The present invention relates to mobile relay support in relay-enhanced access networks. More specifically, the present invention exemplarily relates to measures (including methods, apparatuses and computer program products) for mobile relay support in relay-enhanced access networks.
The present specification basically relates to relaying using mobile relays in relay-enhanced access networks.
In the following, for the sake of intelligibility, LTE (Long-Term Evolution according to 3GPP terminology) or LTE-Advanced is taken as a non-limiting example for a radio access network being applicable in the context of the present invention and its embodiments. However, it is to be noted that any kind of radio access network may likewise be applicable, as long as it exhibits comparable features and characteristics as described hereinafter.
In the context of LTE and LTE-Advanced (i.e. in the context of release 9 and release 10 specifications), relaying has been proposed as one concept. In relaying, a user equipment (UE) or terminal is not directly connected with an access node such as a radio base station (e.g. denoted as eNodeB or eNB) of a radio access network (RAN), but via a relay node (RN). Relaying by way of RNs has been proposed as a concept for coverage extension in cellular systems. Apart from this main goal of coverage extension, introducing relay concepts can also help in providing high-bit-rate coverage in high shadowing environments, reducing the average radio-transmission power at the a user equipment (thereby leading to longer battery life), enhancing cell capacity and effective throughput, (e.g. increasing cell-edge capacity and balancing cell load), and enhancing overall performance and deployment cost of radio access networks.
Generally, in a relay-enhanced access network, such as e.g. a Long Term Evolution (LTE) RAN with radio-relaying extensions, UEs at disadvantaged positions such as a cell edge and/or high shadowing areas are connected to a so-called donor base station (DeNB) via a respective relay node (RN) which may be a mobile relay (MR). The link between DeNB and RN/MR may be referred to as backhaul link, relay link or Un link, the respective interface usually being referred to as Un interface, and the link between RN/MR and UE may be referred to as access link or Uu link, the respective interface usually being referred to as Uu interface.
As shown in
Mobile relays are generally most efficient in dynamic network and deployment scenarios. For example, in high speed public transportation, mobile relays could be implemented by relays being mounted in high speed vehicles (e.g. trains) and being wirelessly connected to the RAN infrastructure, particularly to a DeNB via a wireless backhaul link. Thereby, problems in such in dynamic network and deployment scenarios could be solved, like avoiding a reduction in handover success rate due to a high frequency of required handovers and/or a high number of simultaneous handover requests from all users residing in a high speed vehicle and/or less accurate UE-based measurements due to the high speed, avoiding a degraded throughput due to high Doppler effects on high speed vehicles, and providing a good quality of service for users on board of high speed vehicles.
In such scenarios of high speed public transportation or the like, it would be beneficial when the mobile relay provides for multimode relaying capabilities. Namely, in order to provide wireless connectivity services to as many users as possible, a mobile relay being operable with various access technologies (via various air interfaces) on the access link would be specifically effective. For example, such multimode mobile relay may be operable, i.e. provide connectivity services for user terminals having GSM/UTRAN/WiFi air interfaces and the like.
As shown in
The DeNB appears to the relay node as an MME (for S1-MME, i.e. the control plane on the S1 interface) and an S-GW (for S1-U, i.e. the user plane on the S1 interface), and the DeNB appears to UE's MME/S-GW as an eNB (i.e. base station or access node). Accordingly, as indicated in
In such relay architecture, the DeNB is aware of the individual UE EPS bearers of all of the relayed UEs. That is, the DeNB is aware of the relayed UEs as well as of the relay nodes with which the relayed UEs are connected. Specifically, the DeNB acts like a proxy for S1/X2 connections, and the relay node appears as a cell within the DeNB.
However, the current relay architecture is not capable of supporting the mobility of a mobile relay (MR) in an appropriate manner in view of existing requirements in this regard.
Firstly, when the MR performs a handover to a target DeNB, the current relay architecture breaks the connection used for MR's O&M traffic, as well as the connection for the air interface traffic when the MR is multimode supporting GSM/UTRAN/WiFi. The MR's downlink traffic is routed to the P-GW collocated with the DeNB, which assigned the IP address for the MR. In this case, the MR's downlink traffic is sent to the P-GW collocated with the source DeNB. In this regard, it is not feasible to enable that the MR's O&M server and the supported system's RAN control entity (e.g. GSM BSC, UTRAN RNC/HNB-GW, WiFi Core, etc.) change the downlink path. Accordingly, even if relocating the P-GW from the source DeNB to the target DeNB could not prevent the respective connections from being interrupted during the MR handover.
