WO2013105409A1 - 無線通信システム、移動局装置、基地局装置、無線通信方法及び集積回路 - Google Patents
無線通信システム、移動局装置、基地局装置、無線通信方法及び集積回路 Download PDFInfo
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- WO2013105409A1 WO2013105409A1 PCT/JP2012/083014 JP2012083014W WO2013105409A1 WO 2013105409 A1 WO2013105409 A1 WO 2013105409A1 JP 2012083014 W JP2012083014 W JP 2012083014W WO 2013105409 A1 WO2013105409 A1 WO 2013105409A1
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- station apparatus
- cell
- transmission timing
- mobile station
- random access
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0032—Distributed allocation, i.e. involving a plurality of allocating devices, each making partial allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0203—Power saving arrangements in the radio access network or backbone network of wireless communication networks
- H04W52/0206—Power saving arrangements in the radio access network or backbone network of wireless communication networks in access points, e.g. base stations
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W56/00—Synchronisation arrangements
- H04W56/0005—Synchronisation arrangements synchronizing of arrival of multiple uplinks
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/70—Reducing energy consumption in communication networks in wireless communication networks
Definitions
- Embodiments of the present invention relate to a base station apparatus, a mobile station apparatus, and a radio communication system, and more specifically, a radio communication system, a mobile station apparatus, a base station apparatus, and a radio communication method when a transmission timing group is changed And an integrated circuit.
- the W-CDMA system has been standardized as a third generation cellular mobile communication system, and services have been started sequentially.
- HSDPA with higher communication speed has also been standardized and the service has started.
- EUTRA Evolved Universal Terrestrial Radio Access
- OFDM Orthogonal Frequency Division Division Multiplexing
- SC-FDMA Peak-to-Average Power Ratio
- PAPR Peak-to-average Power to Ratio
- Advanced-EUTRA a further evolution of EUTRA.
- communication is performed at a maximum transmission rate of 1 Gbps or higher and 500 Mbps or higher of the uplink by using a band up to a maximum of 100 MHz bandwidth in the uplink and the downlink, respectively.
- Advanced-EUTRA is considering to realize a maximum of 100 MHz band by bundling a plurality of bands below 20 MHz of EUTRA so that EUTRA mobile station devices can be accommodated.
- one band of 20 MHz or less of EUTRA is called “component carrier (Component CC: CC)” (see Non-Patent Document 2).
- Component CC: CC) is called “component carrier (Component CC: CC)” (see Non-Patent Document 2).
- Component CC: CC) component carrier
- one cell is configured by combining one downlink component carrier and one uplink component carrier.
- a single cell can be configured with only one downlink component carrier.
- the base station apparatus allocates a plurality of cells to the mobile station apparatus and communicates with the mobile station apparatus via the allocated cells.
- a base station apparatus and a mobile station apparatus communicate via a plurality of component carriers via a repeater (Repeater) or RRH (Radio Remote Head) as shown in FIG. .
- the reception timing of data from the downlink component carrier in the mobile station apparatus may be different for each cell.
- transmission timing (Timing Advance: TA) to the base station apparatus may be different for each uplink component carrier of each cell. Therefore, the mobile station apparatus adjusts the transmission timing for each uplink component carrier of each cell or for each group of component carriers having the same transmission timing.
- a group of component carriers (or cells) having the same transmission timing is referred to as a “transmission timing group (TA group)”.
- the base station apparatus sets a transmission timing group for mobile station apparatuses to which cells having different transmission timings are assigned. Further, the base station apparatus resets the transmission timing group for the mobile station apparatus due to a change in communication status.
- 3GPP TS (Technical Specification) 36.300, V10.50 (2011-09), Evolved Universal Terrestrial Radio Access (E-UTRA) and Evolved Universal Terrestrial Radio Access Network (E-UTRAN), Overall description 3GPP TR (Technical Specification) 36.814, V9.00 (2010-03), Evolved Universal Terrestrial Radio Access (E-UTRA) Further advancements Efor U-physical layer Aspects
- each transmission timing group There is one timing reference cell in each transmission timing group.
