B-VHF Final Project Results – Brussels – 19. September 2006 Page: 1 Air Ground Communication Focus Group Meeting Brussels, 19. September 2006 B-VHF – Final.

Slides:



Advertisements
Similar presentations
Use or disclosure of the information contained herein is subject to the restrictions on the Cover Page Lockheed Martin Aeronautics Company 1 Copyright.
Advertisements

Investigation framework for L-band FCS EMC compatibility analysis
GSM Receiver Key Parameters
Presented By: S. M. Riazul Islam STD ID: Joint NBI Detection and CE for WB-OFDM Project Program-2: Wireless Broadband Access Presentation # 02.
S o f t w a r e D e f i n e d R a d i o
Envelope Detector Conventional DSB-AM signals are easily demodulated by an envelope detector It consists of a diode and an RC circuit, which is a simple.
Cognitive Radio Communications and Networks: Principles and Practice By A. M. Wyglinski, M. Nekovee, Y. T. Hou (Elsevier, December 2009) 1 Chapter 6 Agile.
HANDBOOK ON GREEN INFORMATION AND COMMUNICATION SYSTEMS
1. Introduction.
Learning Introductory Signal Processing Using Multimedia 1 Outline Overview of Information and Communications Some signal processing concepts Tools available.
Bluetooth / IEEE Coexistence Reliability of IEEE WLANs in Presence of Bluetooth Radios Jim Zyren
1 IEEE MBWA Standard Project Contribution: C xx Date: May RF Performance Evaluation Criteria Dan Gal
Simulation and Evaluation of Various Block Assignments Evaluation of multiple carriers deployed in a channel block evaluation criteria section.
Doc.: IEEE Submission July 2003 Andy Gowans (UK RA) UK Ultra Wide Band (UWB) Compatibility Study Andy Gowans & Bharat Dudhia UK.
Wireless Networks Should Spread Spectrum On Demand Ramki Gummadi (MIT) Joint work with Hari Balakrishnan.
Some Recent Topics in Physical-Layer System Standards Felix Kapron Standards Engineering Felix Kapron Standards Engineering.
1 Ground Based Meteorological Radars Presented By: David Franc NOAAs National Weather Service September 2005.
Regional Information Meeting and Workshop related to the RRC-06 for the administrations of the Arab countries Damascus, Syria August 2005 Planning.
OFDMA with Optimized Transmit and Receive Waveforms for Better Interference Immune Communications in Next Generation Radio Mobile Communication Systems.
Interference Testing for Support of UAT Standards Presented by US Member Summary The FAA and RTCA are undertaking an extensive test and simulation program.
Vol. I - ICAO Spectrum Strategy Vol. II - Frequency Planning
Business line or Division or Corporate Department STAR presentation Bernard MEURICHE THALES Communications September 2006.
1 Wideband Simulation Results European Organisation for the Safety of Air Navigation AGCFG #3 & ACP WG-C#11 Lommaert Luc DAS/CSM September, Brussels.
FIXED SATELLITE SERVICE and UAS (22 September 2010)
DESIGN OF A SPECIFIC CDMA SYSTEM FOR AIR TRAFFIC CONTROL APPLICATIONS UNIVERSIDAD DE LAS PALMAS DE GRAN CANARIA UNIVERSIDAD POLITÉCNICA DE MADRID.
ICAO was created in 1944 to promote the safe and orderly development of civil aviation in the world. A specialized agency of the United Nations, it sets.
A I R T R A F F I C O R G A N I Z A T I O N Future Communications Study Technology Assessment Team: Suggested Phase III Activities Presented at ICAO ACP.
Slide 1 NEWSKY – NEtWorking the SKY for aeronautical communications Michael Schnell, Sandro Scalise German Aerospace Center (DLR) Institute of Communications.
WGM 8 meeting / November EUROCONTROL VDL Mode 4 Airborne Architecture Study (VM4AAS) Study Overview and Conclusions Nikos Fistas EATMP / EUROCONTROL.
Long Term Evolution LTE Long Term Evolution LTE Sanjeev Banzal Telecom Regulatory Authority of India Sanjeev Banzal Telecom Regulatory.
