The present invention relates to a mobile communication method and an exchange that get bearer information related to a mobile terminal from other exchange when the mobile terminal moves from a management area of the other exchange to a management area of the exchange.
The current 3GPP specification defines, when a terminal in idle mode moves between exchanges SGSN, processing of getting a bearer in a preservation state from a source exchange SGSN to a destination exchange SGSN (Non-Patent Literature 1). There are bearer types such as GPRS bearer and EPS bearer, and the current 3GPP specification describes that a PDP context indicating GPRS bearer information and an EPS context indicating EPS bearer information are only gotten by using GTPv1 (GPRS Tunneling Protocol, version 1) and GTPv2 (GPRS Tunneling Protocol, version 2) respectively (Non-Patent Literatures 2 and 3).
As shown in
Furthermore, as shown in
In order to achieve interoperability between UMTS and EPS, the exchange SGSN that connects an LTE-capable mobile terminal to an EPC network supports both GTPv1 and GTPv2. For this reason, when the bearer information is gotten from the source exchange SGSN, the bearer information is requested using predetermined GTPv1 or GTPv2. However, according to the current specification, only the EPS bearer information can be gotten by GTPv2 and the GPRS bearer information cannot be gotten. On the other hand, only the GPRS bearer information can be gotten by GTPv1 and the EPS bearer information cannot be gotten.
Therefore, when the destination exchange SGSN#2 requests to get using a protocol whereby it is not possible to get bearer information stored in the source exchange SGSN#1, there may be a situation in which the bearer information cannot be gotten. For example, in
The present invention has been implemented in view of the above-described problems and it is an object of the present invention to provide a mobile communication method and an exchange capable of reliably performing a bearer getting processing between a source exchange SGSN and a destination exchange SGSN without causing any service interruption.
An aspect of the present invention includes the steps of: assigning, to a mobile terminal located in a management area of a first exchange, a temporary subscriber identifier indicating a communication path type of a logical communication path established for the mobile terminal, at the first exchange; receiving, from the mobile terminal having moved from the management area of the first exchange to a management area of a second exchange, a location update request signal including the temporary subscriber identifier, at the second exchange; sending, from the second exchange having received the location update request signal to the first exchange, a communication path information request signal for requesting to get communication path information stored in the first exchange, by using a protocol corresponding to the communication path type indicated by the temporary subscriber identifier; and sending, from the first exchange having received the communication path information request signal to the second exchange, a communication path information response signal including the communication path information, by using the same protocol as that of the communication path information request signal.
According to this feature, since the second exchange requests to get the communication path information stored in the first exchange by using a protocol corresponding to the communication path type indicated by the temporary subscriber identifier, it is possible to reliably perform a getting processing of the communication path information between the first exchange and the second exchange, and thereby prevent service interruption.
Another aspect of the present invention includes the steps of: sending, in response to an attach request signal from a mobile terminal located in a management area of a first exchange, an attach response signal including a communication path type identifier indicating a communication path type of a logical communication path established for the mobile terminal, at the first exchange; receiving, from a mobile terminal having moved from the management area of the first exchange to a management area of a second exchange, a location update request signal including the communication path type identifier, at the second exchange; sending, from the second exchange having received the location update request signal to the first exchange, a communication path information request signal for requesting to get the communication path information stored in the first exchange to the first exchange, by using a protocol corresponding to the communication path type indicated by the communication path type identifier; and sending, from the first exchange having received the communication path information request signal to the second exchange, a communication path information response signal including the communication path information, by using the same protocol as that of the communication path information request signal.
According to this feature, since the second exchange requests to get the communication path information stored in the first exchange using the protocol corresponding to the communication path type indicated by the communication path type identifier, it is possible to reliably perform takeover processing of the communication path information between the first exchange and the second exchange, and thereby prevent service interruption.
According to the present invention, bearer takeover processing is reliably performed between the source exchange SGSN and the destination exchange SGSN, and it is thereby possible to prevent service interruption.
Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings.
In the present embodiment, the mobile terminal UE is intended for a radio communication terminal supporting only the UMTS/GPRS scheme and a radio communication terminal supporting both the UMTS/GPRS scheme and LTE scheme.
