APPARATUS AND METHODS FOR A TRANSPORT NETWORK
20200076528 ยท 2020-03-05
Inventors
Cpc classification
H04B10/2575
ELECTRICITY
H04J14/0227
ELECTRICITY
H04Q2011/0064
ELECTRICITY
H04J14/025
ELECTRICITY
International classification
Abstract
A method in a first level aggregation node of a transport network is disclosed. The transport network comprises the first level aggregation node, a second level aggregation node and a Passive Optical Network. T the method comprises receiving, from the second level aggregation node, a plurality of wavelength division multiplexing (WDM) channels having wavelengths in a first spectrum section and generating at least one passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section. The method further comprises combining at least some of the WDM channels received from the second level aggregation node with the at least one passive optical channel, and forwarding the combined WDM channels and passive optical channel to a termination node in the Passive Optical Network. Also disclosed are a method in a termination node of a transport network, a first level aggregation node, a termination node and a computer program.
Claims
1. A method in a first level aggregation node of a transport network, the transport network comprising the first level aggregation node, a second level aggregation node and a Passive Optical Network, the method comprising: receiving, from the second level aggregation node, a plurality of wavelength division multiplexing, WDM, channels having wavelengths in a first spectrum section; generating at least one passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section; combining at least some of the WDM channels received from the second level aggregation node with the at least one passive optical channel; and forwarding the combined WDM channels and passive optical channel to a termination node in the Passive Optical Network.
2. A method according to claim 1, further comprising: inputting the WDM channels received from the second level aggregation node to at least one wavelength selective element, a said wavelength selective element configured to act on a single channel wavelength to perform one of dropping the channel wavelength or bypassing the channel wavelength; wherein combining at least some of the WDM channels received from the second level aggregation node with the at least one passive optical channel comprises combining those WDM channels bypassed by the at least one wavelength selective element with the at least one passive optical channel.
3. A method as claimed in claim 1, wherein the WDM channels received from the second level aggregation node carry data signals for at least one of: a Radio Access Network; an enterprise network; a fixed access network.
4. A method as claimed in claim 3, wherein the data signals for a Radio Access Network comprise at least one of: fronthaul signals; backhaul signals.
5. A method as claimed in claim 1, further comprising: splitting the WDM channels received from the second level aggregation node into downstream and upstream WDM channels, and inputting each of the downstream and upstream WDM radio access channels to a dedicated plurality of wavelength selective elements.
6. A method as claimed in claim 5, further comprising combining WDM channels passed by each dedicated plurality of wavelength selective elements.
7. A method as claimed in claim 1, wherein the first level aggregation node comprises an Optical Line Terminal of the Passive Optical Network, and wherein generating at least one passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section, comprises generating the at least one passive optical channel in the Optical Line Terminal.
8. A method as claimed in claim 7, wherein the first level aggregation node further comprises a reconfigurable remote node of a combined fronthaul and backhaul network, and wherein the second level aggregation node comprises a hub node of the combined fronthaul and backhaul network.
9. A method as claimed in claim 2, further comprising: performing baseband processing on at least one WDM channel dropped by a wavelength selective element.
10. A method as claimed in claim 9, further comprising: returning the baseband processed WDM channel to the plurality of WDM channels via the at least one wavelength selective element.
11. A method as claimed in claim 2, further comprising: causing at least one WDM channel dropped by a wavelength selective element to be extinguished.
12. A method as claimed in claim 2, further comprising: configuring the plurality of wavelength selective elements to pass WDM channels allocated to WDM termination nodes connected to the Passive Optical Network.
13. A method as claimed in claim 2, further comprising: configuring the plurality of wavelength selective elements to pass WDM channels allocated to WDM termination nodes directly connected to the first level aggregation node.
14. A method in a termination node of a transport network, the transport network comprising a first level aggregation node, a second level aggregation node and a Passive Optical Network, the method comprising: receiving, from the first level aggregation node, a combined signal including a plurality of wavelength division multiplexing, WDM, channels having wavelengths in a first spectrum section and a passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section; splitting the passive optical channel from the WDM channels and forwarding the passive optical channel to a destination node for the passive optical channel; and forwarding at least some of the WDM channels to destination nodes for the WDM channels, or dropping at least some of the WDM channels as a destination node for the WDM channels.
15. A method as claimed in claim 14, wherein the termination node comprises a termination node of the Passive Optical Network.
16. A method as claimed in claim 14, further comprising: inputting the WDM channels to at least one wavelength selective element, a said wavelength selective element configured to act on a single channel wavelength to perform one of dropping the channel wavelength or bypassing the channel wavelength; wherein forwarding at least some of the WDM channels to destination nodes for the WDM channels comprises forwarding those WDM channels bypassed by the at least one wavelength selective element.