- the transmission timing of each transmission timing group is determined based on the downlink reception timing of the timing reference cell. Moreover, the transmission timing information of the transmission timing group notified from the base station apparatus adjusts the uplink transmission timing of the timing reference cell.
- the base station apparatus may reset the transmission timing group for the mobile station apparatus due to a change in the communication status accompanying the movement of the mobile station apparatus.
- the base station device resets the transmission timing group and the timing reference cell is deleted from the transmission timing group or moved to another transmission timing group, the timing reference cell of the transmission timing group disappears As a result, there is no reference timing, and the mobile station apparatus cannot perform uplink transmission.
- Embodiments of the present invention have been made in view of such circumstances, and wireless communication that enables efficient operation even when the base station apparatus resets the transmission timing group of the mobile station apparatus during communication.
- An object is to provide a system, a mobile station apparatus, a base station apparatus, a wireless communication method, and an integrated circuit.
- the embodiment of the present invention takes the following measures. That is, the radio communication system according to the embodiment of the present invention is a radio communication system in which a base station apparatus allocates a plurality of cells to a mobile station apparatus, and the base station apparatus and the mobile station apparatus communicate via the plurality of cells.
- the plurality of cells are grouped by cells having the same uplink transmission timing, a timing reference cell serving as a reference for transmission timing is set for one cell of the group, and the base station apparatus
- the mobile station device is notified of a message for changing the group configuration, the mobile station device receives the message, the message is instructed to change the timing reference cell, and the message includes random access information. If it is, the random access procedure is started with a new timing reference cell.
- the timing reference cell that transmits the random access preamble is an activated cell.
- the random access information includes at least a preamble number.
- uplink radio resources allocated to the cells in the group are maintained.
- the cell instructed to move to another group by the message is a state after movement of the cell depending on the state of the timing reference cell of the other group. It is characterized by determining.
- the state after movement of the cell is activated or deactivated.
- a mobile station apparatus is a mobile station apparatus that is assigned a plurality of cells from a base station apparatus and communicates with the base station apparatus via the plurality of cells.
- a timing reference cell serving as a reference for transmission timing is set for one cell of the group, and a message for changing the group configuration for the group from the base station apparatus
- the timing reference cell is instructed by the message and random access information is included in the message, the random access procedure is started with a new timing reference cell.
- the mobile station apparatus is characterized by transmitting a random access preamble when the new timing reference cell is in an activated state.
- the base station apparatus is a base station apparatus that allocates a plurality of cells to a mobile station apparatus and communicates with the mobile station apparatus via the plurality of cells. Grouped with cells having the same uplink transmission timing, a timing reference cell serving as a reference for transmission timing is set for one cell of the group, and the group identification of the group in a message for changing the group configuration for the group The mobile station apparatus is notified of a message for changing the group configuration for the group, including information, identification information of cells included in the group, identification information of new timing reference cells, and random access information.
- the base station apparatus is characterized in that at least a preamble number is included in the random access information.
- the base station device allocates a plurality of cells to the mobile station device, and the base station device and the mobile station device communicate with each other via the plurality of cells.
- a wireless communication method applied to a system wherein the plurality of cells are grouped by cells having the same uplink transmission timing, and a timing reference cell serving as a transmission timing reference is set for one cell of the group,
- the base station device includes a step of notifying the mobile station device of a message for changing a group configuration for the group, the mobile station device receiving the message, and changing the timing reference cell in the message.
- random access information is included in the message, a new timing reference In characterized in that it comprises at least the step of initiating a random access procedure.
- An integrated circuit is an integrated circuit applied to a mobile station apparatus that is assigned a plurality of cells from a base station apparatus and communicates with the base station apparatus through the plurality of cells.
- the plurality of cells are grouped by cells having the same uplink transmission timing, a timing reference cell serving as a reference for transmission timing is set for one cell of the group, and the group for the group from the base station apparatus Means for receiving a message for changing the configuration; and if the message is instructed to change the timing reference cell and the message includes random access information, starts a random access procedure in a new timing reference cell It has the means to do.
- An integrated circuit is an integrated circuit applied to a base station apparatus that allocates a plurality of cells to a mobile station apparatus and communicates with the mobile station apparatus via the plurality of cells.