The UTRAN/GERAN is configured by including a radio base station NB/BTS and a radio control apparatus RNC/BTS that controls the radio base station NB/BTS. The radio base station NB/BTS forms a cell and sends/receives a signal to/from the mobile terminal UE located in the cell via a radio channel. The radio control apparatus RNC/BTS controls the radio base station NB/BIS and allocates a radio channel to the mobile terminal UE or the like.
The UMTS/GPRS packet core network is configured by including a packet gateway GGSN. The packet gateway GGSN establishes a GPRS bearer with the mobile terminal UE supporting only the UMTS/GPRS scheme via an exchange SGSN. Here, the GPRS bearer is a logical communication path that transfers a user packet according to the UMTS/GPRS scheme.
The EPC network is configured by including a serving gateway S-GW and a packet gateway P-GW. The packet gateway P-GW establishes an EPS bearer with the mobile terminal UE supporting the LTE scheme via the exchange SGSN and the serving gateway S-GW. Here, the EPS bearer is a logical communication path that transfers a user packet according to the LTE scheme.
The exchange SGSN is connected to the packet gateway GGSN of the UMTS/GPRS packet core network via a Gn interface and also connected to the serving gateway S-GW of the EPC network via an S4 interface. The exchange SGSN controls the GPRS bearer established with the packet gateway GGSN or controls the EPS bearer established with the packet gateway P-GW via the serving gateway S-GW depending on whether the mobile terminal UE supports the LTE scheme or not.
Furthermore, the exchange SGSN can use both GTPv1 (GPRS Tunneling Protocol, version 1) and GTPv2 (GPRS Tunneling Protocol, version 2). Here, GTPv1 is a protocol for controlling the GPRS bearer and used to send/receive a signal between the exchange SGSN and the packet gateway GGSN, and to send/receive a signal between the source exchange SGSN and the destination exchange SGSN of the mobile terminal UE. On the other hand, GTPv2 is a protocol for controlling EPS and used to send/receive a signal between the exchange SGSN and the serving gateway S-GW and to send/receive a signal between the source exchange SGSN and the destination exchange SGSN of the mobile terminal UE.
Furthermore, the exchange SGSN performs location update processing on the mobile terminal UE for a subscriber management server HSS. The subscriber management server HSS manages contract information and a location registration area of the mobile terminal UE.
Next, a configuration of the exchange SGSN according to the first embodiment will be described. The mobile terminal UE has hardware including a communication interface, processor, memory, display and input key, and the memory stores software modules executed by a processor. The functions which will be described below may be implemented by the above-described hardware or may be implemented by the software modules executed by the processor or may be implemented by a combination of both.
The UE interface section 101 sends/receives a signal to/from the mobile terminal UE using an Iu interface. To be more specific, the UE interface section 101 receives an attach request signal, a location update request signal, a PS originating signal or the like from the mobile terminal UE. Furthermore, the UE interface section 101 sends an attach response signal, location update response signal, P-TMSI reassignment signal or the like which will be described later to the mobile terminal UE.
The HSS interface section 102 sends/receives a signal to/from the subscriber management server HSS using a Gr/S6d interface. To be more specific, the HSS interface section 102 sends a location update request signal which will be described later to the subscriber management server HSS and receives a location update response signal from the subscriber management server HSS.
The inter-SGSN interface section 103 sends/receives a signal to/from another exchange SGSN using a Gn/S16 interface. To be more specific, the inter-SGSN interface section 103 sends a bearer information request signal (communication path information request signal) to the source exchange SGSN of the mobile terminal UE according to the determination result of the GTP version determining section 107 which will be described later using GTPv1 or GTPv2. Furthermore, the inter-SGSN interface section 103 receives a bearer information response signal (communication path information response signal) from the source exchange SGSN of the mobile terminal UE using GTPv1 or GTPv2.
The contract information determining section 104 determines whether contract information of the mobile terminal UE included in the location update response signal received by the HSS interface section 102 is “GPRS only (GPRS contract only)” or “EPS+GPRS (EPS contract and GPRS contract).”
