Embodiments of the present disclosure relate to a node arranged to set up common Enhanced Dedicated Channel resources in a cellular network, the node being for example a Base transceiver station or a Controlling Radio Network Controller.
Embodiments of the present disclosure further relate to a method and system for setting up common Enhanced Dedicated Channel resources in a cellular network.
A network according to standard like 3GPP comprises a Core Network, CN, Radio Access Networks, RAN, and User Equipments, UE, attached to a RAN, such as the UMTS Terrestrial Radio Access Network, UTRAN, architecture.
In a typical cellular radio system, wireless terminals communicate via a radio access network, RAN, with one or more core networks. The wireless terminals can be mobile stations or other types of user equipment, UE, such as portable, pocket, hand-held, computer-included, or car-mounted mobile devices which communicate voice and/or data with radio access network, e.g., mobile telephones and laptops with wireless capability.
The RAN covers a geographical area which is divided into cell areas, with each cell area or group of cell areas being served by a radio access node. A cell is a geographical area where radio coverage is provided by equipment at the radio access node. Each cell is identified by an identity within the local radio area. The radio access nodes communicate over the air interface with the UE within the cells served by the node.
The Universal Mobile Telecommunications System, UMTS, is a third generation mobile communication system, which evolved from the Global System for Mobile Communications, GSM, and is intended to provide improved mobile communication services based on Wideband Code Division Multiple Access , WCDMA, access technology. UTRAN is essentially a radio access network using wideband code division multiple access for user equipment units, UEs.
In 3GPP Release 8, Enhanced Uplink in CELL_FACH was introduced to improve the end user performance of the CELL_FACH state. E-DCH is used as the uplink transport channels providing much higher bandwidth for UEs in CELL_FACH state. There is a common pool of E-DCH (Enhanced Dedicated Channel) resources (referred as “common E-DCH resources.”) shared by the Enhanced Uplink CELL FACH users, while each user would get an E-RNTI (Enhanced Dedicated Channel Radio Network Transaction Identifier) when accessing the common E-DCH (Enhances Dedicated Channel) resources.
In current specifications the common E-DCH (Enhanced Dedicated Channel) configurations are set up with NBAP (Node B Application Part) messages. An E-RNTI (Enhanced Dedicated
Channel Radio Network Transaction Identifier) list is managed by the Node-B, however, it is RNC who grants the CELL_FACH E-RNTI and RNC send it to the UE through certain (e.g. cell update, Radio Bearer Reconfiguration) Radio Resource Control Protocol, RRC, messages.
When common E-DCH (Enhanced Dedicated Channel) resource is setting up, in the current specification, Base transceiver station (Node B) would pre allocate E-DCH Radio Network
Transaction Identifiers (E-RNTIs) to be used for Cell FACH users and send all the E-RNTI in a list, called E-RNTI List to its CRNC (Controlling Radio Network Controller) in a NBAP “PHYSICAL SHARED CHANNEL RECONFIGURATION RESPONSE” message.
One object of the embodiments of the disclosure is to improve communication in a Radio Access Networks, RAN.
This has in accordance with a first embodiment been achieved by means of a base transceiver station, node B, arranged to set up common Enhanced Dedicated Channel, E-DCH, resources in a cellular network. The node B is arranged to configure the common E-DCH resources. The configuration of the common E-DCH resources comprises deciding at least one E-DCH Radio Network Transaction Identifier, E-RNTI, range for the common E-DCH resources and to send the at least one E-RNTI range for the common E-DCH resources to a Controlling Radio Network Controller, CRNC, so as to set up the common E-DHC resources.
One advantage with this embodiment is that the base transceiver station, node B, decides the E-RNTIs for the common E-DCH resources. The Controlling Radio Network Controller does not need to confirm this decision.
Further, as the base transceiver station, node B, sends the at least one E-RNTI range for the common E-DCH resources to the Controlling Radio Network Controller, CRNC, the amount of information sent to the CRNC is independent of the number of E-RNTIs within the range. Accordingly, the amount of information sent to the CRNC is independent of the number E-DCH Cell FACH users.
Further, Node B Application Part, NBAP, efficiency can be improved.
In one option, each at least one range comprises two values representing the start and end of the E-RNTI value for the common E-DCH resources.
In one option, node B is arranged to send the at least one E-RNTI range in a Node B Application Part, NBAP, message. In one example, the node B is arranged to send the at least one E-RNTI range in a NBAP message as new protocol Information Elements (IEs).
In one option, the node B comprises a processor arranged to configure the common E-DCH resources comprising deciding the at least one E-RNTI ranges for the common E-DCH resources to use, a memory arranged to store information about the decided E-RNTI ranges for the common E-DCH resources to use, and communication circuitry arranged to send the at least one range of the E-RNTI for the common E-DCH resources to the CRNC.
