Orthogonal waveforms and filter banks for future communication systems
Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design a...
Ausführliche Beschreibung
Autor*in: |
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Format: |
E-Book |
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Sprache: |
Englisch |
Erschienen: |
London: Academic Press ; 2017 |
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Schlagwörter: |
Signal processing, Digital techniques Wavelength division multiplexing TECHNOLOGY & ENGINEERING ; Mechanical Signal processing ; Digital techniques |
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Formangabe: |
Electronic books |
Anmerkung: |
Includes index. - Includes bibliographical references and index. - Print version record |
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Umfang: |
Online Ressource ; illustrations |
Reproduktion: |
Online-Ausg. |
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Links: | |
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ISBN: |
978-0-12-810385-2 0-12-810385-X |
Katalog-ID: |
897845765 |
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245 | 1 | 0 | |a Orthogonal waveforms and filter banks for future communication systems |c edited by Markku Renfors [and others] |
264 | 1 | |a London |b Academic Press |c 2017 | |
300 | |a Online Ressource |b illustrations | ||
336 | |a Text |b txt |2 rdacontent | ||
337 | |a Computermedien |b c |2 rdamedia | ||
338 | |a Online-Ressource |b cr |2 rdacarrier | ||
500 | |a Includes index. - Includes bibliographical references and index. - Print version record | ||
520 | |a Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation | ||
520 | |a 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References | ||
520 | |a 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming | ||
520 | |a 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments | ||
520 | |a Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview | ||
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650 | 0 | |a Wavelength division multiplexing | |
650 | 0 | |a Signal processing |x Digital techniques | |
650 | 0 | |a Wavelength division multiplexing | |
650 | 0 | |a Signal processing |x Digital techniques | |
650 | 4 | |a TECHNOLOGY & ENGINEERING ; Mechanical | |
650 | 4 | |a Signal processing ; Digital techniques | |
650 | 4 | |a Wavelength division multiplexing | |
650 | 4 | |a Multiplexage en longueur d'onde |0 (CaQQLa)201-0362032 | |
650 | 4 | |a Traitement du signal - Techniques numériques |0 (CaQQLa)201-0087536 | |
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9780128103852 : electronic bk. 978-0-12-810385-2 012810385X : electronic bk. 0-12-810385-X 0128103841 9780128103845 (DE-627)897845765 (DE-576)517991802 (DE-599)GBV897845765 (OCoLC)994039063 (OCoLC)994039063 (ELSEVIER)ocn994039063 (EBP)014885387 DE-627 ger DE-627 rakwb eng XA-GB TK5102.9 TEC009070 bisacsh TEC 009070 bisacsh Orthogonal waveforms and filter banks for future communication systems edited by Markku Renfors [and others] London Academic Press 2017 Online Ressource illustrations Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes index. - Includes bibliographical references and index. - Print version record Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Online-Ausg. Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques TECHNOLOGY & ENGINEERING ; Mechanical Signal processing ; Digital techniques Wavelength division multiplexing Multiplexage en longueur d'onde (CaQQLa)201-0362032 Traitement du signal - Techniques numériques (CaQQLa)201-0087536 Electronic books Electronic books Renfors, Markku oth 0128103841 9780128103845 Erscheint auch als Druck-Ausgabe Orthogonal waveforms and filter banks for future communication systems London : Academic Press, 2017 0128103841 9780128103845 http://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag Volltext https://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag lizenzpflichtig BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2017 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 621.3822 045F 621.38 045F 621.382/2 23 01 0830 1755660901 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 26-02-18 105 01 0841 4074511444 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4499993180 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514689513 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540275917 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520357586 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046046457 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 23 01 0830 Elsevier EBook http://www.sciencedirect.com/science/book/9780128103845 105 01 0841 http://www.sciencedirect.com/science/book/9780128103845 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780128103845 185 01 3519 http://www.sciencedirect.com/science/book/9780128103845 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780128103845 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780128103845 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780128103845 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier 23 01 0830 2017.05.17 |
spelling |
9780128103852 : electronic bk. 978-0-12-810385-2 012810385X : electronic bk. 0-12-810385-X 0128103841 9780128103845 (DE-627)897845765 (DE-576)517991802 (DE-599)GBV897845765 (OCoLC)994039063 (OCoLC)994039063 (ELSEVIER)ocn994039063 (EBP)014885387 DE-627 ger DE-627 rakwb eng XA-GB TK5102.9 TEC009070 bisacsh TEC 009070 bisacsh Orthogonal waveforms and filter banks for future communication systems edited by Markku Renfors [and others] London Academic Press 2017 Online Ressource illustrations Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes index. - Includes bibliographical references and index. - Print version record Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Online-Ausg. Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques TECHNOLOGY & ENGINEERING ; Mechanical Signal processing ; Digital techniques Wavelength division multiplexing Multiplexage en longueur d'onde (CaQQLa)201-0362032 Traitement du signal - Techniques numériques (CaQQLa)201-0087536 Electronic books Electronic books Renfors, Markku oth 0128103841 9780128103845 Erscheint auch als Druck-Ausgabe Orthogonal waveforms and filter banks for future communication systems London : Academic Press, 2017 0128103841 9780128103845 http://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag Volltext https://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag lizenzpflichtig BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2017 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 621.3822 045F 621.38 045F 621.382/2 23 01 0830 1755660901 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 26-02-18 105 01 0841 4074511444 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4499993180 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514689513 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540275917 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520357586 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046046457 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 23 01 0830 Elsevier EBook http://www.sciencedirect.com/science/book/9780128103845 105 01 0841 http://www.sciencedirect.com/science/book/9780128103845 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780128103845 185 01 3519 http://www.sciencedirect.com/science/book/9780128103845 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780128103845 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780128103845 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780128103845 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier 23 01 0830 2017.05.17 |
allfields_unstemmed |
9780128103852 : electronic bk. 978-0-12-810385-2 012810385X : electronic bk. 0-12-810385-X 0128103841 9780128103845 (DE-627)897845765 (DE-576)517991802 (DE-599)GBV897845765 (OCoLC)994039063 (OCoLC)994039063 (ELSEVIER)ocn994039063 (EBP)014885387 DE-627 ger DE-627 rakwb eng XA-GB TK5102.9 TEC009070 bisacsh TEC 009070 bisacsh Orthogonal waveforms and filter banks for future communication systems edited by Markku Renfors [and others] London Academic Press 2017 Online Ressource illustrations Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes index. - Includes bibliographical references and index. - Print version record Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Online-Ausg. Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques TECHNOLOGY & ENGINEERING ; Mechanical Signal processing ; Digital techniques Wavelength division multiplexing Multiplexage en longueur d'onde (CaQQLa)201-0362032 Traitement du signal - Techniques numériques (CaQQLa)201-0087536 Electronic books Electronic books Renfors, Markku oth 0128103841 9780128103845 Erscheint auch als Druck-Ausgabe Orthogonal waveforms and filter banks for future communication systems London : Academic Press, 2017 0128103841 9780128103845 http://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag Volltext https://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag lizenzpflichtig BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2017 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 621.3822 045F 621.38 045F 621.382/2 23 01 0830 1755660901 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 26-02-18 105 01 0841 4074511444 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4499993180 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514689513 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540275917 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520357586 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046046457 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 23 01 0830 Elsevier EBook http://www.sciencedirect.com/science/book/9780128103845 105 01 0841 http://www.sciencedirect.com/science/book/9780128103845 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780128103845 185 01 3519 http://www.sciencedirect.com/science/book/9780128103845 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780128103845 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780128103845 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780128103845 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier 23 01 0830 2017.05.17 |
allfieldsGer |
9780128103852 : electronic bk. 978-0-12-810385-2 012810385X : electronic bk. 0-12-810385-X 0128103841 9780128103845 (DE-627)897845765 (DE-576)517991802 (DE-599)GBV897845765 (OCoLC)994039063 (OCoLC)994039063 (ELSEVIER)ocn994039063 (EBP)014885387 DE-627 ger DE-627 rakwb eng XA-GB TK5102.9 TEC009070 bisacsh TEC 009070 bisacsh Orthogonal waveforms and filter banks for future communication systems edited by Markku Renfors [and others] London Academic Press 2017 Online Ressource illustrations Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes index. - Includes bibliographical references and index. - Print version record Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Online-Ausg. Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques Wavelength division multiplexing Signal processing Digital techniques TECHNOLOGY & ENGINEERING ; Mechanical Signal processing ; Digital techniques Wavelength division multiplexing Multiplexage en longueur d'onde (CaQQLa)201-0362032 Traitement du signal - Techniques numériques (CaQQLa)201-0087536 Electronic books Electronic books Renfors, Markku oth 0128103841 9780128103845 Erscheint auch als Druck-Ausgabe Orthogonal waveforms and filter banks for future communication systems London : Academic Press, 2017 0128103841 9780128103845 http://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag Volltext https://www.sciencedirect.com/science/book/9780128103845 X:ELSEVIER Verlag lizenzpflichtig BSZ-33-EBS-HSAA GBV-33-EBS-MRI GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2017 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 621.3822 045F 621.38 045F 621.382/2 23 01 0830 1755660901 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 26-02-18 105 01 0841 4074511444 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4499993180 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514689513 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540275917 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520357586 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046046457 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 23 01 0830 Elsevier EBook http://www.sciencedirect.com/science/book/9780128103845 105 01 0841 http://www.sciencedirect.com/science/book/9780128103845 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780128103845 185 01 3519 http://www.sciencedirect.com/science/book/9780128103845 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780128103845 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780128103845 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780128103845 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier 23 01 0830 2017.05.17 |