- the plurality of cells are grouped by cells having the same uplink transmission timing, a timing reference cell serving as a transmission timing reference is set for one cell of the group, and a message for changing the group configuration for the group
- the radio communication system when the configuration of the transmission timing group having the same uplink transmission timing is reset, the radio communication system, the mobile station device, and the mobile station device that efficiently control the operation to the cell whose configuration has been changed, A base station apparatus, a wireless communication method, and an integrated circuit can be provided.
- the downlink of EUTRA includes a downlink reference signal (Downlink Reference Signal), a downlink synchronization channel DSCH (Downlink Synchronization Channel), a downlink shared channel PDSCH (Physical Downlink Shared Channel), and a downlink control channel PDCCH (Physical Downlink Control Channel).
- the broadcast channel PBCH Physical Broadcast Channel.
- the uplink of EUTRA includes an uplink reference signal (Uplink Reference Signal), a random access channel RACH (Physical Random Access Channel), an uplink shared channel PUSCH (Physical Uplink Shared Channel), and an uplink control channel PUCCH (Physical Uplink Control Channel). It is comprised by.
- the uplink reference signal includes two types of signals: a demodulation reference signal (Demodulation Reference Signal) and a measurement reference signal (Sounding Reference Signal).
- FIG. 5 is a diagram showing a channel configuration in EUTRA.
- FIG. 6 is a diagram illustrating an uplink configuration in EUTRA.
- FIG. 7 is a diagram illustrating a downlink configuration in EUTRA.
- One block is composed of 12 subcarriers and 7 OFDM symbols. Then, one resource block (Resource Block: RB) is configured using two blocks.
- the uplink shared channel PUSCH and the uplink control channel PUCCH are used in units of one resource block.
- the random access channel RACH is configured using 6 resource blocks.
- the uplink reference signal is arranged in a specific OFDM symbol in the resource block.
- Each uplink channel is divided into an uplink shared channel PUSCH region, an uplink control channel PUCCH region, and a random access channel RACH as shown in FIG.
- Information on each region of the uplink shared channel PUSCH and the uplink control channel PUCCH is broadcast from the base station apparatus. Further, the base station apparatus allocates radio resources of the uplink shared channel PUSCH and the uplink control channel PUCCH for each mobile station apparatus from each region.
- the random access channel RACH is arranged at a constant period.
- the downlink shared channel PDSCH is used for transmitting user data and control data from the base station apparatus to the mobile station apparatus.
- the downlink control channel PDCCH is used for notification of control information such as radio resource allocation information of the downlink shared channel PDSCH and the uplink shared channel PUSCH from the base station apparatus to the mobile station apparatus.
- the downlink reference signal is used to demodulate the downlink shared channel PDSCH and the downlink control channel PDCCH.
- the downlink synchronization channel DSCH is used for the mobile station apparatus to perform downlink synchronization.
- the broadcast channel PBCH is used to notify information related to system information of the base station apparatus.
- the uplink shared channel PUSCH is used for transmitting user data and control data from the mobile station apparatus to the base station apparatus.
- the data transmitted and received on the uplink shared channel PUSCH and the downlink shared channel PDSCH is subjected to HARQ (Hybrid Automatic Repeat reQuset) processing, and the data at the time of retransmission is synthesized by combining the initial transmission data and the retransmission data at the time of retransmission. Has improved the error correction ability.
- the uplink control channel PUCCH is used to notify control information such as a response (Ack (Acknowledge) / Nack (Negative acknowledge)) to downlink data from the base station apparatus and downlink radio channel quality information.
- Ack Acknowledge
- Nack Negative acknowledge
- the random access channel RACH is mainly used for random access preamble transmission for acquiring transmission timing information from the mobile station apparatus to the base station apparatus. Random access preamble transmission is performed in a random access procedure.
- the reference signal for demodulation of the uplink reference signal is used by the base station apparatus to demodulate the uplink shared channel PUSCH.
- the demodulation reference signal is inserted into the fourth symbol position and the eleventh symbol position of the uplink shared channel PUSCH.