Secondly, the current handover mechanisms treat the MR as a normal UE. During the S1 handover or the X2 handover, the source DeNB only transfers context information related to the MR to the target DeNB. The UE's context information, i.e. S1-MME/S1-U information, are not transmitted to the target DeNB. Without the S1-MME/S1-U context information for the UEs connecting to the MR, the target DeNB cannot work correctly, i.e. cannot proxy the S1-MME and S1-U between the MR and the UE's MME/S-GW. Details in this regard are explained below with respect to
Thirdly, assuming the aforementioned exemplary scenario, when the UE stays in the vehicle in which the MR is implemented, the UE does not experience any mobility. Hence, the UE's MME/S-GW remains unchanged even if the vehicle is very far away from the UE's MME/S-GW. This requires the DeNB to connect to all MMES along the vehicle's route, even if it is very far away. This is very inefficient, especially when considering that 3GPP already supports the relocation of MME/S-GW for better performance.
In view thereof, there arise various problematic issues when applying conventionally known handover mechanisms (which are actually specified for UE mobility/handover) in terms of mobile relay mobility/handover. While details of such conventionally known handover mechanisms (which are actually specified for UE mobility/handover) in terms of mobile are omitted for the sake of brevity, the problematic issues arising in this regard are illustrated in
For details regarding the problematic issues arising in both cases, reference is made to the illustrations, from which the relevant problems, drawbacks and deficiencies are deemed to be evident for a skilled person.
As shown in
In view thereof, there is a need to provide for improvements in the context of, thus facilitating, mobile relay support in relay-enhanced access networks.
Various exemplary embodiments of the present invention aim at addressing at least part of the above issues and/or problems and drawbacks.
Various aspects of exemplary embodiments of the present invention are set out in the appended claims.
According to an exemplary aspect of the present invention, there is provided a method comprising setting up a first packet data connection for traffic in a relay-enhanced access network, which relates to first-type user terminals using the same access technology as a base station from a mobile relay towards a packet data network via a first packet gateway functionality collocated with the base station currently serving the mobile relay, and setting up a second packet data connection for traffic in the relay-enhanced access network, which relates to at least one of second-type user terminals using another access technology as the base station and the mobile relay, from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay.
Advantageous further developments are as set out in respective dependent claims thereof.
According to an exemplary aspect of the present invention, there is provided a method comprising servicing a first packet data connection for traffic in a relay-enhanced access network, which relates to the first-type user terminals using the same access technology as a base station, from a mobile relay towards a packet data network via a first packet gateway functionality collocated with the base station currently serving the mobile relay, and servicing a second packet data connection for traffic in the relay-enhanced access network, which relates to at least one of second-type user terminals using another access technology as the base station and the mobile relay, from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay.
Advantageous further developments are as set out in respective dependent claims thereof.
According to an exemplary aspect of the present invention, there is provided an apparatus comprising an interface configured to communicate with at least another apparatus, a processor configured to cause the apparatus to perform: setting up a first packet data connection for traffic in a relay-enhanced access network, which relates to the first-type user terminals using the same access technology as a base station, from a mobile relay towards a packet data network via a first packet gateway functionality collocated with a base station currently serving the mobile relay, and setting up a second packet data connection for traffic in the relay-enhanced access network, which relates to at least one of second-type user terminals using another access technology as the base station and the mobile relay, from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay.
Advantageous further developments are as set out in respective dependent claims thereof.
According to an exemplary aspect of the present invention, there is provided an apparatus comprising an interface configured to communicate with at least another apparatus, a processor configured to cause the apparatus to perform: servicing a first packet data connection for traffic in a relay-enhanced access network, which relates to the first-type user terminals using the same access technology as a base station, from a mobile relay towards a packet data network via a first packet gateway functionality collocated with a base station currently serving the mobile relay, and servicing a second packet data connection for traffic in the relay-enhanced access network, which relates to at least one of second-type user terminals using another access technology as the base station and the mobile relay, from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay.
Advantageous further developments are as set out in respective dependent claims thereof.
According to an exemplary aspect of the present invention, there is provided a computer program product including comprising computer-executable computer program code which, when the program is run on a computer (e.g. a computer of an apparatus according to any one of the aforementioned apparatus-related exemplary aspects of the present invention), is configured to cause the computer to carry out the method according to any one of the aforementioned methodrelated exemplary aspects of the present invention.
Such computer program product may be embodied as a (tangible) computer-readable storage medium or the like.
For example, according to further developments or modifications of any one of the aforementioned exemplary aspects of the present invention, additional context information for one or more contexts of user terminals connecting to the mobile relay may be conveyed from a source base station to a mobile relay, and/or a group context update procedure for the one or more contexts of user terminals connecting to the mobile relay may be performed in at least one of a mobile relay, the target base station, a mobility management entity of the user terminals, any mobility management entity in case the mobility management entity of the user terminal is unavailable, and a serving gateway entity of the user terminals.
