Performance Analysis of MPEG-4 Video Stream with FEC Error Recovery over IEEE 802.11 DCF WLAN Cheng-Han Lin, Huai-Wen Zhang, Ce-Kuen Shieh Department of.

Slides:



Advertisements
Similar presentations
A Bandwidth Allocation/Sharing/Extension Protocol for Multimedia Over IEEE Ad Hoc Wireless LANs Shiann-Tsong Sheu and Tzu-fang Sheu IEEE JOURNAL.
Advertisements

Improving TCP over Wireless by Selectively Protecting Packet Transmissions Carla F. Chiasserini Michele Garetto Michela Meo Dipartimento di Elettronica.
SELECT: Self-Learning Collision Avoidance for Wireless Networks Chun-Cheng Chen, Eunsoo, Seo, Hwangnam Kim, and Haiyun Luo Department of Computer Science,
1 Distributed Control Algorithms for Service Differentiation in Wireless Packet Networks INFOCOM 2001 Michael Barry, Andrew T. Campbell Andras Veres.
Presented by Scott Kristjanson CMPT-820 Multimedia Systems Instructor: Dr. Mohamed Hefeeda 1 Cross-Layer Wireless Multimedia.
Contention Window Optimization for IEEE DCF Access Control D. J. Deng, C. H. Ke, H. H. Chen, and Y. M. Huang IEEE Transaction on Wireless Communication.
Module C- Part 1 WLAN Performance Aspects
Presented by Santhi Priya Eda Vinutha Rumale.  Introduction  Approaches  Video Streaming Traffic Model  QOS in WiMAX  Video Traffic Classification.
Sang-Chun Han Hwangjun Song Jun Heo International Conference on Intelligent Hiding and Multimedia Signal Processing (IIH-MSP), Feb, /05 Feb 2009.
Dynamic Tuning of the IEEE Protocol to Achieve a Theoretical Throughput Limit Frederico Calì, Marco Conti, and Enrico Gregori IEEE/ACM TRANSACTIONS.
Evaluate IEEE e EDCA Performance Tyler Ngo CMPE 257.
End-to-End TCP-Friendly Streaming Protocol and Bit Allocation for Scalable Video Over Wireless Internet Fan Yang, Qian Zhang, Wenwu Zhu, and Ya-Qin Zhang.
Slow Start Backoff Algorithm for Wireless Ad Hoc Networks Der-Jiunn Deng Department of Computer Science and Information Engineering National Changhua University.
An Error-Resilient GOP Structure for Robust Video Transmission Tao Fang, Lap-Pui Chau Electrical and Electronic Engineering, Nanyan Techonological University.
Performance analysis of DCF in presence of hidden nodes and collision prevention mechanism. - Ruchir Bhanushali. - Sagar. Shah.
A Model for MPEG with Forward Error Correction (FEC) and TCP-Friendly Bandwidth Huahui Wu, Mark Claypool & Robert Kinicki Computer Science Department Worcester.
Performance Enhancement of TFRC in Wireless Ad Hoc Networks Travis Grant – Mingzhe Li, Choong-Soo Lee, Emmanuel.
Reliable and Smooth Fine Granular Scalable Video Streaming Zhibo Chen Yun He 2002 IEEE Region 10 Conference on Computer, Communications, Control and Power.
Performance Enhancement of TFRC in Wireless Ad Hoc Networks Mingzhe Li, Choong-Soo Lee, Emmanuel Agu, Mark Claypool and Bob Kinicki Computer Science Department.
Napoli - 21 February 2004 – Simone Merlin SLIDE 1 Analysis of the hidden terminal effect in multi-rate IEEE b networks Simone Merlin Department of.
Using Redundancy and Interleaving to Ameliorate the Effects of Packet Loss in a Video Stream Yali Zhu, Mark Claypool and Yanlin Liu Department of Computer.
Multi-Path Transport of FGS Video Jian Zhou, Huai-Rong Shao, Chia Shen and Ming-Ting Sun ICME 2003.
Using Interleaving to Ameliorate the Effects of Packet Loss in a Video Stream Mark Claypool and Yali Zhu Computer Science Department Worcester Polytechnic.
On the Performance Behavior of IEEE Distributed Coordination Function M.K.Sidiropoulos, J.S.Vardakas and M.D.Logothetis Wire Communications Laboratory,
Elec 599 Report: Modeling Media Access in Embedded Two-Flow Topologies of Multi-hop Wireless Networks Jingpu Shi Advisor: Dr. Edward Knightly Department.
Video Capacity of WLANs with a Multiuser Perceptual Quality Constraint Authors: Jing Hu, Sayantan Choudhury, Jerry D. Gibson Presented by: Vishwas Sathyaprakash,
Delay Analysis of IEEE in Single-Hop Networks Marcel M. Carvalho, J.J.Garcia-Luna-Aceves.
A Multichain Backoff Mechanism for IEEE WLANs Alkesh Patel & Hemant Patel ECE 695 – Leading Discussion By : Shiang- Rung Ye and Yu-Chee Tseng.
Opersating Mode DCF: distributed coordination function
A Virtual Collision Mechanism for IEEE DCF
2014 YU-ANTL Lab Seminar Performance Analysis of the IEEE Distributed Coordination Function Giuseppe Bianchi April 12, 2014 Yashashree.
IEEE Journal on Selected Areas in Communications
Does Packet Replication Along Multipath Really Help ? Swades DE Chunming QIAO EE Department CSE Department State University of New York at Buffalo Buffalo,