17. A method as claimed in claim 14, wherein the WDM channels carry data signals for at least one of: a Radio Access Network; an enterprise network; a fixed access network.
18. A method as claimed in claim 17, wherein the data signals for a Radio Access Network comprise at least one of: fronthaul signals; backhaul signals.
19. A method as claimed in claim 16, further comprising: causing at least one WDM channel dropped by a wavelength selective element to be extinguished.
20. A method as claimed in claim 19, wherein causing at least one WDM channel dropped by a wavelength selective element to be extinguished comprises performing at least one of attenuating or tapering on the channel.
21. A method as claimed in claim 16, further comprising: configuring the plurality of wavelength selective elements to pass WDM radio access channels allocated to destination nodes connected to the termination node.
22. A method according to claim 14, further comprising: receiving a WDM channel for transmission over the transport network; setting each of a plurality of wavelength selective elements to drop the channel on which they act, each wavelength selective element configured to act on a different single channel wavelength to perform one of dropping the channel wavelength or bypassing the channel wavelength; sweeping a tuneable laser over WDM wavelengths including a target transmission wavelength, inputting the signal of the tuneable laser to the plurality of wavelength selective elements and monitoring power on a drop output of each of the wavelength selective elements; and when the power on the drop output of the wavelength selective element corresponding to the target transmission wavelength reaches a transmission threshold, stopping the sweep of the tuneable laser, setting the wavelength selective element corresponding to the target transmission wavelength to bypass and transmitting the received WDM channel on the target transmission wavelength via the tuneable laser.
23. A method as claimed in claim 22, further comprising: receiving a signal indicating the target transmission wavelength.
24. A method as claimed in claim 22, further comprising, during transmission of the received WDM channel on the target transmission wavelength: monitoring power on the drop output of the wavelength selective element corresponding to the target transmission wavelength; and if the power on the drop output of the wavelength selective element corresponding to the target transmission wavelength reaches a reset threshold, performing at least one of: stopping transmission of the WDM channel, resetting the wavelength selective element corresponding to the target transmission wavelength to drop the channel on which it acts and restarting sweep of the tuneable laser; or adjusting the wavelength of the tuneable laser until the power on the drop output of the wavelength selective element corresponding to the target transmission wavelength falls below the reset threshold.
25. A first level aggregation node of a transport network, the transport network comprising the first level aggregation node, a second level aggregation node and a Passive Optical Network, the first level aggregation node comprising: an input for receiving, from the second level aggregation node, a plurality of wavelength division multiplexing, WDM, channels having wavelengths in a first spectrum section; a generator for generating at least one passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section; a combiner for combining at least some of the WDM channels received from the second level aggregation node with the at least one passive optical channel; and an output for forwarding the combined WDM and passive optical channel to a termination node in the Passive Optical Network.
26. A node as claimed in claim 25, further comprising: at least one wavelength selective element, a said wavelength selective element configured to act on a single channel wavelength to perform one of dropping the channel wavelength or bypassing the channel wavelength; wherein the combiner is configured to combine those WDM channels bypassed by the at least one wavelength selective element with the at least one passive optical channel.
27. A node as claimed in claim 26, further comprising: a splitter for splitting the WDM channels received from the second level aggregation node into downstream and upstream WDM channels, and a first plurality of wavelength selective elements for upstream WDM channels and a second plurality of wavelength selective elements for downstream WDM channels.
28. A node as claimed in claim 27, further comprising a combiner for combining WDM channels passed by each dedicated plurality of wavelength selective elements.
29. A node as claimed in claim 25, wherein the generator comprises an Optical Line Terminal of the Passive Optical Network.
30. A node as claimed in claim 26, further comprising: a baseband processing unit for performing baseband processing on at least one WDM channel dropped by a wavelength selective element.
31. A node as claimed in claim 26, wherein the at least one wavelength selective element comprises a micro-ring resonator.
32. A node as claimed in claim 31, wherein the at least one wavelength selective element further comprises at least one of a taper or an attenuator coupled to a drop port of the micro-ring resonator.
33. A node as claimed in claim 26, wherein the at least one wavelength selective element comprises at least one of an optical attenuator or switch coupled to an output port of an optical demultiplexer and an input port of an optical multiplexer.
