Method for providing a bearer service to a mobile station in a telecommunications system
Abstract
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Projected expiry passed 22 December 2025, 0.8 years ago.
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23 claims: 14 independent, 9 dependent
- 1Claims of equivalent WO 2006070068 A1 CLAIMS 1. A method for providing a bearer service for data transmission between a mobile station (MS1 ) and a home network (PLMN1) of the mobile station (MS1 ) in a telecommunications system (S) further comprising a serving network (PLMN2), the method comprising receiving (2-2, 4-1 ), in the serving network (PLMN2), a bearer service request from the mobile station (MS1 ), said request including information on a traffic class of the requested bearer service and information on the home network (PLMN 1) of the mobile station (MS1 );c h a r a c t e r i z e d in that if the requested bearer service is of a real-time traffic class and if the mobile station (MS1 ) is roaming in said serving network (PLMN2), the method comprises the step of obtaining (2-3, 2-4, 4-3), in the serving network (PLMN2), information on the traffic class of the mobile station (MS1 );wherein, if the requested real-time traffic class is supported by the mobile station (MS1 ), the method further comprises the steps of storing (2-5, 4-4), in the serving network (PLMN2), information on the home network (PLMN1 ) of the mobile station (MS1 ) and on said real-time traffic class;providing (2-6, 2-11 , 4-5, 4-7) the home network (PLMN1 ) with information on the serving network (PLMN2) and on said real-time traffic class;storing (2-7, 3-2), in the home network (PLMN1 ), the information on the serving network (PLMN2) and on said real-time traffic class;providing (2-14, 3-6, 4-9) the requested real-time bearer service be- tween the mobile station (MS1 ) and the home network (PLMN1 );and, based on said providing, generating (2-15, 4-10), in the serving network (PLMN2), a first charging record by utilizing the information on the home network (PLMN1 ) of the mobile station (MS1 ) and on said real-time traffic class;and generating (2-16, 3-7), in the home network (PLMN1), a second charging record by utilizing the information on the serving network (PLMN2) and on said real-time traffic class.
- 9A method according to any one of the preceding claims 1 to 8, characterized in that if the requested real-time bearer service is provided for data transmission between the mobile station (MS1) and an IP Multimedia Subsystem (IMS1) of the home network (PLMN1), the method further comprises the step of generating, in the IP Multimedia Subsystem (IMS1), a third charging record by utilizing the information on the serving network (PLMN2) of the mobile station (MS1) and on said real-time traffic class.
- 11A telecommunications system comprising a mobile station (MS1);a mobile network (PLMN1) comprising a gateway network node (GGSN1), said mobile network being a home network of the mobile station (MS1);and a serving network (PLMN2) comprising a serving network node (SGSN2), wherein the serving network node (SGSN2) is configured to receive a bearer service request from the mobile station (MS1 ), said request including information on a traffic class of the requested bearer service and information on the home network (PLMN1 ) of the mobile station (MS1 );c h a r a c t e r i z e d in that if the requested bearer service is of a real-time traffic class and if the mobile station (MS1 ) is roaming in said serving network (PLMN2), the serving network node (SGSN2) is configured to obtain information on the traffic class of the mobile station (MS1);and if the requested real-time traffic class is supported by the mobile sta- tion (MS1 ), the serving network node (SGSN2) is further configured to store information on the home network (PLMN 1) of the mobile station (MS1 ) and on said real-time traffic class;provide the gateway network node (GGSN1) with information on the serving network (PLMN2) and on said real-time traffic class;wherein the gateway network node (GGSN1 ) is configured to store the information on the serving network (PLMN2) and on said real-time traffic class;and wherein the system is configured to provide the requested real-time bearer service between the mobile station (MS1 ) and the home network (PLMN 1);and, based on said providing, the serving network node (SGSN2) is configured to generate a first charging record by utilizing the information on the home network (PLMN1 ) of the mobile station (MS1 ) and on said real-time traffic class;and the gateway network node (GGSN1 ) is configured to generate a second charging record by utilizing the information on the serving network (PLMN2) and on said real-time traffic class.