Qian Zhang and Christopher LIM Department of Computer Science and Engineering, Hong Kong University of Science and Technology IEEE ICC 2009.
Reducing Traffic Congestion in ZigBee Networks: Experimental Results th International Wireless Communications and Mobile Computing Conference (IWCMC)
Multicast Algorithms for Multi- Channel Wireless Mesh Networks Guokai Zeng, Bo Wang, Yong Ding, Li Xiao, Matt Mutka Department of Computer Science and.
Fen Hou and Pin-Han Ho Department of Electrical and Computer Engineering, University of Waterloo, Waterloo, Ontario Wireless Communications and Mobile.
Distributed Call Admission Control for VoIP over WLANs based on Channel Load Estimation Paolo Dini, Nicola Baldo, Jaume Nin-Guerrero, Josep Mangues-Bafalluy,
Distribution of Multimedia Data Over a Wireless Network (DMDoWN): An Introduction Presented By: Rafidah Md Noor Faculty of Computer Science & Information.
1 Adaptable applications Towards Balancing Network and Terminal Resources to Improve Video Quality D. Jarnikov.
Packet Dispersion in IEEE Wireless Networks Mingzhe Li, Mark Claypool and Bob Kinicki WPI Computer Science Department Worcester, MA 01609
1 Performance Analysis of the Distributed Coordination Function under Sporadic Traffic joint work with C.-F. Chiasserini (Politecnico di Torino)
Vertical Optimization Of Data Transmission For Mobile Wireless Terminals MICHAEL METHFESSEL, KAI F. DOMBROWSKI, PETER LANGENDORFER, HORST FRANKENFELDT,
Full auto rate MAC protocol for wireless ad hoc networks Z. Li, A. Das, A.K. Gupta and S. Nandi School of Computer Engineering Nanyang Technological University.
Channel Access Delay Analysis of IEEE Best Effort Services Hossein Ghaffarian, Mahmood Fathy, Mohsen Soryani Dept. of Computer Engineering Iran.
Yufeng Shan, Su Yi, Shivkumar Kalyanaraman and John W. Woods
Selective Retransmission of MPEG Video Streams over IP Networks Árpád Huszák, Sándor Imre Budapest University of Technology and Economics Department of.
Performance Analysis of IEEE Distributed Coordination Function (DCF) Author : Giuseppe Bianchi Presented by: 李政修 December 23, 2003.
TCP-Cognizant Adaptive Forward Error Correction in Wireless Networks
A Robust Luby Transform Encoding Pattern-Aware Symbol Packetization Algorithm for Video Streaming Over Wireless Network Dongju Lee and Hwangjun Song IEEE.
Sunhun Lee and Kwangsue Chung School of Electronics Engineering, Kwangwoon University 22 nd International Conference on Advanced Information Networking.
THROUGHPUT ANALYSIS OF IEEE DCF BASIC IN PRESENCE OF HIDDEN STATIONS Shahriar Rahman Stanford Electrical Engineering
Dept. of Mobile Systems Engineering Junghoon Kim.
A Multi-Channel CSMA MAC Protocol with Receiver Based Channel Selection for Multihop Wireless Networks Nitin Jain, Samir R. Das Department of Electrical.
Authors: HUAHUI WU, MARK CLAYPOOL, and ROBERT KINICKI Presented By Siddharth Singla Jangsung Lee Adjusting Forward Error Correction with Temporal Scaling.
A Cluster Based On-demand Multi- Channel MAC Protocol for Wireless Multimedia Sensor Network Cheng Li1, Pu Wang1, Hsiao-Hwa Chen2, and Mohsen Guizani3.
How Physical Carrier Sense Affects System Throughput in IEEE Wireless Networks Zheng Zeng, Yong Yang and Jennifer C. Hou Department of Computer.
Toward Reliable and Efficient Reporting in Wireless Sensor Networks Authors: Fatma Bouabdallah Nizar Bouabdallah Raouf Boutaba.
Rate-Adaptive MAC Protocol in High-Rate Personal Area Networks Byung-Seo Kim, Yuguang Fang and Tan F. Wong Department of Electrical and Computer Engineering.
Network System Lab. Sungkyunkwan Univ. Differentiated Access Mechanism in Cognitive Radio Networks with Energy-Harvesting Nodes Network System Lab. Yunmin.
Performance Enhancement of Multirate IEEE WLANs with Geographically Scattered Stations 1 Duck-Yong Yang, 2 Tae-Jin Lee, 3 Kyunghun Jang, 3 Jin-Bong.
1 ICCCN 2003 Modelling TCP Reno with Spurious Timeouts in Wireless Mobile Environments Shaojian Fu School of Computer Science University of Oklahoma.
Performance Analysis of MPEG-4 Video Stream with FEC Error Recovery over IEEE DCF WLAN Cheng-Han Lin, Huai-Wen Zhang, Ce-Kuen Shieh Department of.
On the Physical Carrier Sense in Wireless Ad-hoc Networks
New Insights from A Fixed Point Analysis of Single Cell IEEE 802
Author: Giuseppe Bianchi
MR2RP: The Multi-Rate and Multi-Range Routing Protocol for IEEE 802
The Impact of Multihop Wireless Channel on TCP Performance
of the IEEE Distributed Coordination Function
Adjusting Forward Error Correction for TCP- Friendly Streaming MPEG
Presentation transcript:

Performance Analysis of MPEG-4 Video Stream with FEC Error Recovery over IEEE DCF WLAN Cheng-Han Lin, Huai-Wen Zhang, Ce-Kuen Shieh Department of Electrical Engineering, National Cheng Kung University, Taiwan Wen-Shyang Hwang* Department of Electrical Engineering, National Kaohsiung University of Applied Sciences, Taiwan WiOpt - WiVid 2013

Performance Analysis of MPEG-4 Video Stream with FEC Error Recovery over IEEE DCF WLAN Cheng-Han Lin, Huai-Wen Zhang, Ce-Kuen Shieh Department of Electrical Engineering, National Cheng Kung University, Taiwan Wen-Shyang Hwang* Department of Electrical Engineering, National Kaohsiung University of Applied Sciences, Taiwan WiOpt - WiVid 2013

3 Outline Introduction Proposed Analytical Model Numerical Results Conclusion WiOpt - WiVid 2013

4 Introduction Wireless Local Area Network (WLAN)  Convenience of wireless access  The use of mobile devices is increasing  The data rates and bandwidth are increasing  Internet-based video streaming applications is popular The performance analysis of video streaming over wireless networks has emerged as an important issue in the multimedia communications field. WiOpt - WiVid 2013

5 Introduction Wireless Local Area Network (WLAN)  Convenience of wireless access  The use of mobile devices is increasing  The data rates and bandwidth are increasing  Internet-based video streaming applications is popular The performance analysis of video streaming over wireless networks has emerged as an important issue in the multimedia communications field. WiOpt - WiVid 2013

6 Introduction The literature contains many models based on a two- dimensional Markov chain for analyzing the performance of IEEE DCF networks [7-10]. [7] The model assumed that unlimited retransmissions and no wireless bit errors. [8] The frame retransmission limit is taken into consideration. The effects of wireless bit errors on the frame loss are ignored. [9] The wireless bit errors is taken into consideration. The frame retransmission limit is ignored. [10] A model analyzes the effects of both the frame retransmission limit and wireless bit errors. WiOpt - WiVid 2013

