Dual-mode network

US9602311B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9602311-B2
Application numberUS-201514616398-A
CountryUS
Kind codeB2
Filing dateFeb 6, 2015
Priority dateFeb 6, 2014
Publication dateMar 21, 2017
Grant dateMar 21, 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.

Aspects of the present disclosure are directed toward apparatuses, systems, and methods that include a first gateway circuit in an optical access network connecting a plurality of end-of-network users to a central node, the first gateway circuit connecting one of the plurality of end-of-network users to the central node via fiber optic data lines. Further, the first gateway circuit is configured and arranged to: relay a first set of data between the end-of-network user and the central node using a packet-switching communication protocol, and relay a second set of data between the end-of-network user and the central node using an optical flow switching communication protocol.

First claim

Opening claim text (preview).

What is claimed is: 1. An apparatus comprising: a first gateway circuit in an optical access network connecting a plurality of end-of-network users to a central node, the first gateway circuit connecting one of the plurality of end-of-network users to the central node via fiber optic data lines, wherein the first gateway circuit is configured and arranged to relay a first set of data between the end-of-network user and the central node using a packet-switching communication protocol, and relay a second set of data between the end-of-network user and the central node using an optical flow switching communication protocol; and a second gateway circuit configured to communicate data to and from the end-of-network user via the first gateway circuit, and an optical flow line terminal configured and arranged to route data between the second gateway circuit and a metro-area network or a core network using the optical flow switching communication protocol. 2. The apparatus of claim 1 , further comprising: an optical flow network unit located at a location of the end-of-network user and configured and arranged to communicate data between the end-of-network user and the central node via the first gateway circuit using the optical flow switching communication protocol; and a packet-switching network unit located at a location of the end-of-network user and configured and arranged to communicate data between the end-of-network user and the central node via the first gateway circuit using the packet switching communication protocol. 3. The apparatus of claim 1 , wherein: the first gateway circuit is configured to relay data over the fiber optic data lines using a plurality of frequency bands, for data communicated using the packet switching communication protocol, the first gateway circuit is configured and arranged to relay the data over the fiber optic data lines using a first set of frequency bands, and for data communicated using the optical flow switching communication protocol, the first gateway circuit is configured and arranged to relay the data over the fiber optic data lines using a scheduled one of a plurality of frequency bands, which do not include the first set of frequency bands. 4. The apparatus of claim 3 , wherein: the first set of frequency bands includes a first frequency band that is in or overlaps with a frequency range corresponding to wavelengths between 1260 and 1360 nm, and a second frequency band that is in or overlaps with a frequency range corresponding to wavelengths between 1484.5 and 1497.5 nm; and the plurality of frequency bands that are in or overlaps with a frequency range corresponding to wavelengths between 1504.5 and 1620 nm. 5. The apparatus of claim 1 , wherein the first gateway circuit is further configured and arranged to separate downstream data communicated from the central node with the packet switching communication protocol from downstream data communicated from the central node with the optical flow switching communication protocol based on a frequency band used for the communication. 6. The apparatus of claim 1 , wherein the first gateway circuit is further configured and arranged to combine upstream data communicated from the end-of-network user with the packet switching communication protocol from upstream data communicated from the end-of-network user with the optical flow switching communication protocol based on a frequency band used for the communication. 7. An apparatus comprising: a first gateway circuit in an optical access network connecting a plurality of end-of-network users to a central node, the first gateway circuit connecting one of the plurality of end-of-network users to the central node via fiber optic data lines, wherein the first gateway circuit is configured and arranged to relay a first set of data between the end-of-network user and the central node using a packet-switching communication protocol, and relay a second set of data between the end-of-network user and the central node using an optical flow switching communication protocol; and at the central node: a second gateway circuit configured to communicate data to and from the end-of-network user via the first gateway circuit; a packet switching optical line terminal configured and arranged to route data between the second gateway circuit and a metro-area network or a core network using the packet switching communication protocol; and an optical flow line terminal configured and arranged to route data between the second gateway circuit and a metro-area network or a core network using the optical flow switching communication protocol. 8. The apparatus as in claim 7 , wherein control data for the optical flow switching communication protocol is communicated between the end-of-network user and the central node using the packet-switching communication protocol. 9. The apparatus of claim 7 , wherein the central node is configured and arranged to, in response to receiving data from the end-of-network user that is communicated using the optical flow switching communication protocol, transmit control data to the end-of-network user using the packet-switching communication protocol. 10. An apparatus comprising: a communication circuit configured and arranged to communicate data in an access network connecting a plurality of end-of-network users to a central node, the communication circuit including an optical flow network unit configured and arranged to communicate data between an end-of-network user and the central node in the access network using an optical flow switching communication protocol; and a packet switching network unit configured and arranged to communicate data between the end-of-network user and the central node in the access network using a packet switching communication protocol, wherein the communication circuit is further configured to communicate upstream data from the end-of-network user using the optical flow network unit, in response to a control signal having a first value, and communicate upstream data from the end-of-network user using the packet switching network unit, in response to a control signal having a second value. 11. The apparatus of claim 10 , wherein the optical flow network unit is configured and arranged to communicate data between multiple end-of-network users connected thereto and the central node of the access network. 12. The apparatus of claim 11 , wherein the optical flow network unit circuit is configured and arranged to multiplex data from the multiple end-of-network users and communicate the multiplexed data using the optical flow switching communication protocol. 13. The apparatus of claim 11 , wherein the optical flow network unit is configured to provide a virtual optical flow network unit for each of the multiple end-of-network users. 14. The apparatus of claim 10 , wherein the optical flow network unit is configured and arranged to support remote configuration of one or more configuration settings using an application programming interface. 15. The apparatus of claim 10 , wherein: the access network is a hybrid optical-fiber/coaxial-cable network, wherein the end-of-network user is connected to the optical flow network unit via an conductive transmission medium, and the optical flow network unit is configured to relay data between the conductive transmission medium and an optical fiber connected to the central node in the access network. 16. The apparatus of claim 10 , further comprising a gateway circuit configured and arranged to relay data between the communication circuit and the central node.

Assignees

Inventors

Classifications

  • Hybrid transport · CPC title

  • WDM tree architectures · CPC title

  • Arrangements for networking · CPC title

  • Provisions for optical access or distribution networks, e.g. Gigabit Ethernet Passive Optical Network (GE-PON), ATM-based Passive Optical Network (A-PON), PON-Ring · CPC title

  • Provisions for optical burst or packet networks · CPC title

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Frequently asked questions

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What does patent US9602311B2 cover?
Aspects of the present disclosure are directed toward apparatuses, systems, and methods that include a first gateway circuit in an optical access network connecting a plurality of end-of-network users to a central node, the first gateway circuit connecting one of the plurality of end-of-network users to the central node via fiber optic data lines. Further, the first gateway circuit is configure…
Who is the assignee on this patent?
Univ Leland Stanford Junior
What technology area does this patent fall under?
Primary CPC classification H04L12/6418. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Mar 21 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 1 related publication on this page (citations in our corpus or others sharing the same primary CPC).