Exploration of Physical Layer Security in Underwater Acoustic Communications

Exploration of Physical Layer Security in Underwater Acoustic Communications

Author: Yi Huang

Publisher:

Published: 2016

Total Pages:

ISBN-13:

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Physical layer security has been under extensive investigation in recent years in wireless radio communications. However, its study in the context of underwater acoustic (UWA) communications is very limited. This dissertation will explore the fundamental properties of UWA channels to achieve physical layer security. It includes three research topics: 1) Channel estimation in UWA systems leveraging the inherent channel sparsity; 2) Secret key generation through the reciprocity of UWA channels; 3) Self-protection jamming in half-duplex systems leveraging large propagation delays. The first part of the dissertation deals with sparse channel estimation in UWA orthogonal frequency division multiplexing (OFDM) systems. By exploiting the sparse nature of UWA channels, compressed sensing (CS) based channel estimation methods have demonstrated superior performance compared to conventional least-squares (LS) methods. However, a priori information of channel sparsity level is required to set the regularization parameter properly. We propose a data-driven sparsity learning approach based on a linear minimum mean squared error (LMMSE) equalizer to tune the regularization parameter for OFDM transmissions. The second part of the dissertation focuses on secret key generation in UWA channels. Predefined secret keys are often used to encrypt information. However, they could be leaked to eavesdroppers. A key generation protocol is presented where secret keys are dynamically generated by quantizing the measured amplitudes on OFDM subcarriers, and then using error correction codes for secret bits extraction according to the Slepian-Wolf coding principle. By analyzing the performance based on collected field data, an improved key generation protocol is proposed by incorporating two modules to increase the channel correlation and deal with channel dynamics. The last part of the dissertation presents a self-protection jamming approach for block transmissions in half-duplex UWA systems. Different from existing approaches, where additional helpers (e.g., relays) are needed to transmit jamming signals, the proposed protocol does not need any helper but instead relies on the legitimate receiver itself. This approach exploits the half-duplex nature of underwater transceivers and the block-based transmission structure, by taking advantage of the large propagation delays to create interference at the eavesdropper without affecting the reception of the intended user.


Underwater Acoustic Sensor Networks

Underwater Acoustic Sensor Networks

Author: Yang Xiao

Publisher: CRC Press

Published: 2010-05-19

Total Pages: 352

ISBN-13: 1420067125

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A detailed review of underwater channel characteristics, Underwater Acoustic Sensor Networks investigates the fundamental aspects of underwater communication. Prominent researchers from around the world consider contemporary challenges in the development of underwater acoustic sensor networks (UW-ASNs) and introduce a cross-layer approach for effec


Underwater Acoustic Networking Techniques

Underwater Acoustic Networking Techniques

Author: Roald Otnes

Publisher: Springer Science & Business Media

Published: 2012-01-19

Total Pages: 93

ISBN-13: 3642252230

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This literature study presents an overview of underwater acoustic networking. It provides a background and describes the state of the art of all networking facets that are relevant for underwater applications. This report serves both as an introduction to the subject and as a summary of existing protocols, providing support and inspiration for the development of network architectures.


Cognitive Underwater Acoustic Networking Techniques

Cognitive Underwater Acoustic Networking Techniques

Author: Dimitri Sotnik

Publisher: Springer Nature

Published: 2020-09-29

Total Pages: 89

ISBN-13: 3662616580

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This book summarizes the latest research on cognitive network-layer methods and smart adaptive physical-layer methods in underwater networks. Underwater communication requires extendable and delay-tolerant underwater acoustic networks capable of supporting multiple frequency bands, data rates and transmission ranges. The book also discusses a suitable foreground communication stack for mixed mobile/static networks, a technology that requires adaptive physical layer waveforms and cognitive network strategies with underlying cooperative and non-cooperative robust processes. The goal is to arrive at a universally applicable standard in the area of Underwater Internet-of-Things [ISO/IEC 30140, 30142, 30143]. The book is the second spin-off of the research project RACUN, after the first RACUN-book "Underwater Acoustic Networking Techniques" (https://link.springer.com/book/10.1007%2F978-3-642-25224-2)


Enabling High Throughput and Secure Underwater Wireless Networks Through Advanced Signal Processing Techniques

Enabling High Throughput and Secure Underwater Wireless Networks Through Advanced Signal Processing Techniques

Author: Hovannes Kulhandjian

Publisher:

Published: 2014

Total Pages: 145

ISBN-13:

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Underwater communication and networks will play a major role in many future commercial, environmental, and military applications, including disaster prevention, tactical surveillance, offshore exploration, pollution monitoring, tsunami detection, sunken airplane or vessel localization and oceanographic data collection. Acoustic wireless communication is the transmission technology of choice for underwater networked systems. However, underwater acoustic signals propagating in water suffer from significant path loss, time-varying multipath propagation, Doppler spread, and high propagation delay. These formidable challenges limit the available bandwidth for underwater acoustic communications, while the rapidly varying channel results in communication links that are highly unreliable, ultimately hindering advancements in underwater networked communications. As a consequence, the field of underwater communication and networking is still in its infancy. The objective of this research work is to further push the boundaries in underwater communication and networking by developing a versatile reconfigurable underwater networking platform, analyzing the statistical channel properties of short-range shallow water communication environments and exploring advanced signal processing techniques to improve the network throughput, provide a secure communication means, and offer a low-cost distributed networked localization and time synchronization framework for underwater acoustic networks. Specifically, in this dissertation, we first present the development of a software-defined underwater networking testbed we developed at the University at Buffalo. In the second part of this work, we investigate underwater acoustic channel characteristics in short-range shallow water environments. In the third part, we propose CDMA-based analog network coding for underwater acoustic sensor networks with the objective to improve the network throughput. In the forth part, we explore CDMA-based analog network coding to provide a secure underwater acoustic communications means. Finally, in the fifth part of this work, we propose a low-cost distributed networked localization and time synchronization framework for underwater acoustic testbeds.


