5G物理層 (英文) 阿里.紮伊迪 9787523211366 【台灣高等教育出版社】

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書名:5G物理層 (英文)
ISBN:9787523211366
出版社:世界圖書出版有限公司
著編譯者:阿里.紮伊迪
頁數:302
所在地:中國大陸 *此為代購商品
書號:1632317
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內容簡介

本書詳細闡述5G新的無線接入技術——5G NR物理層技術的基本設計原理、模型和組件,其中物理層模型包括針對5G NR(最高到100GHz)全頻段範圍的無線電波傳播和硬體損傷。物理層技術包括靈活的多載波波形、先進的多天線解決方案,以及針對5G及以後技術的各種服務、部署和頻率的通道編碼機制。

目錄

Acknowledgments
List of Acronyms
CHAPTER 1 Introduction: 5G Radio Access
1 1 Evolution of Mobile Communication
1 2 5G New Radio Access Technology
1 3 5G NR Global View
1 3 1 5G Standardization
1 3 2 Spectrum for 5G
1 3 3 Use Cases for 5G
1 3 4 5G Field Trials
1 3 5 5G Commercial Deployments
1 4 Preview of the Book
References
CHAPTER 2 NR Physical Layer: Overview
2 1 Radio Protocol Architecture
2 2 NR PHY: Key Technology Components
2 2 1 Modulation
2 2 2 Waveform
2 2 3 Multiple Antennas
2 2 4 Channel Coding
2 3 Physical Time-Frequency Resources
2 4 Physical Channels
2 5 Physical Signals
2 6 Duplexing Scheme
2 7 Frame Structure
2 8 PHY Procedures and Measurements
2 9 Physical Layer Challenges
2 9 1 Propagation Related Challenges
2 9 2 Hardware Related Challenges
References
CHAPTER 3 Propagation & Channel Modeling
3 1 Propagation Fundamentals
3 1 1 Electromagnetic Waves
3 1 2 Free-Space Propagation
3 1 3 Scattering and Absorption
3 2 Propagation Channel Characterization
3 2 1 Frequency-Delay Domain
3 2 2 Doppler-Time Domain
3 2 3 Directional Domain
3 3 Experimental Channel Characteristics
3 3 1 Measurement Techniques
3 3 2 Analysis Methods
3 3 3 Transmission Loss Measurements
3 3 4 Delay Domain Measurements
3 3 5 Directional Domain Measurements
3 4 Channel Modeling
3 4 1 5G Stochastic Channel Models
3 4 2 Geometry-Based Modeling
3 5 Summary and Future Work
References
CHAPTER 4 Mathematical Modeling of Hardware Impairments
4 1 RF Power Amplifiers
4 1 1 The Volterra Series
4 1 2 Common Subsets of the Volterra Series
4 1 3 Global vs Local Basis Functions
4 1 4 Experimental Model Validation
4 1 5 Mutually Orthogonal Basis Functions
4 1 6 Multi-Antenna Environments and Mutual Coupling
4 2 Oscillator Phase Noise
4 2 1 Phase-Noise Power Spectrum and Leeson's Equation
4 2 2 Phase-Noise Modeling: Free-Running Oscillator
4 2 3 Phase-Noise Modeling: Phase-Locked Loop
4 3 Data Converters
4 3 1 Modeling of Quantization Noise
4 4 Statistical Modeling
4 4 1 The Bussgang Theorem and the System Model
4 5 Stochastic Modeling of Power Amplifiers
4 6 Oscillator Phase Noise
4 7 Stochastic Modeling of Data Converters
4 8 Model Concatenation and Simulations
4 8 1 Signal-to-Interference and Noise Ratio
4 8 2 Simulations
4 8 3 Simulation Results
References
CHAPTER 5 Multicarrier Waveforms
5 1 Multicarrier Waveforms
5 1 1 The Principle of Orthogonality
5 1 2 OFDM-Based Waveforms
5 1 3 Filter Bank-Based Waveforms
5 2 Single Carrier DFTS-OFDM
5 3 Waveform Design Requirements for 5G NR
5 4 Key Performance Indicator for NR Waveform Design
5 5 Waveform Comparison for NR
5 5 1 Frequency Localization
5 5 2 Power Efficiency
5 5 3 Time-Varying Fading Channel
5 5 4 Baseband Complexity
5 5 5 Phase-Noise Robustness Comparison
References
CHAPTER 6 NR Waveform
6 1 Suitability of OFDM for NR
6 2 Scalable OFDM for NR
6 2 1 Why 15 kHz as Baseline Numerology
6 2 2 Why 15 x2" kHz Scaling
6 3 OFDM Numerology Implementation
6 3 1 Phase Noise
6 3 2 Cell Size, Service Latency, and Mobility
6 3 3 Multiplexing Services
6 3 4 Spectral Confinement
6 3 5 Guard Band Considerations
6 3 6 Implementation Aspects
6 4 Improving Power Efficiency of NR Waveform
6 4 1 Techniques With Distortion
6 4 2 Distortion-less Techniques
6 5 Effects of Synchronization Errors
6 5 1 Effect of Timing Offset
6 5 2 Effect of Carrier Frequency Offset
6 5 3 Sampling Frequency Offset
6 6 Impairment Mitigation
6 6 1 A Phase-Noise Mitigation Scheme
6 6 2 CFO and SFO Mitigation
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