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Multi-path TCP extension for multimedia QoS in wireless networks : 무선망에서의 멀티미디어 QoS를 위한 MPTCP 확장

DC Field Value Language
dc.contributor.advisor박세웅-
dc.contributor.author박세용-
dc.date.accessioned2017-07-13T07:14:31Z-
dc.date.available2017-07-13T07:14:31Z-
dc.date.issued2016-02-
dc.identifier.other000000133023-
dc.identifier.urihttps://hdl.handle.net/10371/119176-
dc.description학위논문 (박사)-- 서울대학교 대학원 : 전기·컴퓨터공학부, 2016. 2. 박세웅.-
dc.description.abstractMulti-Path TCP (MPTCP) has attracted much attention as a promising technology to improve throughput performance of wireless devices that support multi-homed heterogeneous networks. Although MPTCP provides significant increase in network capacity, it may suffer from poor delay performance
since the delay tends to be aligned with the worst-performing path: packets delivered through a short-delay subflow have to wait in the reordering buffer for packets being transmitted over a long-delay subflow. In this dissertation, we address the application-level delay problem of MPTCP and propose three different solutions that aim to improve delay performance of MPTCP and link utilization of bottleneck links.
First, we provide the analytical framework of the application-level delay of MPTCP in wireless networks based on queueing theory. Based on the framework, we formulate the network utility minimization problem considering
delay and throughput performance. Our proposed traffic splitting scheme (TSC) minimizes the network cost, as well as control application traffic. We use ns-3 simulation to verify delay distribution of delivered traffic and evaluate the proposed rate control scheme.
Second, we extend the traffic splitting scheme to design a receiver-side window control scheme. For window control, we develop an analytical framework of application-level delay to take into account non-negligible network queuing delay and the interplay of congestion control between multiple subflows. We design a simple threshold-based subflow traffic allocation scheme that aims to minimize user-level delay and develop a receiver centric traffic splitting control (R-TSC) that can be tuned to user preferences. The receiver-side R-TSC solution facilitates incremental deployment of low-delay streaming services over MPTCP.
Lastly, we reveal that Droptail queue with various buffer space and CoDeL shows low link utilization under varying wireless capacity, and propose a scheme that aims to exploit multiple subflows on single path using
MPTCP. Adaptation of subflows in number along with receiver-centric CoDeL achieves high link utilization and small delay simultaneously. Potentially, it can be extended to a scenario of using multiple networks. Through simulation and testbed experiments using commercial LTE and WiFi networks, we demonstrate significant performance gains of the proposed scheme over the standard MPTCP protocol.
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dc.description.tableofcontents1 Introduction 1
1.1 Motivation 1
1.2 Background and Related Work 3
1.3 Contributions and Outline 5

2 Performance Evaluation and Optimal Transmission Rate of MPTCP for Streaming Service 8
2.1 Introduction 8
2.2 System Model 11
2.3 Elements of Application-level Delay 13
2.3.1 Queueing delay in the send buffer 14
2.3.2 One-way delay in the network 14
2.3.3 Delay in the reordering buffer 16
2.3.4 Loss recovery delay 16
2.4 Cost-Efficient Traffic Splitting under Delay Constraints 18
2.4.1 Problem formulation 19
2.4.2 MPTCP with traffic split control 22
2.5 Performance Evaluation 24
2.5.1 Delay performance 25
2.5.2 Cost-efficient traffic split 27
2.6 Summary 29

3 Minimizing Application-level Delay of MPTCP in Wireless networks: A Receiver-Centric Approach 30
3.1 Introduction 30
3.2 System Model 34
3.3 Understanding TCP Delay Dynamics 38
3.3.1 Inapplicability of simple fixed-RTT model 38
3.3.2 Single-flow model with time-varying RTT 40
3.4 Minimizing Application-level Delay of MPTCP 45
3.5 Receiver-centric Traffic Splitting 51
3.6 Performance Evaluation 56
3.6.1 TCP queueing model verification 56
3.6.2 Transmission rate model evaluation 59
3.6.3 Evaluation through testbed experiments 61
3.7 Summary 69

4 Subflow Population Control for Time-varying Channel in MPTCP - CoDeL Networks 70
4.1 Introduction 70
4.2 Link Capacity Model of Wireless Network 72
4.3 Performance of TCP Cubic with DropTail and CoDel 73
4.4 Proposed Scheme 75
4.4.1 Multiple subflows Using MPTCP 77
4.4.2 Receiver-centric CoDeL with intentional 3-dup-ack 77
4.4.3 Adaptive number of subflows for rapid rate control 78
4.5 Performance Evaluation 79
4.5.1 Static capacity scenario 81
4.5.2 Periodic capacity reduction scenario 82
4.5.3 Random walk capacity scenario 85
4.6 Summary 89

5 Conclusion 90
5.1 Research Contributions 90
5.2 Future Research Directions 92

Bibliography 94

초록 (국문) 103
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dc.formatapplication/pdf-
dc.format.extent2073148 bytes-
dc.format.mediumapplication/pdf-
dc.language.isoen-
dc.publisher서울대학교 대학원-
dc.subjectLTE-Wifi integration-
dc.subjectMulti-path TCP-
dc.subjectApplication-level delay-
dc.subject.ddc621-
dc.titleMulti-path TCP extension for multimedia QoS in wireless networks-
dc.title.alternative무선망에서의 멀티미디어 QoS를 위한 MPTCP 확장-
dc.typeThesis-
dc.description.degreeDoctor-
dc.citation.pages102-
dc.contributor.affiliation공과대학 전기·컴퓨터공학부-
dc.date.awarded2016-02-
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