- 12A mobile network (PLMN1 ) in a telecommunications system (S) further comprising a serving network (PLMN2);and a mobile station (MS1 ), said mobile network being a home network of the mobile station;wherein the mobile network (PLMN1 ) is configured to receive a bearer service request from the serving network (PLMN2), said request including information on a traffic class of the requested bearer service and information on the serving network (PLMN2) serving the mobile station (MS1 );characterized in that the mobile network (PLMN1 ), as a response to receiving a bearer service request for a real-time traffic class bearer service concerning a mobile station (MS1) roaming in the serving network (PLMN2), is configured to store information on the serving network (PLMN2) of the mobile station (MS1) and on said real-time traffic class;and, based on the provision of the real-time bearer service between the mobile station (MS1) and the mobile network (PLM N 1), generate a first charging record by utilizing the information on the serving network (PLMN2) and on said real-time traffic class.
- 14A mobile network according to claims 12or13, character- ized in that the mobile network as a response to providing the requested real-time bearer service for data transmission between the mobile station (MS1) and an IP Multimedia Subsystem (IMS1) of the mobile network, is configured to generate, in the IP Multimedia Subsystem (IMS1), a further charging record by utilizing the information on the serving network (PLMN2) and on said real-time traffic class.
- 16A serving network (PLMN2) in a telecommunications system (S) further comprising a mobile station (MS1);and a home network (PLMN1) of the mobile station (MS1);wherein the serving network (PLMN2) is configured to receive a bearer service request from the mobile station (MS1 ), said request including information on a traffic class of the requested bearer service and information on the home network (PLMN1) of the mobile station (MS1);characterized in that the serving network (PLMN2), as a response to receiving a bearer service request for a real-time traffic class bearer service from a mobile station (MS1) roaming in the serving network (PLMN2), is configured to obtain information on the traffic class of the mobile station (MS1);wherein, if the requested real-time traffic class is supported by the mobile station (MS1), the serving network (PLMN2) is further configured to store information on the home network (PLMN1) of the mobile sta- tion (MS1 ) and on said real-time traffic class;provide the home network (PLMN1) with information on the serving network (PLMN2) and on said real-time traffic class;and, based on the provision of the real-time bearer service between the mobile station (MS1) and the home network (PLMN1), generate a charging record by utilizing the information on the home network (PLMN1) and on said real-time traffic class.
- 19A gateway network node (GGSN1) of a mobile network (PLMN 1 ) in a telecommunications system (S) further comprising a serving network (PLMN2) comprising a serving network node (SGSN2);and a mobile station (MS1), said mobile network being a home network of the mobile station;wherein the gateway network node (GGSN 1 ) is configured to receive a bearer service request from the serving network node (SGSN2), said request including information on a traffic class of the requested bearer service and information on the network serving the mobile station (MS1);characterized in that the gateway network node (GGSN 1 ), as a response to receiving a bearer service request for a real-time traffic class bearer service concerning a mobile station (MS1) roaming in the serving network (PLMN2), is configured to store information on the serving network (PLMN2) of the mobile sta- tion (MS1) and on said real-time traffic class;and, based on the provision of the real-time bearer service between the mobile station (MS1) and the home network (PLM N 1), generate a charging record by utilizing the information on the serving network (PLMN2) and on said real-time traffic class.
Independent claims14
33 paragraphs in 3 sections, as filed
Description of equivalent WO 2006070068 A1
METHOD FOR PROVIDING A BEARER SERVICE TO A MOBILE STATION IN A TELECOMMUNICATIONS SYSTEM
FIELD OF THE INVENTION
The present invention relates to providing a bearer service to a mo- bile station in a telecommunications system, and more particularly to charging a user for the bearer service.
BACKGROUND OF THE INVENTION
A bearer service refers to a part of a telecommunication service provided by an operator, which guarantees the capability for transmission of signals between user-network interfaces. The bearer service enables a connection for speech, audio, digital data transmission, etc. A bearer service may also be referred to as a network service, operator service, system service or a carrier service.
A user of a mobile station may have access to a wide range of ser- vices by means of a mobile network. A great number of service providers provide different service applications on the Internet or in other networks, and the mobile network may provide the mobile station with a connection to those applications. Different applications may require different bearer services. At least four different traffic classes have been standardized for the bearer services: conversational class, streaming class, background class and interactive class. The traffic classes are also referred to as quality of service (QoS) classes, and they define the performance expectations of the bearer service. The conversational class and streaming class provide a real-time quality of data transmission where no significant delays are allowed. The accuracy of the data trans- mission is not necessarily a critical issue in the conversational class and in the streaming class. In this context, the terms "real-time class" or "real-time traffic class" will also be used to refer to the conversational class or the streaming class.