7 Introduction The literature contains many models based on a two- dimensional Markov chain for analyzing the performance of IEEE DCF networks [7-10]. [7] The model assumed that unlimited retransmissions and no wireless bit errors. [8] The frame retransmission limit is taken into consideration. The effects of wireless bit errors on the frame loss are ignored. [9] The wireless bit errors is taken into consideration. The frame retransmission limit is ignored. [10] A model analyzes the effects of both the frame retransmission limit and wireless bit errors. WiOpt - WiVid 2013

8 Introduction The [7-10] focus on the system performance, but do not enable the video quality over IEEE DCF WLANs to be directly assessed. [13] Playable Frame Rate (PFR), for analyzing the video quality of MPEG-4 video streaming over WLANs. The assumptions regarding the wireless transmission were overly simple. [14] A more realistic model in which the effects on the frame losses of wireless channel errors and transmission collisions were both taken into account.  However, the models in [13-14] did not consider the effects of error recovery on the MPEG video streaming quality. WiOpt - WiVid 2013

9 Introduction The [7-10] focus on the system performance, but do not enable the video quality over IEEE DCF WLANs to be directly assessed. [13] Playable Frame Rate (PFR), for analyzing the video quality of MPEG-4 video streaming over WLANs. The assumptions regarding the wireless transmission were overly simple. [14] A more realistic model in which the effects on the frame losses of wireless channel errors and transmission collisions were both taken into account.  However, the models in [13-14] did not consider the effects of error recovery on the MPEG video streaming quality. WiOpt - WiVid 2013

10 Introduction This paper proposes an analytical model for evaluating the performance of MPEG-4 video streaming over IEEE DCF WLANs with FEC error protection.  The model considers both congestion losses and wireless channel losses.  The model enforces the frame retransmission constraint prescribed in IEEE  The model takes account of the FEC error recovery performance in improving the perceived video quality at the receiver end. WiOpt - WiVid 2013

11 Introduction This paper proposes an analytical model for evaluating the performance of MPEG-4 video streaming over IEEE DCF WLANs with FEC error protection.  The model considers both congestion losses and wireless channel losses.  The model enforces the frame retransmission constraint prescribed in IEEE  The model takes account of the FEC error recovery performance in improving the perceived video quality at the receiver end. WiOpt - WiVid 2013

Outline Introduction Proposed Analytical Model Numerical Results Conclusion WiOpt - WiVid 2013

Proposed Analytical Model 1.Performance analysis of IEEE DCF WLANs The loss of a transmission frame can be caused by:  Congestion loss (P C )  Wireless loss (P E ) The probability of frame transmission failure WiOpt - WiVid 2013

Proposed Analytical Model 1.Performance analysis of IEEE DCF WLANs The loss of a transmission frame can be caused by:  Congestion loss (P C )  Wireless loss (P E ) The probability of frame transmission failure WiOpt - WiVid 2013

Proposed Analytical Model Wireless loss (P E )  Loss probability of data frame (P E_data )  Loss probability of ACK frame (P E_ACK ) WiOpt - WiVid 2013

Proposed Analytical Model Wireless loss (P E )  Loss probability of data frame (P E_data )  Loss probability of ACK frame (P E_ACK ) WiOpt - WiVid 2013

Proposed Analytical Model Congestion loss (P C )  The collision probability for any station competing for channel access  The probability of an station transmits a frame [1] m: maximum backoff stage [1] “Saturation throughput analysis of error-prone wireless networks,” Wiley Journal of Wireless Communications and Mobile Computing 2005

Proposed Analytical Model Congestion loss (P C )  The collision probability for any station competing for channel access  The probability of an station transmits a frame [1] m: maximum backoff stage [1] “Saturation throughput analysis of error-prone wireless networks,” Wiley Journal of Wireless Communications and Mobile Computing 2005

Proposed Analytical Model The probability of a frame transmission failure The effective failure probability of each frame T max : maximum number of frame retransmission WiOpt - WiVid 2013

Proposed Analytical Model The probability of a frame transmission failure The effective failure probability of each frame T max : maximum number of frame retransmission WiOpt - WiVid 2013

