Doc.: IEEE 802.11-05/0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 1 Velocity Effects on RSM-based Handover Decision Notice:

Slides:



Advertisements
Similar presentations
Doc.: IEEE /xxxxr0 Submission July 2006 Tom Siep, Cambridge Silicon Radio PlcSlide 1 Discussion of Definitions in 0023r2 Notice: This document.
Advertisements

Doc.: IEEE /0126r0 Submission January 2006 Yeong M. Jang, Kookmin University, KoreaSlide 1 Parameters for Network Selection Algorithm under Heterogeneous.
Doc.: IEEE /0247r1 Submission March 2005 Atsushi FujiwaraSlide 1 Advantages of multiple channel usage in 11s WLAN Mesh network Notice: This document.
Doc.: IEEE /0866r1 Submission September 2005 Michael Montemurro, Chantry NetworksSlide 1 Mobility Domain Definition and Description Notice: This.
Doc.: IEEE /90r0 Submission Nov., 2012 NICTSlide b NICT Proposal IEEE P Wireless RANs Date: Authors: Notice: This document.
Doc.: IEEE /0930r0 Submission July 2006 Nancy Cam-Winget, Cisco Slide 1 Editor Updates since Jacksonville Notice: This document has been prepared.
Doc.: IEEE /0024r0 Submission May 2006 Steve Shellhammer, QualcommSlide 1 Discussion of Coexistence Scenarios Notice: This document has been prepared.
Doc.: IEEE /1867r1 Submission November r Security TeamSlide 1 TGr Security Requirements Notice: This document has been prepared to.
Doc.: IEEE /0094r0 Submission November 2009 Steve Shellhammer, QualcommSlide 1 Comments on PAR Notice: This document has been prepared.
Doc.: IEEE /1280r1 Submission Jan 2006 Bin Wang, ZTE CorporationSlide 1 Frequent Handover Notice: This document has been prepared to assist IEEE.
Doc.: IEEE /2237r0 Submission July 2007 Emily Qi, Intel CorporationSlide 1 TGv Redline D1.0 Insert and Deletion Notice: This document has been.
Doc.: IEEE /1212r0 Submission TGT and MEF Liaison Notice: This document has been prepared to assist IEEE It is offered as a basis for.
Doc.: IEEE /86r2 Submission March, 2010 Gabor BajkoSlide 1 Location Proxy Notice: This document has been prepared to assist IEEE It is.
Doc.: IEEE /0039r1 Submission January 2007 Larry Green, Ixia Slide 1 TCP Parameters and Settings Notice: This document has been prepared to assist.
Doc.: IEEE /0028r0 Submission January 2005 Eleanor Hepworth, Siemens Roke ManorSlide 1 Definitions and Terminology Notice: This document has been.
Doc.: IEEE /0220r0 Submission March 2005 Peter Ecclesine, Cisco SystemsSlide Liaison Report Atlanta Notice: This document has been prepared.
Doc.: IEEE /0197r0 Submission March 2005 Nancy Cam-Winget et alSlide 1 TAP & JIT Merge Process Notice: This document has been prepared to assist.
Doc.: IEEE /0460r1 Submission March 2006 Fujio Watanabe, DoCoMo USA LabsSlide 1 Japanese Emergency Call Regulation Notice: This document has been.
Doc.: IEEE /0652r1 Submission May 2007 Emily Qi, Intel CorporationSlide 1 TGv Redline D0.12 Insert and Deletion Notice: This document has been.
Doc.: IEEE /1074r0 Submission July 2006 Marc Emmelmann, Technical University BerlinSlide 1 TTL Proposal: Proposed Modifications Notice: This document.
[ Interim Meetings 2006] Date: Authors: July 2005
IEEE White Space Radio Contribution Title
LB73 Noise and Location Categories
LB73 Noise and Location Categories
Waveform Generator Source Code
March 2014 Election Results
TV White Space Coexistence Plan
Attendance and Documentation for the March 2007 Plenary
Attendance and Documentation for the March 2007 Plenary
3GPP Extended Date: Authors: July 2005 July 2005
[ Policies and Procedure Summary]
Motion to accept Draft p 2.0
Protected SSIDs Date: Authors: March 2005 March 2005
3GPP liaison report July 2006
[place presentation subject title text here]
Motions Date: Authors: January 2006
Velocity Effects on RSM-based Handover Decision
(Presentation name) For (Name of group) (Presenter’s name,title)
TGp Closing Report Date: Authors: March 2006 Month Year
On Coexistence Mechanisms
TGu-changes-from-d0-02-to-d0-03
On Coexistence Mechanisms
Reflector Tutorial Date: Authors: July 2006 Month Year
TGv Redline D0.07 Insert and Deletion
TGv Redline D0.06 Insert and Deletion
Experimental DTV Sensor
Binary Preamble Sequence Set
Binary Preamble Sequence Set
IEEE P Wireless RANs Date:
Spectrum Sensing Tiger Team
TGu-changes-from-d0-01-to-d0-02
LB73 Noise and Location Categories
TGy draft 2.0 with changebars from draft 1.0
TGv Redline D0.10 Insert and Deletion
WAPI Position Paper Sept 2005 Sept 2005 IEEE WG
Redline of draft P802.11w D2.2 Date: Authors:
TGr Proposed Draft Revision Notice
TGu-changes-from-d0-02-to-d0-03
[ Policies and Procedure Summary]
Draft P802.11s D1.03 WordConversion
Questions to the Contention-based Protocol (CBP) Study Group
July 2005 doc.: IEEE /0703r0 July 2005 Methodology for Employing Variable Attenuators in a Conducted Test Environment Authors: Date:
Motion to go to Letter Ballot
EC Motions – July 2005 Plenary
TGu-changes-from-d0-04-to-d0-05
Transition Nowhere Date: Authors: Sept 2005 Sept 2005
TGu-changes-from-d0-03-to-d0-04
TGu Motions Date: Authors: May 2006 May 2006
WAPI Position Paper Sept 2005 Sept 2005 IEEE WG
TGr Proposed Draft Revision Notice
Presentation transcript:

