ADAPTIVE CELL-SHAPING IN A CELLULAR NETWORK
20230027476 · 2023-01-26
Assignee
Inventors
- Jingya LI (Göteborg, SE)
- Andreas NILSSON (Göteborg, SE)
- Joakim AKESSON (Landvetter, SE)
- Daniel GULDBRAND (Ödsmål, SE)
- Sven PETERSON (Sävedalen, SE)
- Xinlin ZHANG (Göteborg, SE)
- Fredrik Athley (Kullavik, SE)
Cpc classification
International classification
Abstract
There is provided mechanisms for adaptive cell-shaping in a cellular network in which a group of radio access network nodes provide network access. A method is performed by a network node. The method comprises obtaining an indication of combined network performance degradation in a region in which a first radio access network node in the group of radio access network nodes provides network access and increased need for network access for prioritized service and/or prioritized subscribers in this region. The method comprises initiating adjustment of cell-degradation shaping parameters of at least one radio access network node in the group of radio access network nodes. Network access for the prioritized service and/or prioritized subscribers in the region is maintained by this at least one radio access network node in the group of radio access network nodes.
Claims
1. A method for adaptive cell-shaping in a cellular network in which a group of radio access network nodes provide network access, the method being performed by a network node, the method comprising: obtaining an indication of combined network performance degradation in a region in which a first radio access network node in the group of radio access network nodes provides network access and increased need for network access for prioritized service and/or prioritized subscribers in the region; and initiating adjustment of cell-shaping parameters of at least one radio access network node in the group of radio access network nodes, wherein network access for the prioritized service and/or prioritized subscribers in the region is maintained by said at least one radio access network node in the group of radio access network nodes.
2. The method of claim 1, wherein, before said indication was obtained, the cell-shaping parameters had original settings, and the method further comprises: obtaining a further indication of either that the network performance degradation has ceased, or that the increased need for network access for prioritized service and/or prioritized subscribers in the region has ceased, or a combination thereof; and initiating adjustment of the cell-shaping parameters back to their original settings.
3. The method of claim 1, wherein the prioritized service is a mission critical service, or a service as identified as prioritized by a network operator, and/or the prioritized subscribers are identified as prioritized by belonging to a prioritized access class, by having a prioritized service profile identifier or are identified as prioritized by a network operator.
4. The method of claim 1, wherein adjustment of cell-shaping parameters is initiated for the first radio access network node.
5. The method of claim 4, wherein adjustment of cell-shaping parameters further is initiated for at least one second radio access network node in the group of radio access network nodes, wherein said at least one second radio access network node coverage-wise neighbors the first radio access network node.
6. The method of claim 1, wherein adjustment of cell-shaping parameters is initiated for at least one third radio access network node in the group of radio access network nodes but not for the first radio access network node, wherein the at least one third radio access network node is a radio access network node temporarily deployed in the region.
7. The method of claim 6, wherein adjustment of cell-shaping parameters further is initiated for at least one second radio access network node in the group of radio access network nodes, wherein said at least one second radio access network node coverage-wise neighbors the first radio access network node.
8. The method of claim 1, wherein adjustment of cell-shaping parameters is initiated for at least one second radio access network node in the group of radio access network nodes but not for the first radio access network node, wherein said at least one second radio access network node coverage-wise neighbors the first radio access network node.
9. The method of claim 1, further comprising: obtaining positioning information, from the group of radio access network nodes, about positions of the prioritized subscribers in the cellular network, and wherein the cell-shaping parameters are adjusted based on the positioning information.
10. The method of claim 9, wherein the positioning information only is obtained from those radio access network nodes in the group of radio access network nodes that provide network access in prioritized regions.
11. The method of claim 1, wherein the indication of network performance degradation pertains to at least one of: decreased network performance in terms of key performance indicators (KPIs) monitored in the cellular network, network congestion experienced by the first radio access network node, a loss of connection between the first radio access network node and its core network, a loss of connection between a central unit (CU) in the first radio access network node and a distributed unit (DU) in the first radio access network node, a loss of connection between a CU in the first radio access network node and a DU in another radio access network node in the group of radio access network nodes, handover statistics indicating that no handovers have been made to, or from, the first radio access network node during a first predefined time period, number of radio link failure reports issued during a second predefined time period being higher than a threshold number, output from a machine learning algorithm, a message of a public warning or emergency alerting information.