A conversational class refers to a real-time traffic class intended for real-time conversation requiring a low transfer delay and preserved time variation between information entities, for example packets, of a stream. Real-time conversation using the conversational class is typically carried out in connection with interpersonal communication. The conversational class may be used, for example, for voice and video telephony. A streaming class refers to a real-time traffic class for real-time stream applications requiring a preserved delay variation between information entities, such as samples or packets, within a flow. The streaming class is used for one-way transport, such as real-time video. With a streaming application, the client may start displaying data before the entire file has been trans- mitted. A streaming class is typically applied to situations where one end of a connection is human and the other end is a machine.
Operators may wish to charge the user more for using a real-time class bearer service than for using a "non-real-time" bearer service. In a situation where a mobile station is roaming in another operator's network, the user is typically billed based on charging for data collected by both the roaming network operator and the home network operator. A problem with the above arrangement is that no solution exists for adjusting the charging of the user in the visited network on the basis of the traffic class of the bearer service.
BRIEF DESCRIPTION OF THE INVENTION An object of the present solution is to provide a method and an arrangement for implementing the method so as to alleviate the above-described problem. The objects are achieved by a method, a system, a mobile network, a serving network, a gateway network node and a serving network node which are characterized by what is stated in the independent claims. Embodiments are disclosed in the dependent claims.
The solution of the present application is based on the idea of enabling a bearer service to be provided between a roaming mobile station and its home network, in which solution both the home network and the roaming network are able to recognize if a roaming user is provided with a real-time bearer service. According to the present solution, as a response to receiving a realtime bearer service request in the roaming network from the mobile station, the roaming network is arranged to obtain information on the traffic class of the mobile station, and, if the requested traffic class is allowed to the mobile station i.e. if the requested real-time traffic class is supported by the mobile sta- tion in the roaming network, the roaming network is arranged to store information on said real-time traffic class and on the home network of the mobile station. After receiving the bearer service request the home network is arranged to store information on said real-time traffic class and on the roaming network. As the requested real-time bearer service is provided between the mobile sta- tion and the home network, the roaming network is arranged to utilize the in- formation stored in the roaming network in order to generate first charging data, and the home network is arranged to utilize the information stored in the home network node in order to generate second charging data.
An advantage of the present solution is that as both the home net- work operator and the roaming network operator are able to recognize that a roaming mobile station is provided with a real-time class bearer service they are both able to adjust (for example, to charge extra) the charging for the provision of the real-time bearer for a roaming mobile station.
BRIEF DESCRIPTION OF THE DRAWINGS In the following, the present solution will be described in greater detail by means of embodiments and with reference to the accompanying drawings, in which
Figure 1 illustrates a telecommunications system according to the present solution; Figure 2 illustrates signalling according to the present solution;
Figure 3 is a flow chart illustrating the function of a GGSN of a home network according to the present solution;
Figure 4 is a flow chart illustrating the function of an SGSN of a roaming network according to the present solution; Figure 5 illustrates IMS (IP multimedia subsystem) interworking according to the present solution.
DETAILED DESCRIPTION OF THE INVENTION
Embodiments of the present solution will be described below implemented in a 3<sup>rd</sup> generation mobile communication system, such as UMTS (Universal Mobile Telecommunications System). However, the solution is not restricted to these embodiments, but it can be applied to any mobile communication system implementing a GPRS-type packet radio. Other examples of such systems include IMT-2000, IS-41 , GSM (Global System for Mobile communications) or other similar mobile communication systems, such as PCS (Personal Communication System) or DCS 1800 (Digital Cellular System for 1800 MHz). Specifications of mobile systems in general and of the IMT-2000 and the UMTS in particular develop rapidly. Such development may require additional changes to be made to the solution. Therefore, all the words and expressions should be interpreted as broadly as possible and they are only intended to illustrate and not to restrict the solution. What is essential for the solution is the function itself and not the network element or the device in which the function is implemented.
Figure 1 shows a simplified version of a network architecture according to the present solution, only illustrating the components that are essen- tial to the solution, even though those skilled in the art naturally know that a general mobile communication system also comprises other functions and structures which do not have to be described in more detail herein. Figure 1 illustrates mobile networks PLMN1 and PLMN2 (Public land mobile network) of two different operators. The interface between them is called a Gp interface. The main parts of a GPRS network are a core network CN1 , CN2, a radio access network RAN2 (Radio access network) and a mobile station MS1. The radio access network RAN2 comprises radio network controllers RNC2 and base stations (not shown). The radio network controller RNC2 is connected to a serving GPRS support node SGSN2 located in the core network CN2. The core network CN1 further comprises a home location register HLR1 and a gateway GPRS support node GGSN 1.