The P-TMSI assignment section 105 assigns a P-TMSI indicating a bearer type (communication path type) corresponding to contract information of the mobile terminal UE to the mobile terminal UE. Here, P-TMSI (temporary subscriber identifier) is an identifier of the mobile terminal UE temporarily assigned in response to an attach request from the mobile terminal UE. To be more specific, when the contract information determining section 104 determines that the contract information is “GPRS only,” the P-TMSI assignment section 105 assigns a P-TMSI indicating the use of the GPRS bearer to the mobile terminal UE. On the other hand, when the contract information determining section 104 determines that the contract information is “EPS+GPRS,” the P-TMSI assignment section 105 assigns a P-TMSI indicating the use of the EPS bearer to the mobile terminal UE.
In
The P-TMSI determining section 106 determines the bearer type of the bearer used by the mobile terminal UE according to P-TMSI included in the location update request signal received by the UE interface section 101. To be more specific, the P-TMSI determining section 106 determines the bearer type depending on which of “1” or “0” the bearer identifier shown in
The GTP version determining section 107 determines which version of GTP is used to send the bearer information request signal from the inter-SGSN interface section 103. To be more specific, when the P-TMSI determining section 106 determines that the bearer type is the GPRS bearer, the GTP version determining section 107 determines to use GTPv1 by which the GPRS bearer information (PDP context) can be received. On the other hand, when the P-TMSI determining section 106 determines that the bearer type is the EPS bearer, the GTP version determining section 107 determines to use GTPv2 by which the EPS bearer information (EPS context) can be received.
When the bearer type determined by the P-TMSI determining section 106 is different from the bearer type of the established bearer (established communication path) that the mobile terminal UE should establish, the P-TMSI reassignment section 108 reassigns the P-TMSI that matches the bearer type of the establish bearer to the mobile terminal UE.
Next, operation of the mobile communication system configured as shown above will be described with reference to
Operation of the mobile communication system according to the first embodiment upon attach will be described with reference to
As shown in
The exchange SGSN determines whether the contract information of the mobile terminal UE included in the location update response signal from the subscriber management server HSS is “GPRS only (GPRS contract only)” or “EPS+GPRS (EPS contract and GPRS contract)” (step S104).
When the contract information is “GPRS only,” the exchange SGSN assigns a P-TMSI indicating the use of the GPRS bearer to the mobile terminal UE (step S105). For example, the exchange SGSN assigns a P-TMSI for which the bearer identifier shown in
When the contract information is “EPS+GPRS,” the exchange SGSN assigns a P-TMSI indicating the use of the EPS bearer to the mobile terminal UE (step S107). For example, the exchange SGSN assigns a P-TMSI for which the bearer identifier shown in
Operation of the mobile communication system according to the first embodiment when a mobile terminal UE in idle mode moves between the exchanges SGSN will be described with reference to
As shown in
The mobile terminal UE in idle mode moves from the management area of the exchange SGSN#1 to the management area of the exchange SGSN#2 (step S202). As shown in
The exchange SGSN#2 determines the bearer type according to the P-TMSI included in the location update request signal from the mobile terminal UE (step S204). To be more specific, the exchange SGSN#2 determines the bearer type depending on whether the bearer identifier shown in
When the bearer type is a GPRS bearer, the exchange SGSN#2 determines to send a bearer information request signal (communication path information request signal) for requesting GPRS bearer information using GTPv1 (step S205). The exchange SGSN#2 sends the bearer information request signal for requesting GPRS bearer information to the exchange SGSN#1 using GTPv1 (step S206). The exchange SGSN#1 sends a bearer information response signal including the GPRS bearer information to the exchange SGSN#2 using GTPv1 in response to the bearer information request signal from the exchange SGSN#2 (step S207).