By way of exemplary embodiments of the present invention, there is provided mobile relay support in relay-enhanced access networks. More specifically, by way of exemplary embodiments of the present invention, there are provided measures and mechanisms for mobile relay support in relay-enhanced access networks.
Thus, improvement is achieved by methods, apparatuses and computer program products enabling mobile relay support in relay-enhanced access networks.
In the following, the present invention will be described in greater detail by way of non-limiting examples with reference to the accompanying drawings, in which
The present invention is described herein with reference to particular non-limiting examples and to what are presently considered to be conceivable embodiments of the present invention. A person skilled in the art will appreciate that the invention is by no means limited to these examples, and may be more broadly applied.
It is to be noted that the following description of the present invention and its embodiments mainly refers to specifications being used as non-limiting examples for certaro exemplary network configurations and deployments. Namely, the present invention and its embodiments are mainly described in relation to 3GPP specifications being used as non-limiting examples for certain exemplary network configurations and deployments. In particular, an LTE (E-UTRAN) radio access network and corresponding standards (LTE releases 8, 9 and LTE-Advanced release 10 and beyond) are used as a non-limiting example for the applicability of thus described exemplary embodiments. As such, the description of exemplary embodiments given herein specifically refers to terminology which is directly related thereto. Such terminology is only used in the context of the presented non-limiting examples, and does naturally not limit the invention in any way. Rather, any other network configuration or system deployment, etc. may also be utilized as long as compliant with the features described herein.
In particular, the present invention and its embodiments may be applicable in any relay-enhanced or heterogeneous (cellular) system with a need for enabling relay node handovers. The present invention and its embodiments may be applicable for/in any kind of modern and future communication network including any conceivable mobile/wireless communication networks according to 3GPP or IEEE specifications.
Hereinafter, various embodiments and implementations of the present invention and its aspects or embodiments are described using several alternatives. It is generally noted that, according to certain needs and constraints, all of the described alternatives may be provided alone or in any conceivable combination (also including combinations of individual features of the various alternatives).
According to exemplary embodiments of the present invention, in general terms, there are provided measures and mechanisms for mobile relay support in relay-enhanced access networks.
As shown in
A first (logical) procedure according to exemplary embodiments of the present invention is a procedure of setting up packet data connections. Such procedure basically comprises setting up a packet data connection for traffic in a relay-enhanced access network, which relates to the first-type user terminals using the same access technology as a base station, from a mobile relay towards a packet data network via a first packet gateway functionality collocated with the base station currently serving the mobile relay, which is separate from a packet data connection for traffic in the relay-enhanced access network, which relates to at least one of second-type user terminals using another access technology as the base station and the mobile replay (such as the mobile relay's operation and maintenance traffic), from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay.
According to an exemplary embodiment of the present invention, as illustrated in
Such procedure according to an exemplary embodiment of the present invention is effective in providing a separation (in the handling/treatment of) between the traffic related to the first-type user terminals using the same access technology as the DeNB, e.g. LTE, and all other traffic, i.e. the traffic related to the second-type user terminals using other access technologies, e.g. GSM, UTRAN, WiFi, etc., and the traffic related to the mobile relay itself, e.g. the MR's O&M traffic Further details thereof are explained in connection with
A second (logical) procedure according to exemplary embodiments of the present invention is a procedure of conveying additional context information. Such procedure basically comprises conveying additional context information for one or more contexts of first-type and second-type user terminals connecting to the mobile relay from a source base station to a mobile relay.
Such procedure according to an exemplary embodiment of the present invention is effective in providing (full) transport/tunnel information enabling transmission and/or tunneling of control plane and user plane traffic for the user terminal between the mobile relay and a mobility management entity and/or a serving gateway functionality of the user terminal, namely in providing support for a (group) context update during a MR handover in advance of the MR handover. Further details thereof are explained in connection with
A third (logical) procedure according to exemplary embodiments of the present invention is a procedure of group-based updating of UE contexts for first-type and second-type user terminals. Such procedure basically comprises performing a context update procedure for one or more contexts of user terminals connecting to a mobile relay between a mobile relay and a target base station of the mobile relay, and between the target base station and the mobility management entity and/or the serving gateway of the user terminal, after a handover thereof.