The main function of the gateway GPRS support node GGSN1 is interaction with an external data network. The GGSN 1 connects an operator to systems outside the GPRS network, such as the Internet, X.25 network or WAP (Wireless Application Protocol) or messaging applications. The GGSN1 contains PDP (Packet Data Protocol) addresses and routing information, or SGSN addresses, of GPRS subscribers. The operation of a GGSN 1 according to the first embodiment of the present solution will be described below in connection with Figures 2 and 3. The main functions of the serving GPRS support node SGSN2 include detecting new GPRS mobile stations MS1 in its service area, handling registration processes of new mobile stations MS1 , transmitting/receiving data packets to/from the GPRS mobile station MS1 , and maintaining a register of locations of mobile stations within the service area. The operation of an SGSN2 according to an embodiment of the present solution will be described below in connection with Figures 2 and 4.
An IP multimedia subsystem IMS refers to a system providing IP (Internet Protocol) multimedia services which complement the services provided by the circuit switched part of the core network CN1. The IMS supports new IP-based multimedia services as well as interoperability with traditional telephony services. The IMS can be described as a framework for enabling advanced IP services and applications on top of a packet bearer. The packet bearer can be any access network, such as a mobile network. The IMS does not affect connection set-up (i.e. a PDP context activation procedure).
A Session Initiation Protocol (SIP) is used for control plane signal- ling between the mobile station MS1 and the IMS1 as well as between the components within the IMS1. The SIP is used for establishing and ending multimedia sessions in the IMS1. A Session Description Protocol (SDP) is used for conveying information on media streams in multimedia sessions in order to allow recipients of a session description to participate in the session. The SDP is used for negotiating session parameters, which further affect the QoS offered to the service in the mobile network PLMN1 , PLMN2, e.g. bandwidth and traffic class. A 3GPP (3<sup>rd</sup> generation partnership project) has specified an end- to-end QoS concept for the IMS1. This adds the QoS negotiation to the application layer and synchronizes it with the transport layer QoS negotiation (i.e. the QoS negotiation related to the PDP context activation/modification). Generally, the end-to-end QoS does not affect the traffic classes and their definition. It provides a way for the application layer to negotiate appropriate parameters for the session and these parameters are translated into QoS parameters in the mobile network. The mobile station MS1 can be a simplified terminal only intended for speech, or it can be a terminal for multiple services operating as a service platform and supporting the loading and execution of different service-related functions. The mobile station MS1 comprises actual mobile equipment and a removably associated identification card SIM (Subscriber Identity Module), which is also called a subscriber identity module. In this connection, a mobile station MS1 (i.e. user equipment) generally refers to an entity comprising the actual terminal and the subscriber identity module. The mobile equipment can be any equipment or a combination of several different equipment, such as a PDA (Personal Digital Assistant) or a PC (Personal Computer), capable of communicating in a mobile communication system.
GPRS or enhanced GPRS roaming is possible between numerous network operators around the world. A Gp interface between the GPRS support nodes of different operators' mobile networks PLMN1 , PLMN2 connects the networks PLMN1 , PLMN2 together. This interface is IP based, supporting appropriate routing and security protocols to enable a subscriber to access its home services from the roaming network. The term "roaming network" may also be referred to as a "visited network". A common solution is to use a GRX (GPRS roaming exchange) network as a backbone network between the PLMNs. This function is typically provided by means of a 3rd party IP network offering VPN (Virtual private network) services which connect the roaming partner networks together.
An RAB (Radio Access Bearer) service is set up between the mobile station MS1 and the core network CN1 , CN2, and it contains a service provided by the access layer to the non-access layer for forwarding user data. Different RABs are used depending on the subscription, service, desired QoS etc. The core network controls the set-up, modification and disassembly of the RAB over the radio access network. The set-up and modification of the RAB are functions that the core network initiates and the RAN2 implements.