12. The method of claim 1, wherein the increased need for network access pertains to at least one of: detection of radio access network node failure caused by an emergency event, detection of increased number of emergency call attempts, a need of system information update to apply access barring for certain access classes, a request from a public warning system or an emergency alerting system.
13. The method of claim 1, wherein the adjustment of the cell-shaping parameters pertains to adjustment of at least one of: antenna down-tilt, azimuth beam width, elevation beam width, azimuth beam direction, downlink transmit power, uplink transmit power configuration, uplink frequency allocation for uplink transmissions.
14. A network node for adaptive cell-shaping in a cellular network in which a group of radio access network nodes provide network access, the network node comprising: processing circuitry, the processing circuitry being configured to cause the network node to: obtain an indication of combined network performance degradation in a region in which a first radio access network node in the group of radio access network nodes provides network access and increased need for network access for prioritized service and/or prioritized subscribers in the region; and initiate adjustment of cell-shaping parameters of at least one radio access network node in the group of radio access network nodes, wherein network access for the prioritized service and/or prioritized subscribers in the region is maintained by said at least one radio access network node in the group of radio access network nodes.
15-16. (canceled)
17. A non-transitory computer readable medium storing a computer program for adaptive cell-shaping in a cellular network in which a group of radio access network nodes provide network access, the computer program comprising computer code which, when run on processing circuitry of a network node, causes the network node to: obtain an indication of combined network performance degradation in a region in which a first radio access network node in the group of radio access network nodes provides network access and increased need for network access for prioritized service and/or prioritized subscribers in the region; and initiate adjustment of cell-shaping parameters of at least one radio access network node in the group of radio access network nodes, wherein network access for the prioritized service and/or prioritized subscribers in the region is maintained by said at least one radio access network node in the group of radio access network nodes.
18. (canceled)
19. The network node of claim 14, wherein before said indication was obtained, the cell-shaping parameters had original settings, and the network node is further configured to initiate an adjustment of the cell-shaping parameters back to their original settings in response to obtaining a further indication of either that the network performance degradation has ceased, or that the increased need for network access for prioritized service and/or prioritized subscribers in the region has ceased, or a combination thereof.
20. The network node of claim 14, wherein adjustment of cell-shaping parameters is initiated for at a second radio access network node in the group of radio access network nodes but not for the first radio access network node, wherein the second radio access network node is a radio access network node temporarily deployed in the region.
21. The network node of claim 20, wherein adjustment of cell-shaping parameters further is initiated for a third radio access network node in the group of radio access network nodes, wherein said third radio access network node coverage-wise neighbors the first radio access network node.
22. The network node of claim 14, further comprising: obtaining positioning information, from the group of radio access network nodes, about positions of the prioritized subscribers in the cellular network, and wherein the cell-shaping parameters are adjusted based on the positioning information.
23. The network node of claim 14, wherein the adjustment of the cell-shaping parameters pertains to adjustment of at least one of: antenna down-tilt, azimuth beam width, elevation beam width, azimuth beam direction, downlink transmit power, uplink transmit power configuration, uplink frequency allocation for uplink transmissions.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The inventive concept is now described, by way of example, with reference to the accompanying drawings, in which:
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION
[0034] The inventive concept will now be described more fully hereinafter with reference to the accompanying drawings, in which certain embodiments of the inventive concept are shown. This inventive concept may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the inventive concept to those skilled in the art. Like numbers refer to like elements throughout the description. Any step or feature illustrated by dashed lines should be regarded as optional.
[0035]
[0036] There could be different ways to provide, or implement the functionality of, the network node 200. In some examples the functionality of the network node 200 is, is part of, is integrated with, or is collocated with, a centralized network node, such as an Operations, Administration and Maintenance (OAM) node. In other aspects, the functionality of the network node 200 is, is part of, is integrated with, or is collocated with, at least one of the radio access network nodes 100a:100c and thus provided in a distributed fashion. Further aspects of the implementation of the network node 200 will be disclosed below with reference to
[0037] For illustrative purposes it is assumed that a region 150 is affected by network performance degradation. Region 150 will hereinafter therefore be referred to as an affected region. Subscribers 120, 130 are thus located within the affected region 150 whereas subscriber 140 is located outside the affected region 150.
[0038] Subscribers 120, of which there are two in the illustrative example of
[0039]
[0040] As disclosed above there is need for an improved handling of prioritized service and/or prioritized subscribers 120 in situations of network performance degradation in the cellular network 100a, 100b.
