Title :
Ultrahigh-Definition Video Transmission and Extremely Green Optical Networks for Future
Author :
Namiki, Shu ; Kurosu, Takayuki ; Tanizawa, Ken ; Kurumida, Junya ; Hasama, Toshifumi ; Ishikawa, Hiroshi ; Nakatogawa, Tsuyoshi ; Nakamura, Madoka ; Oyamada, Kimiyuki
Author_Institution :
Network Photonics Res. Center, Nat. Inst. of Adv. Ind. Sci. & Technol., Tsukuba, Japan
Abstract :
The Internet traffic is essentially increasing because the contents are more associated with video, a higher definition video, rather than just text or picture. In fact, next-generation television (TV) standards are being explored toward the so-called 8-k definition, or ultrahigh-definition TV (UHDTV) that requires a bandwidth more than 70 Gb/s for real-time transmission. In the long run, chunks of such video data will eventually prevail over the network, and this trend would ensure a persistent traffic growth for the next decades to come. However, we will point out that the present IP-based technology cannot scale to the increasing traffic for the future mostly due to energy-consumption limits and will become a grave bottleneck for the sustainable growth of the traffic. We will then argue that the only promising solution for this would be the utilization of optical circuit switching, potentially having a few digits better energy efficiency than the present IP-router-based network. As specific implications, we are proposing the concept of the dynamic optical-path network (DOPN). We discuss how to scale the DOPN to the WAN, and show that an extremely green optical network for video-related services is possible at a clean-slate level. Then, we argue that DOPN will be first applied to LANs for broadcasting stations where a technology for scalable network interface cards are essential to accommodate the real-time UHDTV transmissions. Finally, we will briefly introduce our recent demonstration of UHDTV video transmissions using the optical time-division multiplexing based on integratable ultrafast optical devices only.
Keywords :
IP networks; Internet; high definition television; optical fibre LAN; optical switches; real-time systems; telecommunication network routing; telecommunication traffic; television broadcasting; television standards; time division multiplexing; video signal processing; DOPN; IP-based technology; IP-router-based network; Internet traffic; LAN; TV standards; UHDTV video transmissions; WAN; broadcasting stations; clean-slate level; dynamic optical-path network; energy efficiency; energy-consumption limits; extremely green optical networks; higher definition video; integratable ultrafast optical devices; next-generation television standards; optical circuit switching; optical time-division multiplexing; persistent traffic growth; real-time UHDTV transmissions; real-time transmission; scalable network interface cards; sustainable growth; ultrahigh-definition TV; ultrahigh-definition video transmission; video data; video-related services; Bandwidth; Circuits; High definition video; Internet; Optical devices; Optical fiber networks; TV; Telecommunication traffic; Ultrafast optics; Ultraviolet sources; Dynamic optical-path networks (DOPN); optical switches; optical time-division multiplexing (OTDM); photonic integrated circuits; photonic networks; ultrahigh-definition television (UHDTV);
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2010.2051420