Performance Evaluation of the IEEE 802.16 MAC for QoS Support Aemen Hassaan Lodhi 05060021 Multimedia Communications Project (Spring 2006-07)

Slides:



Advertisements
Similar presentations
New NS-2 model developed for the IEEE specifications is now publicly available. This model was developed as part of the Seamless and Secure Mobility.
Advertisements

A Centralized Scheduling Algorithm based on Multi-path Routing in WiMax Mesh Network Yang Cao, Zhimin Liu and Yi Yang International Conference on Wireless.
Doc.: IEEE /0604r1 Submission May 2014 Slide 1 Modeling and Evaluating Variable Bit rate Video Steaming for ax Date: Authors:
Multimedia Communications QoS Support for Multimedia in IEEE Networks A Survey of Scheduling Techniques Aadil Zia Khan Department of Computer Science.
2005/12/06OPLAB, Dept. of IM, NTU1 Optimizing the ARQ Performance in Downlink Packet Data Systems With Scheduling Haitao Zheng, Member, IEEE Harish Viswanathan,
Presented by Santhi Priya Eda Vinutha Rumale.  Introduction  Approaches  Video Streaming Traffic Model  QOS in WiMAX  Video Traffic Classification.
Quality of Service Issues in Multi-Service Wireless Internet Links George Xylomenos and George C. Polyzos Department of Informatics Athens University of.
Why is TCP not good enough for Mobile Operators? Ulas C. Kozat
1 Solutions to Performance Problems in VOIP over Wireless LAN Wei Wang, Soung C. Liew Presented By Syed Zaidi.
A serve flow management strategy for IEEE BWA system in TDD mode Hsin-Hsien Liu
Performance Evaluation of the IEEE MAC for QoS Support Aemen Hassaan Lodhi
Implementing IEEE WiMAX standard in OPNET Present by : Chung Kei IP, Gabriel ( ) Supervisor : Dr. Jamil Khan FYP Symposium (ELEC4890A) The.
Performance Analysis of the IEEE Wireless Metropolitan Area Network nmgmt.cs.nchu.edu.tw 系統暨網路管理實驗室 Systems & Network Management Lab Reporter :黃文帥.
Video Quality Evaluation for Wireless Transmission with Robust Header Compression P. Seeling and M. Reisslein and F.H.P. Fitzek and S. Hendrata Fourth.
1 在 IEEE 系統上提供 QoS 機 制之研究 Student:Hsin-Hsien Liu Advisor:Ho-Ting Wu Date:
Wimax – Wireless Broadband
IEEE Std Technique Overview nmgmt.cs.nchu.edu.tw 系統暨網路管理實驗室 Systems & Network Management Lab Reporter :黃文帥 2007/09/18.
EE 4272Spring, 2003 Chapter 11. ATM and Frame Relay Overview of ATM Protocol Architecture ATM Logical Connections ATM Cells ATM Service Categories ATM.
1 A new QoS Architecture for IEEE and Spec. Instruction Speaker: Ming-Chia Hsieh Date:2005/05/03.
QoS of Voice over with NS simulator Prepared by: Yoshpa Benny Shraer Alexander Vainer Albert Instructors: Prof. Reuven Cohen Mr. Itai Dabran.
Doc.: IEEE /297r1 Submission July 2002 Mangharam/Demirhan, Intel LabsSlide 1 Project: IEEE P Working Group for Wireless Personal Area Networks.
OV Copyright © 2013 Logical Operations, Inc. All rights reserved. WAN Infrastructure  WAN Transmission Technologies  WAN Connectivity Methods 
1 IEEE Wireless MAN "Air Interface for Fixed Broadband Wireless Access Systems"
An Efficient QoS Scheduling Architecture for IEEE Wireless MANs Supriya Maheshwari Under the guidance of Prof. Sridhar Iyer and Prof. Krishna Paul.
Voice over WiFi R 張素熒 R 朱原陞 R 王振宇
A Study of the Bandwidth Management Architecture over IEEE WiMAX Student :Sih-Han Chen Advisor : Ho-Ting Wu Date :
IEEE WirelessMAN For Broadband Wireless Metropolitan Area Networks.
WiMAX: IEEE Wireless MANs. Sridhar IyerIIT Bombay2 Wireless networks  Wireless PANs (Bluetooth – IEEE ) –very low range –wireless connection.
Performance Analysis of an innovative scheduling algorithm for OFDMA based IEEE a systems E. Baccarelli, M.Biagi, C.Pelizzoni, N.Cordeschi This work.
2008/4/101 A DAPTIVE P OWER A LLOCATION AND C ALL A DMISSION C ONTROL IN M ULTISERVICE W IMAX A CCESS N ETWORKS IEEE Wireless Communications February 2007.
Voice Capacity analysis over Introducing VoIP and WLans IEEE based Wireless Local Area Networks (WLANs) are becoming popular While WLANs.
Fen Hou and Pin-Han Ho Department of Electrical and Computer Engineering, University of Waterloo, Waterloo, Ontario Wireless Communications and Mobile.
WiMAX: IEEE Wireless MANs Sridhar Iyer K R School of Information Technology IIT Bombay
Enhancing Bluetooth TCP Throughput via Packet Type Adaptation Ling-Jyh Chen, Rohit Kapoor, M. Y. Sanadidi, Mario Gerla Dept. of Computer Science, UCLA.
November 4, 2003APOC 2003 Wuhan, China 1/14 Demand Based Bandwidth Assignment MAC Protocol for Wireless LANs Presented by Ruibiao Qiu Department of Computer.