In order to transmit and receive GPRS data, the mobile station MS has to activate at least one PDP address it wishes to use. PDP refers to a pro- tocol transmitting data as packets. This activation makes the mobile station MS known in the corresponding GGSN1 , and interaction with external data networks may begin. A PDP context defines data transmission parameters, such as the PDP type (e.g. X.25 or IP), PDP address, quality of service QoS, and network service access point identifier NSAPI. Figure 2 illustrates signalling according to an embodiment of the present solution where a mobile station MS1 is roaming in a PLMN2 and a PLMN1 is the home network of the MS1. Thus the PLMN2 is a roaming network, i.e. a visited network, for the MS1. With reference to Figure 2, the MS1 transmits an activate PDP context request message 2-1 to an SGSN2. The message 2-1 includes information on the QoS class, i.e. the traffic class, requested by the MS1. After receiving the message in the SGSN2, it is checked in step 2-2 whether the mobile station is roaming in the PLMN2, and whether a real-time traffic class has been requested by the mobile station MS1. The SGSN2 may detect a roaming mobile station, for example, by means of the IMSI (International Mobile Subscriber Identity) of the mobile station MS1 , which indicates the home network of the MS1. If the mobile station is roaming in the PLMN2, and if a real-time traffic class (i.e. a conversational or a streaming class) has been requested by the mobile station MS1 , the SGSN2 is arranged to check, by means of messages 2-3 and 2-4, from the HLR1 of the home net- work of the mobile station MS1 , whether the requested real-time traffic class is allowed to the MS1 in PLMN2, for example, whether an agreement exists be- tween the home operator and the PLMN2 operator for providing the requested real-time traffic class for the MS1 in the PLMN2. If the requested traffic class is available for the mobile station MS1 , i.e. if the requested real-time traffic class is supported by the mobile station in the roaming network, the SGSN2 stores, in step 2-5, information on the requested traffic class and information on the home network PLMN1 of the mobile station MS1 (e.g. the IMSI). By means of messages 2-3 and 2-4 it may also be checked whether the user is allowed to use real-time traffic class in a visited network in general. For example, the user subscription may be such that no real-time traffic is allowed in a visited net- work.
Next a create PDP context request message 2-6 is transmitted from the SGSN2 to the GGSN1. After receiving said message in the GGSN1 , it is checked in step 2-7 whether the mobile station MS1 is roaming outside the PLMN1 , and whether a real-time traffic class bearer has been requested by it. The GGSN1 may detect a roaming mobile station, for example, by means of a Mobile Country Code (MCC) and a Mobile Network Node (MNC), or by means of the IP address of the SGSN2. If the mobile station MS1 is roaming outside the PLMN1 , and if a real-time traffic class has been requested by it, the GGSN1 stores 2-7 information on the requested traffic class and information on the roaming network PLMN2 of the MS1 (e.g. the MCC/MNC or the SGSN2 IP address), sets up a PDP context, and transmits 2-8 it to the SGSN2.
In a message 2-9, the SGSN2 requests the radio access bearers from a radio network controller RNC2, which transmits them to the SGSN2 in a message 2-10. The SGSN2 may update the QoS profile by transmitting an up- date PDP context request message 2-11 to the GGSN1 , which then transmits an update PDP context response 2-12 to the SGSN2.
The SGSN2 transmits the PDP connection to the mobile station MS1 in an activate PDP context response message 2-13, and a virtual connection or link is set up between the mobile station MS1 and the GGSN1 via the SGSN2. As a result, the SGSN2 forwards the data packets from the mobile station MS1 to the GGSN1 , which in turn forwards to the SGSN2 the data packets received from an external network (e.g. from the Internet) and addressed to the mobile station MS1.