[0041] At least some of the herein disclosed embodiments are therefore based on at least one of the radio access network nodes adjusting its cell shape parameters to ensure timely and reliable communications for prioritized service and/or prioritized subscribers 120 in the affected region 150 when there is a (potential) radio access network node failure and an increased demand (load) for prioritized service and/or prioritized subscribers 120 in the affected region 150.
[0042] The embodiments disclosed herein in particular relate to mechanisms for adaptive cell-shaping in a cellular network 100a:100e in which a group of radio access network nodes 110a:110d provide network access. In order to obtain such mechanisms there is provided a network node 200, a method performed by the network node 200, a computer program product comprising code, for example in the form of a computer program, that when run on a network node 200, causes the network node 200 to perform the method.
[0043]
[0044] The network node 200 is configured to detect or to be notified of (potential) network failures or degradation events in the cellular network bow, and to detect, or to be notified, of need for network access for prioritized service and/or prioritized subscribers 120. In particular, the network node 200 is configured to perform step S104:
[0045] S104: The network node 200 obtains an indication of combined network performance degradation in an affected region 150 in which a first radio access network node 110a in the group of radio access network nodes 110a:110d provides network access and increased need for network access for prioritized service and/or prioritized subscribers 120 in the affected region 150. That is, the network performance degradation in the affected region 150 occurs at the same time as there is an increased need for network access for prioritized service and/or prioritized subscribers 120 in the same affected region 150.
[0046] A cell-shape adaptation procedure is then triggered and at least one radio access network node 110a:110d is by the network node 200 instructed to adjust its cell-shaping parameters. In particular, the network node 200 is configured to perform step S106:
[0047] S106: The network node 200 initiates adjustment of cell-shaping parameters of at least one radio access network node 110a:110d in the group of radio access network nodes 110a:iiod. Network access for the prioritized service and/or prioritized subscribers 120 in the affected region 150 is maintained by this at least one radio access network node 110a:110d in the group of radio access network nodes 110a:110d.
[0048] This ensure timely and reliable communications for the prioritized service and/or prioritized subscribers 120 in the affected region 150 even though the affected region 150 at the same time is affected by network performance degradation.
[0049] Embodiments relating to further details of adaptive cell-shaping in a cellular network 100a:100e in which a group of radio access network nodes 110a:110d provide network access as performed by the network node 200 will now be disclosed.
[0050] There could be different types of prioritized service and/or prioritized subscribers 120. According to some embodiments, the prioritized service is an MC service, or a service as identified as prioritized by a network operator. According to some embodiments, the prioritized subscribers 120 are identified as prioritized by belonging to a prioritized access class, by having a prioritized service profile identifier (SPID) or are identified as prioritized by a network operator.
[0051] There could be different types of network performance degradations. In some examples, the indication of network performance degradation pertains to at least one of: decreased network performance in terms of key performance indicators (KPIs) monitored in the cellular network 110a:100e, network congestion experienced by the first radio access network node 100a, a loss of connection between the first radio access network node 110a and its core network, a loss of connection between a central unit (CU) in the first radio access network node 110a and a distributed unit (DU) in the first radio access network node 110a, a loss of connection between a CU in the first radio access network node 110a and a DU in another radio access network node in the group of radio access network nodes 110a:110d, handover statistics indicating that no handovers have been made to, or from, the first radio access network node ma during a first predefined time period, the number of radio link failure (RLF) reports issued during a second predefined time period being higher than a threshold number, output from a machine learning algorithm, and/or a message of a public warning or emergency alerting information.
[0052] In an example, a potential network performance degradation event is detected according to the KPIs that are used for network performance monitoring. For instance, one radio access network node might identify a potential network performance degradation event when observing a significantly increased amount of call drops and connection failures of another radio access network node, such as the first radio access network node 110a, no or very limited cell capacity, a coverage hole, a network congestion, or a cell outage.
[0053] In another example, the network node 200 is configured to monitor handover statistics between the radio access network nodes. In case no handover has been performed to/from a certain radio access network node, such as the first radio access network node 110a, for a certain period of time (optionally in combination with an increase of dropped calls from the same certain radio access network node), this might be an indication that the radio access network node is experiencing network performance degradation.
[0054] In another example, the network node 200 is configured to obtain information that a large amount of terminal devices 120, 130, 140 are sending RLF reports indicating that the RLF happened within a short period of time and where all these terminal devices 120, 130, 140 were operatively connected to one same certain radio access network node, such as the first radio access network node 110a. This might be an indication that the radio access network node is experiencing network performance degradation.
