Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques

In my dissertation, we focus on the wireless network coexistence problem with advanced physical-layer techniques. For the first part, we study the problem of Wireless Body Area Networks (WBAN)s coexisting with cross-technology interference (CTI). WBANs face the RF cross-technology interference (CTI)...

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Main Author: Hou, Yantian
Format: Others
Published: DigitalCommons@USU 2016
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Online Access:https://digitalcommons.usu.edu/etd/4993
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=6031&context=etd
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spelling ndltd-UTAHS-oai-digitalcommons.usu.edu-etd-60312019-10-13T06:00:47Z Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques Hou, Yantian In my dissertation, we focus on the wireless network coexistence problem with advanced physical-layer techniques. For the first part, we study the problem of Wireless Body Area Networks (WBAN)s coexisting with cross-technology interference (CTI). WBANs face the RF cross-technology interference (CTI) from non-protocol-compliant wireless devices. Werst experimentally characterize the adverse effect on BAN caused by the CTI sources. Then we formulate a joint routing and power control (JRPC) problem, which aims at minimizing energy consumption while satisfying node reachability and delay constraints. We reformulate our problem into a mixed integer linear programing problem (MILP) and then derive the optimal results. A practical JRPC protocol is then proposed. For the second part, we study the coexistence of heterogeneous multi-hop networks with wireless MIMO. We propose a new paradigm, called cooperative interference mitigation (CIM), which makes it possible for disparate networks to cooperatively mitigate the interference to/from each other to enhance everyone's performance. We establish two tractable models to characterize the CIM behaviors of both networks by using full IC (FIC) and receiver-side IC (RIC) only. We propose two bi-criteria optimization problems aiming at maximizing both networks' throughput, while cooperatively canceling the interference between them based on our two models. In the third and fourth parts, we study the coexistence problem with MIMO from a different point of view: the incentive of cooperation. We propose a novel two-round game framework, based on which we derive two networks' equilibrium strategies and the corresponding closed-form utilities. We then extend our game-theoretical analysis to a general multi-hop case, specifically the coexistence problem between primary network and multi-hop secondary network in the cognitive radio networks domain. In the final part, we study the benefits brought by reconfigurable antennas (RA). We systematically exploit the pattern diversity and fast reconfigurability of RAs to enhance the throughput of MWNs. Werst propose a novel link-layer model that captures the dynamic relations between antenna pattern, link coverage and interference. Based on our model, a throughput optimization framework is proposed by jointly considering pattern selection and link scheduling, which is formulated as a mixed integer non-linear programming problem. 2016-05-01T07:00:00Z text application/pdf https://digitalcommons.usu.edu/etd/4993 https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=6031&context=etd Copyright for this work is held by the author. Transmission or reproduction of materials protected by copyright beyond that allowed by fair use requires the written permission of the copyright owners. Works not in the public domain cannot be commercially exploited without permission of the copyright owner. Responsibility for any use rests exclusively with the user. For more information contact Andrew Wesolek (andrew.wesolek@usu.edu). All Graduate Theses and Dissertations DigitalCommons@USU Computer Sciences Physical Sciences and Mathematics
collection NDLTD
format Others
sources NDLTD
topic Computer Sciences
Physical Sciences and Mathematics
spellingShingle Computer Sciences
Physical Sciences and Mathematics
Hou, Yantian
Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques
description In my dissertation, we focus on the wireless network coexistence problem with advanced physical-layer techniques. For the first part, we study the problem of Wireless Body Area Networks (WBAN)s coexisting with cross-technology interference (CTI). WBANs face the RF cross-technology interference (CTI) from non-protocol-compliant wireless devices. Werst experimentally characterize the adverse effect on BAN caused by the CTI sources. Then we formulate a joint routing and power control (JRPC) problem, which aims at minimizing energy consumption while satisfying node reachability and delay constraints. We reformulate our problem into a mixed integer linear programing problem (MILP) and then derive the optimal results. A practical JRPC protocol is then proposed. For the second part, we study the coexistence of heterogeneous multi-hop networks with wireless MIMO. We propose a new paradigm, called cooperative interference mitigation (CIM), which makes it possible for disparate networks to cooperatively mitigate the interference to/from each other to enhance everyone's performance. We establish two tractable models to characterize the CIM behaviors of both networks by using full IC (FIC) and receiver-side IC (RIC) only. We propose two bi-criteria optimization problems aiming at maximizing both networks' throughput, while cooperatively canceling the interference between them based on our two models. In the third and fourth parts, we study the coexistence problem with MIMO from a different point of view: the incentive of cooperation. We propose a novel two-round game framework, based on which we derive two networks' equilibrium strategies and the corresponding closed-form utilities. We then extend our game-theoretical analysis to a general multi-hop case, specifically the coexistence problem between primary network and multi-hop secondary network in the cognitive radio networks domain. In the final part, we study the benefits brought by reconfigurable antennas (RA). We systematically exploit the pattern diversity and fast reconfigurability of RAs to enhance the throughput of MWNs. Werst propose a novel link-layer model that captures the dynamic relations between antenna pattern, link coverage and interference. Based on our model, a throughput optimization framework is proposed by jointly considering pattern selection and link scheduling, which is formulated as a mixed integer non-linear programming problem.
author Hou, Yantian
author_facet Hou, Yantian
author_sort Hou, Yantian
title Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques
title_short Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques
title_full Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques
title_fullStr Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques
title_full_unstemmed Interference Mitigation in Multi-Hop Wireless Networks with Advanced Physical-Layer Techniques
title_sort interference mitigation in multi-hop wireless networks with advanced physical-layer techniques
publisher DigitalCommons@USU
publishDate 2016
url https://digitalcommons.usu.edu/etd/4993
https://digitalcommons.usu.edu/cgi/viewcontent.cgi?article=6031&context=etd
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