In step 2-15, a first charging record is generated in the SGSN2 on the basis of the provided bearer service and on the basis of the information stored in step 2-5. In step 2-16, a second charging record is generated in the GGSN 1 on the basis of the provided bearer service and on the basis of the information stored in step 2-7. Thus, both the roaming operator and the home operator are able to apply their own charging criteria for charging the user when the user is provided with a certain real-time class bearer during roaming. The created charging record may comprise, for example, information on the fact that the mobile station is a roaming mobile station, information on the realtime traffic class used (streaming or conversational class), information on the amount of transmitted data, time information, information on the number of transactions carried out, or information on the operator in question. Figure 3 is a flow chart illustrating the function of a GGSN1 according to an embodiment of the present solution. With reference to Figure 3, a create PDP context request message is received in the GGSN1 from a SGSN2 in step 3-1. After receiving said message in the GGSN1 , it is checked in step 3-2 whether the mobile station MS1 in question is roaming outside its home network PLMN1 , and whether a real-time traffic class is requested by it. The GGSN1 may detect the roaming mobile station, for example, by means of the Mobile Country Code MCC and Mobile Network Code MNC or by means of the IP address of the transmitting SGSN2. If the mobile station MS1 is roaming outside the PLMN1 , and if a real-time traffic class has been requested by it, the GGSN1 stores 3-2 information on the requested traffic class and on the roaming mobile station (e.g. the MCC/MNC or the SGSN2 IP address), and sets up a PDP context and transmits 3-3 it to the SGSN2. In step 3-4, the GGSN1 may receive an update PDP context request message from the SGSN2 for updating the QoS profile, and in step 3-5 the GGSN 1 transmits an update PDP context response to the SGSN2. In step 3-6 a virtual connection or link is set up and the data transfer between the GGSN 1 and the MS1 is carried out using the real-time class bearer. In step 3-7, a charging record is generated in the GGSN 1 on the basis of the provided bearer service and on the basis of the information stored in step 3-2. The created charging record may comprise, for example, information on the fact that the mobile station is a roaming mobile station, information on the real-time traffic class used (streaming or conversational class), information on the amount of transmitted data, time information, information on the number of transactions carried out, or information on the operator in question. Figure 4 is a flow chart illustrating the function of an SGSN2 according to an embodiment of the present solution. With reference to Figure 4, an activate PDP context request message is received in the SGSN2 in step 4-1 from a mobile station MS1. Next, it is checked in the SGSN2, in step 4-2, whether the mobile station MS1 is roaming in a PLMN2, and whether a realtime traffic class bearer has been requested by it. The SGSN2 may detect a roaming mobile station, for example, by means of the IMSI (International Mobile Subscriber Identity) of the mobile station MS1 , which indicates the home network of the MS1. If the mobile station MS1 is roaming in the PLMN2, and if a real-time traffic class has been requested by it, the SGSN2 is arranged to check, in step 4-3, from the HLR1 of the home network PLMN1 of the mobile station whether the requested real-time traffic class bearer is allowed to the MS1 in PLMN2, for example, whether an agreement exists between the home operator and the PLMN2 operator for providing the requested real-time traffic class for the MS1 in the PLMN2. The agreement guarantees that both the home network and the visited network support the real-time class bearer de- fined in the QoS profile of the mobile station, and that these networks do not prevent the mobile station from using the real-time class bearer. If the requested traffic class is available for the mobile station MS1 , the SGSN2 stores, in step 4-4, information on the requested real-time traffic class and on the home network PLMN1 of the MS1 (e.g the IMSI). In step 4-5, a create PDP context request is transmitted to the GGSN 1 , and a PDP context is set up as a create PDP context response is received from the GGSN1. In step 4-6, the SGSN2 requests and receives radio access bearers from a radio network controller RNC2. In step 4-7, the updating of the QoS profile may be carried out by transmitting an update PDP context request message to the GGSN1 , and by receiving a corresponding response from it. In step 4-8, the SGSN2 transmits the PDP connection to the mobile station MS1 in an activate PDP context response message. In step 4-9 a virtual connection or link is set up and data transfer between the GGSN 1 and the MS1 via the SGSN2 can be carried out using the requested real-time class bearer. In step 4-10, a charging record is generated in the SGSN2 on the basis of the provided bearer service and on the basis of the information stored in step 4-4. The created charging record may comprise, for example, information on the fact that the mobile station is a roaming mobile station, information on the real-time traffic class used (streaming or conversational class), information on the amount of transmitted data, time information, information on the number of transactions carried out, or information on the operator in question. According to another embodiment, if it is found out in the SGSN2 that the requested traffic class is not allowed to the MS1 in the PLMN2, a bearer service of a lower traffic class than the requested one may be offered to the MS1. In such a case, the SGSN2 may be arranged to notify the MS1 that the bearer service request has been downgraded, and the MS1 may either accept or reject the lower class bearer.
According to yet another embodiment, if it is found out in the SGSN2 that the requested traffic class is not allowed for MS1 in the PLMN2, the PDP context negotiation procedure shown in Figures 2, 3 and 4 is discon- tinued. In such a case, the SGSN2 may be arranged to notify to MS1 that the PDP context negotiation procedure has been interrupted.
According to yet another embodiment, information on the charging record generated in the PLMN2 is provided to the operator of the PLMN1 , which combines it with the charging record generated in the PLMN1 in order to create an end-user bill.