Information Technology Laboratory, Advance Network Technologies Division Overview of NIST IEEE implementation in NS-2 High Speed Network Technology.
Quality of Service Support in IEEE Networks Claudio Cicconetti, Luciano Lenzini, and Enzo Mingozzi, University of PisaCarl Eklund, Nokia Research.
NS-2 NIST add-on IEEE model (MAC+PHY) Miray Kas 28 Jan 2008.
1 A Novel Capacity Analysis for Wireless Backhaul Mesh Networks Tein-Yaw David Chung, Kung-Chun Lee, and Hsiao-Chih George Lee Department of Computer Science.
S Master’s thesis seminar 8th August 2006 QUALITY OF SERVICE AWARE ROUTING PROTOCOLS IN MOBILE AD HOC NETWORKS Thesis Author: Shan Gong Supervisor:Sven-Gustav.
Uplink Scheduling with Quality of Service in IEEE Networks Juliana Freitag and Nelson L. S. da Fonseca State University of Campinas, Sao Paulo,
A Multicast Mechanism in WiMax Mesh Network Jianfeng Chen, Wenhua Jiao, Pin Jiang, Qian Guo Asia-Pacific Conference on Communications, (APCC '06)
Dynamic Bandwidth Allocation with Fair Scheduling For WCDMA Systems Liang Xu, Xumin Shen, and Jon W. Mark University of Waterloo published in IEEE Wireless.
QoS Routing and Scheduling in TDMA based Wireless Mesh Backhaul Networks Chi-Yao Hong, Ai-Chun Pang,and Jean-Lien C. Wu IEEE Wireless Communications and.
Bandwidth Balancing in Multi- Channel IEEE Wireless Mesh networks Claudio Cicconetti, Ian F. Akyildiz School of Electrical and Computer Engineering.
HR/AB/VS, IIT-Bombay 1 Feb 8, 2006 An Opportunistic DRR (O-DRR) Uplink Scheduling Scheme for IEEE based Broadband Wireless Networks Hemant Kr Rath,
Doc.: IEEE /1263r2 Submission Dec 2009 Z. Chen, C. Zhu et al [Preliminary Simulation Results on Power Saving] Date: Authors: Slide.
Evaluating Mobility Support in ZigBee Networks
1 Admission Control for Non-preprovisioned Service Flow in Wireless Metropolitan Area Networks Liping Wang, Fuqiang Liu, Yusheng Ji, and Nararat Ruangchaijatupon.
Quality of Service Schemes for IEEE Wireless LANs-An Evaluation 主講人 : 黃政偉.
Video Quality Evaluation for Wireless Transmission with Robust Header Compression Fourth International Conference on Information, Communications & Signal.
1 A Cross-Layer Scheduling Algorithm With QoS Support in Wireless Networks Qingwen Liu, Student Member, IEEE, Xin Wang, Member, IEEE, and Georgios B. Giannakis,
Energy-efficient Sleep-mode Operations for Broadband Wireless Access Systems You-Lin Chen and Shiao-Li Tsao Department of Computer Science, National Chiao.
A Bandwidth Scheduling Algorithm Based on Minimum Interference Traffic in Mesh Mode Xu-Yajing, Li-ZhiTao, Zhong-XiuFang and Xu-HuiMin International Conference.
Performance Evaluation of the IEEE MAC for QoS Claudio Cicconetti, Alessandro Erta, Luciano Lenzini, and Enzo Mingozzi IEEE Transactions On Mobile.
Fair and Efficient multihop Scheduling Algorithm for IEEE BWA Systems Daehyon Kim and Aura Ganz International Conference on Broadband Networks 2005.
Downlink Scheduling for Multimedia Multicast/Broadcast over Mobile WiMAX Connection-oriented Multi- state Adaptation Source:IEEE Wireless Communications.
Access Link Capacity Monitoring with TFRC Probe Ling-Jyh Chen, Tony Sun, Dan Xu, M. Y. Sanadidi, Mario Gerla Computer Science Department, University of.
Ben-Gurion University of the Negev Department of Communication Systems Engineering.
WiMAX Chapter 11. Wireless Technologies WWAN (proposed) WMAN 70 Mbps ~50 Km a/e WiMAX New standard for Fixed broadband Wireless. Trying to.
Performance Evaluation of Scheduling in IEEE based Wireless Mesh Networks Bo Han, Weijia Jia,and Lidong Lin Computer Communications, 2007 Mei-zhen.
November, 1999 doc.:IEEE P /259 Submission Slide 1 Dr. Rajugopal Gubbi,ShareWave Streaming Support for b MAC Dr. Rajugopal Gubbi Nov, 1999.
System Architecture for C2C Communications Based on Mobile WiMAX Michiyo ASHIDA VTT Technical Research Centre of Finland
Page 1 End-to-End Bandwidth Reservation in IEEE Mesh Networks Claudio Cicconetti, Vanessa Gardellin, Luciano Lenzini, Enzo Mingozzi IEEE International.
Broadband Access Networks and Services Chapter 7 IEEE Standard Byeong Gi Lee Seoul National University EE Spring 2004.
Wireless Networks Spring 2007 WiMAX: Broadband Wireless Access.
WIMAX AND LTE.
A New Multipath Routing Protocol for Ad Hoc Wireless Networks
Analysis and Evaluation of a New MAC Protocol
WiMAX: IEEE Wireless MANs
Presentation transcript:

Performance Evaluation of the IEEE MAC for QoS Support Aemen Hassaan Lodhi Multimedia Communications Project (Spring )

Outline IEEE (WiMAX) Project Objective Simulation Environment Performance Metrics Experiments Carried out Discussion of results Conclusion

IEEE (WiMAX) Wireless MAN – provides network access to subscriber stations (SS) with radio base stations (BS) Offers an alternative to cabled access networks – fiber optic links, coaxial cables using cable modems, DSL links Supports nomadic and mobile clients on the go (IEEE e, 2004)

MAC layer Manage the resources of the link air-link in efficiently and provide Quality of Service (QoS) differentiation for different connections/streams Supporting Point to Multipoint and Mesh network models Performing Link Adaption & ARQ functions Transmission Scheduling Admission Control Link Initialization Fragmentation and Retransmission

Project Objective Verify via simulation the ability of IEEE MAC to handle different types of traffic having different QoS requirements The response of the protocol to different types of traffic and environments Simulations of IEEE on NS-2

Simulation Environment NS 2 Simulator PMP mode Time Division Multiple Access mode for transmission from SSs to BS Downlink and Uplink subframes duplexed using Frequency Division Duplex Full Duplex Subscriber Stations

Simulator environment

Simulator Environment

Problems with Chang Gung University’s WiMAX Module Couldn’t support more than 11~12 nodes when actual simulations were carried out Generated Segmentation faults Even though the transmissions from source nodes were cut-off the Base station continued to send traffic to receiver nodes!!

