Segment routing for optical networks

US10750255B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10750255-B2
Application numberUS-201615136378-A
CountryUS
Kind codeB2
Filing dateApr 22, 2016
Priority dateApr 22, 2016
Publication dateAug 18, 2020
Grant dateAug 18, 2020

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  1. Title

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  5. First independent claim

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Abstract

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Aspects of the disclosure involve a source node, having some predetermined knowledge of the optical network generating a list of nodes and/or optical links between nodes that form a route in the optical network from the source node to the destination node. The nodes in the optical network do not necessarily need to know the entire route from source node to destination node. Each node simply decodes the control information identifying the next hop in the route towards the destination node. By utilizing the decoded control information identifying the next hop, a switch in the node can be controlled to route the optical signal including the payload and some or all of the control information onto the next optical link toward the destination node.

First claim

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I claim: 1. A method for operating an optical switch node in a segment routed optical network, the method comprising: receiving from a first prior node, over a first optical link in the optical network, a first optical signal carrying a payload on wavelength channels and control information associated with the optical switch node and with subsequent optical switch nodes in a segment routed path, wherein the control information is on a single wavelength channel λ that is dedicated for control information for all optical switch nodes in the segment routed optical network and is a different wavelength channel than the wavelength channels used for the payload, and wherein the control information comprises routing information including a list of optical links or optical switch nodes in the segment routed path, the list defining at least a route from the optical switch node to a destination optical switch node; prior to a switching fabric, extracting the control information from the first optical signal by filtering the received first optical signal to drop the single wavelength channel λ carrying the control information and pass the payload, converting the dropped single wavelength channel λ into an electrical signal and reading the control information from the electrical signal to obtain the routing information, determining from the routing information a subsequent node in the optical network to route the first optical signal, converting a portion of the electrical signal including control information not associated with the optical switch node back into an optical signal on the single wavelength channel λ; and combining the routing information associated with the subsequent optical switch nodes in the segment routed path back, which is in the converted optical signal on the single wavelength channel λ, together with the received payload in a manner non-destructive to the control information associated with the subsequent optical switch nodes in the segment routed path; controlling the switching fabric in accordance with the control information associated with the optical switch node read from the received first optical signal; forwarding to the subsequent node in the optical network, through the switching fabric, in a manner determined in accordance with the read control information, an optical signal carrying the combined received payload and the control information associated with the subsequent optical switch nodes in the segment routed path. 2. The method of claim 1 further comprising: tapping the received first optical signal; and reading the control information from the tapped optical signal. 3. The method of claim 1 further comprising delaying the received first optical signal prior to forwarding while the control information associated with the optical switch node is read. 4. The method of claim 1 , wherein the control information further comprises at least one of: burst mode reset information; and update and/or management information. 5. The method of claim 1 further comprising receiving from a second prior node over a second optical link in the optical network, a second optical signal carrying a second payload and second control information for all subsequent nodes in a segment routed path, wherein the second control information is on a same first wavelength channel as the channel information received from the first prior node over the first optical link, the method further comprising: controlling the switching fabric in accordance with the second control information in the received second optical signal associated with the optical switch node read from the received second optical signal in a manner non-destructive to the control information associated with other optical switch nodes in the segment routed path; forwarding to a subsequent node in the optical network, through the switching fabric, in a manner determined in accordance with the read second control information, the second optical signal carrying the received payload and the control information associated with subsequent nodes in the optical network. 6. The method of claim 1 further comprising: extracting routing information relevant to the optical switch node from the control information in the received optical signal; and forwarding an optical signal carrying the received payload and the control information associated with subsequent nodes in the segment routed path without modifying the payload or the control information not relevant to the optical switch node. 7. A method for operating a source node in a segment routed optical network, the method comprising: generating a segment routed path comprising an ordered list of optical switch nodes from the source node to a destination node; generating control information for each of the optical switch nodes in the ordered list, the control information for controlling a switching fabric of each of the optical switch nodes in the ordered list of optical switch nodes in such a manner that prior to a switching fabric in an optical switch node, the control information is extracted from a received optical signal by filtering the received optical signal to drip a single wavelength channel λ that is dedicated for control information for all optical switch nodes in the segment routed optical network and is a different wavelength channel than wavelength channels used for a payload, converting the dropped single wavelength channel λ into an electrical signal, and reading the control information to obtain the routing information from the electrical signal, a subsequent node in the optical network that the received optical signal to be routed to is determined from the routing information, a portion of the electrical signal including control information not associated with the optical switch node is converted back into an optical signal on the single wavelength channel λ, and the routing information, which is in the converted optical signal on the single wavelength channel λ, associated with subsequent optical switch nodes in the segment routed path is combined back together with the payload received at the optical switch node in a manner non-destructive to the control information associated with the subsequent optical switch nodes in the segment routed path; encoding the generated control information into the single wavelength channel λ; and transmitting the optical signal payload along with the encoded control information to a first optical switch node in the ordered list. 8. The method of claim 7 wherein the generated control information comprises control information other than routing information for the destination node. 9. The method of claim 7 wherein generating control information for each of the optical switch nodes in the ordered list further comprises appending a burst mode reset for a destination node to the control information. 10. The method of claim 7 wherein generating control information for each of the optical switch nodes in the ordered list further comprises appending at least one of update and management information to the control information. 11. An optical switch node for use in a segment routed optical network comprising: an input port configured to receive from a prior node in the optical network, over an optical link, an optical signal carrying a payload on wavelength channels and control information for the optical switch node and for subsequent optical switch nodes in a segment routed path, wherein the control information is on a single wavelength channel λ that is dedicated for control information for all optical switch nodes in the segment routed optical network and is a different wavelength channel than the wavelength channels used for the payload; a

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What does patent US10750255B2 cover?
Aspects of the disclosure involve a source node, having some predetermined knowledge of the optical network generating a list of nodes and/or optical links between nodes that form a route in the optical network from the source node to the destination node. The nodes in the optical network do not necessarily need to know the entire route from source node to destination node. Each node simply dec…
Who is the assignee on this patent?
Mehrvar Hamid, Huawei Tech Co Ltd
What technology area does this patent fall under?
Primary CPC classification H04Q11/0005. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Aug 18 2020 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 10 related publications on this page (citations in our corpus or others sharing the same primary CPC).