[0055] In another example, the network node 200 is configured to obtain information of a loss of connection between a certain radio access network node, such as the first radio access network node 110a, and the core network, e.g., indicating that communication for that radio access network node over one or more of the interfaces S.sub.1, N.sub.2 or N.sub.3 is impacted. This might be an indication that the radio access network node is experiencing network performance degradation.
[0056] In another example, the network node 200 is configured to obtain information of a loss of connection between a CU and a DU, e.g., in terms of an indication that communication over the Fl interface is impacted. This might be an indication that one or more radio access network nodes is experiencing network performance degradation.
[0057] In another example, the network node 200 is configured to obtain information of a potential network performance degradation via a machine learning algorithm, where the used data set comprises at least the network KPIs, network measurements and/or measurement reports from terminal devices 120, 130, 140 served in the cellular network.
[0058] In another example, the network node 200 is configured to obtain information of a potential network performance degradation via public warning or emergency alerting information provided by an emergency center or PSAP. The information might relate to a potential emergency or disaster event and specify the predicted or actual time and location of the potential emergency or disaster event.
[0059] There could be different ways for the network node 200 to obtain the indication of increased need for network access. In some examples, the increased need for network access pertains to at least one of: detection of radio access network node failure caused by an emergency event, detection of increased number of emergency call attempts, a need of system information update to apply access barring for certain access classes, and/or a request from a public warning system or an emergency alerting system.
[0060] There could be different ways for the cell-shaping parameters to be adjusted.
[0061] According to some embodiments, the adjustment of the cell-shaping parameters pertains to adjustment of at least one of: antenna down-tilt, azimuth beam width, elevation beam width, azimuth beam direction, downlink transmit power, uplink transmit power configuration, and/or uplink frequency allocation for uplink transmissions. Thereby, the at least one radio access network node 110a:110d in the group of radio access network nodes 110a:110d for which adjustment of cell-shaping parameters is initiated will adjust its cell-shaping parameters accordingly. For example, depending on for which at least one radio access network node 110a:nod the cell-shaping parameters are to be adjusted, the at least one radio access network node 110a:110d might adapt its cell shapes to either better focusing on prioritized service and/or prioritized subscribers 120 in the affected region 150 (e.g., the MC communication service enabled terminal devices in a disaster/rescue area) or to offload traffic from the affected region 150.
[0062] Further examples of how the network node 200 might determine how the cell-shaping parameters should be adjusted to improve the performance for the prioritized service and/or prioritized subscribers 120 in the affected region 150 will now be disclosed.
[0063] In a first example, a radio access network node that provides network access to the affected region 150, but is running short of capacity and/or are functionally breaking down and therefore expected to within short no longer be capable of providing network access to the affected region 150 signals positions of subscribers of prioritized service and/or prioritized subscribers 120 to the network node 200. The network node 200 might then take this information into account when adjusting the cell-shaping parameters of radio access network nodes surrounding this radio access network node such that at least one neighboring radio access network node is instructed to provide network access where the subscribers of prioritized service and/or prioritized subscribers 120 are positioned within the affected region 150.
[0064] In one version of the first example, all radio access network nodes in the cellular network are constantly logging positions of subscribers of prioritized service and/or prioritized subscribers 120. Thus, if a disaster occurs and the functionality of one or more of the radio access network nodes is impacted, the network node 200 has access to information that can be used to adjust the cell-shaping parameters of at least one neighboring radio access network node to provide network access to subscribers of prioritized service and/or prioritized subscribers 120 are positioned within the affected region 150.
[0065] In another version of the first example, only those radio access network nodes that are located within prioritized regions regularly logs positions of subscribers of prioritized service and/or prioritized subscribers 120. This reduces the overhead compared to if all radio access network nodes always log positions of subscribers of prioritized service and/or prioritized subscribers 120. Thus, if a disaster occurs and the functionality of one or more of these radio access network nodes is impacted, the network node 200 has access to information that can be used to adjust the cell-shaping parameters of at least one neighboring radio access network node to provide network access to subscribers of prioritized service and/or prioritized subscribers 120 that are positioned within the affected region iso, if the affected region 150 is one of the prioritized regions.