According to an exemplary embodiment of the present invention, as illustrated in
Such procedure according to an exemplary embodiment of the present invention is effective in facilitating block procedures for group-based context updating in terms of UEs' context (i.e. the context for the control plane and user plane of all UEs) relating to the mobile relay. Thereby, all contexts for the user terminals may be updated/moved by a single procedure. Further details thereof are explained in connection with
With respect to
For example, the second and third procedures may be operable on/for the PDN connection for the traffic related to the first-type user terminals using the same access technology as the base station using the P-GW collocated with the currently serving DeNB, i.e. the first PDN connection according to the first procedure. That is, the establishment of the second PDN connection (or the set of second PDN connections) according to the first procedure is not required for the second and third procedures.
For example, the third procedure may be operable on the basis of the second procedure, i.e. the (group-based) context update procedure may be performed on the basis of the additional context information being conveying according to the second procedure.
With respect to
For example, any one or more of the thus illustrated three basic (logical) procedures may be applied to or in combination with a technique to relocate the MR's P-GW from the source DeNB to the target DeNB.
For example, any one or more of the thus illustrated three basic (logical) procedures may be applied to or in combination with a technique using a handover request message for delivering the MR's UEs context to the target DeNB.
With respect to
According to exemplary embodiments of the present invention, i.e. by virtue of one or more of the basic procedures as illustrated in
The problematic issues in the context of conventional handover mechanisms, as illustrated in
A clean and smooth group-wise movement of UEs served by a MR handing over to a new DeNB may be accomplished.
The reusability of the currently specified relay architecture in 3GPP Release 10 may be maximized or optimized. This is especially beneficial in terms of product implementation.
The connectivity for MR's O&M may be maintained during the MR's mobility or handover. Also, the mobility may be easily supported, if the MR exhibits a multimode capability that supports various technologies, such as e.g. UTRAN/GSM/WiFi.
The handover procedure may be accelerated, e.g. by using a single procedure for a group update of the UE context in various nodes.
The impact to existing networks, deployments and specifications may be minimized, i.e. no change to the MR's neighboring eNB, P-GW, etc. is required.
The impact in further standardization is minimized in that only one new group-based procedure is introduced to update the UE context in MR, DeNB and UE's MME, etc.
The relocation of UE's MME/S-GW is supported, which does not require the DeNB to connect to all MME's along the vehicle's route in the aforementioned example, and allows using the MME/S-GW most close to the UE's current position to achieve better performance.
In case of network sharing, the RAN operator is free to add/remove a mobile relay or support thereof without any impact to the CN operator.
As mentioned above, according to exemplary embodiments of the present invention, a MR may set up, and a DeNB may service, a PDN connection used for the traffic related to first-type user terminals using the same access technology as the DeNB, to be separate from a PDN connection used for all other traffic, e.g. traffic related to second-type user terminals using other access technologies and the mobile relay (such as the mobile relay's operation and maintenance traffic). In particular, a MR may set up, and a DeNB may service, two PDN connections using currently specified procedures (e.g. 3GPP Release-10-based procedures). The first PDN connection may use the P-GW collocated in the DeNB, while the second PDN connection (or the set of second PDN connections) may use the P-GW external to the DeNB. The DeNB supports an interface (e.g. the S5 interface) for interacting with the external P-GW, which enables to service the second PDN connection (or the set of second PDN connections).
By virtue of the separate PDN connections as outlined above, a continuous and uninterrupted connection during a MR handover is enabled, as the P-GW of the second PDN connection (or the set of second PDN connections) is not relocated.
Such procedure may result in the relay architecture according to exemplary embodiments of the present invention, as illustrated in any one of
The first PDN connection uses the S-GW/P-GW collocated in the DeNB currently serving the MR (e.g. the source DeNB), which is relocated (to the target DeNB) during a S1/X2 handover of the MR. The first PDN connection is used for the S1-MME and S1-U traffic for all User-UEs connecting to the MR via the LTE or LTE-A air interface, which are assumed as first-type user terminals here. By using the S1 group context update procedure according to exemplary embodiments of the present invention, which is denoted as the third (basic) procedure herein, the S1-MME and S1-U traffic for all UEs connecting to the MR are maintained during the MR's mobility or handover.
The second PDN connection, and any further PDN connection, that is related to all traffic other than that served by the first PDN connection (see
The relay architecture of
In the example of
The traffic related to the LTE/LTE-A UE, i.e. both control plane and user plane traffic of first-type user terminals, is transmitted over a PDN connection (constituting a first PDN connection) using the P-GW that is collocated to the DeNB.