The exchange SGSN#2 performs processing of setting the GPRS bearer with the packet gateway GGSN based on the GPRS bearer information from the exchange SGSN#1 and also performs processing of location update of the mobile terminal UE with the subscriber management server HSS (not shown) (step S208). The exchange SGSN#2 sends a location update response signal indicating that the location update has been completed (step S209 in
When the bearer type is an EPS bearer, the exchange SGSN#2 determines to send a bearer information request signal for requesting EPS bearer information using GTPv2 (step S210). The exchange SGSN#2 sends the bearer information request signal for requesting the EPS bearer information to the exchange SGSN#1 via GTPv2 (step S211). The exchange SGSN#1 sends a bearer information response signal including the EPS bearer information to the exchange SGSN#2 using GTPv2 in response to the bearer information request signal from the exchange SGSN#2 (step S212).
The exchange SGSN#2 performs processing of setting the EPS bearer with the serving gateway S-GW based on the EPS bearer information from the exchange SGSN#1 and also performs processing of location update of the mobile terminal UE with the subscriber management server HSS (not shown) (step S213). The exchange SGSN#2 sends a location update response signal indicating that the location update has been completed (step S214 in
Operation of the mobile communication system according to the first embodiment when the mobile terminal UE having established a GPRS bearer or EPS bearer performs originating will be described with reference to
In
The exchange SGSN determines the bearer type of a bearer to be established from now on according to the PS originating signal from the mobile terminal UE (step S302). To be more specific, the exchange SGSN determines whether to establish the GPRS bearer or EPS bearer based on the aforementioned contract information or terminal capability information. When the bearer type of the bearer to be established is the GPRS bearer, the exchange SGSN determines the bearer type according to the P-TMSI included in the PS originating signal received in step S301 (step S303). The method of determining the bearer type according to the P-TMSI is similar to that in step S204 of
On the other hand, when the bearer type indicated by the P-TMSI is the EPS bearer, the exchange SGSN assigns the P-TMSI indicating the use of the GPRS bearer to the mobile terminal UE (step S305). For example, the exchange SGSN assigns a P-TMSI for which the bearer identifier shown in
When the bearer type of the bearer to be established is the EPS bearer, the exchange SGSN determines the bearer type according to the P-TMSI included in the PS originating signal received in S301 as in the case of step S303 (step S307). When the bearer type indicated by the P-TMSI is the EPS bearer, the exchange SGSN continues the EPS bearer establishment processing of the mobile terminal UE (step S308).
On the other hand, when the bearer type indicated by the P-TMSI is the GPRS bearer, the exchange SGSN assigns a P-TMSI indicating the use of the EPS bearer to the mobile terminal UE (step S309). For example, the exchange SGSN assigns a P-TMSI for which the bearer identifier shown in
According to the mobile communication system according to the first embodiment, the destination exchange SGSN#2 of the mobile terminal UE requests to get bearer information stored in the source exchange SGSN#1 using a protocol corresponding to the bearer type indicated by P-TMSI, and it is thereby possible to reliably perform getting processing of the bearer information between the source exchange SGSN#1 and the destination exchange SGSN#2 and prevent service interruption.
Next, a mobile communication system according to a second embodiment will be described mainly on differences from the first embodiment. The mobile communication system according to the second embodiment is different from the first embodiment in that the exchange SGSN assigns a P-TMSI to a mobile terminal UE based on terminal capability information of the mobile terminal UE in addition to contract information of the mobile terminal UE.
The P-TMSI assignment section 105 assigns a P-TMSI to the mobile terminal UE based on terminal capability information of the mobile terminal UE in addition to contract information of the mobile terminal UE. Here, the terminal capability information refers to whether or not the mobile terminal UE supports an LTE scheme.
To be more specific, when the contract information determining section 104 determines that the contract information is “EPS+GPRS” and the mobile terminal UE supports the LTE scheme, the P-TMSI assignment section 105 assigns a P-TMSI indicating the use of the EPS bearer to the mobile terminal UE. On the other hand, even when the contract information determining section 104 determines that the contract information is “EPS+GPRS,” if the mobile terminal UE does not support the LTE scheme, the P-TMSI assignment section 105 assigns a P-TMSI indicating the use of the GPRS bearer to the mobile terminal UE.