- the reference signal for measuring the uplink reference signal is used by the base station apparatus to measure the uplink radio channel quality.
- the measurement reference signal is inserted into the 14th symbol position of the uplink shared channel PUSCH.
- the radio resource for transmitting the measurement reference signal is allocated from the base station device to each mobile station device.
- Contention-based Random Access Contention-based random access
- Non-contention-based Random Access Non-contention-based random access
- FIG. 8 is a diagram showing the procedure of Contention-based Random Access.
- Contention based Random Access is random access that may collide between mobile station devices.
- Contention based Random Access is the uplink data to the mobile station device at the time of initial access from the state where it is not connected (communication) with the base station device or while it is connected to the base station device, but the uplink synchronization is lost. This is done for scheduling request when transmission occurs.
- FIG. 9 is a diagram showing the procedure of Non-contention based Random Access.
- Non-contention based Random Access is a random access in which no collision occurs between mobile station apparatuses.
- Non-contention based Random Access quickly establishes uplink synchronization between the mobile station device and the base station device when the base station device and the mobile station device are connected but the uplink is out of synchronization. Therefore, in a special case such as when handover or the transmission timing of the mobile station apparatus is not valid, the mobile station apparatus starts random access in response to an instruction from the base station apparatus (see Non-Patent Document 1).
- Non-contention based Random Access is instructed by the base station apparatus to the mobile station apparatus using an RRC (Radio Resource Control: Layer 3) layer message and downlink control channel PDCCH control data.
- RRC Radio Resource Control: Layer 3
- the mobile station apparatus 1-1 transmits a random access preamble to the base station apparatus 3 (message 1: (1), step S1).
- the base station device 3 that has received the random access preamble transmits a response to the random access preamble (random access response) to the mobile station device 1-1 (message 2: (2), step S2).
- the mobile station device 1-1 transmits an upper layer (Layer2 / Layer3) message based on the scheduling information included in the random access response (message 3: (3), step S3).
- the base station device 3 transmits a collision confirmation message to the mobile station device 1-1 that has received the upper layer message of (3) (message 4: (4), step S4).
- Contention based Random Access is also referred to as “random preamble transmission”.
- the base station apparatus 3 notifies the mobile station apparatus 1-1 of the preamble number (or sequence number) and the random access channel number to be used (message 0: (1) ', step S11).
- the mobile station apparatus 1-1 transmits the random access preamble having the designated preamble number to the designated random access channel RACH (message 1: (2) ', step S12).
- the base station device 3 that has received the random access preamble transmits a response to the random access preamble (random access response) to the mobile station device 1-1 (message 2: (3) ', step S13).
- the mobile station apparatus 1-1 performs Contention based Random Access.
- Non-contentioncontentbased Random Access is also referred to as “dedicated preamble transmission”.
- the mobile station apparatus 1-1 acquires the system information of the base station apparatus 3 from the broadcast channel PBCH or the like, executes a random access procedure from the random access related information included in the system information, and communicates with the base station apparatus 3 Connect.
- the mobile station apparatus 1-1 generates a random access preamble from the random access related information in the system information.
- the mobile station apparatus 1-1 transmits a random access preamble using the random access channel RACH (message 1: (1)).
- the random access related information includes the configuration of the random access channel RACH, generation information of the random access preamble, information for transmission / reception of each message of the random access procedure, and the like.
- the base station device 3 When the base station device 3 detects the random access preamble from the mobile station device 1-1, the base station device 3 calculates the amount of transmission timing shift between the mobile station device 1-1 and the base station device 3 from the random access preamble, and the Layer 2 In order to transmit (L2) / Layer3 (L3) message, scheduling (designation of uplink radio resource position (position of uplink shared channel PUSCH), transmission format (message size), etc.) is performed, and Temporary C-RNTI (Cell- RA-RN indicating a response (random access response) addressed to mobile station apparatus 1-1 that has assigned Radio
- the mobile station apparatus 1-1 When the mobile station apparatus 1-1 detects that the RA-RNTI is present in the downlink control channel PDCCH, the mobile station apparatus 1-1 confirms the content of the random access response message arranged in the downlink shared channel PDSCH. When the transmitted random access preamble information is included, the mobile station apparatus 1-1 adjusts the uplink transmission timing (uplink transmission timing) from the transmission timing information, and uses the scheduled radio resource and transmission format.
