報告人:林祐沁 學生 指導教授:童曉儒 老師 March 2, 2009. 2 Wireless Video Surveillance Server Based on CDMA1x and H.264.

Slides:



Advertisements
Similar presentations
Jung-Hwan Low Redundancy Layered Multiple Description Scalable Coding Using The Subband Extension Of H.264/AVC Department of Electrical.
Advertisements

Streaming Video over the Internet
Internet for multimedia content Yogendra Pal Chief Engineer, All India Radio.
AMES-Cloud: A Framework of Adaptive Mobile Video Streaming and Efficient Social Video Sharing in the Clouds 作者:Xiaofei Wang, MinChen, Ted Taekyoung Kwon,
Improving TCP over Wireless by Selectively Protecting Packet Transmissions Carla F. Chiasserini Michele Garetto Michela Meo Dipartimento di Elettronica.
LOGO Video Packet Selection and Scheduling for Multipath Streaming IEEE TRANSACTIONS ON MULTIMEDIA, VOL. 9, NO. 3, APRIL 2007 Dan Jurca, Student Member,
UDP Lite for Wireless Video Streaming
Presented by Scott Kristjanson CMPT-820 Multimedia Systems Instructor: Dr. Mohamed Hefeeda 1 Cross-Layer Wireless Multimedia.
Yi Liang Department of Electrical Engineering Stanford University April 19, 2000 Loss Recovery and Adaptive Playout Control for Packet Voice Communications.
Multimedia Streaming Protocols1 Multimedia Streaming: Jun Lu Xinran (Ryan) Wu CSE228 Multimedia Systems Challenges and Protocols.
Presented by Santhi Priya Eda Vinutha Rumale.  Introduction  Approaches  Video Streaming Traffic Model  QOS in WiMAX  Video Traffic Classification.
Streaming Video over the Internet: Approaches and Directions Dapeng Wu, Yiwei Thomas Hou et al. Presented by: Abhishek Gupta
Adaptive Video Streaming in Vertical Handoff: A Case Study Ling-Jyh Chen, Guang Yang, Tony Sun, M. Y. Sanadidi, Mario Gerla Computer Science Department,
SVC-Based Multisource Streaming for Robust Video Transmission in Mobile Ad-Hoc Networks Thomas Schierl, Karsten Ganger, Cornelius Hellge, and Thomas Wiegand.
Video Transmission Adopting Scalable Video Coding over Time- varying Networks Chun-Su Park, Nam-Hyeong Kim, Sang-Hee Park, Goo-Rak Kwon, and Sung-Jea Ko,
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.
1 Solutions to Performance Problems in VOIP over Wireless LAN Wei Wang, Soung C. Liew Presented By Syed Zaidi.
Rate-Distortion Optimized Layered Coding with Unequal Error Protection for Robust Internet Video Michael Gallant, Member, IEEE, and Faouzi Kossentini,
QoS Management at Transport Layer V. Tsaoussidis and S. Wei Information Technology: Coding and Computing,2000. Proceedings. International Conference on,
Robust Scalable Video Streaming over Internet with Network-Adaptive Congestion Control and Unequal Loss Protection Quan Zang, Guijin Wang, Wenwu Zhu, and.
Efficient Fine Granularity Scalability Using Adaptive Leaky Factor Yunlong Gao and Lap-Pui Chau, Senior Member, IEEE IEEE TRANSACTIONS ON BROADCASTING,
Multimedia Applications r Multimedia requirements r Streaming r Phone over IP r Recovering from Jitter and Loss r RTP r Diff-serv, Int-serv, RSVP.
Wireless FGS video transmission using adaptive mode selection and unequal error protection Jianhua Wu and Jianfei Cai Nanyang Technological University.
Streaming Video Gabriel Nell UC Berkeley. Outline Scalable MPEG-4 video – Layered coding method – Integrated transport-decoder buffer model RAP streaming.
Reliable Transport Layers in Wireless Networks Mark Perillo Electrical and Computer Engineering.
Multi-Path Transport of FGS Video Jian Zhou, Huai-Rong Shao, Chia Shen and Ming-Ting Sun ICME 2003.
Proxy-based TCP over mobile nets1 Proxy-based TCP-friendly streaming over mobile networks Frank Hartung Uwe Horn Markus Kampmann Presented by Rob Elkind.
H.264/AVC for Wireless Applications Thomas Stockhammer, and Thomas Wiegand Institute for Communications Engineering, Munich University of Technology, Germany.
CS :: Fall 2003 Layered Coding and Networking Ketan Mayer-Patel.
Error-Resilient Coding and Decoding Strategies for Video Communication Thomas Stockhammer and Waqar Zia Presented by Li Ma.
Gursharan Singh Tatla Transport Layer 16-May
1 © 2005 Cisco Systems, Inc. All rights reserved. Cisco Public IP Telephony Introduction to VoIP Cisco Networking Academy Program.
CIS679: RTP and RTCP r Review of Last Lecture r Streaming from Web Server r RTP and RTCP.
Computer Networks Laboratory Utility-Based Adaptive Video Streaming Mechanisms Paolo V. Encomienda Nestor Michael C. Tiglao University of the Philippines.
