Signal processing techniques for power efficient wireless communication systems : practical approaches for RF impairments reduction /: practical approaches for RF impairments reduction. ([2020])
- Record Type:
- Book
- Title:
- Signal processing techniques for power efficient wireless communication systems : practical approaches for RF impairments reduction /: practical approaches for RF impairments reduction. ([2020])
- Main Title:
- Signal processing techniques for power efficient wireless communication systems : practical approaches for RF impairments reduction
- Further Information:
- Note: By Fernando Gregorio [and three others].
- Authors:
- Gregorio, Fernando
- Contents:
- 1. Introduction 1.1. Book motivation 1.2. Communication systems 1.3. Digital block description: Multicarrier modulation 1.4. RF front-end description 1.5. Interface: ADC and DAC 1.6. Implementation issues 1.7. Main contributions of this book 1.7.1. Models: RF Imperfection and their effects over energy and spectral efficiency 1.7.2. Digital based RF compensation techniques: Implementation cost and energy saving effects 1.7.3. RF imperfection on novel implementations: Massive MIMO, Full-duplex and IoT nodes 1.8. Outline of this book 2. RF front-end imperfection models 2.1. Power amplifiers: nonlinear distortion 2.2. LNA and VGA 2.3. Mixers: phase and amplitude imbalances 2.4. Local oscillator: Phase noise 2.5. ADC: quantization noise and nonlinear distortion 2.6. DAC 3. Power consumption 3.1. Digital block and front-end power consumption models 3.2. ADC: power consumption, resolution and sampling frequency trade-off 3.3. Short-range and long-range links 3.4. Power consumption scaling 3.4.1. Bandwidth dependence 3.4.2. Number of antennas 3.4.3. Data rate (constellation size) 3.5. Energy efficiency (EE) and Spectral efficiency (SE): A case of study 4. Power amplifiers 4.1. Operation point: power consumption vs distortion tradeoff 4.2. Linearization techniques 4.2.1. Low power amplifiers 4.2.2. Median/high power amplifiers 4.3. Figure of merit: total degradation and ACPR 5. ADC and DAC in multicarrier systems 5.1. Architectures: Dynamic range, resolution, sampling frequency1. Introduction 1.1. Book motivation 1.2. Communication systems 1.3. Digital block description: Multicarrier modulation 1.4. RF front-end description 1.5. Interface: ADC and DAC 1.6. Implementation issues 1.7. Main contributions of this book 1.7.1. Models: RF Imperfection and their effects over energy and spectral efficiency 1.7.2. Digital based RF compensation techniques: Implementation cost and energy saving effects 1.7.3. RF imperfection on novel implementations: Massive MIMO, Full-duplex and IoT nodes 1.8. Outline of this book 2. RF front-end imperfection models 2.1. Power amplifiers: nonlinear distortion 2.2. LNA and VGA 2.3. Mixers: phase and amplitude imbalances 2.4. Local oscillator: Phase noise 2.5. ADC: quantization noise and nonlinear distortion 2.6. DAC 3. Power consumption 3.1. Digital block and front-end power consumption models 3.2. ADC: power consumption, resolution and sampling frequency trade-off 3.3. Short-range and long-range links 3.4. Power consumption scaling 3.4.1. Bandwidth dependence 3.4.2. Number of antennas 3.4.3. Data rate (constellation size) 3.5. Energy efficiency (EE) and Spectral efficiency (SE): A case of study 4. Power amplifiers 4.1. Operation point: power consumption vs distortion tradeoff 4.2. Linearization techniques 4.2.1. Low power amplifiers 4.2.2. Median/high power amplifiers 4.3. Figure of merit: total degradation and ACPR 5. ADC and DAC in multicarrier systems 5.1. Architectures: Dynamic range, resolution, sampling frequency tradeoff 5.2. Modeling and Compensation: Narrowband vs. broadband techniques 5.3. Metrics and Figures of Merit 5.4. Measurements. 6. Carrier frequency offset (CFO) and phase noise 6.1. Effects of the CFO and phase noise in the system performance 6.2. Critical applications: unstable oscillators and high speed vehicles 6.3. Estimation techniques for the downlink (single user case) 6.4. Estimation and compensation techniques for the uplink (multiuser case) 7. Full-duplex 7.1. Introduction 7.2. System model with RF imperfections 7.3. ADC resolution requirements 7.4. Self-interference removal 7.4.1. Phase noise effects 7.4.2. Power amplifier operation point 7.5. Energy efficiency and spectral efficiency 8. Massive MIMO 8.1. Introduction 8.2. Model 8.3. RF front-end minimum requirements 8.4. Low-resolution ADC/DAC 8.5. Power consumption analysis 8.5.1. Downlink EE 8.5.2. Uplink EE 9. Internet of things 9.1. Introduction 9.2. RF imperfections effects on power constrained devices 9.2.1. Power amplifiers distortion: Compensation feasibility 9.2.2. Carrier frequency offset and phase noise: low complexity compensation techniques 9.3. Power consumption and performance study. 9.4. Self-powered devices: Energy harvesting and wireless power transfer 10. Final notes and novel issues. … (more)
- Publisher Details:
- Gateway East, Singapore : Springer
- Publication Date:
- 2020
- Copyright Date:
- 2020
- Extent:
- 1 online resource (xxi, 258 pages)
- Subjects:
- 621.3822
Signal processing -- Digital techniques
Wireless communication systems
Electronic books - Languages:
- English
- ISBNs:
- 3030324370
9783030324377 - Notes:
- Note: Description based on print version record.
- Access Rights:
- Legal Deposit; Only available on premises controlled by the deposit library and to one user at any one time; The Legal Deposit Libraries (Non-Print Works) Regulations (UK).
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- Restricted: Printing from this resource is governed by The Legal Deposit Libraries (Non-Print Works) Regulations (UK) and UK copyright law currently in force.
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- Physical Locations:
- British Library HMNTS - ELD.DS.475083
- Ingest File:
- 03_027.xml