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LTE–advanced DRX Mechanism for Power Saving

Specificaties
Gebonden, 118 blz. | Engels
John Wiley & Sons | e druk, 2013
ISBN13: 9781848215320
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John Wiley & Sons e druk, 2013 9781848215320
Onderdeel van serie FOCUS Series
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Samenvatting

Resource allocation and power optimization is a new challenge in multimedia services in cellular communication systems.  To provide a better end–user experience, the fourth generation (4G) standard Long Term Evolution/Long Term Evolution–Advanced (LTE/LTE–Advanced) has been developed for high–bandwidth mobile access to accommodate today s data–heavy applications. LTE/LTE–Advanced has adopted discontinuous reception (DRX) to extend the user equipment s battery lifetime, thereby further supporting various services and large amounts of data transmissions.

By introducing the basics of mathematical analysis and performance evaluation of power–saving mechanisms in 3rd generation partnership project (3GPP) LTE and LTE–Advanced networks, the authors of this book aim to describe novel algorithms which could have better performance capabilities than previous methods.

Chapter 1 gives the basic theory description of the 3GPP LTE network and 3GPP DRX power saving mechanism, empirical measurements of LTE network traffic and an overview of the basic LTE DRX model in the field of power saving techniques. Chapter 2 provides steps for deriving a 2–state analytical model up to a 4–state DRX model. The third and final chapter summarizes alternative methods for the implementation of LTE DRX.

Contents

1. Basic Theory.
2. Analytical Semi–Markov Power–Saving Models.
3. Other Approaches for LTE Power Saving.

About the Authors

Scott A. Fowler is Associate Professor at Linköping University, Sweden, working with the Mobile Telecommunication (MT) group. He has served on several IEEE conferences/workshops as TPC to Chair, including Special Interest Groups coordinator for IEEE Communications Software (CommSoft) Technical Committee since 2012. His research interests include Quality of Service (QoS) support over heterogeneous networks, computer networks (wired, wireless), energy management, mobile computing, pervasive/ubiquitous, performance evaluation of networks and security.
Abdelhamid Mellouk is Full Professor at the University of Paris–Est Créteil VdM (UPEC, ex. Paris 12), Networks & Telecommunications (N&T) Department (IUT C/V) and LiSSi Laboratory in France. He is a founder of the Network Control Research activity with extensive international academic and industrial collaborations. His general area of research is in adaptive real–time control for high–speed new generation dynamic wired/wireless networking in order to maintain acceptable Quality of Service/Experience for added–value services.
Naomi Yamada is a research associate at Linköping University, Sweden.