Problems with Chang Gung University’s WiMAX Module

WiMAX module by NIST, USA Number of Nodes (the simulator crashes after 24 nodes) Traffic (CBR, Poisson ON/OFF source, Pareto ON/OFF source to model web traffic, Real Audio, any mix of the above.) Radio Propagation models (2-Ray ground model for open/sub- urban areas and Shadowing model for urban areas) Mobility of nodes Packet Sizes A number of parameters at the physical layer e.g. modulation schemes Does NOT offer choice of scheduling mechanism at the MAC layer. Only Best Effort Scheduler is available

Traffic Models Constant Bit Rate Pareto ON/OFF source to model web traffic Voice over IP traffic – Followed the specs of ITU G7.11 – 64Kbps during talk spurt (fixed) – Average length of talk spurt 352 ms – Average length of silence period 650 ms Videoconference traffic could not be run

Performance Evaluation Throughput for different types of traffic %age utilization of bandwidth vs. Input load Packet loss rate for different traffic streams Comparison of the response of IEEE with Best Effort Scheduler to different traffic streams and different environments

Packet loss rate vs. Number of Nodes CBR stream, Stationary nodes, 2Ray Ground

Packet loss rate vs. Number of Nodes Pareto ON/OFF source, Stationary nodes, 2Ray Ground

Packet loss rate vs. Number of Nodes Pareto ON/OFF stream, Stationary nodes, 2Ray No. of mobile nodesPackets SentPackets Received

Packet loss rate vs. Number of Nodes CBR stream, Mobile nodes, 2Ray

Packet loss rate vs. Number of Nodes Pareto ON/OFF stream, Mobile nodes, 2Ray

Packet loss rate vs. Number of Nodes CBR stream, Stationary nodes, Shadowing

Packet loss rate vs. Number of Nodes Pareto On/Off stream, Mobile nodes, Shadowing

Packet loss rate vs. Number of Nodes VoIP Traffic, Stationary nodes, 2Ray

Packet loss rate vs. Number of Nodes Traffic Mix (CBR + VoIP + Web)

CBR Stationary vs. Mobile Nodes

CBR, 2Ray Ground vs. Shadowing

Pareto On/Off source, 2Ray vs. Shadowing

CBR vs. Pareto throughput

Throughput (Mbps) vs. Number of nodes

Percentage Utilization of Bandwidth vs. Number of Nodes

Conclusions Though utilization is high the standard with its current specifications (70 Mbps) will maximize its throughput at about 80 nodes. Without a proper classification of streams at the base station the streams with stringent QoS will suffer great loss With TDD polling mechanism the nodes generating traffic with stringent QoS requirements suffer a great deal

Packet loss rate vs. Number of Nodes Traffic Mix (CBR + VoIP + Web)

References 1. Claudio Cicconetti, Alessandro Erta, Luciano Lenzini, and Enzo Mingozzi, ‘Performance Evaluation of the IEEE MAC for QoS Support’, IEEE Transactions on Mobile Computing, VOL. 6, No. 1, January Jenhui Chen, Chih-Chieh Wang, Frank Chee-Da Tsai§, Chiang-Wei Chang, Syao-Syuan Liu, Jhenjhong Guo, Wei-Jen Lien, Jui-Hsiang Sum, and Chih-Hsin Hung, ‘The Design and Implementation of WiMAX Module for ns-2 Simulator’, ACM International Conference Proceeding Series, Proceeding from the 2006 workshop on ns-2: the IP network simulator 3. F.H.P. Fitzek and M. Reisslein, “MPEG4 and H.263 Video Traces for Network Performance Evaluation,” IEEE Network Magazine, vol. 15, no. 6, pp Nov NS-2 reference manual 5. ITU G7.11 specifications

References “Radio Propagation Models”, Chapter 17, NS Documentation P.M. Fiorini, “ Voice over IP (VoIP) for Enterprise Networks: Performance Implications & Traffic Models ”.