Proposed Analytical Model 2.Analytical model for MPEG-4 video streaming with FEC error recovery The probability of a successful frame transmission  n: the total number of source frame (k) and redundant frame (h)  k: the number of source frame WiOpt - WiVid 2013

Proposed Analytical Model 2.Analytical model for MPEG-4 video streaming with FEC error recovery The probability of a successful frame transmission  n: the total number of source frame (k) and redundant frame (h)  k: the number of source frame WiOpt - WiVid 2013

Proposed Analytical Model The successful transmission probabilities of the I-, P- and B- frames in the GOP WiOpt - WiVid 2013 S I, S P, S B Numbers of MAC I-, P-, and B-frames. S IR, S PR, S BR Numbers of FEC redundant I-, P-, and B- frames.

Proposed Analytical Model The successful transmission probabilities of the I-, P- and B- frames in the GOP WiOpt - WiVid 2013 S I, S P, S B Numbers of MAC I-, P-, and B-frames. S IR, S PR, S BR Numbers of FEC redundant I-, P-, and B- frames.

Proposed Analytical Model Playable Frame Rate (PFR)  A performance metric for evaluating the quality of video streaming over lossy network.  The ratio of the expected number of playable video frames at the receiver to the total number of video frames transmitted by the sender. R I, R P, R B Playable frame rates of I-, P-, and B-frames over entire video sequence.

Proposed Analytical Model Playable Frame Rate (PFR)  A performance metric for evaluating the quality of video streaming over lossy network.  The ratio of the expected number of playable video frames at the receiver to the total number of video frames transmitted by the sender. R I, R P, R B Playable frame rates of I-, P-, and B-frames over entire video sequence.

Proposed Analytical Model The PFR of I-frames The effective GOP transmission rate  Note that the PFR is computed on a per-second basis  R F : the encoding frame rate per second  N P and N B : the number of P- and B-frames in the GOP

Proposed Analytical Model The PFR of I-frames The effective GOP transmission rate  Note that the PFR is computed on a per-second basis  R F : the encoding frame rate per second  N P and N B : the number of P- and B-frames in the GOP

Proposed Analytical Model The playable frame rate for P-frame

Proposed Analytical Model The playable frame rate for P-frame

Proposed Analytical Model The playable frame rate for B-frame

Proposed Analytical Model The playable frame rate for B-frame

Proposed Analytical Model The overall PFR for a FEC-Protected MPEG video stream is equal to the sum of the PFRs of the I-, P- and B-frames, respectively

Proposed Analytical Model The overall PFR for a FEC-Protected MPEG video stream is equal to the sum of the PFRs of the I-, P- and B-frames, respectively

Outline Introduction Proposed Analytical Model Numerical Results Conclusion WiOpt - WiVid 2013

Numerical Results Simulation topology Parameter settings WiOpt - WiVid 2013 Packet payload (L data )8184 bitsSlot time50 μs ACK (L ACK )240 bitsDIFS128μs MAC header272 bitsSIFS28μs PHY header128 bitsCW min 32 Channel Data Rate1 MbpsT max 5 BEP (P E_bit )10 -5 CICI 3.91 NPNP 3CPCP 2.05 NBNB 8CBCB 1.52

Numerical Results Variation of Playable Frame Rate with number of active stations Bit Error Probability (BEP) = Bit Error Probability (BEP) = WiOpt - WiVid 2013

Numerical Results Variation of Playable Frame Rate with number of active stations Bit Error Probability (BEP) = Bit Error Probability (BEP) = WiOpt - WiVid 2013

Numerical Results Variation of Playable Frame Rate with number of active stations The maximum backoff stage (m) = 4 The maximum backoff stage (m) = 6 WiOpt - WiVid 2013

Numerical Results Variation of Playable Frame Rate with number of active stations The maximum backoff stage (m) = 4 The maximum backoff stage (m) = 6 WiOpt - WiVid 2013

Outline Introduction Proposed Analytical Model Numerical Results Conclusion WiOpt - WiVid 2013

Conclusion This paper has proposed an analytical model for evaluating the video quality of MPEG-4 video streaming over FEC-protected IEEE DCF WLANs. The proposed model considers  the effects of congestion and wireless frame losses  the performance of the FEC error recovery mechanism The proposed model has been validated by comparing  the predicted results  the results obtained from NS-2 simulations  two existing analytical models [8, 9]. WiOpt - WiVid 2013