When the bearer type corresponding to the changed terminal capability of the mobile terminal UE is different from the bearer type indicated by the P-TMSI, the P-TMSI reassignment section 108 reassigns the P-TMSI indicating that a bearer corresponding to the changed terminal capability to the mobile terminal UE. For example, although the support or not of the LTE scheme by the mobile terminal UE is changed from the support to no support, if the P-TMSI assigned to the mobile terminal UE indicates the use of the EPS bearer, P-TMSI indicating the use of the GPRS bearer is reassigned to the mobile terminal UE.
Furthermore, when the bearer type corresponding to the changed terminal capability of the mobile terminal UE matches the bearer type corresponding to the contract information of the mobile terminal UE, the P-TMSI reassignment section 108 reassigns the P-TMSI indicating the use of a bearer corresponding to the changed terminal capability to the mobile terminal UE. For example, although the support or not of the LTE scheme by the mobile terminal UE is changed from no support to support and if the contract information of the mobile terminal UE is “GPRS+EPS,” the P-TMSI assignment section 105 reassigns the P-TMSI indicating the use of the EPS bearer to the mobile terminal UE.
Furthermore, when the bearer type corresponding to the changed contract information of the mobile terminal UE is different from the bearer type indicated by the P-TMSI, the P-TMSI reassignment section 108 reassigns the P-TMSI indicating the use of the bearer corresponding to the changed contract information to the mobile terminal UE. For example, although the contract information of the mobile terminal UE is changed from “GPRS+EPS” to “GPRS only,” if the P-TMSI assigned to the mobile terminal UE indicates the use of the EPS bearer, the P-TMSI assignment section 105 reassigns the P-TMSI indicating the use of the GPRS bearer to the mobile terminal UE.
On the other hand, when the bearer type corresponding to the changed contract information of the mobile terminal UE matches the bearer type corresponding to the terminal capability of the mobile terminal UE, the P-TMSI reassignment section 108 reassigns the P-TMSI indicating the use of the bearer corresponding to the changed contract information to the mobile terminal UE. For example, when the contract information of the mobile terminal UE is changed from “GPRS only” to “GPRS+EPS” and the mobile terminal UE supports the LTE scheme, the P-TMSI reassignment section 108 reassigns the P-TMSI indicating the use of the EPS bearer to the mobile terminal UE.
Operation of the mobile communication system according to the second embodiment upon attach will be described mainly on differences from the first embodiment with reference to
As shown in
When contract information is “EPS+GPRS,” the exchange SGSN determines whether the mobile terminal UE supports the LTE scheme or not according to the terminal capability information included in the attach signal received in step S401 (step S407).
When the mobile terminal UE does not support the LTE scheme, the exchange SGSN assigns a P-TMSI indicating the use of the GPRS bearer to the mobile terminal UE (step S408). A method similar to that in step S105 in
When the mobile terminal UE supports the LTE scheme, the exchange SGSN assigns a P-TMSI indicating the use of the EPS bearer to the mobile terminal UE (step S410). A method similar to that in step S107 in
Operation of the mobile communication system according to the second embodiment when the terminal capability of the mobile terminal UE is changed will be described with reference to
In
As shown in
The exchange SGSN determines how the support or not of the LTE scheme by the mobile terminal UE has changed based on the terminal capability information of the mobile terminal UE received in step S501 and the stored terminal capability information of the mobile terminal UE (step S502).
When the support or not of the LTE scheme is changed from support to no support, the exchange SGSN determines the bearer type according to the P-TMSI assigned to the mobile terminal UE (step S503). When the bearer type is a GPRS bearer, the processing is continued using the already assigned P-TMSI (for GPRS) (step S504). On the other hand, when the bearer type is an EPS bearer, the P-TMSI indicating the use of the GPRS bearer is assigned to the mobile terminal UE (step S505). The exchange SGSN sends a P-TMSI reassignment signal including the assigned P-TMSI to the mobile terminal UE (step S506).
When the support or not of the LTE scheme is changed from no support to support, the exchange SGSN determines the contract information of the mobile terminal UE (step S507). When the contract information is “GPRS only,” the processing is continued using the already assigned P-TMSI (for GPRS) (step S508). On the other hand, when the contract information is “EPS+GPRS,” the exchange SGSN assigns a P-TMSI indicating the use of the EPS bearer to the mobile terminal UE (step S509). The exchange SGSN sends a P-TMSI reassignment signal including the assigned P-TMSI to the mobile terminal UE (step S510).