- the mobile station apparatus 1-1 When the transmission timing is adjusted, the mobile station apparatus 1-1 starts a transmission timing timer in which the adjusted transmission timing is valid. When this transmission timing timer expires, the adjusted transmission timing becomes invalid. While the transmission timing is valid, the mobile station apparatus 1-1 can transmit data to the base station apparatus. When the transmission timing is invalid, the mobile station apparatus 1-1 can only transmit a random access preamble. is there. Further, a period in which the transmission timing is valid is referred to as an “uplink synchronization state”, and a period in which the transmission timing is not valid is also referred to as an “uplink asynchronous state”.
- the base station apparatus 3 When the base station apparatus 3 receives the L2 / L3 message from the mobile station apparatus 1-1, the base station apparatus 3 uses the C-RNTI (or Temporary C-RNTI) or IMSI included in the received L2 / L3 message.
- C-RNTI or Temporary C-RNTI
- IMSI included in the received L2 / L3 message.
- a collision confirmation (contention resolution) message for determining whether or not a collision occurs between 1-1 and 1-3 is transmitted to the mobile station apparatus 1-1 (message 4: (4)).
- the mobile station apparatus 1-1 does not detect the random access response message including the preamble number corresponding to the random access preamble transmitted within the predetermined period, fails to transmit the message 3, or is fixed period. If the identification information of the mobile station apparatus 1-1 is not detected in the collision confirmation message, transmission is repeated from transmission of the random access preamble (message 1: (1)). When the number of random access preamble transmissions exceeds the maximum number of random access preamble transmissions indicated by the system information, the mobile station device 1-1 determines that the random access has failed and performs communication with the base station device 3. Disconnect. After the random access procedure is successful, control data for connection is further exchanged between the base station apparatus 3 and the mobile station apparatus 1-1. At this time, the base station apparatus 3 notifies the mobile station apparatus 1-1 of the uplink reference signal and the uplink control channel PUCCH allocation information to be individually allocated.
- the base station apparatus 3 For updating the uplink transmission timing after the random access procedure is completed, the base station apparatus 3 measures the uplink reference signal (measurement reference signal or demodulation reference signal) transmitted from the mobile station apparatus 1-1. Thus, the transmission timing information is calculated, and the calculated transmission timing information is notified to the mobile station apparatus 1-1. When the mobile station apparatus 1-1 updates the transmission timing information notified from the base station apparatus 3, the mobile station apparatus 1-1 restarts the transmission timing timer. The base station apparatus 3 also holds the same transmission timing timer as that of the mobile station apparatus 1-1, and the base station apparatus 3 starts or restarts the transmission timing timer when transmitting the transmission timing information. In this way, the uplink synchronization state is managed by the base station apparatus 3 and the mobile station apparatus 1-1. When the transmission timing timer expires, the transmission timing becomes invalid, and uplink transmission other than the random access preamble transmission is stopped.
- the uplink reference signal measurement reference signal or demodulation reference signal
- the transmission timing is adjusted not only by the transmission timing information notified from the base station apparatus 3, but also by the change in the reception timing of the downlink signal measured by the mobile station apparatus 1-1.
- the mobile station apparatus 1-1 adjusts the optimal reception timing while measuring the downlink synchronization channel DSCH or the downlink reference signal. When the reception timing is changed, the mobile station apparatus 1-1 reflects the difference between the previous reception timing and the new reception timing in the transmission timing.
- Advanced-EUTRA a further evolution of EUTRA.
- communication is performed at a maximum transmission rate of 1 Gbps or higher and 500 Mbps or higher of the uplink by using a band up to a maximum of 100 MHz bandwidth in the uplink and the downlink, respectively.
- FIG. 10 is an explanatory diagram of downlink component carriers in Advanced-EUTRA.
- FIG. 11 is an explanatory diagram of an uplink component carrier in Advanced-EUTRA.