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 1 Velocity Effects on RSM-based Handover Decision Notice: This document has been prepared to assist IEEE 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 grants a free, irrevocable license to the IEEE to incorporate material contained in this contribution, and any modifications thereof, in the creation of an IEEE Standards publication; to copyright in the IEEE’s name any IEEE Standards publication even though it may include portions of this contribution; and at the IEEE’s sole discretion to permit others to reproduce in whole or in part the resulting IEEE Standards publication. The contributor also acknowledges and accepts that this contribution may be made public by IEEE Patent Policy and Procedures: The contributor is familiar with the IEEE 802 Patent Policy and Procedures, including the statement "IEEE standards may include the known use of patent(s), including patent applications, provided the IEEE receives assurance from the patent holder or applicant with respect to patents essential for compliance with both mandatory and optional portions of the standard." Early disclosure to the Working Group of patent information that might be relevant to the standard is essential to reduce the possibility for delays in the development process and increase the likelihood that the draft publication will be approved for publication. Please notify the Chair as early as possible, in written or electronic form, if patented technology (or technology under patent application) might be incorporated into a draft standard being developed within the IEEE Working Group. If you have questions, contact the IEEE Patent Committee Administrator at. Date: Authors: NameCompanyAddressPhone Marc Emmelman Technical University Berlin Einsteinufer Berlin Germany This work was conducted under the contract of TELEFUNKEN Radio Communication Systems GmbH within the framework of the WIGWAM [4] project founded by the German Ministry of Education and Research.

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 2 Abstract The velocity at which MTs travel will have an influence on the handover process in terms of handover delay. This analysis provides a mathematical model for the (minimum) experienced handover delay if the handover process employs a radio-signal-measurement based decision scheme using low-pass filtering and hysteresis margins. It will provide lower bounds on the required overlapping of adjacent radio cells to enable a seamless handover. In consequence, TGr should include MT’s velocity and handover delay in the list of metrics.