Operation of the mobile communication system according to the second embodiment when the contract information of the mobile terminal UE is changed will be described with reference to
In
As shown in
The exchange SGSN determines how the contract information of the mobile terminal UE has been changed based on the contract information of the mobile terminal UE received in step S601 and the stored contract information of the mobile terminal UE (step S602).
When the contract information is changed from “GPRS only” to “GPRS+EPS,” the exchange SGSN determines whether or not the mobile terminal UE supports the LTE scheme according to the stored terminal capability information of the mobile terminal UE (step S603). When the mobile terminal UE does not support the LTE scheme, the processing is continued using the already assigned P-TMSI (for GPRS) (step S604). On the other hand, when the mobile terminal UE supports the LTE scheme, a P-TMSI indicating the use of the EPS bearer is assigned to the mobile terminal UE (step S605). The exchange SGSN sends a P-TMSI reassignment signal including the assigned P-TMSI to the mobile terminal UE (step S606).
When the contract information is changed from “GPRS+EPS” to “GPRS only,” the exchange SGSN determines the bearer type according to the P-TMSI assigned to the mobile terminal UE (step S607). When the bearer type is a GPRS bearer, the exchange SGSN continues the processing using the already assigned P-TMSI (for GPRS) (step S608). On the other hand, when the bearer type is an EPS bearer, the exchange SGSN assigns a P-TMSI indicating the use of the GPRS bearer to the mobile terminal UE (step S609). The exchange SGSN sends a P-TMSI reassignment signal including the assigned P-TMSI to the mobile terminal UE (step S610).
According to the mobile communication system according to the second embodiment, the exchange SGSN assigns a P-TMSI indicating the use of one of the GPRS bearer and EPS bearer based on not only the contract information of the mobile terminal UE but also whether or not the mobile terminal UE supports the LTE scheme, and therefore the destination exchange SGSN of the mobile terminal UE can request to get the bearer information stored in the source exchange SGSN using a more appropriate protocol. As a result, it is possible to prevent service interruption.
Next, a mobile communication system according to a third embodiment will be described mainly on differences from the first embodiment. The mobile communication system according to the third embodiment is different from the first embodiment in that it is provided with a bearer identifier (new bit) to identify a bearer used by a mobile terminal UE aside from a P-TMSI.
The UE interface section 101 sends an attach response signal including a bearer identifier (new bit) to identify a bearer used by the mobile terminal UE to the mobile terminal UE based on the determination result of the contract information determining section 104.
Furthermore, the UE interface section 101 may also receive a location update request signal including the above-described bearer identifier (new bit). In such a case, the GTP version determining section 107 determines to send a bearer information request signal using GTPv1 by which the GPRS bearer information can be received or using GTPv2 by which the EPS bearer information can be received based on the bearer identifier.
Operation of the mobile communication system upon attach according to the third embodiment will be described mainly on differences from the first embodiment with reference to
When the contract information is “GPRS only,” the exchange SGSN creates a bearer identifier (new bit) indicating the use of a GPRS bearer (step S705). For example, the exchange SGSN sets the bearer identifier shown in
When the contract information is “EPS+GPRS,” the exchange SGSN creates a bearer identifier (new bit) indicating the use of an EPS bearer (step S707). For example, the exchange SGSN sets the bearer identifier shown in
The present invention has been described in detail using the aforementioned embodiments, but it is obvious to those skilled in the art that the present invention is not limited to the embodiments described in the present DESCRIPTION. The present invention can be implemented as modified or altered embodiments without departing from the spirit and scope of the present invention defined in the description of the scope of patent claims. Therefore, the description of the present DESCRIPTION is intended to be illustrative and by no means intended to limit the scope of the present invention.
The present application is based on Japanese Patent Application No. 2009-293017 filed on Dec. 24, 2009, entire content of which is expressly incorporated by reference herein.
Number | Date | Country | Kind |
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2009-293017 | Dec 2009 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/073433 | 12/24/2010 | WO | 00 | 7/25/2012 |