Doc.: IEEE 802.11-15/0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 1 Time Domain Multiplexed Pilots Design for IEEE802.11aj(45 GHz) SC PHY Authors/contributors:

Slides:



Advertisements
Similar presentations
Cyclic Shift Diversity Design for IEEE aj (45GHz)
Advertisements

Doc.: IEEE /1196r1 Submission Data Rate and Spectrum Requirements for IEEE aj (45 GHz) Date: Authors: Haiming Wang (SEU)Slide.
VSMC MIMO: A Spectral Efficient Scheme for Cooperative Relay in Cognitive Radio Networks 1.
Institute of Communications Engineering, NCTU 1 Unit 2 Synchronization.
Qi Wang July 3rd, Mobile Communication Seminar.
a By Yasir Ateeq. Table of Contents INTRODUCTION TASKS OF TRANSMITTER PACKET FORMAT PREAMBLE SCRAMBLER CONVOLUTIONAL ENCODER PUNCTURER INTERLEAVER.
Comparison of different MIMO-OFDM signal detectors for LTE
Semi-Blind Equalization for OFDM using Space-Time Block Coding and Channel Shortening Alvin Leung Yang You EE381K-12 March 04, 2008.
Implement a 2x2 MIMO OFDM-based channel measurement system (no data yet) at 2.4 GHz Perform baseband processing and digital up and down conversion on Nallatech.
Doc.: IEEE / 710r0 Submission May 2015 Variable Length Guard Interval for 45GHz Date: Authors: NameAffiliationsAddressPhone Feng.
May 2015 Submission doc.: aj Shiwen He, Haiming Wang PPDU Format for IEEE aj (45GHz) Authors/contributors: Date: Presenter:
May 2015 Submission doc.: aj Shiwen He, Haiming Wang PPDU Format for IEEE aj (45GHz) Authors/contributors: Date: Presenter:
May 2015 Submission doc.: aj Shiwen He, Haiming Wang PPDU Format for IEEE aj (45GHz) Authors/contributors: Date: Presenter:
1 Data-carrier Aided Frequency Offset Estimation for OFDM Systems.
CSI Feedback for MIMO-OFDM Transmission in IEEE aj (45 GHz)
Doc.: IEEE /0716r6 Submission PHY SIG Frame Structure for IEEE aj (45GHz) Authors/contributors: Date: Presenter: Shiwen HE May 2015.
Doc.:IEEE /0206r0 Submission January 2015 Shiwen He, Haiming Wang Pilot Design for OFDM PHY for aj(45 GHz) Authors/contributors: Date:
1 CFO Estimation with ICI Cancellation for OFDM Systems 吳宗威.
Wireless communication channel
Phase Tracking During VHT-LTF
MIMO Multiple Input Multiple Output Communications © Omar Ahmad
Doc.: IEEE /1399r0 Submission November 2014 Multi-Carrier Training Field for OFDM Transmission in aj (45GHz) Authors/contributors: Date:
Doc.: IEEE / 0710r1 Submission May 2015 Gigaray Communication Variable Length Guard Interval for 45GHz Date: Authors: NameAffiliationsAddressPhone .
1 PERFORMANCE OF FREQUENCY OFFSET SYNCHRONIZATION IN A SINGLE AND MULTI-ANTENNA IEEE SYSTEM José A. Rivas Cantero M. Julia Fernández-Getino.
Doc.: n-proposal-statistical-channel-error-model.ppt Submission Jan 2004 UCLA - STMicroelectronics, Inc.Slide 1 Proposal for Statistical.
Doc.: IEEE /383 Submission November1998November 1998 Jamshid Khun-Jush, ETSI-BRANSlide 1 BRAN#11 PHY Decisions & Issues to Resolved with
Submission doc.: IEEE /0824r0 July 2015 Slide 1 Pilot Design for 11ax Downlink Transmissions Date: Authors: Yujin Noh, Newracom.
1 A Novel Time and Frequency Synchronization Scheme for OFDM Systems Ching-Yu Wang Graduate Institute of Communication Engineering National Chi Nan University.