34. A termination node of a transport network, the transport network comprising a first level aggregation node, a second level aggregation node and a Passive Optical Network, the termination node comprising: an input for receiving, from the first level aggregation node, a combined signal including a plurality of wavelength division multiplexing, WDM, channels having wavelengths in a first spectrum section and a passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section; a splitter for splitting the passive optical channel from the WDM channels; a first output for forwarding the passive optical channel to a destination node for the passive optical channel; and a second output for forwarding at least some of the WDM channels to destination nodes for the WDM channels or dropping at least some of the WDM channels as a destination node for the WDM channels.
35. A node as claimed in claim 34, wherein the termination node comprises a termination node of the Passive Optical Network.
36. A node as claimed in claim 34, further comprising: at least one wavelength selective element, a said wavelength selective element configured to act on a single channel wavelength to perform one of dropping the channel wavelength or bypassing the channel wavelength; wherein the second output is for forwarding or dropping those WDM channels passed by the at least one wavelength selective element to destination nodes for those WDM channels.
37. A node as claimed in claim 36, wherein the at least one wavelength selective element comprises a micro-ring resonator.
38. A node as claimed in claim 37, wherein the at least one wavelength selective element further comprises at least one of a taper or an attenuator coupled to a drop port of the micro-ring resonator.
39. A node as claimed in claim 36, wherein the at least one wavelength selective element comprises at least one of an optical attenuator or switch coupled to an output port of an optical demultiplexer and an input port of an optical multiplexer.
40. A node as claimed in claim 34, further comprising: an input for receiving a WDM channel for transmission over the transport network; a tuneable laser for sweeping over WDM wavelengths including a target transmission wavelength a plurality of wavelength selective elements, each wavelength selective element configured to act on a different single channel wavelength to perform one of dropping the channel wavelength or bypassing the channel wavelength; and a plurality of monitors for monitoring power on a drop output of each of the wavelength selective elements.
41. A first level aggregation node of a transport network, the transport network comprising the first level aggregation node, a second level aggregation node and a Passive Optical Network, the first level aggregation node comprising a processor and a memory, the memory containing instructions executable by the processor such that the node is operable to: receive, from the second level aggregation node, a plurality of wavelength division multiplexing, WDM, channels having wavelengths in a first spectrum section; generate at least one passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section; combine at least some of the WDM channels received from the second level aggregation node with the at least one passive optical channel; and forward the combined WDM channels and passive optical channel to a termination node in the Passive Optical Network.
42. A termination node of a transport network, the transport network comprising a first level aggregation node, a second level aggregation node and a Passive Optical Network, the termination node comprising a processor and a memory, the memory containing instructions executable by the processor such that the node is operable to: receive, from the first level aggregation node, a combined signal including a plurality of wavelength division multiplexing, WDM, channels having wavelengths in a first spectrum section and a passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section; split the passive optical channel from the WDM channels and forwarding the passive optical channel to a destination node for the passive optical channel; and forward at least some of the WDM channels to destination nodes for the WDM channels or drop at least some of the WDM channels as a destination node for the WDM channels.
43. A computer program comprising instructions which, when executed on at least one processor, cause the at least one processor to carry out a method as claimed in claim 1.
44. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0086] For a better understanding of the present disclosure, and to show more clearly how it may be carried into effect, reference will now be made, by way of example, to the following drawings in which:
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DETAILED DESCRIPTION
[0106] Aspects of the present disclosure propose a transport network comprising first and second level aggregation nodes and a Passive Optical Network. The first level aggregation nodes may receive WDM optical channels from a second level aggregation node, and combine at least some of these received signals with at least one passive optical channel generated at the first level aggregation node, before forwarding the combined signal to a termination node of the passive optical network. The WDM channels may have wavelengths in a first spectrum section, with the passive optical channel or channels having wavelengths in a second spectrum section, different from the first spectrum section. The transport network may for example combine the Passive Optical Network with a WDM infrastructure which may for example carry fronthaul and/or backhaul signals. The WDM infrastructure may be a tree or a ring infrastructure, and may be a DWDM infrastructure such as that proposed in Xhaul. A first level aggregation node in the transport network may comprise an Optical Line Terminal (OLT) of the passive optical network together with a reconfigurable remote node of the WDM infrastructure. A second level aggregation node in the transport network may comprise a hub node hosting pooled baseband processing resources for the WDM infrastructure. Functioning of the transport network is enabled by methods performed in the first level aggregation nodes of the transport network and in termination nodes of the passive optical network comprised within the transport network. The methods allow for WDM channels originating from a second level aggregation node and transmitted over the WDM infrastructure to be dropped onto a passive optical network for forwarding to an appropriate destination node connected to the passive optical network, bypassing the OLT of the passive optical network and so not interfering with the passive optical channel being transmitted by the OLT to termination nodes on the passive optical network. Such signals may also be passed to destination nodes such as macro cell sites directly connected to the first level aggregation node. The methods also allow for a termination node in the passive optical network (for example an Optical Network Termination (ONT)) to separate out a WDM wavelength corresponding to a channel for a destination node connected to the termination node and to forward that channel to the appropriate destination node. The destination node may for example be a macro/small cell antenna or a RRU. In alternative examples, the ONT may also host the RRU or other termination node, such that the ONT simply drops the separated WDM channels, acting as the destination node for those channels. The methods also allow for implementation of a local wavelength stabilisation loop for a tuneable laser at termination node transmitter, so avoiding the need for complicated communication mechanisms between an OLT (or hub) and an ONT.