Introduction to Multimedia Networking (2) Advanced Multimedia University of Palestine University of Palestine Eng. Wisam Zaqoot Eng. Wisam Zaqoot October.
Analysis of FEC Function for Real-Time DV Streaming Kazuhisa Matsuzono, Hitoshi Asaeda, Kazunori Sugiura, Osamu Nakamura, and Jun Murai Keio University.
Computer Networks: Multimedia Applications Ivan Marsic Rutgers University Chapter 3 – Multimedia & Real-time Applications.
Streaming Stored Audio and Video (1) and Video (1) Advanced Multimedia University of Palestine University of Palestine Eng. Wisam Zaqoot Eng. Wisam Zaqoot.
Kamal Singh, Árpád Huszák, David Ros, César Viho and Jeney Gábor
Wireless Mesh Network 指導教授:吳和庭教授、柯開維教授 報告:江昀庭 Source reference: Akyildiz, I.F. and Xudong Wang “A survey on wireless mesh networks” IEEE Communications.
Data Transmission Over Wireless Links Fan Yang
指導教授:林仁勇 老師 學生:吳忠融 2015/10/24 1. Author Chan, Y.-C. Chan, C.-T. Chen, Y.-C. Source IEE Proceedings of Communications, Volume 151, Issue 1, Feb 2004 Page(s):107.
Covilhã, 30 June Atílio Gameiro Page 1 The information in this document is provided as is and no guarantee or warranty is given that the information is.
1 Quality of resilience as a network reliability characterization tool Cholda, P.; Tapolcai, J.; Cinkler, T.; Wajda, K.; Jajszczyk, A.; Network, IEEE Network,
CROSS-LAYER OPTIMIZATION PRESENTED BY M RAHMAN ID:
Scalable Video Coding and Transport Over Broad-band wireless networks Authors: D. Wu, Y. Hou, and Y.-Q. Zhang Source: Proceedings of the IEEE, Volume:
Advance in Scalable Video Coding Proc. IEEE 2005, Invited paper Jens-Rainer Ohm, Member, IEEE.
Selective Retransmission of MPEG Video Streams over IP Networks Árpád Huszák, Sándor Imre Budapest University of Technology and Economics Department of.
Analysis of TCP Latency over Wireless Links Supporting FEC/ARQ-SR for Error Recovery Raja Abdelmoumen, Mohammad Malli, Chadi Barakat PLANETE group, INRIA.
TCP-Cognizant Adaptive Forward Error Correction in Wireless Networks
NUS.SOC.CS5248 Ooi Wei Tsang Rate Adaptations. NUS.SOC.CS5248 Ooi Wei Tsang You are Here Network Encoder Sender Middlebox Receiver Decoder.
Wireless and mobility support issues Georgios Karagiannis Ericsson.
AIMS’99 Workshop Heidelberg, May 1999 Assessing Audio Visual Quality P905 - AQUAVIT Assessment of Quality for audio-visual signals over Internet.
CSE5803 Advanced Internet Protocols and Applications (14) Introduction Developed in recent years, for low cost phone calls (long distance in particular).
Multiplexing Team Members: Cesar Chavez Arne Solas Steven Fong Vi Duong David Nguyen.
NUS.SOC.CS Roger Zimmermann (based in part on slides by Ooi Wei Tsang) Rate Adaptations.
Adaptive MPEG-4 Video Streaming with Bandwidth Estimation: Journal Version 指導老師:童曉儒 教授 報告人:張益瑞 /2/23.
Fundamentals of Multimedia Chapter 17 Wireless Networks 건국대학교 인터넷미디어공학부 임 창 훈.
RTP Functionalities for RTCWEB A combined view from the authors of draft-cbran-rtcweb-media-00 draft-cbran-rtcweb-media-00 draft-perkins-rtcweb-rtp-usage-02.
UDP Lite for Wireless Video Streaming Amoolya Singh, Almudena Konrad, and Anthony Joseph University of California, Berkeley Jun 19, 2000.
Multimedia Communication Systems Techniques, Standards, and Networks Chapter 6 Multimedia Communication Across Networks.
Networked Multimedia Basics. Network Characteristics.
NUS.SOC.CS Roger Zimmermann (based in part on slides by Ooi Wei Tsang) Rate Adaptations.
Chapter 9: Transport Layer
Instructor Materials Chapter 9: Transport Layer
Klara Nahrstedt Spring 2009
MDC METHOD FOR HDTV TRANSMISSION OVER EXISTING IP NETWORK
Overview of the Scalable Video Coding
Video Multicast over the Internet (IEEE Network, March/April 1999)
Presentation transcript:

報告人:林祐沁 學生 指導教授:童曉儒 老師 March 2, 2009

2 Wireless Video Surveillance Server Based on CDMA1x and H.264

3 Outline Introduction System Structure H.264 Coding Implementing Video Qos Control Strategies In Wireless Environment Conclusions

4 Introduction Increasing requirement for securing and network technology. Video surveillance based on IP has developed. Remote video surveillance : Wire -> Wireless(CDMA1x) This paper presents : A realization scheme of wireless video surveillance server based on CDMA1x and H.264. Discusses key technique and wireless video quality of service(QoS) control strategies.