One embodiment of the present disclosure relates to a system for setting up common Enhanced Dedicated Channel (E-DCH) resources in a cellular network. The system comprises at least one base transceiver station, node B, and at least one controlling Radio Network Controller, CRNC. The at least one node B is arranged to configure the common E-DCH resource comprising deciding at least one E-DCH Radio Network Transaction Identifier, E-RNTI, range for the common E-DCH resources to use and to send the at least one E-RNTI range for the common E-DCH resources to its CRNC, so as to set up the common E-DHC resources. Each range may comprise two values representing the start and end of the E-RNTI value for the common E-DCH resources.
At least one node B is in one option arranged to send the at least one E-RNTI ranges in a Node B Application Part, NBAP, message as new protocol information elements (IEs).
At least one node B comprises in one option a processor arranged to configure the common E-DCH resource comprising deciding the at least one E-RNTI range for the common E-DCH resources to use, a memory arranged to store information about the decided at least one E-RNTI range for the common E-DCH resources to use, and communication circuitry arranged to send the at least one E-RNTI range for the common E-DCH resources to the CRNC.
In one option, the CRNC is arranged to receive the range of the E-RNTI for the common E-DCH resources provided by the node B and to allocate the E-RNTI within the at least one range provided by the node B for the common E-DCH users.
In one option, the CRNC comprises communication circuitry arranged to receive the at least one E-RNTI range for the common E-DCH resources provided by the node B and a processor arranged to allocate the E-RNTI within the at least one range for the common E-DCH users provided by the node B.
In one option, the cellular network is a UMTS Terrestrial Radio Access Network (UTRAN).
One embodiment of the present disclosure also relates to a method in a cellular network for setting up common Enhanced Dedicated Channel, E-DCH, resources. The method comprises performing at a node B the steps of configuring the common E-DCH resource comprising deciding at least one E-DCH Radio Network Transaction Identifier, E-RNTI, range for the common E-DCH resources to use and sending the at least one E-RNTI range for the common E-DCH resources to a Controlling Radio Network Controller, CRNC.
In one option, the at least one range comprises each two values representing the start and end of the E-RNTI value for the common E-DCH resources.
In one option, the method comprises performing at the CRNC the steps of receiving the at least one E-RNTI range for the common E-DCH resources provided by the node B and allocating the E-RNTI within the at least one range provided by the node B for the common E-DCH users.
One embodiment of the present disclosure relates to a controlling Radio Network Controller, CRNC, arranged to set up common Enhanced Dedicated Channel, E-DCH, resources in a cellular network. The CRNC is arranged to configure the common E-DCH resources. The configuration comprises pre-deciding at least one E-DCH Radio Network Transaction Identifier, E-RNTI, range for the common E-DCH resources and informing a Base transceiver station, node B, about the pre-decided at least one range for the common E-DCH resources.
One advantage with this embodiment is that the amount of information sent from the CRNC to Node B is independent of the number of E-RNTIs within the range. Accordingly, the amount of information sent to the CRNC is independent of the number E-DCH Cell FACH users.
One embodiment of the present disclosure relates to a system for setting up common Enhanced Dedicated Channel, E-DCH, resources in a cellular network. The system comprises at least one Base transceiver station, node B, and at least one controlling Radio Network Controller, CRNC. The at least one CRNC is arranged to configure the common E-DCH resources. The configuration comprises pre-deciding at least one E-DCH Radio Network Transaction Identifier, E-RNTI, range for the common E-DCH resources and to inform a Base transceiver station, node B, about the at least one E-RNTI range for the common E-DCH resources. The node B is then arranged to coordinate the at least one E-RNTI range for the common E-DCH resources decided by the CRNC and an E-DCH Radio Network Transaction, E-RNTI, for Cell Dedicated Channel, DCH, users and based thereon determine whether the at least one E-RNTI range for the common E-DCH resources pre-decided by the CRNC is acceptable.
In one option, the node B is arranged to accept the at least one range without responding to the CRNC when the at least one E-RNTI range for the common E-DCH resources is determined to be acceptable.
In one option, the node B is arranged to actively confirm the at least one range in a response to the CRNC when the at least one E-RNTI range for the common E-DCH resources is determined to be acceptable.
In one option, the node B is arranged to provide at least one proposed new E-RNTI range for the common E-DCH resources and to comprise the at least one proposed new range in a response to the CRNC when the at least one E-RNTI range for the common E-DCH resources is determined not to be acceptable.