User charging is typically based on the amount of transmitted data, but it may also be based on time or the transaction carried out. The present solution enables a real-time bearer service class and/or a roaming situation to be used as a (further) charging basis. The roaming and charging scenario described above in connection with Figures 1 , 2, 3 and 4 may also be applied when a service, such as a person-to-person communication service, is provided by the IP multimedia subsystem IMS1. Also in such a case traffic is routed through the home GGSN1. The IMS1 is located in the home network PLMN1 , and the charging is per- formed in the SGSN2 and the GGSN1. However, the IMS1 itself also produces charging records based on the session and session parameters so that the home operator is able to charge for the services used. The end-to-end QoS concept includes policy control so that the IMS1 controls the QoS that is offered for a certain service. This means that the streaming and/or conversa- tional class have to be allowed for in the policies in order for the end-user to receive such a bearer from the network. The roaming and charging scenario in connection with an IP multimedia subsystem will further be discussed below with reference to Figure 5.
Figure 5 illustrates an IMS interworking situation according to an embodiment of the present solution. The IMS interworking means that different IMS networks IMS1 , IMS3 are connected through an inter-PLMN IP network GRX to enable SIP control and transport of the user plane. Referring to Figure 5, the mobile station MS1 is roaming in the PLMN2, and the PLMN1 is the home network of the MS1. Thus the PLMN2 is a roaming network, i.e. a visited network, for the MS1. Another mobile station MS3 is located in its home net- work PLMN3. The MS1 is using a service of the IP multimedia subsystem IMS1 of its home network PLMN1 , and the MS3 is using a service of an IP multimedia subsystem IMS3 of its home network PLMN3. The used IMS1 service and the used IMS3 service may relate to each other. An example of a situation where the IMS1 and IMS3 service relate to each other is when a game is being played between the MS1 and the MS3. In the situation of Figure 5, the charging of the MS1 is performed by the SGSN2, GGSN1 and the IMS1. The charging of the MS3 is performed by a SGSN3 (or by a GGSN3) and by the IMS3. It is required that the networks PLMN1 , PLMN2 and PLMN3 are able to support the utilized real-time traffic class. QoS policy control is carried out by the IMS1 and the IMS3, such that the PLMN1 is controlled by the IMS1 , and the PLMN3 is controlled by the IMS3. A real-time class has to be allowed in the QoS policies of the PLMN1 and the PLMN2. The PLMN1 operator and the PLMN2 operator have a real-time class roaming agreement between them, and there also exists an agreement between the PLMN1 operator and the PLMN3 operator. The agreement between the PLMN1 operator and the PLMN3 operator may include, for example, information of the charging rate for the IMS service. It may further include a statement that the real-time class is allowed and supported for the IMS services.
The signalling messages and steps shown in Figures 2, 3 and 4 are in no an absolute chronological order and they may be executed in an order different from the given one. Other signalling messages may be transmitted and/or other functions may be carried out between the messages and/or steps. The signalling messages are only examples and may include only some of the aforementioned information. The messages may also include some other in- formation. The names of the messages can also differ from the aforementioned ones. It is not essential in which signalling messages the information is transmitted, but it is also possible to use messages other than those described above.
In addition to prior art devices, the system, network nodes or mobile stations implementing the operation according to the present solution comprise means for providing a roaming mobile station with a streaming class and/or conversational class bearer service as described above. Existing network nodes and mobile stations comprise processors and memory, which may be used in the functions according to the invention. All changes necessary for implementing the invention can be carried out by means of software routines that can be added or updated and/or routines contained in application specific integrated circuits (ASIC) and/or programmable circuits, such as an electrically programmable logic device EPLD or a field programmable gate array FPGA.
It will be obvious to a person skilled in the art that as technology advances, the inventive concept can be implemented in various ways. The solu- tion and its embodiments are not limited to the examples described above but may vary within the scope of the claims.
