|
|
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) |
|
|
9 | (1) |
|
|
10 | (1) |
|
|
11 | (2) |
|
2.3.1 Contention-Free Channel Access |
|
|
11 | (1) |
|
2.3.2 Contention-Based Channel Access |
|
|
12 | (1) |
|
|
13 | (2) |
|
3 Resource Allocation for Cellular/WLAN Interworking |
|
|
15 | (32) |
|
3.1 Challenges for Resource Allocation |
|
|
15 | (1) |
|
|
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) |
|
|
20 | (1) |
|
|
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) |
|
|
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) |
|
|
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) |
|
|
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) |
|
|
70 | (1) |
|
|
70 | (1) |
|
5.4 Fast Time-Scale Resource Allocation |
|
|
71 | (1) |
|
5.5 Slow Time-Scale Resource Allocation |
|
|
72 | (5) |
|
|
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) |
|
|
80 | (1) |
|
6 Conclusions and Future Directions |
|
|
81 | (4) |
|
|
81 | (2) |
|
6.2 Future Research Directions |
|
|
83 | (2) |
|
|
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) |
|
|
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 | |