One embodiment of the present disclosure relates to a method for setting up common Enhanced Dedicated Channel, E-DCH, resources. The method comprises configuring at a Controlling Radio Network Controller, CRNC, the common E-DCH resource, said configuring comprising pre-deciding at least one E-DCH Radio Network Transaction, E-RNTI, range for the common E-DCH resources to use, and sending the at least one E-RNTI range for the common E-DCH resources to a Base transceiver station node B.
In one option, the method further comprises a step of receiving at the CRNC a response from the node B to the sent at least one E-RNTI range for the common E-DCH resources. The response may be a confirmation message. Alternatively, the response may comprise a proposed new range.
In one option, the method comprises steps of receiving at the node B the pre-decided at least one E-RNTI range for the common E-DCH resources provided by the CRNC, and evaluating at node B the received pre-decided at least one range, and based on the evaluation determining the at least one E-RNTI range for the common E-DCH resources.
In one option, the method further comprising a step of node B transmitting a confirmation response to the CRNC based on the evaluation.
In one option, node B forms at least one proposed new range based on the evaluation and transmits the proposed at least one new range to the CRNC.
A network according to standard like 3GPP comprises a Core Network, CN, Radio Access Networks, RAN, and User Equipments, UE, attached to a RAN, such as the UMTS Terrestrial Radio Access Network, UTRAN, architecture.
In a typical cellular radio system, wireless terminals communicate via a radio access network, RAN, with one or more core networks. The wireless terminals can be mobile stations or other types of user equipment, UE, such as portable, pocket, hand-held, computer-included, or car-mounted mobile devices which communicate voice and/or data with radio access network, e.g., mobile telephones and laptops with wireless capability.
The RAN covers a geographical area which is divided into cell areas, with each cell area or group of cell areas being served by a radio access node. A cell is a geographical area where radio coverage is provided by equipment at the radio access node. Each cell is identified by an identity within the local radio area. The radio access nodes communicate over the air interface with the UE within the cells served by the node.
The Universal Mobile Telecommunications System, UMTS, is a third generation mobile communication system, which evolved from the Global System for Mobile Communications, GSM, and is intended to provide improved mobile communication services based on Wideband Code Division Multiple Access, WCDMA, access technology. UTRAN is essentially a radio access network using wideband code division multiple access for user equipment units, UEs.
In 3GPP Release 8, Enhanced Uplink, CELL_FACH (CELL Forward Access Channel) was introduced to improve the end user performance of the CELL_FACH state. E-DCH is used as the uplink transport channels providing much higher bandwidth for UEs in CELL_FACH state. There is a common pool of E-DCH resources (referred as “common E-DCH resources.”) shared by the Enhanced Uplink CELL FACH users, while each user would get an E-RNTI when accessing the common E-DCH (Enhances Dedicated Channel) resources.
In current specifications the common E-DCH (Enhanced Dedicated Channel) configurations are set up with NBAP (Node B Application Part) messages. An E-RNTI (Enhanced Dedicated Channel Radio Network Transaction Identifier) list is managed by the Node-B, however, it is RNC who grants the CELL_FACH E-RNTI and RNC send it to the UE through certain (e.g. cell update, Radio Bearer Reconfiguration) Radio Resource Control Protocol, RRC, messages.
When common E-DCH (Enhanced Dedicated Channel) resource is setting up, in the current specification, Base transceiver station (Node B) would pre allocate E-DCH Radio Network Transaction Identifiers, E-RNTIs, to be used for Cell FACH users and send all the E-RNTI in a list, called E-RNTI List to its CRNC (Controlling Radio Network Controller) in a NBAP “PHYSICAL SHARED CHANNEL RECONFIGURATION RESPONSE” message.
E-RNTI is defined as 16 bits. Thanks to the deployment of smart phones, the number of Sending of PHYSICAL SHARED CHANNEL RECONFIGURATION RESPONSE with hundreds and thousands of E-RNTI in the list would prior art solutions imply a high load on the system and a potential overload, e.g. NBAP congestion.
In
In one example, Node B decides one E-RNTI range. In an alternative example, Node B decides a plurality of E-RNTI ranges. Accordingly, a list comprising one or a plurality of E-RNTI ranges may be introduced, for use by the CRNC. Alternatively, the list is introduced in other NBAP common message, or new message. Instead, or in addition thereto the list is on one example introduced in lub user plan frames.
In
In one option, the at least one range comprises two values representing the start and end of the E-RNTI value for the common E-DCH resources.
In
The tables 1 and 2 below illustrate an example wherein the new IE is defined in the existing NBAP message PHYSICAL SHARED CHANNEL RECONFIGURATION RESPONSE. Table 1 illustrates an example of Common E-DCH System Information Response included in PHYSICAL SHARED CHANNEL RECONFIGURATION RESPONSE. It provides information for E-DCH configured for UE in Cell_FACH and Idle state that have been established or modified.
