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E-raamat: Resource Management for Heterogeneous Wireless Networks

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This book provides a comprehensive and in-depth discussion on how resources of heterogeneous wireless networks can be managed to optimize the network capacity. Then it presents the techniques that can be incorporated within heterogeneous wireless networks to increase the efficiency of resource utilization, such as interworking of the networks, multi-homing and device-to-device (D2D) communication, and their advantages are discussed. It also introduces an overview of how and where each of these techniques can be applied.This book also focuses on three key areas of a typical heterogeneous wireless network, and provides detailed discussions on how network resources can be managed in each area to maximize the network capacity. The three areas are: 1) an area with interworking cellular networks and wireless local area networks (WLANs); 2) an area with interworking and D2D communication underlaying cellular networks and WLANs; and 3) an area with interworking macrocell and hyper-dense

small cell networks. For each of these areas, a comprehensive literature review on the existing resource allocations schemes is provided.The challenges to allocate resources and the potential solutions are also discussed. Then, the proposed state of the art optimal and heuristic resource allocation schemes, which overcome those challenges to allocate resources are described. The proposed schemes have been designed to be able to deploy in real networks, hence they utilizes cloud computing to determine the resource allocation decisions and operates on multiple timescales to satisfy characteristics of different networks.This book concludes with a discussion on the future research directions on the related fields of study. Advanced-level students focused on communication and networking will use this book as a study guide. Researchers and experts in the fields of networking, converged networks, small-cell networks, resource management, and interference management, as well as consu

ltants working in network planning and optimization and managers, executives and network architects working in the networking industry will also find this book useful as a reference.
1 Introduction
1(8)
1.1 Interworking of Wireless Networks
2(2)
1.2 Interworking of D2D Communication Underlaying Networks
4(2)
1.3 Interworking of Macro Cell and Hyper-Dense Small Cell Networks
6(1)
1.4 Contributions and Outline of the Book
7(2)
2 Heterogeneous Wireless Networks
9(6)
2.1 Network Overview
9(1)
2.2 Cellular Networks
10(1)
2.3 WLANs
11(2)
2.3.1 Contention-Free Channel Access
11(1)
2.3.2 Contention-Based Channel Access
12(1)
2.4 Summary
13(2)
3 Resource Allocation for Cellular/WLAN Interworking
15(32)
3.1 Challenges for Resource Allocation
15(1)
3.2 Related Work
16(2)
3.3 Cellular/WLAN Interworking System Model
18(4)
3.3.1 Two-Time-Scale Resource Allocation Framework
19(1)
3.3.2 Symbols and Notations for the
Chapter
20(1)
3.3.3 Traffic Model
20(1)
3.3.4 Channel Model
20(1)
3.3.5 Subcarrier and Contention-Free TXOP Allocations, and User Throughputs
21(1)
3.3.6 Power Usage of Multi-Homing UEs
21(1)
3.4 MMDP-Based Optimal Resource Allocation
22(3)
3.5 Upper-Level of MMDP-Based Optimal Resource Allocation
25(8)
3.5.1 Optimization of Resource Allocations over an Infinite Time Horizon
26(1)
3.5.2 Resource Allocation for an Upper-Level Time Slot
27(6)
3.6 Lower-Level of MMDP-Based Optimal Resource Allocation
33(3)
3.7 Heuristic Resource Allocation
36(3)
3.8 Performance Evaluation
39(7)
3.9 Summary
46(1)
4 Resource Allocation for D2D Communication Underlaying Cellular/WLAN Interworking
47(18)
4.1 Challenges for Resource Allocation
47(5)
4.1.1 Challenge 1: Multiple Radio Access Technologies
48(1)
4.1.2 Challenge 2: Efficient Mode Selection
48(1)
4.1.3 Challenge 3: Interference Management
49(3)
4.2 D2D Communication Underlaying Cellular/WLAN Interworking System Model
52(1)
4.3 Three-Time-Scale Resource Allocation
53(7)
4.3.1 First Time-Scale: Mode Selection
55(1)
4.3.2 Second Time-Scale: Joint Resource Allocation for Cellular Network and WLANs
56(4)
4.3.3 Third Time-Scale: Cellular Network Resource Allocation
60(1)
4.4 Implementation of the Resource Allocation Scheme
60(1)
4.5 Performance Evaluation
61(3)
4.6 Summary
64(1)
5 Resource Allocation for Interworking Macro Cell and Hyper-Dense Small Cell Networks
65(16)
5.1 Challenges for Resource Allocation
65(1)
5.2 Related Work
66(2)
5.3 Macro Cell and Hyper-Dense Small Cell Interworking System Model
68(3)
5.3.1 Cloud Assisted Two-Time-Scale Resource Allocation
69(1)
5.3.2 Cloud Access Model
70(1)
5.3.3 Channel Model
70(1)
5.4 Fast Time-Scale Resource Allocation
71(1)
5.5 Slow Time-Scale Resource Allocation
72(5)
5.5.1 User Allocation
73(1)
5.5.2 Subcarrier Allocation and Water-Level Calculation
73(2)
5.5.3 Implementation of Algorithm 5
75(2)
5.6 Performance Evaluation
77(3)
5.7 Summary
80(1)
6 Conclusions and Future Directions
81(4)
6.1 Conclusions
81(2)
6.2 Future Research Directions
83(2)
Appendix A
85(4)
A.1 Proof of Convexity of RiCB(PCB)
85(1)
A.2 Proof of Convexity of Constraint C4
86(1)
A.3 Proof of Existence of a Solution for (3.24)
87(1)
A.4 Proof of Convergence of the Algorithm Which Calculates PCB*
87(2)
Appendix B
89(8)
B.1 Calculation of Average User Transmit Power
89(3)
B.2 Calculation of Average User Throughputs
92(2)
B.3 Calculation of Average Interference
94(3)
References 97