mobicast routing protocol in underwater sensor networks , 2011, 2011 IEEE Wireless Communications and Networking Conference.
[49] Manjusha Pandey,et al. Comparison of reactive and proactive routing protocols for different mobility conditions in WSN , 2011, ICCCS '11.
[50] Mohammad S. Obaidat,et al. A novel Geocast technique with hole detection in underwater sensor networks , 2010, ACS/IEEE International Conference on Computer Systems and Applications - AICCSA 2010.
[51] Mario Gerla,et al. Pressure Routing for Underwater Sensor Networks , 2010, 2010 Proceedings IEEE INFOCOM.
[52] Peng Xie,et al. Void Avoidance in Three-Dimensional Mobile Underwater Sensor Networks , 2009, WASA.
[53] Kee Chaing Chua,et al. Sector-Based Routing with Destination Location Prediction for Underwater Mobile Networks , 2009, 2009 International Conference on Advanced Information Networking and Applications Workshops.
[54] Omer Gurewitz,et al. RI-MAC: a receiver-initiated asynchronous duty cycle MAC protocol for dynamic traffic loads in wireless sensor networks , 2008, SenSys '08.
[55] Guihai Chen,et al. REBAR: A Reliable and Energy Balanced Routing Algorithm for UWSNs , 2008, 2008 Seventh International Conference on Grid and Cooperative Computing.
[56] K.R. Anupama,et al. A location-based clustering algorithm for data gathering in 3D underwater Wireless Sensor Networks , 2008, 2008 International Symposium on Telecommunications.
[57] Milica Stojanovic,et al. Focused beam routing protocol for underwater acoustic networks , 2008, Underwater Networks.
[58] Dongkyun Kim,et al. DFR: Directional flooding-based routing protocol for underwater sensor networks , 2008, OCEANS 2008.
[59] Jun-Hong Cui,et al. DBR: Depth-Based Routing for Underwater Sensor Networks , 2008, Networking.
[60] Peng Xie,et al. VBF: Vector-Based Forwarding Protocol for Underwater Sensor Networks , 2006, Networking.
[61] Peter I. Corke,et al. Data collection, storage, and retrieval with an underwater sensor network , 2005, SenSys '05.
[62] Michael R. Frater,et al. Delay-tolerant networks (DTNs) for underwater communications , 2021, Advances in Delay-Tolerant Networks (DTNs).
[63] Anfeng Liu,et al. Data Collection in Underwater Sensor Networks based on Mobile Edge Computing , 2019, IEEE Access.
[64] Anand Nayyar,et al. Simulation-Based Performance Analysis of Location-Based Opportunistic Routing Protocols in Underwater Sensor Networks Having Communication Voids , 2019, Data Management, Analytics and Innovation.
[65] Yoan Shin,et al. Data Collection Strategy for Magnetic Induction Based Monitoring in Underwater Sensor Networks , 2018, IEEE Access.
[66] Rui Hou,et al. Energy-Balanced Unequal Layering Clustering in Underwater Acoustic Sensor Networks , 2018, IEEE Access.
[67] Feng Liu,et al. Routing Protocols for Underwater Acoustic Sensor Networks: A Survey from an Application Perspective , 2017 .
[68] M. Buckingham,et al. General Characteristics of the Underwater Environment , 2017 .
[69] Kiseon Kim,et al. HydroCast: Pressure Routing for Underwater Sensor Networks , 2016, IEEE Transactions on Vehicular Technology.
[70] Sandeep Kumar Jain,et al. A Review Paper on: Autonomous Underwater Vehicle , 2015 .
[71] A.B. Baggeroer,et al. The state of the art in underwater acoustic telemetry , 2000, IEEE Journal of Oceanic Engineering.