- Advanced-EUTRA is considering to realize a maximum of 100 MHz band by bundling a plurality of bands below 20 MHz of EUTRA so that EUTRA mobile station devices can be accommodated.
- one band of 20 MHz or less of EUTRA is called “component carrier (Component CC: CC)” (see Non-Patent Document 2).
- Component CC: CC component carrier
- one cell is configured by combining one downlink component carrier and one uplink component carrier.
- a single cell can be configured with only one downlink component carrier.
- the link information with the uplink component carrier is indicated in the cell system information broadcast by the downlink component carrier, or the mobile station moves from the base station apparatus.
- a combination of a downlink component carrier and an uplink component carrier is shown for each station device.
- Advanced-EUTRA communication is performed using a plurality of cells. Therefore, in order to reduce the load on the base station apparatus and the mobile station apparatus as much as possible, one cell among the plurality of cells is designated as a first cell (Primary Cell). ) And other cells are designated as second cells. Then, an uplink control channel PUCCH is assigned to the cell to be the first cell, and special functions are set in the first cell, such as permission for random access.
- Primary Cell Primary Cell
- PUCCH special functions are set in the first cell, such as permission for random access.
- the mobile station apparatus does not perform downlink reception processing on the second cell immediately after allocation (or obeys radio resource allocation information instructed by the downlink control channel). Absent). After the mobile station apparatus is instructed to activate from the base station apparatus, the mobile station apparatus starts downlink reception processing for the second cell instructed to activate (or the radio instructed by the downlink control channel). According to the resource allocation information). In addition, after the mobile station apparatus is instructed to deactivate the second cell activated by the base station apparatus, the mobile station apparatus performs downlink reception processing for the second cell instructed to deactivate. It stops (or does not follow the radio resource allocation information indicated by the downlink control channel).
- the second cell that is instructed to activate by the base station apparatus and performs downlink reception processing is called an activated cell.
- the second cell immediately after allocation from the base station apparatus to the mobile station apparatus and the second cell that has been instructed to be deactivated and has stopped downlink reception processing are referred to as deactivated cells.
- the first cell is always an activated cell.
- the base station apparatus allocates one or more cells that meet the communication capability or communication conditions of the mobile station apparatus from among a plurality of cells.
- the mobile station apparatus transmits / receives data to / from the base station apparatus via one or more assigned cells.
- a mobile station apparatus may be connected to the base station apparatus via a repeater (Repeater) or RRH (Remote Radio Radio Head) as shown in FIG. .
- RRH Remote Radio Radio Head
- both or one of the reception timing of the downlink component carrier in the mobile station apparatus and the transmission timing to the base station apparatus for each uplink component carrier is different for each cell.
- the mobile station apparatus adjusts the transmission timing for each uplink component carrier of each cell and performs data transmission to the base station apparatus. There is a need.
- the base station device groups cells (or uplink component carriers) having the same transmission timing, and notifies the mobile station device of the grouped cell information (component carrier information).
- the mobile station apparatus adjusts the transmission timing for each group of cells having the same transmission timing notified from the base station apparatus.
- a group of cells (or component carriers) having the same transmission timing is referred to as a “transmission timing group”.
- the base station apparatus sets a transmission timing group when a plurality of cells are allocated to each mobile station apparatus. Further, the base station apparatus resets the transmission timing group for the mobile station apparatus due to a change in communication status.
- the timing reference cell is used for the transmission timing of the transmission timing group. That is, the uplink transmission timing of the timing reference cell calculated based on the reception timing of the downlink component carrier of the timing reference cell is reflected in the uplink transmission timing of all cells in the transmission timing group.
- the first cell is always the timing reference cell, and in the other transmission timing groups, the second cell instructed to start the random access procedure by the base station apparatus is the timing reference cell. .
- FIG. 1 is a diagram illustrating a configuration of a mobile station apparatus according to an embodiment of the present invention.
- Each of the mobile station apparatuses 1-1 to 1-3 includes a radio unit 101, a transmission processing unit 103, a modulation unit 105, a transmission HARQ processing unit 107, a control unit 109, an uplink reference signal generation unit 111, and a random access preamble generation unit. 113, reception processing section 115, demodulation section 117, reception HARQ processing section 119, and mobile station management section 121.