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[0108] Each reconfigurable remote node (hosted in a first level aggregation node as discussed above) may be allocated one or more DWDM channels. The first level aggregation nodes 508 drop wavelengths for the appropriate remote node, and hence for RRUs connected to its GPON, as well as any DWDM channels for macro sites connected to the GPON or directly connected to the first level aggregation node 508. The dropped DWDM channels are sent along the GPON concurrently with the passive optical channels typically used on a GPON. The DWDM and passive optical channels are located on different portions of the spectrum, with the DWDM channels in the C-band, 1525-1565 nm, and the passive optical channels on 1310 nm (upstream) and 1490 nm (downstream).
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[0110] In some examples of the method 600, the method may further comprise, in step 608, performing baseband processing on at least one WDM channel dropped by a wavelength selective element. This may be performed by local baseband processing resources hosted within the first level aggregation node, as discussed above. The method may then comprise, in step 610, returning the baseband processed WDM channel or channels to the plurality of WDM channels via the plurality of wavelength selective elements, and for example via the wavelength selective element that dropped the channel for local baseband processing. The method 600 may further comprise causing at least one WDM channel dropped by a wavelength selective element to be extinguished in step 612. This may be achieved for example via attenuation and/or tapering. In this manner, channels dropped by the wavelength selective elements may be stopped completely, as opposed to being dropped onto a different waveguide. If the US and DS WDM channels have been input to different pluralities of wavelength selective elements, the method 600 may further comprise combining those WDM channels passed by each dedicated plurality of wavelength selective elements in step 614.
[0111] In step 616, the method 600 comprises generating at least one passive optical channel having a wavelength in a second spectrum section, different to the first spectrum section. The passive optical channel may be non-stabilised, and may adopt a Time Division Multiplexing (TDM)/Time Division Multiplexing Access (TDMA) approach. The passive optical channel may for example be a GPON channel generated by the OLT hosted within the first level aggregation node. The passive optical channel may for example carry signals for one or more fixed access communication network subscribers. In step 618, the method 600 comprises combining at least some of the WDM channels received from the second level aggregation node with the at least one passive optical channel. As illustrated in step 618a, this may comprise combining those WDM channels bypassed by the at least one wavelength selective element (or plurality of wavelength selective elements) with the at least one passive optical channel. Finally, in step 620, the method 600 comprises forwarding the combined WDM and passive optical channels to a termination node in the passive optical network.
[0112] Examples of the method 600 of
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[0114] The method 600 may be complemented by a method 800 conducted in a termination node of a transport network as illustrated in
[0115] The method 800 then comprises splitting the passive optical channel from the WDM channels in step 804 and forwarding the passive optical channel to a destination node for the passive optical channel in step 806. The destination node may for example be located at a fixed access subscriber premises. The method 800 may then comprise, in step 808, inputting the WDM channels to at least one wavelength selective element, the wavelength selective element configured to act on a single channel wavelength to perform one of dropping the channel wavelength or bypassing the channel wavelength. As illustrated in
[0116] In step 810, the method 800 may comprise causing at least one WDM channel dropped by a wavelength selective element to be extinguished. As illustrated at step 810a, this may be achieved by performing at least one of attenuating and/or tapering. The method 800 then comprises forwarding at least some WDM channels to destination nodes for the WDM channels, the destination nodes connected to the termination node, or dropping at least some of the WDM channels as a destination node for the WDM channels, in step 812. As illustrated in step 812a, this may comprise forwarding or dropping those WDM channels passed by the at least one wavelength selective element or plurality of wavelength selective elements.
[0117] Examples of the method 800 thus enable a termination node in a transport network according to examples of the present disclosure to handle multiple channels in different spectrum portions. Such channels may include for example radio access and fixed access channels.