Specificaties

ISBN13:9781848215320
Taal:Engels
Bindwijze:gebonden
Aantal pagina's:118

Inhoudsopgave

<p>PREFACE&nbsp;ix</p>
<p>INTRODUCTION&nbsp;xi</p>
<p>CHAPTER 1. BASIC THEORY&nbsp;1</p>
<p>1.1. LTE overview&nbsp;2</p>
<p>1.2. Scheduling in LTE&nbsp;5</p>
<p>1.2.1. Quality of Service parameters 6</p>
<p>1.2.2. Channel quality indicator&nbsp;8</p>
<p>1.2.3. Buffer state and resource allocation history 10</p>
<p>1.3. LTE Traffic measurements&nbsp;11</p>
<p>1.3.1. Testing environment&nbsp;12</p>
<p>1.3.2. VoIP preliminary capacity&nbsp;13</p>
<p>1.3.3. Video conversation preliminary capacity 14</p>
<p>1.3.4. Post video and live video preliminary capacity&nbsp;15</p>
<p>1.3.5. Summary on the LTE Traffic measurements&nbsp;18</p>
<p>1.4. User equipment power saving in LTE 18</p>
<p>1.4.1. DRX cycle&nbsp;18</p>
<p>1.5. Models for LTE Power Saving&nbsp;24</p>
<p>1.5.1. 3GPP power consumption model&nbsp;25</p>
<p>1.5.2. Characteristics of NokiaTM power consumption model&nbsp;26</p>
<p>1.6. Conclusion&nbsp;29</p>
<p>1.7. Bibliography&nbsp;30</p>
<p>CHAPTER 2. ANALYTICAL SEMI–MARKOV POWER–SAVING MODELS&nbsp; 33</p>
<p>2.1. Introduction of bursty packet data traffic 33</p>
<p>2.2. Designing a simple Two–state DRX model using semi–Markov&nbsp;36</p>
<p>2.2.1. State 1 to state 1 and state 1 to state 2 38</p>
<p>2.2.2. Transition probability matrix 39</p>
<p>2.2.3. How we obtain equation [2.4]&nbsp;39</p>
<p>2.2.4. Holding states&nbsp;40</p>
<p>2.2.5. State H1&nbsp;40</p>
<p>2.2.6. Sleep states H2 42</p>
<p>2.2.7. DRX cycles in basic 3GPP LTE 43</p>
<p>2.2.8. Wake–up delay&nbsp;43</p>
<p>2.2.9. Power–saving factor (PS)&nbsp;44</p>
<p>2.2.10. Numerical results&nbsp;44</p>
<p>2.3. Three–state fixed model&nbsp;47</p>
<p>2.3.1. State 1 to state 1 and state 1 to state 2 49</p>
<p>2.3.2. State 2 to state 1 and state 2 to state 3 49</p>
<p>2.3.3. Transition probability matrix 50</p>
<p>2.3.4. State H1&nbsp;51</p>
<p>2.3.5. Sleep states H2 and H3&nbsp;51</p>
<p>2.3.6. Power–saving factor (PS)&nbsp;52</p>
<p>2.3.7. Numerical results&nbsp;54</p>
<p>2.3.8. Summary of the Three–state model&nbsp;59</p>
<p>2.4. Four–state fixed model&nbsp;60</p>
<p>2.4.1. State 1 to state 1, state 1 to state 2 and state 1 to state 3 61</p>
<p>2.4.2. State 2 to state 1, state 2 to state 2 and state 2 to state 3 61</p>
<p>2.4.3. State 3 to state 1, state 3 to state 2 and state 3 to state 4 62</p>
<p>2.4.4. State 4 to state 1 and state 4 to state 2 63</p>
<p>2.4.5. Transition probability matrix 63</p>
<p>2.4.6. Sleep states H3 and H4&nbsp;65</p>
<p>2.4.7. Power–saving factor (PS)&nbsp;66</p>
<p>2.4.8. Numerical results&nbsp;68</p>
<p>2.5. Conclusion&nbsp;69</p>
<p>2.6. Bibliography&nbsp;69</p>
<p>CHAPTER 3. OTHER APPROACHES FOR LTE POWER SAVING&nbsp; 71</p>
<p>3.1. Scheduling schemes 71</p>
<p>3.2. DRX power–saving method&nbsp;74</p>
<p>3.3. Analytical work&nbsp;78</p>
<p>3.4. Analytical Adjustable–DRX Three–state model 79</p>
<p>3.4.1. Adjustable DRX timer state for light sleep 79</p>
<p>3.4.2. State 2 to state 1 and state 2 to state 3 80</p>
<p>3.4.3. Transition probability matrix 81</p>
<p>3.4.4. Adjustable DRX cycles in 3GPP LTE 82</p>
<p>3.4.5. Sleep states H2 and H3&nbsp;83</p>
<p>3.4.6. Power–saving factor (PS)&nbsp;84</p>
<p>3.4.7. Numerical results&nbsp;86</p>
<p>3.5. Conclusion&nbsp;92</p>
<p>3.6. Bibliography&nbsp;92</p>
<p>ACRONYMS AND NOTATIONS&nbsp;95</p>
<p>INDEX&nbsp;101</p>

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