[0066] In a second example, the message of a public warning or emergency alerting information comprises information of the area where high coverage/capacity is needed for subscribers of prioritized service and/or prioritized subscribers 120. The network node 200 might then use this information to adjust the cell-shaping parameters of one or more of the radio access network nodes.
[0067] In a third example, one of the radio access network nodes detects that there are many subscribers of prioritized service and/or prioritized subscribers 120 in a region affected by network performance degradation. The network node 200 might then use this information to adjust the cell-shaping parameters of one or more of the radio access network nodes.
[0068] In a fourth example, the cell-shaping parameters are determined by a machine learning algorithm.
[0069] Thus, in some aspects, at least one of the radio access network nodes 110a:110d logs the locations of subscribers using prioritized services or of prioritized subscribers 120. Hence, according to an embodiment, the network node 200 is configured to perform (optional) step S102:
[0070] S102: The network node 200 obtains positioning information, from the group of radio access network nodes 110a:110d, about positions of the prioritized subscribers 120 in the cellular network 100a:100e. The cell-shaping parameters might then be adjusted based on the positioning information.
[0071] As noted above, in order to limit the amount of data that is logged, only the locations of those subscribers that are within prioritized regions might be logged. That is, in some embodiments, the positioning information only is obtained from those radio access network nodes in the group of radio access network nodes 110a:110d that provide network access in prioritized regions.
[0072] In some aspects, the cell-shaping parameters are adjusted back to their original settings once there no longer is any need for the cell-shaping parameters as adjusted.
[0073] Thus, before this indication was obtained, the cell-shaping parameters had original settings, and the network node 200 is configured to perform (optional) steps S108, S110:
[0074] S108: The network node 200 obtains a further indication of either that the network performance degradation has ceased, or that the increased need for network access for prioritized service and/or prioritized subscribers 120 in the affected region 150 has ceased, or a combination thereof.
[0075] S110: The network node 200 initiates adjustment of the cell-shaping parameters back to their original settings.
[0076] For example, the network node 200 might initiate adjustment of the cell-shaping parameters back to their original settings when network performance degradation is recovered and/or when there has not been any need detected within a certain time period for prioritized service and/or prioritized subscribers 120 in the affected region 150. For example, a potential network node failure warning might be released when the network KPIs are back to normal performance, a previously disabled connection to the core network is re-established, the output from a machine learning algorithm indicates that the cellular network is back to normal situation, and/or when a further message of a public warning or emergency alerting information is received.
[0077] According to a first scenario, the first radio access network node 110a that provides network access in the affected region 150 remains undamaged. However, due to significantly increased network traffic demand (e.g., due to a comparatively large number of emergency calls being made), there is an increased need for network access for prioritized service and/or prioritized subscribers 120 in the affected region 150.
[0078]
[0079] In some embodiments, adjustment of cell-shaping parameters is therefore initiated for the first radio access network node 110a. Cell shapes might thereby be adjusted to improve coverage or/and capacity within a disaster area and offload regular traffic in the disaster area to other radio access network nodes. For instance, the first radio access network node 110a located closest to the affected region 150 might be instructed to adjust its cell shape to focus on subscribers with prioritized services and/or prioritized subscribers 120, by narrowing its transmission/reception beams, or by redirecting its transmission/reception beams, to improve coverage and/or capacity in the affected region 150. Any of its neighboring radio access network nodes might be instructed to adjust their cell shapes to offload the regular network traffic from the affected region 150. That is, in some embodiments, adjustment of cell-shaping parameters further is initiated for at least one second radio access network node 110b in the group of radio access network nodes 110a:110e. This at least one second radio access network node iiob coverage-wise neighbors the first radio access network node noa. That two radio access network nodes coverage-wise neighbors each other here refers to that these two radio access network nodes have coverage regions that neighbor each other. As an example, in
[0080] According to a second scenario, the first radio access network node 110a that provides network access in the affected region 150 is damaged or otherwise made inoperable. A temporary network, represented by at least one third radio access network node nod, might therefore be deployed to provide local communication for subscribers with prioritized services and/or prioritized subscribers 120 in the affected region 150 (but not for other subscribers).
[0081]
[0082] In some embodiments, adjustment of cell-shaping parameters is thus initiated for at least one third radio access network node nod in the group of radio access network nodes 110a:110d but not for the first radio access network node noa. The at least one third radio access network node nod is a radio access network node temporarily deployed in the affected region 150.