[0118] The methods 600 and 800 may be complemented by a method 900 for transmitting a radio access channel over a transport network, as illustrated in
[0119] Referring to
[0120] Examples of the method 900 thus avoid remote feedback for laser wavelength tuning and stabilisation and also avoid cross-talk issues during the tuning phase, when the sweeping wavelength could collide with traffic channels.
[0121] Referring again to
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[0124] The node 1100 further comprises a combiner 1114 for combining WDM channels bypassed by each dedicated plurality of wavelength selective elements 1110a, 1110b, and a combiner 1106 for combining WDM radio access channels bypassed by the plurality of wavelength selective elements with at least one passive optical channel. The node 1100 also comprises an Optical Line Terminal 1104 of the passive optical network in the transport network for generating the passive optical channel. The node 1100 further comprises an output 1108 for forwarding the combined WDM and passive optical channels to a termination node in the passive optical network. The node 1100 may also comprise a baseband processing unit 1116 for performing baseband processing on at least one WDM channel dropped by a wavelength selective element.
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[0126] As illustrated in
[0127] The drop ports of the micro-ring resonators are equipped with tapers or attenuators 1206, which cause the dropped channels to be extinguished, rather than being directed elsewhere. The dropped channels are thus effectively stopped or blocked, with only the bypassed channels continuing along the waveguide for further transport or processing. It will be appreciated that the plurality of wavelength selective elements 1200 illustrated in
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[0135] As in the example network 500 of
[0136] Aspects of the present disclosure thus provide a transport network over which both WDM channels, such as those used for CRAN, and passive optical channels, such as those used for fixed access based on GPON infrastructure, may be commonly transported. WDM channels, such as DWDM channels, may be assigned to antenna sites in the CRAN, and may coexist with standard upstream and downstream GPON channels. Functioning of the transport network is facilitated by methods performed at first and second level aggregation nodes and at termination nodes of the transport network according to examples of the present disclosure. In second level aggregation nodes, baseband processing may be pooled, for example in a hub node of an Xhaul network, the second level aggregation node thus acting as a network side termination for the WDM channels transported over the network. The second level aggregation nodes may be connected to one or more first level aggregation nodes over a DWDM infrastructure. In first level aggregation nodes, reconfigurable remote nodes and GPON OLTs may be located. The first level aggregation nodes drop WDM channels assigned to antenna sites connected to the node or to the node's GPON, and allow these channels to bypass the node's OLT without impacting processing in the OLT of the passive optical signals exchanged over the GPON. WDM and passive optical channels arriving at a termination node of the GPON may be separated and forwarded to their correct destinations.
[0137] Aspects of the present disclosure thus allow for converge of fixed and mobile traffic leveraging without requiring changes to existing GPON infrastructure. Thanks to the re-configurability enabled by the WDM architecture, including second level aggregation nodes and reconfigurable remote nodes hosted at first level aggregation nodes, it is possible to upgrade the network, for example adding small cells (e.g. for business areas) and macro antennas on the GPON infrastructure step by step. As new cells and/or antennas are installed on branches of a GPON in the transport network, control functions may reconfigure the allocation of WDM wavelengths and so reconfigure remote nodes with the appropriate wavelengths to be dropped onto the or each GPON. Aspects of the present disclosure thus allow a RAN to migrate to 5G smoothly with all advantages of the Xhaul solution, including capability to configure and rearrange the traffic dynamically according traffic needs, and support of any type of radio splitting. The combined WDM and GPON infrastructure ensures that the limited geographical reach of a GPON (2-3 km) is not a barrier to exploitation of CRAN Xhaul advantages over longer distances (20 km). Aspects of the present disclosure also provide a cost effective alternative to the tuneable filters usually proposed for through the use of wavelength selective elements. Such wavelength selective elements may also avoid the need for complicated communication mechanism between OLT and ONT for the stabilization of the transmission wavelength at the ONT.
[0138] The methods of the present disclosure may be implemented in hardware, or as software modules running on one or more processors. The methods may also be carried out according to the instructions of a computer program, and the present disclosure also provides a computer readable medium having stored thereon a program for carrying out any of the methods described herein. A computer program embodying the disclosure may be stored on a computer readable medium, or it could, for example, be in the form of a signal such as a downloadable data signal provided from an Internet website, or it could be in any other form.
[0139] It should be noted that the above-mentioned examples illustrate rather than limit the disclosure, and that those skilled in the art will be able to design many alternative embodiments without departing from the scope of the appended items. The word comprising does not exclude the presence of elements or steps other than those listed in a claim, a or an does not exclude a plurality, and a single processor or other unit may fulfil the functions of several units recited in the items. Any reference signs in the items shall not be construed so as to limit their scope.