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http://dx.doi.org/10.4218/etrij.16.2615.0038

Design of Synchronization and T-STD Model for 3DTV Service over Hybrid Networks  

Yun, Kugjin (Broadcasting Media Research Laboratory, ETRI)
Cheong, Won-Sik (Broadcasting Media Research Laboratory, ETRI)
Lee, Gwangsoon (Broadcasting Media Research Laboratory, ETRI)
Li, Xiaorui (School of Electronics & Information, Kyung Hee University)
Kim, Kyuheon (School of Electronics & Information, Kyung Hee University)
Publication Information
ETRI Journal / v.38, no.5, 2016 , pp. 838-846 More about this Journal
Abstract
The objective of digital broadcasting has evolved from providing a plain video service to offering a realistic visual experience. Technologies such as 3DTV and UHDTV have been suggested to achieve this new objective by providing an immersive and stereoscopic visual experience. However, owing to the high bandwidth requirements of such services, the broadcasting industry has faced a challenge to find a new transport mechanism for overcoming the bandwidth limitation. The standardization organizations, the Advanced Television Systems Committee, Digital Video Broadcasting, and Telecommunications Technology Association, have been working on the integration of broadcasting and a broadband network (IP) to resolve the bandwidth issue of realistic video services. This paper introduces a frame-level timeline synchronization and transport system target decoder model for providing a stable 3DTV service over a hybrid network. The experimental results indicate that the proposed technologies can be successfully adopted as a reference model in a broadcast-broadband hybrid 3DTV service and other IP-associated hybrid broadcasting services.
Keywords
Hybrid; T-STD model; Stereoscopic; 3DTV; MPEG-2 TS; MPEG-DASH;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
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1 S. Ahn and M. Kim, "Adaptive Loop Filtering Based Interview Video Coding in an Hybrid Video Codec with MPEG-2 and HEVC for Stereoscopic Video Coding," IVMSP Workshop, Seoul, Rep. of Korea, June 10-12, 2013, pp. 1-4.
2 S. Kim et al., "Development of Fixed and Mobile Hybrid 3DTV for Next Generation Terrestrial DTV," 3D-Con.: True Vision-Capture, Transmission Display 3D Video, Aberdeen, Scotland, Oct. 7-8, 2013, pp. 1-2.
3 T. Na et al., "A Hybrid Stereoscopic Video Coding Scheme Based on MPEG-2 and HEVC for 3DTV Services," IEEE Trans. Circuits Syst. Video Technol., vol. 23, no. 9, Sept. 2013, pp. 1542-1554.   DOI
4 ATSC, "System Requirements for ATSC3.0," Doc. TG3-S31-087r10, Apr.2014.
5 DVB, CM-3DTV0109, "DVB CM 3DTV Commercial Requirement for DVB 3D-TV (Phase 4a)," May 2014.
6 TTA, TTAR-07.0015, "Technical Report for High Quality Panorama Video," Nov. 2014.
7 TTA, TTAR-07.0016, "Transmission and Reception Technology for Multi-view 3DTV Broadcasting," Nov. 2014.
8 B. Kim et al., "A Study on Feasibility of Dual-Channel 3DTV Service via ATSC-M/H," ETRI J., vol. 34, no. 1, Feb. 2012, pp. 17-23.   DOI
9 A. Baba et al., "Seamless, Synchronous, and Supportive: Welcome to Hybridcast: an Advanced Hybrid Broadcast and Broadband System," IEEE Consum. Electron. Mag., Apr. 2012, pp. 43-52.
10 H. Kwon et al., "Program Associated 3D Non-real-time Service on Terrestrial DTV," IEEE Trans. Consum. Electron., vol. 58, no. 1, Feb. 2012, pp. 132-136.   DOI
11 B. Kim et al., "World's First Hybrid 3DTV Broadcasting Experiment," IEEE Int. Symp. Broadband Multimedia Syst. Broadcast., Seoul, Rep. of Korea, June 27-29, 2012, pp. 1-5.
12 ISIO/IEC 13818-1:2013, Information Technology-Generic Coding of Moving Pictures and Associated Audio Information: System, June. 2013.
13 ISO/IEC 13818-1:201x/FDAM 2, Delivery of Timeline for External Data, Dec. 2014.
14 ISO/IEC 23009-1:2014, Dynamic Adaptive Streaming over HTTP (DASH)-Part 1: Media Presentation description and segment formats, May 2014.
15 J. Lee et al., "Service Compatible Hybrid Coded 3DTV Service Using Terrestrial Broadcasting and Broadband Network Channels," Proc. 3DSA, June 2013, pp. 9-1-9-5.
16 K. Yun, W. Cheong, and K. Kim, "A Synchronization and T-STD Model for 3DTV Video Distribution and Consumption over Hybrid Network," IEICE Trans. Inform. Syst., vol. E98.D, no. 10, Oct. 2015, pp. 1884-1887.   DOI
17 T. Wiegand et al., "Overview of the H.264/AVC Video Coding Standard," IEEE Trans. Circuits Syst. Video Technol, vol. 13, no. 7, July 2003, pp. 645-656.   DOI
18 J. Lee et al., "A 3DTV Broadcasting Scheme for High-Quality Stereoscopic Content over a Hybrid Network," IEEE Trans. Broadcast., vol. 59, no. 2, June 2013, pp. 281-289.   DOI
19 K. Yun et al., "Efficient Multiplexing Scheme of Stereoscopic Video Sequences for Digital Broadcasting Services," ETRI J., vol. 32, no. 6, Dec. 2010, pp. 961-964.   DOI
20 T. Schierl and S. Narasimhan, "Transport and Storage Systems for 3-D Video Using MPEG-2 Systems, RTP, and ISO File Format," Proc. IEEE, vol. 99, no. 4, Apr. 2011, pp. 671-683.   DOI
21 A. Vetro, "Frame Compatible Formats for 3D Video Distribution," IEEE Int. Conf. Image Process., Hong Kong, Sept. 26-29, 2010, pp. 2405-2408.
22 P. Yin et al., "Description of MFC Video Coding Technology Proposal by Dolby," MPEG Meeting, Shanghai, China, Oct. 2012, Doc. m26661.
23 DVB, TM-3DTV0093, Digital Video Broadcasting (DVB); Plano-stereoscopic 3DTV; Part 4: Service Frame Compatible Plano-Stereoscopic for HEVC Coded Services, Jan. 2015.
24 N. Hur et al., "3DTV Broadcasting and Distribution Systems," IEEE Trans. Broadcast., vol. 57, no. 2, June 2011, pp. 395-407.   DOI