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 3 Motivation Seamless handover (bounded delay) essential for various applications, e.g.: –VoIP –High Speed Train Scenario (Transrapid) Provider requirements stress this ability [1] Delay influenced by several aspects, e.g.: –Knowledge on neighborhood (e.g. to reduce scanning time); TGk [2] –“Protocol mechanisms”; optimized by TGr –Overlapping area of adjacent APs –Velocity ??? Handover algorithms based on measuring the signal strength employing –Averaging / low-pass filtering (reduce short-term fading effects) –Hysteresis margin (reduce oscillation between APs)

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 4 Goal Analyze effect of velocity on the latter RSM-schemes to exploit associated handover delay and reveal requirements on overlapping region to minimize delay (--> network dimensioning)

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 5 Scenario & Handover Algorithm AP.oldAP.new R D O STA traveling at velocity v Ideal AWGN channel: μ(x) := K1 - K2 Log10[x] Idea: Use strongest signal for communication

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 6 Roadmap Open question: Does the overlap of adjacent radio cells required for a seamless handover depend on the mobiles velocity? TGt: Should “mobile velocity” (speed on how to change tunable attenuators) be a parameter for a certain metrics (e.g.: handover delay)? Steps: –Determine handover delay Effect of signal averaging a.k.a. low-pass filtering Effect of hysteresis margin –Use the latter delay to determine the overlapping required for a seamless handover

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 7 HO Delay due to Averaging the signal Averaging a.k.a. Low-Pass Filtering can be transformed into an integration over time as T = b / v Associated Delay ==>

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 8 HO Delay due to Hysteresis Margin Hysteresis Margin Associated Delay ==>

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 9 Total Handover Delay Total Delay: linear combination Example: High Speed Train [3,4]: –D=1km h=4dB T=600ms –Delay at 500 km/h: 630 ms

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 10 Overlapping for Seamless Handover As distance = delay * velocity Normalize overlapping to cell diameter Example: High Speed Train [3,4] –D=1km –h=4dB –T=600ms

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 11 Normalization using HO-Frequency Handover rate / frequency parameter of application scenario –f = v / D –E.g.: Pedestrian f = Hz Transrapid f = Hz Office environment f = 1.2 Hz Limit range of h / K2 [3,5,6] –Ericson Tech. Doc.: 3  h  5 [dB] –Zonoozi and Dassanayake: 15  K2  50 [dB]

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 12 Dynamic Adaptation of Hysteresis Margin For high velocities a.k.a high handover frequencies, reducing the hysteresis margin seems feasible since oscillation in between two APs is rather unlikely (Consider: h -> 0) Decrease of overlapping for low ho frequencies by one magnitude Not noticeable for high ho frequencies

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 13 Conclusion & Contributions Conclusion: –Solemnly employed RSM-based handover algorithms should be supported by other decision schemes in order to guarantee a seamless handover (esp. for small overlapping regions) –Dynamically adapting the hysteresis margin to the velocity results in rather small performance improvements Contributions: –Conducted detailed analysis on how the velocity effects the handover delay associated with a RSM-based HO decision –Provided lower bounds for the overlapping area of two adjacent cells guaranteeing seamless handover --> can be used for network dimensioning –Results generalized according to the handover frequency describing the application scenario –TKN-Tech-Report detailing the described analysis [7]

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 14 Relevance wrt. TGt Velocity of MTs has influence on Performance of WLAN systems Consider following metrics and their correlation –Handover Delay –MTs’ velocity (better: handover frequency) Performance evaluations involving handover should conduct experiments employing various speeds (at least specify the latter)

doc.: IEEE /0233r0 Submission March 2005 Marc Emmelmann, Technical University BerlinSlide 15 References [1]B. Ford, C. Cook, and R.B. Miller. Service Provider Requirements for n Detailed. doc.: IEEE /109r2. [2]802.11k Radio Resource Measurement -- Draft. IEEE P802.11k/D2.0, February [3]“Signal strength measurements in TEMS mobiles (GSM) white paper,” Ericson, Tech. Rep., [4] WIGWAM - Wireless Gigabit With Advanced Multimedia Support. online: [5] M. Zonoozi and P. Dassanayake, “Handover delay in cellular systems,” in Proc. of Personal Wireless Communications, IEEE International Conference on, Mumbai, India, December, , pp. 24 – 27. [6]A. Aguiar and J. Gross, “Wireless channel models,” Technical University of Berlin - Telecommunication Networks Group, Einsteinufer 25, Berlin Germany, Tech. Rep. TKN , April [Online]. Available: [7]M. Emmelmann, “Influence of Velocity on the Handover Delay associated with a Radio-Signal-Measurement-based Handover Decision,” Technical University of Berlin - Telecommunication Networks Group, Einsteinufer 25, Berlin Germany, Tech. Rep. TKN-05-xxx, Accepted for publication.