Table 2 illustrates an example of E-RNTI Range IE providing the range of E-RNTIs which can be allocated by CRNC when sent by Node B; it provides the range of E-RNTI used by CRNC when sent by CRNC.
Table 3 below illustrates the introduction of a list of ranges, which can be used by CRNC E-RNTI Range. In the illustrated example, the E-RNTI Range IE provides the list of ranges of E-RNTIs which can be allocated by CRNC when sent by Node B; it provides the range of E-RNTI used by CRNC when sent by CRNC.
In
Node B has a few options for the handling. In a first option, Node B is arranged to do nothing, indicating the range is accepted and understood. In a second option, Node B is arranged to actively confirm to the CRNC indicating that the range is received and understood. In a third option Node B is arranged to propose a new range.
In one example, the new IE is defined in the existing NBAP message PHYSICAL SHARED CHANNEL RECONFIGURATION REQUEST. In one example, the new IE is introduced in other NBAP common message, or new message. In one example, the new IE is introduced in lub user plan frames. In
In one option, the method also involves receiving 435, 440 at the CRNC a response from Node B to the sent range of the E-RNTI for the common E-DCH resources. In one example the response 440 is a confirmation message. In an alternative example, the response 435 comprises at least one proposed new range. In yet another example, no response is received.
In
In one option, the method comprises the steps of evaluating 555 the received pre-decided range. Node B transmits in one example a confirmation response 560. The confirmation response may be based on the evaluation. Node B forms 565 in one example at least one proposed new range based on the evaluation, and transmits 570 the proposed at least one new range to the CRNC.
The tables 1 and 2 above and 4 below illustrate an example wherein the new IE is defined in the existing NBAP message PHYSICAL SHARED CHANNEL RECONFIGURATION REQUEST.
Table 4 below illustrates the Common E-DCH System Information which is included in PHYSICAL SHARED CHANNEL RECONFIGURATION REQUEST.
With the above described solutions A and B, the NBAP efficiency is improved in the handling of common E-DCH resources in PHYSICAL SHARED CHANNEL RECONFIGURATION RESPONSE. Further, with the above described solutions, RNC control of E-RNTI allocation for common E-DCH users is improved.
In
In accordance with solution A, the processor 682 is arranged to configure common Enhanced dedicated channel (E-DCH) resource comprising deciding E-DCH Radio Network Transaction Identifier (E-RNTI) ranges for the common E-DCH resources to use. The memory is arranged to store information about the decided E-RNTI ranges for the common E-DCH resources to use. The communication circuitry 681 is arranged to send at least one range of the E-RNTI for the common E-DCH resources to a controlling Radio Network Controller (CRNC).
In accordance with solution B, the communication circuitry 681 is arranged to receive 550 at least one pre-decided range of the E-RNTI for the common E-DCH resources provided by CRNC. The at least one pre-decided range of the E-RNTI for the common E-DCH resources is stored in the memory 683. In one option, processor 682 is arranged to evaluate the received pre-decided at least one range. In one example, the communication circuitry 681 is arranged to transmit a confirmation response 560 to the CRNC. The confirmation response may be based on the evaluation. In one example, the processor 682 is arranged to form at least one proposed new range based on the evaluation, and the communication circuitry is arranged to transmit the proposed new range to the CRNC.
In
In accordance with solution A, the communication circuitry 791 is arranged to receive at least one range of E-DCH Radio Network Transaction Identifier (E-RNTI) for a common Enhanced Dedicated Channel) E-DCH resources provided by a base transceiver station (Node B). The processor 792 is arranged to allocate the E-RNTI within the range provided by Node B for the common E-DCH users.
In accordance with solution B, the processor 792 is arranged to configure the common E-DCH resource. The configuration comprises pre-deciding the E-RNTI ranges for the common E-DCH resources to use. Further, the communication circuitry 791 is arranged to send at least one range of the E-RNTI for the common E-DCH resources to the CRNC. In one option, the communication circuitry 791 is also arranged to receive a response from Node B to the sent at least one range of the E-RNTI for the common E-DCH resources. In one example the response is a confirmation message. In an alternative example, the response comprises at least one proposed new range.
In the above description, the specific terms such as Node B, CRNC and UE are used herein, but it should be understood that other terms may be used in different standards or protocols to refer to the same or like entities.
Filing Document | Filing Date | Country | Kind |
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PCT/SE2013/051177 | 10/7/2013 | WO | 00 |
Number | Date | Country | |
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61710954 | Oct 2012 | US |