[0083] Any of the radio access network nodes neighboring the radio access network node that is damaged or otherwise made inoperable might be instructed to adjust their cell shapes to offload the regular network traffic from the affected region 150. Hence, in some embodiments, adjustment of cell-shaping parameters further is initiated for at least one second radio access network node 110b in the group of radio access network nodes 110a:nod. This at least one second radio access network node 110b coverage-wise neighbors the first radio access network node 110a.
[0084] According to a third scenario, the first radio access network node 110a that provides network access in the affected region 150 is damaged or otherwise made inoperable. According to this third scenario, deployment of a temporary network is not possible or not allowed. Hence, there is no ad-hoc deployed node to provide temporary network access for subscribers with prioritized services and/or prioritized subscribers 120 in the affected region 150.
[0085]
[0086] Any of the radio access network nodes neighboring the radio access network node 110a that is damaged or otherwise made inoperable might be instructed to adjust their cell shapes to provide network access for subscribers with prioritized services and/or prioritized subscribers 120 in the affected region 150. In some embodiments, adjustment of cell-shaping parameters is thus initiated for at least one second radio access network node 110b in the group of radio access network nodes 110a:110d but not for the first radio access network node noa. This at least one second radio access network node 110b coverage-wise neighbors the first radio access network node 110a.
[0087] The adjustment of cell-shaping parameters if performed by at least two of the radio access network nodes can be coordinated to avoid, or at least mitigate, inter-cell interference. For instance, given that the communication utilizes two or more frequency bands, during the network performance degradation, a first frequency band might be prioritized for providing network access to subscribers with prioritized services and/or prioritized subscribers 120 whereas network access to other subscribers is provided in a second frequency band. The cell shapes are adjusted according to any of the above disclosed embodiments. Hence, adjustment might be performed both spatially in terms of adjusted cell shapes and in frequency in terms of adjusted frequency bands or subscribers being moved among the frequency bands.
[0088]
[0089] Particularly, the processing circuitry 210 is configured to cause the network node 200 to perform a set of operations, or steps, as disclosed above. For example, the storage medium 230 may store the set of operations, and the processing circuitry 210 may be configured to retrieve the set of operations from the storage medium 230 to cause the network node 200 to perform the set of operations. The set of operations may be provided as a set of executable instructions.
[0090] Thus the processing circuitry 210 is thereby arranged to execute methods as herein disclosed. The storage medium 230 may also comprise persistent storage, which, for example, can be any single one or combination of magnetic memory, optical memory, solid state memory or even remotely mounted memory. The network node 200 may further comprise a communications interface 220 at least configured for communications with other entities, node, functions, and devices of the cellular networks 100a:100e. As such the communications interface 220 may comprise one or more transmitters and receivers, comprising analogue and digital components. The processing circuitry 210 controls the general operation of the network node 200 e.g. by sending data and control signals to the communications interface 220 and the storage medium 230, by receiving data and reports from the communications interface 220, and by retrieving data and instructions from the storage medium 230. Other components, as well as the related functionality, of the network node 200 are omitted in order not to obscure the concepts presented herein.
[0091]
[0092] In general terms, each functional module 210a-210e may in one embodiment be implemented only in hardware and in another embodiment with the help of software, i.e., the latter embodiment having computer program instructions stored on the storage medium 230 which when run on the processing circuitry makes the network node 200 perform the corresponding steps mentioned above in conjunction with
[0093] The network node 200 may be provided as a standalone device or as a part of at least one further device. For example, the network node 200 may be provided in a node of the radio access network or in a node of the core network. Alternatively, functionality of the network node 200 may be distributed between at least two devices, or nodes. These at least two nodes, or devices, may either be part of the same network part (such as the radio access network or the core network) or may be spread between at least two such network parts. In general terms, instructions that are required to be performed in real time may be performed in a device, or node, operatively closer to the cell than instructions that are not required to be performed in real time.
[0094] Thus, a first portion of the instructions performed by the network node 200 may be executed in a first device, and a second portion of the of the instructions performed by the network node 200 may be executed in a second device; the herein disclosed embodiments are not limited to any particular number of devices on which the instructions performed by the network node 200 may be executed. Hence, the methods according to the herein disclosed embodiments are suitable to be performed by a network node 200 residing in a cloud computational environment. Therefore, although a single processing circuitry 210 is illustrated in
[0095]
[0096] In the example of
[0097] The inventive concept has mainly been described above with reference to a few embodiments. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the inventive concept, as defined by the appended patent claims.