Doc.:IEEE 802.11-10/1159r1 Submission Laurent Cariou Sept, 2010 Slide 1 Non contiguous 40+40 additional bandwidth mode Date: 2010-09-16.

Slides:



Advertisements
Similar presentations
Updated China's 5GHz Spectrum Regulation
Advertisements

Doc.: IEEE /1062r2 Submission Zhendong Luo, CATR September 2010 RF Feasibility of 120 MHz Channelization for China Date: Authors: Slide.
Doc.: IEEE /1294r0 Submission September 2011 Rolf de Vegt, QualcommSlide 1 Spec Framework Text for.11ah Bandwidth Modes Date: Authors:
Doc.:IEEE /0103r1 Submission Laurent Cariou January 19, 2010 Slide 1 Gains provided by multichannel transmissions Authors: Date:
Submission doc.: IEEE 11-13/1100r0 September 2013 Osama Aboul-Magd (Huawei Technologies)Slide 1 HEW SG Progress Review Date: Authors:
Preamble for 120MHz Date: Authors: Nov, 2010 Month Year
Doc.: IEEE p Submission September 2008 Carl Kain, Noblis (USDOT) Response to Comments on Optional Enhanced ACR and AACR Values Date:
Doc.: IEEE /0806r0 SubmissionSlide 1 Date: Authors: aj (45 GHz) Channelization and Channel Operation Jul 2014 Bo Sun, ZTE Corp.
Submission doc.: IEEE /0353r1 March 2015 Jinsoo Ahn, Yonsei UniversitySlide 1 OFDMA Non-contiguous Channel Utilization Date: Authors:
Doc.:IEEE /0370r1 Submission May 17, 2010 Sudhir Srinivasa et al.Slide 1 80MHz Tone Allocation Authors: Date:
Doc.:IEEE /1279r0 Submission Nov 09, 2010 Slide 1 Minho Cheong, ETRI Segment Parser for 160MHz Authors: Date:
Doc.: IEEE /1296r3 Submission September 2011 Rolf de Vegt, QualcommSlide 1 Potential Channelization for ah Date: Authors:
Doc.:IEEE /0536r0 Submission May 11th, 2009 Slide 1 OBSS issue in ac Authors: Date:
Doc.: IEEE /0068r0 Submission Discussions on the better resource utilization for the next generation WLANs January 2012 Yasuhiko Inoue (NTT),
Doc.: IEEE SubmissionSlide 1 Interleavers for 160MHz Transmission Date: Authors: Mediatek.
Doc.: IEEE /0231r3 Submission March 2010 John R. Barr, JRBarr, Ltd. & NiCTSlide 1 Efficient Methods for Coexistence with Other 60GHz Systems Date:
Doc.: IEEE /1062r0 Submission Zhendong Luo, CATR September 2010 RF Feasibility of 120 MHz Channelization for China Date: Authors: Slide.
Discussion on ax functional requirements
Doc.: IEEE /0127r0 Submission January 2009 John R. Barr, Motorola, Inc.Slide 1 Bluetooth AFH and IEEE Date: Authors:
Doc.: IEEE /1149r0 Submission September 2010 Jarkko Kneckt, Nokia CorporationSlide 1 Operation rules for > 40MHz Bandwidth Date: Authors:
Doc.:IEEE /0820r0 Submission July 13, 2010 Sudhir Srinivasa et al.Slide 1 MCS Selection and Padding Equations Date: Authors:
Doc.: IEEE /1064r2 Submission Channelization for 11ac Date: Youhan Kim, et al.Slide 1 Authors: September 2010.
1x/2x/4x OFDM Symbol in HE SU PPDU with BCC
Doc.: IEEE /1243r0 SubmissionSlide 1 Preamble for 120MHz Date: Authors: Sun Bo, ZTE Corporation Nov, 2010.
Doc.: IEEE COEX-02/004r0 Submission 23 January, 2001 James P. K. Gilb, Appairent Technologies Project: IEEE P Working Group for Wireless Personal.
Submission doc.: IEEE /0108r0 January 11 Slide 1 Evaluation of neighbors impact on channel allocation for dense environment and Video use cases.
Doc.:IEEE /0134r0 Submission Laurent Cariou January 18, 2010 Slide 1 Fast session transfer use cases Authors: Date:
Doc.:IEEE /1385r0 Submission Sep Brian Hart, Cisco SystemsSlide 1 Making the Quiet Channel Element Work for 11a/11n Clients Date:
Doc.:IEEE /0633r0 Submission Richard van Nee, Qualcomm May 14, 2009 Slide 1 Strawmodel ac Specification Framework Authors: Date:
Doc.: IEEE /0778r0 Submission Zhendong Luo, CATR July MHz PHY Transmission Date: Authors: Slide 1.
11ac 80MHz Transmission Flow
Bandwidth signaling for EDMG
TGaf PHY Overview Date: Authors: July 2012 Month Year
Non contiguous MHz mode for Europe, Japan and global
CCA schemes for the 120MHz spectrum in China
160 MHz PHY Transmission Date: Authors: March 2010
80-MHz Non-Contiguous Channel Spectrum
Bandwidth Indication Design for 120MHz
120MHz channelization solution
Non contiguous additional bandwidth mode
EXtreme Throughput (XT)
Evaluation of the saturation of the 5GHz band
Gains provided by multichannel transmissions
Joint Multichannel CSMA
EXtreme Throughput (XT)
Evaluation of the saturation of the 5GHz band
Proposed Scope for Tgac Ad Hoc Groups
Fair Quiet for DFS Date: Authors: February 2008
Comparison of Draft Spec Framework Documents
160 MHz Transmission Flow Date: Authors: September 2010
Preamble for 120MHz Date: Authors: Nov, 2010 Month Year
MU-MIMO support for Heterogeneous Devices
Non contiguous MHz mode for Europe, Japan and global
Non contiguous MHz mode for Europe, Japan and global
Non contiguous MHz mode for Europe, Japan and global
160 MHz Transmissions Date: Authors: July 2010 Month Year
Straw Polls and Motions on 256 QAM and BW: Optional-Mandatory Features
March 2003 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [PHY Proposal for the IEEE a standard]
120 MHz PHY Transmission Date: Authors: January 2010
Strawmodel ac Specification Framework
80MHz and 160MHz channel access modes
80-MHz Non-Contiguous Channel Spectrum
Channelization for China’s Spectrum
160 MHz Transmission Flow Date: XX Authors: September 2010
Joint Multichannel CSMA
Proposed Scope for Tgac Ad Hoc Groups
RF Feasibility of 120 MHz Channelization for China
CCA schemes for the 120MHz spectrum in China
80MHz and 160MHz channel access modes
80 MHz Channelization Date: Authors: July 2010 Month Year
Presentation transcript:

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 Slide 1 Non contiguous additional bandwidth mode Date:

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 Content The following modes have already been accepted by 11ac –20MHz, 40MHz, 80MHz (mandatory) –160MHz (optional) Optional 40+40MHz non contiguous transmission mode should be added to the spec framework –it enables to exploit the part of the band left aside by the current contiguous 80MHz frequency planning –it increases the probability to transmit at 80MHz (the target of 11ac) in presence of neighbors or radars.. –its complexity is identical to the 80+80MHz mode already accepted by TGac Slide 2

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, MHz Channel planning in 5GHz band Slide 3 Only 4 channels for 80MHz in Europe, only 2 at 30dBm With one channel (in red) which can strongly be affected by weather radars (see map next slide) In many cases, contiguous only BSS will not be able to transmit at 80MHz without overlapping Non contiguous 2x40MHz mode is the solution in this part of the band –each 40MHz segment is allocated in the band according to 40MHz channel planning IEEE channel # 20 MHz 40 MHz 80 MHz 5170 MHz 5330 MHz 5490 MHz 5710 MHz 5735 MHz 5835 MHz Weather radars only in US

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 Map of weather radars occupying 5GHz spectrum in France On most of these regions, only 3 80MHz channels will be available 80MHz Channel planning in 5GHz band Slide 4

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 Example of the use of 40+40MHz mode Slide 5 Non contiguous 2x40MHz mode enables full 80MHz transmission Contiguous 80MHz mode is forced to share channel access 11ac neighbor Interferer IEEE channel # 5170 MHz 5330 MHz 5490 MHz 5710 MHz Weather radar 11n neighbor New BSS with contiguous 80 MHz Interferers New BSS with non contiguous MHz Limited access to channel Full access to channel

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, MHz mode 40+40MHz mode leads to lower maximum throughput than contiguous 80MHz. However, we have demonstrated in [1] and [2] that 40+40MHz mode is way more resistant to neighbors traffic than 80MHz mode. The environment doesn’t need to be very dense to see the gains provided by 40+40MHz mode. –For China where the number of channels are even more limited, the efficiency of this mode compared to contiguous 80MHz will be even more significant. It’s very likely that some products in the market already implement this technology. We should define this mode and let the market decide. Slide 6

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 Possible transmit flow for 40+40MHz mode Transmit flow for non-contiguous 40+40MHz transmissions: –Perform channel coding –Parse the encoder output bits into stream(s) –For each stream, the stream parser output bits are allocated to two 40 MHz segments in an alternating fashion Even bits to the 40 MHz segment lower in frequency and odd bits to 40 MHz segment higher in frequency, where the first bit from the stream parser output in each symbol is an even bit –If BCC is used, interleave per 40 MHz segment, with each segment using interleaver defined for 40 MHz transmission Slide 7

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 Conclusion 40+40MHz non contiguous transmission mode should be added to the spec framework as an optional feature –it enables to exploit the part of the band left aside by the current contiguous 80MHz frequency planning –it increases the probability to transmit at 80MHz (the target of 11ac) in presence of neighbors or radars.. –its complexity of integration is identical to the 80+80MHz mode already accepted by TGac Slide 8

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 Strawpoll Do you support adding the following section and item into the specification framework document, /0992? –Section 3.1.E Non contiguous MHz PHY Transmission R3.1.E.1: The draft specification shall include support for optional non contiguous 40+40MHz PHY transmission, whose frequency spectrum consists of two segments, non-adjacent in frequency, each transmitted using one 40 MHz channel. –Yes: –No: –Abstain: Slide 9

doc.:IEEE /1159r1 Submission Laurent Cariou Sept, 2010 References [1] Cariou, L. and Christin, P., 80MHz and 160MHz channel access modes, IEEE /0385r1, Mar [2] Cariou, L. and Benko, J., Gains provided by multichannel transmissions, IEEE /0103r1, Jan Slide 10