NexSAT SG#7 9 th March 2006 Future Communications Infrastructure Jacky Pouzet Communication Domain manager European Organisation for the Safety of Air.
Future Communications Roadmap
Jeopardy Q 1 Q 6 Q 11 Q 16 Q 21 Q 2 Q 7 Q 12 Q 17 Q 22 Q 3 Q 8 Q 13
Addition Facts
Filters and Enveloping - A Practical Discussion -
1 OFDM Synchronization Speaker:. Wireless Access Tech. Lab. CCU Wireless Access Tech. Lab. 2 Outline OFDM System Description Synchronization What is Synchronization?
GROUND BASED AUGMENTATION SYSTEM System Overview Christophe DEHAYNAIN Direction Générale de l’Aviation Civile FRANCE.
Analog Communications
SIMS-201 What is Bandwidth and How it is Used.
On the Capacity of a cellular CDMA system. - Anshul Popat.
UWB Channels – Capacity and Signaling Department 1, Cluster 4 Meeting Vienna, 1 April 2005 Erdal Arıkan Bilkent University.
Copyright © Chang Gung University. Permission required for reproduction or display. On Femto Deployment Architecture and Macrocell Offloading Benefits.
UMTS system Telenor FoU Josef Noll Page 1 UMTS system & planning aspects, Link and system level simulations aspects related to network.
Multi-carrier CDMA. Outline Introduction System Model Types Applications References.
Optimization of Radio resources Krishna Chaitanya Kokatla.
Doc.: IEEE /1062r2 Submission Zhendong Luo, CATR September 2010 RF Feasibility of 120 MHz Channelization for China Date: Authors: Slide.
Doc.: IEEE /543r0 Submission April 2006 Richard van Nee, Airgo NetworksSlide 1 Transmitter CCA Issues in 2.4 GHz April /543r0 Richard van.
Doc.: IEEE / wng SubmissionRoberto Aiello, Stefan MangoldSlide 1 carrier-grade operating in paired spectrum Date: Authors:
Doc.: IEEE r0 Submission November 2002 Je Woo Kim, TeleCIS WirelessSlide 1 PAPR Reduction of OFDM by Unitary Transformations Je Woo Kim TeleCIS.
S Transmission Methods in Telecommunication Systems (5 cr)
ST/SEU-CO | | © Robert Bosch GmbH reserves all rights even in the event of industrial property rights. We reserve all rights of disposal such as copying.
Case Study: Implementation Aspects of a GFDM-based Prototype for 5G Cellular Communications Ivan Simões Gaspar With the Vodafone Chair (Prof. Fettweis)
Addition 1’s to 20.
25 seconds left…...
Multi Carrier Modulation and OFDM
SUPRESSION OF LORAN-C NAVIGATION SIGNAL IN DIGITAL CAVE RADIOS (AN EXPERIMENTAL APPROACH) Mr. Antonio Muñoz Group of Technologies in hostile Environments.
QR026 High Sensitivity VME Tuner Performance Data
Discussion on OFDMA in HEW
VSMC MIMO: A Spectral Efficient Scheme for Cooperative Relay in Cognitive Radio Networks 1.
Digital Solutions for Spectral Requirements. So, What’s the Problem? The Radio Frequency (RF) Spectrum is becoming an increasingly scarce resource The.
ECE 4730: Lecture #5 1 Cellular Interference  Two major types of system-generated interference : 1) Co-Channel Interference (CCI) 2) Adjacent Channel.
Orthogonal Frequency Division Multiple Access (OFDMA)
System parameters and performance CDMA-2000, W-CDMA (UMTS), GSM 900, WLAN a, WLAN b, Bluetooth. By Øystein Taskjelle.
Performance evaluation of adaptive sub-carrier allocation scheme for OFDMA Thesis presentation16th Jan 2007 Author:Li Xiao Supervisor: Professor Riku Jäntti.
PAPR Reduction Method for OFDM Systems without Side Information
Simulation Data for Letter Ballot Comments on Quasi-guard Subcarriers and Reverse Link Waveform Lai King (Anna) Tee January 15, 2007.
April 12 | Comparison of Sophisticated Synthesizer Concepts and Modern Step Attenuator Implementations | 2 Comparison of Sophisticated Synthesizer Concepts.
A New Technique for Sidelobe Suppression in OFDM Systems
DESIGN OF A SPECIFIC CDMA SYSTEM FOR AIR TRAFFIC CONTROL APPLICATIONS
PHY Signaling for Adaptive Repetition of 11p PPDU
Presentation transcript:

B-VHF Final Project Results – Brussels – 19. September 2006 Page: 1 Air Ground Communication Focus Group Meeting Brussels, 19. September 2006 B-VHF – Final Results C. Rihacek (FRQ), M. Schnell (DLR)

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 2 Version: 1.0 Contents Main B-VHF Facts B-VHF Applicability Results of Physical Layer Simulations Sidelobe Suppression at the B-VHF Transmitter Simulation Scenarios for BER Evaluation BER Performance Without and With NBI Mitigation Validation of B-VHF Approach Laboratory measurements Measurement results Conclusions and Outlook

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 3 Version: 1.0 Main B-VHF Facts Broadband terrestrial cellular system based on multi- carrier technology MC-CDMA for forward link (G/A) OFDMA for reverse link (A/G) High capacity/high performance integrated voice and data link system tailored for specific aeronautical needs Supporting existing and emerging applications and services OFDM, OFDMA and MC-CDMA are mature technologies Proven by high-capacity bandwidth-efficient techniques, like DAB, DVB-T or W-LAN COTS products are already available (MC-CDMA adopted proposal for 4G) Most modern and spectrum efficient technology

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 4 Version: 1.0 Main B-VHF Facts B-VHF is primarily designed as overlay system Digital B-VHF Channel 8,33 kHz VHF AM-Channel 25 kHz VHF AM-Channel 25 kHz VHF VDL-Channel 25 kHz Frequency Analog Power Overlay concept enables in-band transition (e.g. VHF band)

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 5 Version: 1.0 Applicability of B-VHF B-VHF as overlay system (options) VHF band Extended VHF band (COM+NAV+MIL) DME band B-VHF without overlay (options) VHF (COM/NAV/MIL) band, free certain parts DME band, use respective parts MLS band for A-SMGCS applications

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 6 Version: 1.0 Sidelobe Suppression at Tx Objective: Minimization of interference towards legacy VHF systems Suppression to about -50 dB required Sidelobe suppression techniques: Deactivation of subcarriers (guard bands) Suppression not satisfactory Windowing Suppression good, but not satisfactory New approach: cancellation carriers f … … optimization range data carriers CCs data carriers CCs

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 7 Version: 1.0 Sidelobe Suppression at Tx w/o sidelobe suppression: dB with 2 CCs: dB with 2 CCs & windowing: dB requirements fulfilled

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 8 Version: 1.0 Typical scenario Available channels from NAVSIM tool (worst case) Actual interferers from measurement campaign Worst case (WC) scenario 1 MHz with max. number of interferers from measurements Simulation Scenarios for FL Spectrum Allocation FL-ENR-WC ScenarioInterf. 6S/7W Strong Interferer Weak Interferer B-VHF Channel (+Weak Interferer) Skipped Channel 2S/2W Spectrum Allocation FL-ENR FL-TAKEOFF FL-PARK Scenario 1S/1W Interf. 1S/2W

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 9 Version: 1.0 BER Performance – ENR-WC Scenario 30 dB Synchronisation and channel estimation work properly Rx windowing not sufficient Additional NBI mitigation required required Rx power: -67 dBm ! worst case

