Scalable hybrid packet/circuit switching network architecture

US9654852B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9654852-B2
Application numberUS-201414567760-A
CountryUS
Kind codeB2
Filing dateDec 11, 2014
Priority dateDec 24, 2013
Publication dateMay 16, 2017
Grant dateMay 16, 2017

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

Systems and methods for packet switching in a network, including two or more hybrid packet/circuit switching network architectures configured to connect two or more core level switches in the network architectures, the network architectures being controlled and managed using a centralized software defined network (SDN) control plane. An optical ring network may be configured to interconnect the two or more hybrid network architectures, and one or more hybrid electrical/optical packet/circuit switches configured to perform switching and traffic aggregation. One or more high-speed optical interfaces and one or more low-speed electrical/optical interfaces may be configured to transmit data.

First claim

Opening claim text (preview).

What is claimed is: 1. A system for packet switching in a network, comprising: two or more hybrid packet and circuit switching network architectures configured to connect two or more core level switches in the network architectures, the network architectures being controlled and managed using a centralized software defined network (SDN) control plane; an optical ring network configured to interconnect the two or more hybrid network architectures; one or more hybrid electrical/optical packet and circuit switches configured to perform switching and traffic aggregation; and one or more high-speed optical interfaces and one or more low-speed hybrid electrical/optical interfaces configured to transmit data. 2. The system as recited in claim 1 , wherein the hybrid network includes Fat-Tree and Torus network architectures. 3. The system as recited in claim 1 , wherein the core level switches in the network architectures are connected using a Torus topology. 4. The system as recited in claim 1 , wherein the hybrid switches include hybrid electrical/optical switching fabric, and the two fabric types are connected by a predetermined number of Optical/Electrical/Optical (O/E/O) interfaces, wherein the electrical switching fabric provides fast, packet granularity switching and/or aggregation capabilities and the optical switching fabric provides slower, circuit granularity switching and/or optical traffic grooming capabilities; and wherein interfaces between the electrical and optical switching fabrics enable conversion capabilities between the electrical (packet) domain and the optical (circuit) domain. 5. The system as recited in claim 1 , wherein the hybrid switches are employed for rack to rack communications in the hybrid network. 6. The system as recited in claim 1 , wherein scalability of the optical ring network is extended by employing sophisticated network topologies including 2D, 3D, or 4D Torus network topologies. 7. The system as recited in claim 1 , further comprising switching facilities wherein legacy servers may be upgraded to super servers with no architectural upgrades to the switching facilities. 8. The system as recited in claim 1 , wherein the software defined network (SDN) control plane includes one or more SDN controllers, and one or more SDN orchestrators. 9. The system as recited in claim 8 , wherein the one or more SDN controllers are configured to control underlying active components, and the one or more SDN orchestrators are configured to orchestrate the one or more SDN controllers and determine network topology and resource information. 10. A method for packet switching in a network, comprising: connecting two or more core level switches in the network architectures using two or more hybrid packet and circuit switching network architectures, the network architectures being controlled and managed using a centralized software defined network (SDN) control plane; interconnecting the two or more hybrid network architectures using an optical ring network; performing switching and traffic aggregation using one or more hybrid electrical/optical packet and circuit switches; and transmitting data using one or more high-speed optical interfaces and one or more low-speed electrical/optical interfaces. 11. The method as recited in claim 10 , wherein the hybrid network includes Fat-Tree and Torus network architectures. 12. The method as recited in claim 10 , wherein the core level switches in the network architectures are connected using a Torus topology. 13. The method as recited in claim 10 , wherein the hybrid switches include hybrid electrical/optical switching fabric, and the two fabric types are connected by a predetermined number of Optical/Electrical/Optical (O/E/O) interfaces, wherein the electrical switching fabric provides fast, packet granularity switching and/or aggregation capabilities and the optical switching fabric provides slower, circuit granularity switching and/or optical traffic grooming capabilities; and wherein interfaces between the electrical and optical switching fabrics enable conversion capabilities between the electrical (packet) domain and the optical (circuit) domain. 14. The method as recited in claim 10 , wherein the hybrid switches are employed for rack to rack communications in the hybrid network. 15. The method as recited in claim 10 , wherein scalability of the optical ring network is extended by employing sophisticated network topologies including 2D, 3D, or 4D Torus network topologies. 16. The method as recited in claim 10 , further comprising switching facilities wherein legacy servers may be upgraded to super servers with no architectural upgrades to the switching facilities. 17. The method as recited in claim 10 , wherein the software defined network (SDN) control plane includes one or more SDN controllers, and one or more SDN orchestrators. 18. The method as recited in claim 17 , wherein the one or more SDN controllers are configured to control underlying active components, and the one or more SDN orchestrators are configured to orchestrate the one or more SDN controllers and determine network topology and resource information.

Assignees

Inventors

Classifications

  • WDM hierarchical architectures · CPC title

  • for storage area networks · CPC title

  • Selecting arrangements for multiplex systems (multiplex systems H04J) · CPC title

  • Arrangements for providing or supporting expansion · CPC title

  • using optical switches or wavelength selective switches [WSS] · CPC title

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Frequently asked questions

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What does patent US9654852B2 cover?
Systems and methods for packet switching in a network, including two or more hybrid packet/circuit switching network architectures configured to connect two or more core level switches in the network architectures, the network architectures being controlled and managed using a centralized software defined network (SDN) control plane. An optical ring network may be configured to interconnect the…
Who is the assignee on this patent?
Nec Lab America Inc, Nec Corp
What technology area does this patent fall under?
Primary CPC classification H04J14/0204. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue May 16 2017 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 12 related publications on this page (citations in our corpus or others sharing the same primary CPC).