allfieldsSound |
9780128103852 : electronic bk. 978-0-12-810385-2 012810385X : electronic bk. 0-12-810385-X 0128103841 9780128103845 (DE-627)897845765 (DE-576)517991802 (DE-599)GBV897845765 (OCoLC)994039063 (OCoLC)994039063 (ELSEVIER)ocn994039063 (EBP)014885387 DE-627 ger DE-627 rakwb eng XA-GB TK5102.9 TEC009070 bisacsh TEC 009070 bisacsh Orthogonal waveforms and filter banks for future communication systems edited by Markku Renfors [and others] London Academic Press 2017 Online Ressource illustrations Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes index. - Includes bibliographical references and index. - Print version record Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Online-Ausg. 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Orthogonal waveforms and filter banks for future communication systems |
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Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Includes index. - Includes bibliographical references and index. - Print version record |
abstractGer |
Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Includes index. - Includes bibliographical references and index. - Print version record |
abstract_unstemmed |
Annotation, Provides an up-to-date account of orthogonal filter bank-based multicarrier (FBMC) systems and their applications in modern and future communications, highlighting the crucial role that advanced multicarrier waveforms play. It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation 2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References 3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming 3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview Includes index. - Includes bibliographical references and index. - Print version record |
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It is an up-to-date overview of the theory, algorithms, design and applications of FBMC systems at both the link- and system levels that demonstrates the various gains offered by FBMC over existing transmission schemes via both simulation and test bed experiments. Readers will learn the requirements and challenges of advanced waveform design for future communication systems, existing FBMC approaches, application areas, and their implementation</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">2.2.2.1 Networks Without Coexistence Management2.2.2.2 Networks With Distributed Coexistence Management; 2.2.2.3 Networks With Centralized Coexistence Management; 2.2.2.4 Hybrid of Networks With Distributed and Centralized Coexistence Management; 2.3 Standard Technologies; 2.3.1 OFDM-Based Standards; 2.3.2 FBMC-Based Standard; 2.4 TVWS Medium Access Control Standards -- a Coordinated and an Uncoordinated Approach; 2.4.1 Coordinated Usage of TVWS; 2.4.2 Uncoordinated Usage of TVWS; 2.5 Available Products; 2.6 Current Trials Worldwide and Lessons Learned; References</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">3 Broadband Private Mobile Radio (PMR)/Public Protection and Disaster Relief (PPDR) Services Evolution3.1 Introduction; 3.2 An Imperative Need for Frequency Resources; 3.3 Main Spectrum Possibilities or Options (Focus on EU Case); 3.3.1 Use of Commercial Networks for PPDR Needs; 3.3.2 Dedicated Networks and Frequency Resources; 3.3.3 Mutualization and Coexistence Between Narrowband PMR Systems and Broadband PMR Systems; 3.3.4 The Preferred Frequency Band Options for Broadband PPDR; 3.3.4.1 400 MHz Band; 3.3.4.2 700 MHz Band; 3.3.5 The Problematic of the 400 MHz Band: Need for a Refarming</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">3.3.6 Advanced Narrowband-Broadband Coexistence3.4 Radio Planning Considerations; 3.4.1 LTE Channel Bandwidth Con guration; 3.4.2 Duplex Separation; 3.4.3 Power Aspects; 3.5 Voice Aspects; 3.5.1 PMR Low Bitrate Vocoders; 3.5.2 Push-to-Talk (PTT) Mechanism Network Constraints; 3.6 Direct Mode of Operation (DMO) Communication; 3.6.1 DMO Communication in Current PSN; 3.6.2 Device to Device (D2D) Solutions for Future LTE-Based PSN; 3.7 Standard Waveforms and Candidates for Evolution; 3.7.1 Coexistence Scenario; 3.7.2 Future Waveform Candidates; 3.8 Concluding Remarks; Acknowledgments</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">Front Cover; Orthogonal Waveforms and Filter Banks for Future Communication Systems; Copyright; Contents; Contributors; About the Editors; Preface; Acknowledgments; Part I Application Drivers; 1 New Waveforms for New Services in 5G; 1.1 Key Communication Scenarios; 1.1.1 Sporadic Traf c; 1.1.2 Spectral and Temporal Fragmentation; 1.1.3 Real-Time Constraints; 1.2 5G New Air Interface Core Elements; 1.2.1 Waveforms; 1.2.2 Uni ed Frame Structure, One-Shot Transmission and Autonomous Timing Advance; 1.3 5G Waveform Candidates; 1.3.1 UFMC; 1.3.1.1 UFMC and UF-OFDM Overview</subfield></datafield><datafield tag="533" ind1=" " ind2=" "><subfield code="a">Online-Ausg.</subfield></datafield><datafield tag="650" ind1=" " ind2="0"><subfield code="a">Signal processing</subfield><subfield code="x">Digital techniques</subfield></datafield><datafield tag="650" ind1=" " ind2="0"><subfield code="a">Wavelength division multiplexing</subfield></datafield><datafield tag="650" ind1=" " ind2="0"><subfield code="a">Signal processing</subfield><subfield code="x">Digital techniques</subfield></datafield><datafield tag="650" ind1=" " ind2="0"><subfield code="a">Wavelength division multiplexing</subfield></datafield><datafield tag="650" ind1=" " ind2="0"><subfield code="a">Signal processing</subfield><subfield code="x">Digital techniques</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">TECHNOLOGY & ENGINEERING ; Mechanical</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Signal processing ; Digital techniques</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Wavelength division multiplexing</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Multiplexage en longueur d'onde</subfield><subfield code="0">(CaQQLa)201-0362032</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Traitement du signal - 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