The other traffic is transmitted over one or more additional PDN connections (constituting a set of second PDN connections). Namely, the traffic related to the 3G-UE and the traffic related to the WiFi-UE, i.e. the traffic of the second-type user terminals, are each transmitted over a PDN connection (or a set of PDN connections) using the P-GW that is external to the DeNB, respectively. For 3G uplink traffic, the P-GW transmits the 3G (Iuh) traffic to the HNB-GW. For WiFi traffic, the P-GW transmits the WiFi (Wn) traffic to the WAG. The P-GW also receives the 3G (Iuh) traffic from the HNB-GW and the WiFi (Wn) traffic from the WAG, and transmits it to the HNB/WiFi AP via the second PDN connection (or a set of the second PDN connections).
The relay architecture of
In the example of
The traffic related to the LTE/LTE-A UE, i.e. both control plane and user plane traffic of first-type user terminals, is transmitted over a PDN connection (constituting a first PDN connection) using the P-GW that is collocated to the DeNB.
The other traffic is transmitted over one PDN connection or various PDN connections (constituting a set of PDN connections). Namely, the traffic related to the 3G-UE, the traffic related to GSM-UE and the traffic related to the WiFi-UE, i.e. the traffic of second-type user terminals, as well as the traffic related to the MR's O&M are transmitted over one PDN connection, or each transmitted over a PDN connection, using the P-GW that is external to the DeNB, respectively. For 3G uplink traffic, the P-GW transmits the 3G (Iuh/Iub) traffic to the HNB-GW/RNC. For WiFi traffic, the P-GW transmits the WiFi (Wn) traffic to the WAG. For GSM traffic, the P-GW transmits the GSM (Abis) traffic to the BSC. For MR's O&M traffic, the P-GW transmits the O&M traffic to the MR's O&M server. The P-GW also receives the 3G (Iuh/Iub) traffic from the HNB-GW/RNC, the WiFi (Wn) traffic from the WAG, the GSM (Abis) traffic from the BSC, and the O&M traffic from the MR's O&M server.
In view of the alternative architectural examples of
Further, it is noted that all the depicted different access technologies and/or relay architectures according to
As mentioned above, according to exemplary embodiments of the present invention, the DeNB currently serving the MR (i.e. the source DeNB prior to a MR handover) may convey additional context information for all connected User-UEs to the MR, and the MR may save it for its upcoming S1/X2 handovers.
According to exemplary embodiments of the present invention, a DeNB may convey additional context information to the MR. The additional context information may generally include any information enabling transmission and/or tunneling of control plane and user plane traffic for the relevant UE or UEs between the MR and an UE's MME/S-GW. Specifically, the additional context information may include (in addition to GUMMEI that it is already supported by current specifications), but is not limited to, an identifier of an UE's S1AP (such as e.g. MME UE S1AP ID assigned by the UE's MME) and/or an UE's uplink tunneling protocol endpoint (such as e.g. UE's GTP-U UL endpoint assigned by the UE's S-GW), and/or the like.
In view thereof, exemplary embodiments of the present invention comprise one or more of the following scenarios of conveying the additional context information.
As shown as Scenario 1 in
As shown as Scenario 2 in
As shown as Scenario 3 in
In each of the aforementioned scenarios, the MR may save the received additional context information for further use, e.g. for a group context update described herein.
As mentioned above, according to exemplary embodiments of the present invention, during a S1/X2 handover of a MR, the MR may initiate a group context update procedure for (all) UEs connecting to the MR. This may also trigger the DeNB currently serving the MR (i.e. the target DeNB) to initiate the group context update procedure towards the UE's MME/S-GW. That is to say, the DeNB may proxy the group context update procedure between the MR and the further network elements such as UE's MME/S-GW and the like. The group context update procedure may update the context for the respective UE/UEs in any one of the MR, the target DeNB, the UE's MME and the UE's S-GW. When there is a need to relocate the UE's MME, the group context update procedure may include selection of a new MME and relocation thereof, wherein the UE's new MME may perform a group context retrieval procedure to retrieve required information for the respective UE/UEs from the UE's old MME (as illustrated in
In the exemplary case according to
In step 1, the MR sends a Group Context Update Request message to the target DeNB. The message may include, but is not limited to, one or more of the following information for every affected UE (as indicated in a list of UEs or the like):
In step 2, the target DeNB sends the Group Context Update Request message to the UE's MME. The message may include, but is not limited to, one or more of the following information for every affected UE (as indicated in a list of UEs or the like):
In step 3, if the UE's GTP-U DL F-TEID is changed, the UE's MME sends a Modify Bearer Request message to the UE's S-GW.
In step 4, the UE's S-GW updates the GTP-U DL F-TEID, and sends a Modify Bearer Response message to the UE's MME. The UE's S-GW may include GTP-U UL F-TEID in the Modify Bearer Response message, if the S-GW changes it.
The steps 3 and 4 may be repeated for every affected UE being connected to the MR and/or having to be updated in terms of additional context information, possibly by way of a new procedure to modify the bearer for a list of UEs.
