Doc.: IEEE 802.15-08-716-00-0006 Submission October 2008 Miniutti et. al., NICTASlide 1 Project: IEEE P802.15 Working Group for Wireless Personal Area.

Slides:



Advertisements
Similar presentations
Doc.: IEEE g Possible License Exempt Spectrum for g in China 12 March 2009 B. Rolfe, Q. WangSlide 1 Project: IEEE P
Advertisements

Doc.: IEEE f Submission March, 2010 Andy Ward, UbisenseSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
Doc.: IEEE g Submission November 18, 2009 John Geiger GE Digital Energy Slide 1 Project: IEEE P Working Group for Wireless.
Doc.: IEEE a Submission 21 July, 2005 Kyung-Kuk Lee, John Lampe Slide 1 Project: IEEE P Working Group for Wireless Personal.
Doc.: IEEE /072r1 Submission March 2000 Tom Siep, Texas InstrumentsSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
Doc.: IEEE c Submission July, 2005 Pollock and Skafidas, NICTASlide 1 Project: IEEE P Working Group for Wireless Personal Area.
Doc.: IEEE c Submission September, 2005 Pollock, Skafidas and Saleem, NICTA LtdSlide 1 Project: IEEE P Working Group for Wireless.
Doc.: IEEE f Submission February, 2010 Andy Ward, UbisenseSlide 1 Project: IEEE P Working Group for Wireless Personal Area.
k Submission, Slide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [Preliminary Proposal.
Doc.: IEEE /270 Submission July 2003 Liang Li, Helicomm Inc.Slide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)
Doc.: IEEE c Submission March 2006 S. EmamiSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)
Doc.: IEEE c Submission January 2006 C. Liu et.alSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
Doc.: IEEE c Submission July, 2005 Tony Pollock, NICTASlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
July 2004 Jay Bain, Fearn Consulting doc.: IEEE /0379r0 Submission Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)
Doc.: IEEE Submission doc. : IEEE March 2009 Project: IEEE P Working Group for Wireless Personal Area Networks.
Doc.: IEEE c Submission July, 2006 Tony Pollock, NICTASlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
Doc.: IEEE /229r0 Submission 07/2000 Jim Lansford, MobilianSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)
Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [ k Link Budget Considerations] Date.
Doc.: IEEE a Submission June, 2005 Brethour, Time DomainSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
May 2006 Zhiguo Lai, University of Massachusetts - Amherst Slide 1 doc.: IEEE c Submission Project: IEEE P Working Group for.
Doc.: IEEE Submission March 2008 Slide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [PHY.
Doc.: IEEE xxxxx Submission doc. : IEEE wng0 Slide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
Doc: IEEE a 5 July 2005 Z. Sahinoglu, Mitsubishi Electric 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)
Doc.: IEEE /0249r0 Submission May 2004 Bart Van Poucke, IMECSlide 1 Project: IEEE Working Group for Wireless Personal Area Networks (WPANs)
Doc.: IEEE /495r1 Submission November 2001 R. Durrant/IntelSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)
Doc.: IEEE a Submission September, 2005 Brethour, Time DomainSlide 1 Project: IEEE P Working Group for Wireless Personal Area.
Submission doc.: IEEE g June 1, 2009 Howard et al, On-Ramp WirelessSlide 1 Project: IEEE P Working Group for Wireless Personal.
Doc: IEEE Submission July 2014 Smith, Sawyer, Zhou (NICTA), Hernandez,Li,Dotlić,Miura (NICT) Slide 1 Project: IEEE P Working.
Doc.: IEEE thz Submission March 2009 Young-Chai Ko,Korea UniversitySlide 1 Project: IEEE P Working Group for Wireless Personal.
IEEE q Submission Slide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: Simulation.
Doc.: IEEE g Submission July 2010 Roberto Aiello, John BuffingtonSlide 1 Project: IEEE P Working Group for Wireless Personal Area.
Submission November 2015 Slide 1Li Qiang, Huawei Technologies Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission.
IEEE q Submission Slide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: Considerations.
Doc.: IEEE g TG4g Presentation Jan 2010 C.S. Sum1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)‏
Doc.: IEEE c Submission July, 2005 Skafidas,Pollock,Saleem, NICTASlide 1 Project: IEEE P Working Group for Wireless Personal.
Doc.: IEEE /xxxr0 Submission Nov Win, Cassioli, Molisch, Statistical UWB channel modelSlide 1 Project: IEEE P Working Group for Wireless.
Doc.: IEEE r0 Submission September 2004 Michael Mc Laughlin, decaWaveSlide 1 Project: IEEE P Working Group for Wireless Personal Area.
p Submission June 2012 Yale Lee, Lilee Systems Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission.
Submission March, 2010 Adrian Jennings, Time Domain doc.: IEEE f Slide 1 Project: IEEE P Working Group for Wireless Personal.
Doc.: IEEE /099r0 Submission March 2000 Khaled Amer, AmerNetSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs)
Doc.: IEEE c Submission January 2006 Ali Sadri (Intel Corporation)Slide 1 Project: IEEE P Working Group for Wireless Personal.
Doc.: IEEE −05−0393−00−004a Submission July, 2005 Mc Laughlin, DecawaveSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
<month year> doc.: IEEE a Nov 2005
Submission Title: [Add name of submission]
doc.: IEEE <doc#>
June 2006 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [Proposed Scenarios for Usage Model Document.
doc.: IEEE <doc#>
Oct 2006 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [Suggested Modification to TSV Model Parameters]
Submission Title: [Comment resolution for i-31]
<month year> doc.: IEEE c September, 2005
25 August 2006 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [TG3c Channel Model Matlab Flowchart]
Jan Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [Proposal for sub-GHz Interference Model] Date.
March 2008 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [Toumaz response to TG6 Call for Applications]
January 2007 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [TG3c Technical Requirement sub-group report]
doc.: IEEE <doc#>
Date Submitted: [26-Oct-2005]
doc.: IEEE <doc#>
July 2008 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [An Introduction to the IEEE Applications.
doc.: IEEE <doc#>
doc.: IEEE /XXXr0 Sep 19, 2007 June 2009
November 2002 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: Time variance for UWB wireless channels.
doc.: IEEE <doc#>
<month year> doc.: IEEE a Nov 2006
Date Submitted: [29 August 2016]
March 2019 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [DF6 Radio-burst length over PSDU size] Date.
doc.: IEEE <doc#>
Submission Title: [Empirical channel model for wearable BAN]
doc.: IEEE <doc#>
05/2000 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [Bluetooth PHY Modeling update] Date Submitted:
doc.: IEEE <doc#3>
Presentation transcript:

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks (WPANs) Submission Title: [Characterisation of small-scale fading in BAN channels] Date Submitted: [3 October, 2008] Source: [ Dino Miniutti 12, Leif Hanlen 12, David Smith 12, Andrew Zhang 12, Daniel Lewis 1, David Rodda 1, Ben Gilbert 1 ] Company [ NICTA 1, The Australian National University 2 ] Address [ 7 London Circuit, Canberra, ACT, 2600, Australia ] Voice:[ ], FAX: [ ], [ ] Abstract:[Measurements results of dynamic BAN channel measurements at 820 MHz with characterisation of small-scale fading due to movement of test subjects.] Purpose:[To promote the inclusion of a small-scale fading model in the BAN channel model document.] Notice:This document has been prepared to assist the IEEE P It is offered as a basis for discussion and is not binding on the contributing individual(s) or organization(s). The material in this document is subject to change in form and content after further study. The contributor(s) reserve(s) the right to add, amend or withdraw material contained herein. Release:The contributor acknowledges and accepts that this contribution becomes the property of IEEE and may be made publicly available by P

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 2 Characterisation of small-scale fading in BAN channels NICTA & The Australian National University Dino Miniutti, Leif Hanlen, David Smith, Andrew Zhang NICTA Daniel Lewis, David Rodda, Ben Gilbert

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 3 Aim Statistically characterise fading –Static path loss measurements quantify the mean received power level –We are looking at deviations below the mean (fades) Dynamic measurements – moving test subject Questions: –Rate: How often? –Duration: How long? –Magnitude: How big?