- the mobile station management unit 121 includes an UL schedule unit 123, a control data creation unit 125, a control data analysis unit 127, a cell management unit 129, and a TA management unit 131.
- User data and control data are input to the transmission HARQ processing unit 107.
- the transmission HARQ processing unit 107 encodes input data according to an instruction from the control unit 109, and performs puncture processing on the encoded data. Then, transmission HARQ processing section 107 outputs the punctured data to modulation section 105, and stores the encoded data. Further, when the transmission HARQ processing unit 107 is instructed to retransmit the data by the control unit 109, the transmission HARQ processing unit 107 performs puncture processing different from the puncture performed on the previously stored encoded data, and modulates the punctured data. To 105. In addition, the transmission HARQ processing unit 107 deletes the stored data according to an instruction from the control unit 109.
- Modulation section 105 modulates input data from transmission HARQ processing section 107 and outputs the result to transmission processing section 103.
- the transmission processing unit 103 receives the input data (or input signal) from the modulation unit 105, the uplink reference signal generation unit 111, and the random access preamble generation unit 113 according to the instruction of the control unit 109, in the uplink component carrier of each cell. Mapping is performed on each channel, and the mapped data is subjected to OFDM signal processing such as serial / parallel conversion, DFT-IFFT (Inverse FourierformTransform) conversion, CP insertion, and the like to generate an OFDM signal.
- OFDM signal processing such as serial / parallel conversion, DFT-IFFT (Inverse FourierformTransform) conversion, CP insertion, and the like to generate an OFDM signal.
- the transmission processing unit 103 determines, for each uplink component carrier of each cell, transmission timing group information and transmission timing information that adjust the transmission timing passed from the control unit 109, or transmission timing group information and reception timing difference information.
- the transmission timing of the output signal is adjusted, and after adjusting the transmission timing, the OFDM signal is output to the radio section 101.
- the uplink reference signal generation unit 111 generates an uplink reference signal from the uplink reference signal generation information acquired from the mobile station management unit 121 according to an instruction from the control unit 109, and transmits the generated uplink reference signal to the transmission processing unit 103. Output to.
- the random access preamble generation unit 113 When only the preamble number is notified from the control unit 109, the random access preamble generation unit 113 generates a random access preamble of the preamble number notified from the set random access related information, and the random access preamble from the random access related information
- the position of the random access channel RACH for transmitting is selected, and the generated random access preamble and the selected random access channel RACH position are output to the transmission processing unit 103.
- the random access preamble generation unit 113 when the preamble number and the random access channel RACH position are notified from the control unit 109, the random access preamble generation unit 113 generates a random access preamble of the preamble number notified from the random access related information, and generates the generated random access
- the random access channel RACH position notified of the preamble is output to the transmission processing unit 103.
- the radio unit 101 up-converts the input signal from the transmission processing unit 103 to a radio frequency according to an instruction from the control unit 109 and transmits the radio signal from the transmission antenna.
- Radio section 101 down-converts the radio signal received from the antenna and outputs it to reception processing section 115.
- the reception processing unit 115 performs FFT (Fast Fourier Transform (Fast Fourier Transform)) processing on the input signal from the radio unit 101 and outputs the processed signal to the demodulation unit 117.
- the reception processing unit 115 calculates an optimal reception timing from the downlink synchronization signal DSCH of each cell or the downlink reference signal of each cell, and updates the reception timing.
- the reception processing unit 115 notifies the mobile station apparatus management unit 121 of the updated reception timing.
- the reception processing unit 115 measures the downlink propagation path from the downlink reference signal, and notifies the mobile station apparatus management unit 121 of the reception timing of the measurement result.
- the demodulator 117 demodulates the input data and outputs the demodulated data to the reception HARQ processor 119.
- the reception HARQ processing unit 119 performs a decoding process on the input data.
- the reception HARQ processing unit 119 outputs the control data to the mobile station management unit 121 and outputs the user data to the upper layer.