Contents3
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| WO0237870A2 | Cites | World Intellectual Property Organization (WIPO) | Search report |
9 members in 5 offices
Priority claims7
| Document | Office | Kind | Date |
|---|---|---|---|
| 20045509 | Finland | A | |
| 20045509 | Finland | – | |
| 2005050476 | Finland | W | |
| 20045509 | – | – | – |
| FI20040005509 | – | – | – |
| FI2005050476 | – | – | – |
| WO2005FI50476 | – | – | – |
Members9
| Document | Office | Kind | |
|---|---|---|---|
| FI20045509A0 | Finland | A0 | |
| FI117154B | Finland | B | |
| WO2006070068A1 | World Intellectual Property Organization (WIPO) | A1 | |
| EP1832042A1This record | European Patent Office (EPO) | A1 | |
| NO20073608L | Norway | L | |
| EP1832042A4 | European Patent Office (EPO) | A4 | |
| EP1832042B1 | European Patent Office (EPO) | B1 | |
| DK1832042T3 | Denmark | T3 | |
| NO337666B1 | Norway | B1 |
88 legal events, as 13 offices reported them to INPADOC
Over the term
Point at a mark for the eventEvents
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Gb: european patent ceased through non-payment of renewal feeCeasedGBPC | GBPC | EP | |
| Application deemed withdrawn, or ip right lapsed, due to non-payment of renewal feeWithdrawnR119 | R119 | DE | |
| Opt-out of the competence of the unified patent court (upc) registeredP01 | P01 | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapse european patentLapsedMM4D | MM4D | LT | |
| Lapsed by not paying the annual feesLapsedMM4A | MM4A | EE | |
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| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| No opposition filed against granted patent, or epo opposition proceedings concluded without decisionGrantedR097 | R097 | DE | |
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| Information on the status of an ep patent application or granted ep patentGrantedSTATUS: NO OPPOSITION FILED WITHIN TIME LIMITSTAA | STAA | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Translation of the specification of european patent valid in estoniaFG4A | FG4A | EE | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Discontinued in the netherlands as no translation has been filedVDEP | VDEP | NL | |
| Deletion acc. to par. 5 (withdrawal of the translation of the ep patent)MK05 | MK05 | AT | |
| Definitive protectionFG2A | FG2A | ES | |
| Translation of granted ep patentGrantedTRGR | TRGR | SE | |
| Ep patent with danish claimsT3 | T3 | DK | |
| Dpma publication of mentioned ep patent grantGrantedR096 | R096 | DE | |
| European patents granted designating irelandGrantedFG4D | FG4D | IE | |
| Reference to at number (ep patent validated in austria)REF | REF | AT | |
| Designated contracting statesAK | AK | EP | |
| European patent grantedGrantedFG4D | FG4D | GB | |
| (expected) grantORIGINAL CODE: 0009210GRAA | GRAA | EP | |
| Party data changed (applicant data changed or rights of an application transferred)RAP1 | RAP1 | EP | |
| Grant fee paidORIGINAL CODE: EPIDOSNIGR3GRAS | GRAS | EP | |
| Information provided on ipc code assigned before grantRIC1 | RIC1 | EP | |
| Information provided on ipc code assigned before grantRIC1 | RIC1 | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| Supplementary search report drawn up and despatchedA4 | A4 | EP | |
| Information provided on ipc code assigned before grantRIC1 | RIC1 | EP | |
| Information provided on ipc code assigned before grantRIC1 | RIC1 | EP | |
| Party data changed (applicant data changed or rights of an application transferred)RAP3 | RAP3 | EP | |
| Request for extension of the european patent (deleted)DAX | DAX | EP | |
| Request for examination filed (corrected)R17P | R17P | EP | |
| Request for examination filed17P | 17P | EP | |
| Designated contracting statesAK | AK | EP | |
| Public reference made under article 153(3) epc to a published international application that has entered the european phaseORIGINAL CODE: 0009012PUAI | PUAI | EP |
Numbers
- Publication
- 1832042
- Publication, DOCDB
- 1832042
- Publication, EPODOC
- EP1832042
- Application
- 5818848
- Application, DOCDB
- 05818848
- Application, EPODOC
- EP20050818848
Titles3
- German
- VERFAHREN ZUR BEREITSTELLUNG EINES TRÄGERDIENSTES FÜR EINE MOBILSTATION IN EINEM TELEKOMMUNIKATIONSSYSTEM
- English
- METHOD FOR PROVIDING A BEARER SERVICE TO A MOBILE STATION IN A TELECOMMUNICATIONS SYSTEM
- French
- PROCEDE VISANT A FOURNIR UN SERVICE SUPPORT A UNE STATION MOBILE D'UN SYSTEME DE TELECOMMUNICATIONS
Classification
- CPC, 16
- H04M15/16
- H04L47/24
- H04M15/00
- H04M15/41
- H04M15/57
- H04M15/8016
- H04M15/8038
- H04M2215/0164
- H04M2215/2026
- H04M2215/208
- H04M2215/22
- H04M2215/34
- H04M2215/7414
- H04M2215/7442
- H04W4/24
- H04W76/12
- IPC, 6
- H04L12 14
- H04L12 56
- H04M15 00
- H04M15 16
- H04W4 24
- H04Q7 22
Designated states1
- Contracting states, 1
- Türkiye