In step 5, the UE's MME sends a Group Context Update Response message including at least the updated MME UE S1AP ID and/or GTP-U UL F-TEID, and/or any other context information related to the affected UEs, if there has occurred a change to them.
In step 6, the target DeNB updates the context information for the respective UE in the list of affected UEs. If there is any change to the MME UE S1AP ID for the MR-DeNB interface and/or the GTP-U UL F-TEID in the DeNB, and/or any other context information related to the affected UEs, the DeNB includes it/them in a Group Context Update Response message being sent to the MR.
Up to this point, the context information for S1-MME/S1-U is updated in all related nodes. The uplink and downlink for the UE's control plane can now be sent via MR-DeNBUE's MME. The uplink and downlink traffic for the UE's data plane can now be sent via MR-DeNB's eNB function-S-GW/P-GW collocated in the target DeNB-UE's S-GW.
In the exemplary case according to
In step 1, the MR sends a Group Context Update Request message to the target DeNB. The message may include, but is not limited to, one or more of the following information for every affected UE (as indicated in a list of UEs or the like):
In step 2, the target DeNB cannot connect to the UE's old MME. Therefore, the target DeNB selects an MME based on TAI and eNB ID of the target DeNB. Then, the target DeNB sends a Group Context Update Request message to the UE's new MME. The message may include, but is not limited to, one or more of the following information for every affected UE (as indicated in a list of UEs or the like):
In step 3, the UE's new MME sends a Group Context Retrieval message to the UE's old new MME to retrieve the MM and EPS bearer context for the related UEs. The MME identifies the affected UE based on the received above-mentioned information. The Group Context Retrieval message may include, but is not limited to, one or more of the following information for every affected UE (as indicated in a list of UEs or the like), which can identify the UEs in the UE's old MME:
The group context retrieval procedure may alternatively be implemented via the enhancement to a currently specified context request procedure by adding the above-mentioned information elements.
In step 4, the UE's old MME replies with a Group Context Retrieval Response message contain the MM and EPS bearer context for the affected UEs.
In case that the UEs are served by different MMES, steps 3 and Step 4 are repeated for/by every affected UE's MME.
In step 5, the UE's new MME sends a Create Session Request message (for initiating bearer modification) to the UE's new S-GW.
In step 6, the UE's new S-GW sends a Modify Bearer Request message to the UE's P-GW.
In step 7, the UE's P-GW updates the GTP-U DL F-TEID, and sends a Modify Bearer Response message to the UE's new S-GW. The UE's P-GW may include GTP-U UL F-TEID in the Modify Bearer Response message, if the P-GW changes it.
In step 8, the UE's new S-GW sends a Create Session Response message to the UE's new MME. The UE's new S-GW may include GTP-U UL F-TEID in the Create Session Response message, if it has been changed.
The steps 5 to 8 or 6 to 7 may be repeated for every affected UE being connected to the MR and/or having to be updated in terms of additional context information, possibly by way of a new procedure to modify the bearer for a list of UEs.
In step 9, the UE's new MME sends a Group Context Update Response message including at least the updated MME UE S1AP ID and/or GTP-U UL F-TEID, and/or any other context information related to the affected UEs, if there has occurred a change to them.
In step 10, the target DeNB updates the context information for the respective UE in the list of affected UEs. If there is any change to the MME UE S1AP ID for the MR-DeNB interface and/or the GTP-U UL F-TEID in the DeNB, and/or any other context information related to the affected UEs, the DeNB includes it/them in a Group Context Update Response message being sent to MR.
Up to this point, the context information for S1-MME/S1-U is updated in all related nodes. The uplink and downlink for the UE's control plane can now be sent via MR-DeNB-UE's MME. The uplink and downlink traffic for the UE's data plane can now be sent via MR-DeNB's eNB function-S-GW/P-GW collocated in the target DeNB-UE's new S-GW.
In view of the above, exemplary embodiments of the present invention may comprise, at/by a MR, initiating a group context update procedure for the one or more contexts of user terminals connecting to the mobile relay towards a target base station of the mobile relay after a handover thereof on the basis of the received additional context information, and/or using updated context information for transmission and/or tunneling of the traffic for the first-type user terminals, wherein the group context update procedure for the one or more contexts of user terminals may comprise triggering a group context update procedure for updating the one or more contexts of user terminals in at least one of the mobile relay, the target base station, a mobility management entity of the user terminals, any mobility management entity in case the mobility management entity of the user terminal is unavailable, and a serving gateway entity of the user terminals.