5 System Structure embedded hardware platform and embedded Linux operation system. H.264 video compression standard. local-storage function, keep important information in breaking off. GPS orientation function, orientation and track of the mobile surveillance platform. some strategies, rate control, congestion control, error control.

6 Video Qos Control Strategies In Wireless Environment(1/2) Media stream requirement of network bandwidth, delay, jitter, packet loss rate. There are two thoughts : Make the network have the ability to guarantee QoS. -needs to reconstruct the core equipments Improves the transmission quality by the control function of the terminal system. -don’t change the network existing

7 Video Qos Control Strategies In Wireless Environment(2/2) End-to-end media stream QoS control structure :

8 Congestion Control of Wireless Video The most equation-based congestion control algorithm is TCP Friendly Rate Control(TFRC). packet loss is found, then reduce the transmit rate. This assumption is tenable in Wire environment. the bit error rate of the wired channel is very low.

9 Congestion Control of Wireless Video Adopts equation-based congestion control algorithm for wireless channel. Uses Markov mode of two states : wireless channel and wired channe.

10 Rate Control of Wireless Video Congestion control mechanism requires the transmit terminal adjust the transmit rate. rate control recede the quality of media. size of the picture, distortion, frame rate

11 Rate Control of Wireless Video The typical way is to control the bit number of coding output by adjusting the filling of coding buffer.

12 Error Control of Wireless Video wireless channel has high bit error rate. Error-toleration and correction video communication has a strict requirement for delay The common data service reliable protocol (such as TCP). - FEC adds redundancy information to make get back correct.

13 Error Control of Wireless Video This paper not only uses FEC but also adopts delay-bound retransmission. If,requests transmitter to retransmit N Tc : the present time. RTT : estimate trip time. Ds : time of tolerate estimate error, response of transmitter and decoding delay of receiver. Td(N) is the deadline of packet arriving.

14 Performance Analysis

15 Advanced wireless Multiuser Video Streaming Using The Scalable Video Coding Extensions Of H.264/Mpeg4-avc

16 Outline Introduction Scalable Video Coding And Media Adaptation Radio Link Buffer Management For Scalable Video Streams Simulation And Results Conclusion

17 Introduction Wireless video streaming services, the need for higher capacity radio access networks. One possible approach is the definition of quality-of-service (QoS) attributes for each media flow. admission control resource reservation

18 Introduction This paper presents : Dynamic sharing of the resources by SVC. Appropriate radio link buffer managementfor multiuser streaming services.

19 Scalable Video Coding And Media Adaptation Scalable Video Coding (SVC) An extension of H.264/MPEG4-AVC. Scalability function allows removal of parts of the bitstream. Reduced temporal, SNR, or spatial resolution. Bitstream consists of a base layer and one or several enhancement layers.

20 Scalable Video Coding Temporal scalability often based on a temporal decomposition using hierarchical B pictures.

21 Scalable Video Coding Spatial scalability motion-compensated prediction (MCP) structures for each layer. achieved different encoder quality : QCIF, CIF, and 4CIF SNR scalability progressive refinement (PR) coding. contains refinements for the residual (texture) data.

22 Adaptation and Transport of SVC hierarchical B pictures and the PR coding approach are combined. The priority scale is starting from the lowest temporal layer. PR fragments is next lower importance

23 Adaptation and Transport of SVC Rate adaptation dropping order Drop PR fragments of the highest temporal level present. Drop base layer of highest temporal level present.

24 SVC NAL Unit header Extension of the H.264/MPEG4-AVC NAL unit. Byte 1 : Forbidden Field(F), NAL Unit Reference Indicator(NRI), NAL Unit Type. Byte 2 : signals Simple Priority ID, discardable flag (D), Extended Bit (E). Byte 3 : Temporal,Spatial, and Quality Level.

25 Priority Labeling H.264/MPEG4-AVC only offer temporal scalability. SVC bitstreams offer a wide range of options for rate adaptation. Define the following intermediate priority value

26 Priority Labeling Existing solutions for temporal scalability, Final priority value for each packet is defined

27 Radio Link Buffer Management For Scalable Video Streams Wireless Multiuser Streaming Environment M users in the coverage area. NAL units encapsulated in RTP packets. Drop Strategy If there are still packets which contain PR fragments(i.e. with pr <= 254) in the buffer. base layer fragments with no further dependencies (i.e. with pr = 255) base layer fragments (i.e. with pr > 254)

28 Simulation And Results

29 Simulation And Results

30 Simulation And Results

31 Simulation And Results