Doc.: IEEE /1401r0 Submission November 2014 Slide 1 Shiwen He , Haiming Wang Quasi-Orthogonal STBC for SC-PHY in IEEE aj (45GHz) Authors/contributors:
Submission doc.: IEEE /1088r0 September 2015 Daewon Lee, NewracomSlide 1 LTF Design for Uplink MU-MIMO Date: Authors:
Doc.: IEEE /0909r0 Submission July 2012 Jong S. Baek, AlereonSlide 1 Analysis, simulation and resultant data from a 6-9GHz OFDM MAC/PHY Date:
Doc.: IEEE /0112r0 Zhanji Wu, et. Al. January 2013 Submission Joint Coding and Modulation Diversity for the Next Generation WLAN Date:
OFDM Based WLAN System Song Ziqi Zhang Zhuo.
Doc.: IEEE /1398r0 Submission November 2014 Slide 1 Shiwen He, Haiming Wang Preamble Sequence for IEEE aj (45GHz) Authors/contributors:
Doc.: IEEE /1014r0 Submission September 2004 Pangan Ting, CCL/ITRISlide 1 Partial Proposal for n: ITRI Preamble Specification Yung-Yih Jian,
Doc.: IEEE /0883r0 Submission PHY SIG Frame Structure for IEEE aj (45GHz) Authors/contributors: Date: February 5, 2016 Presenter: Haiming.
Doc.: IEEE aj Submission PHY SIG Frame Structure for IEEE aj (45GHz) Authors/contributors: Date: Presenter: Shiwen.
Doc.: aj Submission November 2014 Slide 1 Shiwen He , Haiming Wang Quasi-Orthogonal STBC for IEEE aj ( 45GHz ) Authors/contributors:
Doc.: IEEE /0883r2 Submission September 2014 PHY SIG Frame Structure for IEEE aj (45GHz) Authors/contributors: Date: Presenter:
Doc.: IEEE /0779r0 Submission Guixia Kang, BUPT July 2010 VHT-LTF Design for IEEE802.11ac Slide 1 Date: Authors:
Doc.: IEEE /1364r2 Submission Distributed Timeslot Allocation (DTA) Mechanism for aj (60GHz) Authors/contributors: Date: Presenter:
Doc.: IEEE /0363r2 Submission Pilot Value Definitions May 2012 Yongho Seok (LG Electronics), Hongyuan Zhang (Marvell)Slide 1 Date:
S , Postgraduate Course in Radio Communications
Doc.: IEEE aj Submission PHY SIG Frame Structure for IEEE aj (45GHz) Authors/contributors: Date: Presenter: Haiming.
Introduction to OFDM and Cyclic prefix
Doc.: IEEE /1014r2 Submission September 2004 Pangan Ting, CCL/ITRISlide 1 Partial Proposal for n: ITRI Preamble Specification Yung-Yih Jian,
Doc.: IEEE /0994r1 Submission July 2016 Intel CorporationSlide 1 EDMG STF and CEF Design for SC PHY in 11ay Date: Authors:
PHY Design Considerations for af
A Novel TDS-FDMA Scheme for Multi-user Uplink Scenarios
Klaus Witrisal Signal Processing and Speech Communication Lab
Systems with Reduced Complexity
Distributed Timeslot Allocation (DTA) Mechanism for aj (60GHz)
Partial Proposal: 11n Physical Layer
Channel Estimation in OFDM Systems
MU-MIMO channel access flow for 11ay
Submission Title: [Proposed resolution to MIMO CES]
Preamble Sequence for aj(45GHz)
UWB Receiver Algorithm
PHY SIG Frame Structure for IEEE aj (45GHz)
Month Year doc.: IEEE yy/xxxxr0 January 2008
Partial Proposal for n: ITRI Preamble Specification
PPDU Format for IEEE aj (45GHz)
Optimal Combining of STBC and Spatial Multiplexing for MIMO-OFDM
Submission Title: [Proposed resolution to MIMO CES]
Channel Estimation in OFDM Systems
STBC in Single Carrier(SC) for IEEE aj (45GHz)
Strawmodel ac Specification Framework
Distributed Timeslot Allocation (DTA) Mechanism for aj (60GHz)
Proposed Scope for Tgac Ad Hoc Groups
LDPC Tone Mapping for IEEE aj(45GHz)
Presentation transcript:

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 1 Time Domain Multiplexed Pilots Design for IEEE802.11aj(45 GHz) SC PHY Authors/contributors: Date: Presenter: Shiwen HE

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 2 Abstract This presentation describes a design of time domain multiplexed pilots for IEEE aj (45GHz) SC PHY , which can be used to track residual carrier frequency offset and phase errors. With the proposed design, time domain multiplexed pilots can also be used as short Cyclic Prefix (CP) when the cyclic shift values are integral multiple of 64 (for 540MHz channel bandwidth) or 128 ( for 1080MHz channel bandwidth) and the channel impulse response energy is almost concentrated in a few taps and the tap number is less than the length of short CP.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 3 Outline 1.Background 2.Frame Structure for Data SC PHY 3.Simulation 4.Conclusion

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 4 Background Carrier frequency offset and phase errors are critical factors to degrade the system performance in SC MIMO systems as in other communication systems. Pilots are inserted to aid receiver to track residual carrier frequency offset and phase errors. Frequency domain multiplexed pilots insertion usually requires FFT and IFFT operations in the transmitter, which will increase the complexity and cost of transmitter when comparing to time domain multiplexed pilots. The unique word(UW) is one of the most widely used traditional time domain multiplexed pilots for SC systems, e.g. in IEEE ad protocols the UW format is adopted.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 5 Background –In SISO systems UW can work as classical cyclic prefix (CP). CP can overcome the time dispersion problem caused by multipath propagation as long as the length of channel impulse response is shorter than the cyclic prefix. –But with the existence of CSD operation in MIMO systems, UW scheme will highly increase the complexity of the receiver. This presentation focuses on a time domain multiplexed pilots design for SC MIMO systems.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 6 Frame Structure for Data SC PHY The frame structure for SC PHY for 540MHz channel bandwidth is illustrated in Fig.1. The data of a spatial stream is partitioned into blocks included 256 symbols each which includes 4 sub-blocks of length 64. Each sub-block is composed of 56-length data symbols followed by a 8-symbol ZCZ sequence. Ahead of every data block, there is a 64-symbol cyclic prefix with the last 8 symbols as a ZCZ sequence if the cyclic shift values are multiple integral of 64. Fig.1. Frame Structure for Data SC PHY for 540MHz Channel Bandwidth

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 7 Frame Structure for Data SC PHY Fig.2. Frame Structure for Data SC PHY for 540MHz Channel Bandwidth When the channel bandwidth is 540MHz, for data of different spatial streams in a MIMO system, the inserted 8-symbol ZCZ sequences at the tail of each sub- block are different, as is shown in Fig.2.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 8 Frame Structure for Data SC PHY The frame structure for Data SC PHY for 1080MHz channel bandwidth is illustrated in Fig.3. The data of a spatial stream is partitioned into blocks of 512 wherein each 512-block is constructed from 4 sub-blocks of length 128. Each sub-block is composed of 112-length data symbols followed by a 16-symbol ZCZ sequence. Ahead of every data block, there is a 128-symbol cyclic prefix with the last 16 symbols as a ZCZ sequence if the cyclic shift values are integral multiple of 128. Fig.3. Frame Structure for Data SC PHY for 1080MHz Channel Bandwidth

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 9 Frame Structure for Data SC PHY Fig.4. Frame Structure for Data SC PHY for 1080MHz Channel Bandwidth When the channel bandwidth is 1080MHz, for data of different spatial streams in a MIMO system, the inserted 16-symbol ZCZ sequences at the tail of each sub-block are different, as is shown in Fig.4.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 10 Frame Structure for Data SC PHY Working as CP for short sub-block –There is no STBC operation. –The cyclic shift values for SC PHY are integral multiple of 64 (for 540MHz channel bandwidth) or 128 (for 1080MHz channel bandwidth). –Channel impulse response energy is almost concentrated in less than 8 taps (for 540MHz channel bandwidth) or 16 taps (for 1080MHz channel bandwidth). When the above three conditions are satisfied, the receiver can decide to equalize using the short sub-blocks. Except being used as pilots, the inserted ZCZ sequences can also work as CP for short sub-blocks.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 11 Training Sequence Design Two ZCZ (Zero Correlation Zone) sequence sets are designed for SC pilots in 540MHz and 1080MHz separately, denotes the ZCZ sequence set with the period, the sequence number and the length of ZCZ, and denote,respectively.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 12 Simulation Simulation Parameters ParameterValue Number of Spatial Streams441 Modulation16QAM64QAMQPSK Channel Bandwidth540MHz

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 13 Simulation Frequency Offset Model –After doing carrier frequency synchronization with preamble, there exists residual carrier frequency offset in the frame. Assume that each frame has the same residual carrier frequency offset. –The received sample of the frame can be expressed by where,, and denote respectively the transmitted signal, the received signal, the channel impulsive response and the additive white Gaussian noise.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 14 Simulation Simulation Results

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 15 Simulation Simulation Results

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 16 Simulation Simulation Results

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 17 Conclusion The inserted ZCZ sequences can work as time domain multiplexed pilots to do phase tracking. The proposed frame structure can utilize the pilots as a CP of short 64-sub- blocks (540MHz) or 128-sub-blocks(1080MHz) when the receiver is out of STBC operation and cyclic shift values are integral multiple of 64 and the channel impulse response energy is almost concentrated in a few taps and the tap number is less than the length of short CP. The simulation results show that the proposed time domain multiplexed pilots design and frame structure can help to improve the SC MIMO systems’ performance.

doc.: IEEE /0205r0 Submission Jan 2015 Shiwen He, Haiming Wang Slide 18 Thanks for Your Attention.