Further, exemplary embodiments of the present invention may comprise, at/by a DeNB, receiving an initiation of a group context update procedure for the one or more contexts of user terminals connecting to the mobile relay from the mobile relay, and/or initiating a group context update procedure for the one or more contexts of user terminals connecting to the mobile relay towards a mobility management entity of the user terminal, and/or using updated context information for transmission and/or tunneling of the traffic for the first-type user terminals. Still further, the context update procedure for the context of one or more user terminals may comprise one or more of selecting a mobility management entity of the user terminal in case the mobility management entity of the user terminal is unavailable, triggering a group context update procedure for updating the context of one or more user terminals in at least one of the a target base station of the mobile relay after a handover thereof, a mobility management entity of the user terminals, and a serving gateway entity of the user terminals, and/or initiating a group context retrieval from the mobility management entity of the user terminal in case a relocation of the mobility management entity is performed.
The above-described procedures and functions may be implemented by respective functional elements, processors, or the like, as described below.
While in the foregoing exemplary embodiments of the present invention are described mainly with reference to methods, procedures and functions, corresponding exemplary embodiments of the present invention also cover respective apparatuses, network nodes and systems, including both software and/or hardware thereof.
Respective exemplary embodiments of the present invention are described below referring to
In
Further, in
In view of the above, the thus described apparatuses 10 to 40 are suitable for use in practicing the exemplary embodiments of the present invention, as described herein.
The thus described apparatus 10 may represent a (part of a) mobile relay MR, as described above, and may be configured to perform a procedure and/or exhibit a functionality as described in conjunction with any one of
It is noted that, while not being illustrated in
In view thereof, exemplary embodiments of the present invention provide for the MR's P-GW functionality being incorporated in the DeNB and/or being implemented as/in a standalone apparatus.
As indicated in
The processor 11/21/ . . . and/or the interface 13/23/ . . . may also include a modem or the like to facilitate communication over a (hardwired or wireless) link, respectively. The interface 13/23/ . . . may include a suitable transceiver coupled to one or more antennas or communication means for (hardwire or wireless) communications with the linked or connected device(s), respectively. The interface 13/23/ . . . is generally configured to communicate with at least one other apparatus, i.e. the interface thereof.
The memories 12/22/ . . . may store respective programs assumed to include program instructions or computer program code that, when executed by the respective processor, enables the respective electronic device or apparatus to operate in accordance with the exemplary embodiments of the present invention. Further, the memories 12/22/ . . . may store one or more of the aforementioned parameters, traffic, data and information, respectively.
In general terms, the respective devices/apparatuses (and/or parts thereof) may represent means for performing respective operations and/or exhibiting respective functionalities, and/or the respective devices (and/or parts thereof) may have functions for performing respective operations and/or exhibiting respective functionalities.
When in the subsequent description it is stated that the processor (or some other means) is configured to perform some function, this is to be construed to be equivalent to a description stating that a (i.e. at least one) processor, potentially in cooperation with computer program code stored in the memory of the respective apparatus, is configured to cause the apparatus to perform at least the thus mentioned function. Also, such function is to be construed to be equivalently implementable by specifically configured means for performing the respective function (i.e. the expression “processor configured to [cause the apparatus to] perform xxx-ing” is construed to be equivalent to an expression such as “means for xxx-ing”).
According to exemplary embodiments of the present invention, the apparatus 10 or its processor 11 is configured to perform setting up a first packet data connection for traffic in a relay-enhanced access network, which relates to first-type user terminals using the same access technology as a base station from a mobile relay towards a packet data network via a first packet gateway functionality collocated with the base station currently serving the mobile relay, and setting up a second packet data connection for traffic in the relay-enhanced access network, which relates to at least one of second-type user terminals using another access technology as the base station and the mobile relay (such as the mobile relay's operation and maintenance traffic), from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay.
According to exemplary embodiments of the present invention, the apparatus 10 or its processor 11 may be configured to perform one or more of:
According to exemplary embodiments of the present invention, the apparatus 20 or its processor 21 is configured to perform servicing a first packet data connection for traffic in a relay-enhanced access network, which relates to the first-type user terminals using the same access technology as a base station, from a mobile relay towards a packet data network via a first packet gateway functionality collocated with the base station currently serving the mobile relay, and servicing a second packet data connection for traffic in the relay-enhanced access network, which relates to at least one of second-type user terminals using another access technology as the base station and the mobile relay (such as the mobile relay's operation and maintenance traffic), from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay.
The DeNB terminates the interface for interacting with the external P-GW.