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 10 Version: 1.0 NBI Mitigation Techniques Digital notch filtering Assumption: A/D converter with sufficient resolution Only for strong interferers Rx windowing in time domain Simple method Slight extension of time domain signal required Peak of interferer is not reduced Leakage compensation in frequency domain Leakage effect due to DFT operation Estimation and compensation of interference Requires few observation subcarriers (reduced number of data subcarriers only for weak interferers)

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 11 Version: 1.0 BER Performance – ENR-WC Scenario required Rx power: -88 dBm windowing only strong NBI compensated / notch filtered weak & strong NBI compensated combination with windowing worst case

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 12 Version: 1.0 Laboratory Measurements Measurements based on laboratory test-bed The B-VHF signal covers the maximum frequency range symmetrical to the desired centre frequency of the DSB-AM receiver System parameters N_FFT = 128 B = kHz T_FRAME = 19.6 ms Tx windowing

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 13 Version: 1.0 Laboratory Measurements B-VHF interference on DSB-AM Eight measurement scenarios Three different airborne, one ground victim receiver Rockwell Collins VHF 920 Honeywell KY176 B Dittel FSG90 Rohde & Schwarz ground receiver type series 200 (EU230) Four different assessments Squelch break SINAD ratio degradation PESQ criteria Signal to pulse ratio level DSB-AM interference on B-VHF

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 14 Version: 1.0 Selected Measurement Results B-VHF interference on DSB-AM Squelch break and SINAD measurements determine maximum allowed B-VHF DSB-AM victim receiver PESQ measurements lead to operational criteria for Frequency planning: Allow a B-VHF interference power value at the input of the DSB-AM airborne/ground receiver, which is 10 dB below the value which creates a 6 dB SINAD reduction at -85/-94 dBm. DSB-AM interference on B-VHF Without frequency gap (DSB-AM in B-VHF signal) S/I = 15 dB leads to BER of With two VHF channels gap (DSB-AM in frequency gap) S/I = 5 dB leads to BER of S/I < 3 dB forces synchronization failures

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 15 Version: 1.0 Selected Measurement Results Feasibility of overlay concept in VHF band Assessment based on laboratory test-bed Spectral mask assumptions (worst case) DSB-AM and B-VHF output power 41 dBm Most critical receiver considered 600 m spatial separation required Assessment results under given assumptions Additional attenuation of 47 dB required in frequency gaps for 8.33 kHz mode and four channels notched out Additional attenuation of 54 dB required in frequency gaps for 25 kHz mode and two channels notched out

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 16 Version: 1.0 Selected Measurement Results Potential improvements of laboratory test-bed Professional front-end design Considerable noise level reduction Higher dynamic range (high-resolution DAC) Additional interference suppression at Tx dB Application of cancellation carrier technology Together with professional front-end design Increase bandwidth 6 dB From 266,67 kHz to 1066,67 kHz Respective power reduction in gap B-VHF output power reduction dB Estimated power reduction Requires additional interference mitigation at B-VHF Rx > 55 dB

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 17 Version: 1.0 Conclusions Overlay concept and VHF in-band transition feasible Theoretical considerations and simulations Laboratory measurements Overlay concept requires additional efforts Implementation of overlay specific techniques Reduced capacity during deployment Applicability in non-VHF bands with or without overlay DME band for ground-based aeronautical communications MLS band for airport communications Scalability of B-VHF B-VHF easily scalable (data rate/capacity ~ bandwidth) Large bandwidth enables high rate/capacity aeronautical communications for additional/new applications

© B-VHF CONSORTIUM 2006 File: B-VHF_AGCFG_Meeting_3.ppt Author: FREQUENTIS Page: 18 Version: 1.0 Outlook Eurocontrol/FAA roadmap Voice communication in VHF band using DSB-AM Data link communications in DME band B-VHF technology is well suited for DME band Main characteristics remain High-capacity, high data-rate Flexibility and scalability Robustness against interference (DME, JTIDS) Possibility to apply overlay concept during deployment Proposal: Investigate B-VHF technology for DME band