Sangam: A Confluence of Knowledge Streams

New Method for Directional Modulation Using Beamforming: Applications to Simultaneous Wireless Information and Power Transfer and Increased Secrecy Capacity

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dc.contributor Electrical Engineering
dc.contributor Mili, Lamine M.
dc.contributor Steinhardt, Allan O.
dc.contributor Buehrer, R. Michael
dc.contributor Clancy, Thomas Charles III
dc.contributor Gugercin, Serkan
dc.creator Yamada, Randy Matthew
dc.date 2019-04-14T06:00:42Z
dc.date 2019-04-14T06:00:42Z
dc.date 2017-10-20
dc.date.accessioned 2023-03-01T08:08:12Z
dc.date.available 2023-03-01T08:08:12Z
dc.identifier vt_gsexam:12899
dc.identifier http://hdl.handle.net/10919/88956
dc.identifier.uri http://localhost:8080/xmlui/handle/CUHPOERS/276294
dc.description The proliferation of connected embedded devices has driven wireless communications into commercial, military, industrial, and personal systems. It is unreasonable to expect privacy and security to be inherent in these networks given the spatial density of these devices, limited spectral resources, and the broadcast nature of wireless communications systems. Communications for these systems must have sufficient information capacity and secrecy capacity while typically maintaining small size, light weight, and minimized power consumption. With increasing crowding of the electromagnetic spectrum, interference must be leveraged as an available resource. This work develops a new beamforming method for direction-dependent modulation that provides wireless communications devices with enhanced physical layer security and the ability to simultaneously communicate and harvest energy by exploiting co-channel interference. We propose a method that optimizes a set of time-varying array steering vectors to enable direction-dependent modulation, thus exploiting a new degree of freedom in the space-time-frequency paradigm. We formulate steering vector selection as a convex optimization problem for rapid computation given arbitrarily positioned array antenna elements. We show that this method allows us to spectrally separate co-channel interference from an information-bearing signal in the analog domain, enabling the energy from the interference to be diverted for harvesting during the digitization and decoding of the information-bearing signal. We also show that this method provides wireless communications devices with not only enhanced information capacity, but also enhanced secrecy capacity in a broadcast channel. By using the proposed method, we can increase the overall channel capacity in a broadcast system beyond the current state-of-the-art for wireless broadcast channels, which is based on static coding techniques. Further, we also increase the overall secrecy capacity of the system by enabling secrecy for each user in the system. In practical terms, this results in higher-rate, confidential messages delivered to multiple devices in a broadcast channel for a given power constraint. Finally, we corroborate these claims with simulation and experimental results for the proposed method.
dc.description PHD
dc.format ETD
dc.format application/pdf
dc.publisher Virginia Tech
dc.rights In Copyright
dc.rights http://rightsstatements.org/vocab/InC/1.0/
dc.subject Directional Modulation
dc.subject Physical Layer Security
dc.subject Beamforming
dc.subject Array
dc.subject Broadcast Channel
dc.subject Secrecy
dc.title New Method for Directional Modulation Using Beamforming: Applications to Simultaneous Wireless Information and Power Transfer and Increased Secrecy Capacity
dc.type Dissertation


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