According to exemplary embodiments of the present invention, the apparatus 20 or its processor 21 may be configured to perform one or more of:
According to exemplarily embodiments of the present invention, the processor 11/21/ . . . , the memory 12/22/ . . . and the interface 13/23/ . . . may be implemented as individual modules, chipsets or the like, or one or more of them can be implemented as a common module, chipset or the like, respectively.
According to exemplarily embodiments of the present invention, a system may comprise any conceivable combination of the thus depicted devices/apparatuses and other network elements, which are configured to cooperate as described above.
In general, it is to be noted that respective functional blocks or elements according to above-described aspects can be implemented by any known means, either in hardware and/or software, respectively, if it is only adapted to perform the described functions of the respective parts.
The mentioned method steps can be realized in individual functional blocks or by individual devices, or one or more of the method steps can be realized in a single functional block or by a single device.
Generally, any method step is suitable to be implemented as software or by hardware without changing the idea of the present invention. Such software may be software code independent and can be specified using any known or future developed programming language, such as e.g. Java, C++, C, and Assembler, as long as the functionality defined by the method steps is preserved. Such hardware may be hardware type independent and can be implemented using any known or future developed hardware technology or any hybrids of these, such as MOS (Metal Oxide Semiconductor), CMOS (Complementary MOS), BiMOS (Bipolar MOS), BiCMOS (Bipolar CMOS), ECL (Emitter Coupled Logic), TTL (Transistor-Transistor Logic), etc., using for example ASIC (Application Specific IC (Integrated Circuit)) components, FPGA (Field-programmable Gate Arrays) components, CPLD (Complex Programmable Logic Device) components or DSP (Digital Signal Processor) components. A device/apparatus may be represented by a semiconductor chip, a chipset, or a (hardware) module comprising such chip or chipset; this, however, does not exclude the possibility that a functionality of a device/apparatus or module, instead of being hardware implemented, be implemented as software in a (software) module such as a computer program or a computer program product comprising executable software code portions for execution/being run on a processor. A device may be regarded as a device/apparatus or as an assembly of more than one device/apparatus, whether functionally in cooperation with each other or functionally independently of each other but in a same device housing, for example.
Apparatuses and/or means or parts thereof can be implemented as individual devices, but this does not exclude that they may be implemented in a distributed fashion throughout the system, as long as the functionality of the device is preserved. Such and similar principles are to be considered as known to a skilled person.
Software in the sense of the present description comprises software code as such comprising code means or portions or a computer program or a computer program product for performing the respective functions, as well as software (or a computer program or a computer program product) embodied on a tangible medium such as a computer-readable (storage) medium having stored thereon a respective data structure or code means/portions or embodied in a signal or in a chip, potentially during processing thereof.
The present invention also covers any conceivable combination of method steps and operations described above, and any conceivable combination of nodes, apparatuses, modules or elements described above, as long as the above-described concepts of methodology and structural arrangement are applicable.
In view of the above, there are provided measures for mobile relay support in relay-enhanced access networks. Such measures may exemplarily comprise setting up a first packet data connection for traffic in a relay-enhanced access network, which relates to first-type user terminals using the same access technology as a base station, from a mobile relay towards a packet data network via a first packet gateway functionality collocated with the base station currently serving the mobile relay, and setting up a second packet data connection for traffic in the relay-enhanced access network, which relates to second-type user terminals using another access technologies as the base station and the mobile relay (such as the mobile relay's operation and maintenance traffic), from the mobile relay towards the packet data network via a second packet gateway functionality external to the base station currently serving the mobile relay. Such measures may exemplarily also comprise at least one of conveying additional context information for one or more contexts of user terminals connecting to the mobile relay from a source base station to the mobile relay, and initiating a group context update procedure for one or more contexts of user terminals connecting to the mobile relay in at least one of the mobile relay, the target base station, a mobility management entity of the user terminal, any selected mobility management entity in case the mobility management entity of the user terminal is unavailable, and a serving gateway entity of the user terminal.
The measures proposed according to exemplary embodiments of the present invention may be applied for any kind of network environment, particularly in any kind of relay-enhanced network environment, such as for example for those in accordance with 3GPP RAN2/RAN3 standards and/or 3GPP LTE standards of release 10/11/12/ . . . (LTE-Advanced and its evolutions).
Even though the invention is described above with reference to the examples according to the accompanying drawings, it is to be understood that the invention is not restricted thereto. Rather, it is apparent to those skilled in the art that the present invention can be modified in many ways without departing from the scope of the inventive idea as disclosed herein.
eNB evolved NodeB
Un Interface between RN/MR and DeNB
Uu Interface between UE and RN/MR or UE and DeNB
Um Interface between GSM UE and BTS
WiFi Wireless Fidelity
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2011/067126 | 9/30/2011 | WO | 00 | 6/20/2014 |