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 4 Experiment setup Eight test subjects on powered treadmill Treadmill set to four different speeds: –Walking: 3 kph, 6 kph –Running: 9 kph, 12 kph Octane Wireless BW antennas –Strapped tight to body with VELCRO® tape

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 5 Measurement technique 820 MHz signal sent from transmitter 211 measurements of power at receive antenna –60 seconds each –Continuous sampling of received power at 100 kHz –Every 100 samples is averaged to improve noise performance Result is a 1 kHz signal Antennas are considered part of channel

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 6 Definitions Fade: Whenever power drops below threshold level Rate: Number of fades per second Duration: Time below threshold Magnitude: Attenuation below mean

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 7 Example measurement Tx: Chest  Rx: Right hip; Treadmill speed: 3 kph –Regular fades consistent with speed of movement –Mean path loss: 58.5 dB –Maximum fade: dB ~42 dB below mean received signal power

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 8 Fading: Rate Threshold 0 dB below mean (i.e., threshold at mean) –Level crossing rate / fading rate: 2.69 Hz Figure below is for all measurements –Slower movements generally result in lower fading rates

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 9 Fading: Duration distribution The Gamma distribution is the best fit to average fade duration Gamma : Best ML estimates: –a = –b = 0.337

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 10 Fading: Magnitude distribution The Gamma distribution is the best fit for the fade magnitude (when the magnitude is stipulated in a dB scale) –The Gamma distribution is directly fit to the decibels values of the empirical fade magnitude data –We call this a Gamma-dB fit Gamma : Best ML estimates: –a = –b = Random values (x) can be generated from this Gamma-dB distribution The values (x) are dB values; if magnitudes are desired use the conversion 10^(x/10)

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 11 Outage probability Definition: Probability (channel gain < permissible level) –“Permissible level”: Channel gain must be greater than this for reliable reception It is receiver dependent Model : ½ { tanh(ax + b) +1 } Best fits: Mean (blue): –a = –b = Min (red): –a = –b = Max (green): –a = –b = 9.999

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 12 Reasons for fading Attenuation effects: –diffraction, reflection, energy absorption, antenna losses (e.g., orientation), shadowing, etc… In general, these effects are multiplicative (additive in the log domain) By the central limit theorem, a large number of multiplicative effects will converge to a Normal distribution in the log domain Due to the office environment, and also around the body, there are likely to be additive effects due to combination of multiple paths –Adding together Lognormal variables results in a distribution that can be well approximated by another Lognormal distribution

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 13 Matlab code Matlab code for fading model Coming soon…

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 14 Summary Measurements –820 MHz signal –8 test subjects –Walking/running on treadmill at 4 movement speeds –3.5 hours of data Fades characterised statistically –Average fading rate is 2.69 Hz (using mean of received power as threshold level) –Magnitude distribution best fit is Gamma-dB –Duration distribution best fit is Gamma Results are consistent with speed of movement

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 15 Appendix Other results that may be interesting

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 16 Lognormal: Best ML estimates: –  = –  = Path loss distribution The Lognormal distribution is the best fit to path loss over all measurements

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 17 Fade rate vs. Fade duration Average fading rate for a single trial plotted against the average fade duration for that trial Reciprocal relationship (as would be expected) Slower movement tends to produce longer fades less often (as would be expected)

doc.: IEEE Submission October 2008 Miniutti et. al., NICTASlide 18 Fade duration vs. Fade magnitude Fade magnitude is relative to mean Shorter fades tend to be larger, but there isn’t a tight relationship