TY - JOUR
T1 - TAPI-enabled SDN control for partially disaggregated multi-domain (OLS) and multi-layer (WDM over SDM) optical networks [Invited]
AU - Manso, C.
AU - Munoz, R.
AU - Yoshikane, N.
AU - Casellas, R.
AU - Vilalta, R.
AU - Martinez, R.
AU - Tsuritani, T.
AU - Morita, I.
N1 - Funding Information:
Funding. Ministerio de Ciencia, Innovación y Universidades (AURORAS project, RTI2018-099178-B-I00); National Institute of Information and Communications Technology (Massive Parallel and Sliced Optical Network); Horizon 2020 Framework Programme (BLUESPACE project, 762055).
Funding Information:
Ministerio de Ciencia, Innovacion y Universidades (AURORAS project, RTI2018-099178-B-I00); National Institute of Information and Communications Technology (Massive Parallel and Sliced Optical Network); Horizon 2020 Framework Programme (BLUESPACE project, 762055).
Publisher Copyright:
© 2009-2012 OSA.
PY - 2021/1
Y1 - 2021/1
N2 - Network operators are facing a critical issue on their optical transport networks to deploy 5G$+$+ and Internet of Things services. They need to address the capacity increase by a factor of 10, while keeping a similar cost per user. Over the past years, network operators have been working on the optical disaggregated approach with great interest for achieving the required efficiency and cost reduction. In particular, partially disaggregated optical networks make it possible to decouple the transponders from the transport system (known as an open line system) that are provided by different vendors. On the other hand, space division multiplexing (SDM) has been proposed as the key technology to overcome the capacity crunch that the optical standard single-mode fibers are facing to support the forecasted $10 \times$10× growth. Spatial core switching is gaining interest because it makes it possible to deploy SDM networks to bypass the overloaded wavelength division multiplexing (WDM) networks, by provisioning spatial media channels between WDM nodes. This paper presents, to the best of our knowledge, the first experimental demonstration of transport-application-programming-interface-enabled software defined networking control architecture for partially disaggregated multi-domain and multi-layer (WDM over SDM) optical networks.
AB - Network operators are facing a critical issue on their optical transport networks to deploy 5G$+$+ and Internet of Things services. They need to address the capacity increase by a factor of 10, while keeping a similar cost per user. Over the past years, network operators have been working on the optical disaggregated approach with great interest for achieving the required efficiency and cost reduction. In particular, partially disaggregated optical networks make it possible to decouple the transponders from the transport system (known as an open line system) that are provided by different vendors. On the other hand, space division multiplexing (SDM) has been proposed as the key technology to overcome the capacity crunch that the optical standard single-mode fibers are facing to support the forecasted $10 \times$10× growth. Spatial core switching is gaining interest because it makes it possible to deploy SDM networks to bypass the overloaded wavelength division multiplexing (WDM) networks, by provisioning spatial media channels between WDM nodes. This paper presents, to the best of our knowledge, the first experimental demonstration of transport-application-programming-interface-enabled software defined networking control architecture for partially disaggregated multi-domain and multi-layer (WDM over SDM) optical networks.
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U2 - 10.1364/JOCN.402187
DO - 10.1364/JOCN.402187
M3 - Article
AN - SCOPUS:85094874058
SN - 1943-0620
VL - 13
SP - A21-A33
JO - Journal of Optical Communications and Networking
JF - Journal of Optical Communications and Networking
IS - 1
M1 - 9237369
ER -