OFDM for Underwater Acoustic Communications

OFDM for Underwater Acoustic Communications

Author: Sheng Zhou

Publisher: John Wiley & Sons

Published: 2014-03-21

Total Pages: 498

ISBN-13: 1118693817

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A blend of introductory material and advanced signal processing and communication techniques, of critical importance to underwater system and network development This book, which is the first to describe the processing techniques central to underwater OFDM, is arranged into four distinct sections: First, it describes the characteristics of underwater acoustic channels, and stresses the difference from wireless radio channels. Then it goes over the basics of OFDM and channel coding. The second part starts with an overview of the OFDM receiver, and develops various modules for the receiver design in systems with single or multiple transmitters. This is the main body of the book. Extensive experimental data sets are used to verify the receiver performance. In the third part, the authors discuss applications of the OFDM receiver in i) deep water channels, which may contain very long separated multipath clusters, ii) interference-rich environments, where an unintentional interference such as Sonar will be present, and iii) a network with multiple users where both non-cooperative and cooperative underwater communications are developed. Lastly, it describes the development of a positioning system with OFDM waveforms, and the progress on the OFDM modem development. Closely related industries include the development and manufacturing of autonomous underwater vehicles (AUVs) and scientific sensory equipment. AUVs and sensors in the future could integrate modems, based on the OFDM technology described in this book. Contents includes: Underwater acoustic channel characteristics/OFDM basics/Peak-to-average-ratio control/Detection and Doppler estimation (Doppler scale and CFO)/Channel estimation and noise estimation/A block-by-block progressive receiver and performance results/Extensions to multi-input multi-output OFDM/Receiver designs for multiple users/Cooperative underwater OFDM (Physical layer network coding and dynamic coded cooperation)/Localization with OFDM waveforms/Modem developments A valuable resource for Graduate and postgraduate students on electrical engineering or physics courses; electrical engineers, underwater acousticians, communications engineers


Physical Layer Security

Physical Layer Security

Author: Khoa N. Le

Publisher: Springer Nature

Published: 2021-01-24

Total Pages: 213

ISBN-13: 3030553663

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This book studies the vulnerability of wireless communications under line-of-sight (LoS) and non-LoS correlated fading environments. The authors theoretically and practically provide physical layer security analyses for several technologies and networks such as Fifth-Generation (5G) networks, Internet of Things (IoT) applications, and Non-orthogonal multiple access (NOMA). The authors have provided these under various practical scenarios, and developed theoretical aspects to validate their proposed applications. Presents physical layer security (PLS) under correlated fading environments, 5G wireless networks, and NOMA networks; Provides end-to-end analyses, combination of channel correlation and outdated CSI and their effects on PL; Includes contributions of PLS research written by global experts in academia and industry.


Efficient Communication Protocols for Underwater Acoustic Sensor Networks

Efficient Communication Protocols for Underwater Acoustic Sensor Networks

Author: Dario Pompili

Publisher:

Published: 2007

Total Pages:

ISBN-13:

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Underwater sensor networks find applications in oceanographic data collection, pollution monitoring, offshore exploration, disaster prevention, assisted navigation, tactical surveillance, and mine reconnaissance. The enabling technology for these applications is acoustic wireless networking. UnderWater Acoustic Sensor Networks (UW-ASNs) consist of sensors and Autonomous Underwater Vehicles (AUVs) deployed to perform collaborative monitoring tasks. The objective of this research is to explore fundamental key aspects of underwater acoustic communications, propose communication architectures for UW-ASNs, and develop efficient sensor communication protocols tailored for the underwater environment. Specifically, different deployment strategies for UW-ASNs are studied, and statistical deployment analysis for different architectures is provided. Moreover, a model characterizing the underwater acoustic channel utilization efficiency is introduced. The model allows setting the optimal packet size for underwater communications. Two distributed routing algorithms are proposed for delay-insensitive and delay-sensitive applications. The proposed routing solutions allow each node to select its next hop, with the objective of minimizing the energy consumption taking the different application requirements into account. In addition, a resilient routing solution to guarantee survivability of the network to node and link failures in long-term monitoring missions is developed. Moreover, a distributed Medium Access Control (MAC) protocol for UW-ASNs is proposed. It is a transmitter-based code division multiple access scheme that incorporates a novel closed-loop distributed algorithm to set the optimal transmit power and code length. It aims at achieving high network throughput, low channel access delay, and low energy consumption. Finally, an efficient cross-layer communication solution tailored for multimedia traffic (i.e., video and audio streams, still images, and scalar sensor data) is introduced.