- the reception HARQ processing unit 119 stores the data that has failed in the decoding process when the decoding process of the input data has failed.
- the reception HARQ processing unit 119 combines the stored data and the retransmission data and performs a decoding process. Also, the reception HARQ processing unit 119 notifies the mobile station management unit 121 of success or failure of input data decoding processing.
- the reception HARQ processing unit 119 deletes the stored data according to an instruction from the control unit 109.
- the control unit 109 is configured to include a radio unit 101, a transmission processing unit 103, a modulation unit 105, a transmission HARQ processing unit 107, an uplink reference signal generation unit 111, and a random access preamble generation unit 113.
- the reception processing unit 115, the demodulation unit 117, and the reception HARQ processing unit 119 are controlled.
- the mobile station management unit 121 includes a UL schedule unit 123, a control data creation unit 125, a control data analysis unit 127, a cell management unit 129, and a TA management unit 131.
- the control data creating unit 125 creates an ACK / NACK message that is a response to the received data from the decoding result of the received data from the received HARQ processing unit 119, and creates control data such as a message indicating downlink radio quality To do.
- the control data creation unit 125 outputs the created control data to the transmission HARQ processing unit 107.
- the control data analysis unit 127 analyzes the control data input from the reception HARQ processing unit 119.
- the control data analysis unit 127 receives cell system information (or cell setting information) and cell allocation information received from the base station apparatus 3, an activation instruction message, a transmission timing group reconfiguration message, random access instruction information, random access Response message, contention resolution message, and uplink reference signal generation information are output to the cell management section 129, and a transmission timing message or transmission timing timer information is output to the TA management section 131.
- the UL scheduling unit 123 based on the uplink data scheduling information from the base station apparatus 3 or the transmitted uplink data response (ACK / NACK), via the control unit 109, the transmission processing unit 103, the modulation unit 105, The transmission HARQ processing unit 107 is controlled. Further, it instructs the cell management unit 129 to start the random access procedure based on the control information from the upper layer.
- the cell management unit 129 manages the cells allocated from the base station apparatus 3, and system information or configuration information (configuration of physical channel, transmission power information, random access procedure) for each cell received from the base station apparatus 3.
- System information of each cell such as information related to random access necessary for transmission, uplink reference signal generation information, and radio resources of uplink reference signals (reference signals for measurement) and radio resources of uplink control channel PUCCH, etc.
- the radio resources individually assigned to the station apparatus 1-1 are managed.
- the cell management unit 129 notifies the random access-related information to the random access preamble generation unit 113 via the control unit 109 and notifies the uplink reference signal generation unit 111 of the generation information of the uplink reference signal.
- the cell management unit 129 obtains the activation instruction message, and when there is an activation instruction, the cell processing unit 129 receives the activation processing cell 115, the demodulation unit 117, and the reception via the control unit 109 so as to start reception processing of the cell for which the activation instruction has been received.
- the HARQ processing unit 119 is instructed.
- the cell management unit 129 acquires an activation instruction message, and when there is a deactivation instruction, the cell processing unit 129 receives the deactivation instruction message from the reception processing unit 115 via the control unit 109 so that the reception processing unit 115 stops demodulation.
- Unit 117 and reception HARQ processing unit 119 Unit 117 and reception HARQ processing unit 119.
- the cell management unit 129 When the cell management unit 129 acquires the transmission timing group reconfiguration message, the cell management unit 129 notifies the TA management unit 131 of group information and timing reference cells of the same transmission timing.
- the cell management unit 129 starts a contention-based random access procedure at the start of communication or when making an uplink data schedule request, selects a random preamble from random access related information, and controls the preamble number of the selected random preamble
- the random access preamble generation unit 113 is notified via the unit 109.
- the cell management unit 129 starts the non-contention based random access procedure, and the random access instruction information, Alternatively, the preamble number and random access channel number included in the transmission timing group reconfiguration message are notified to the random access preamble generation unit 113 via the control unit 109.
- the cell management unit 129 When the cell management unit 129 acquires the random access response message, the cell management unit 129 outputs the transmission timing information included in the random access response message to the TA management unit 131, and outputs the information of the L2 / L3 message to the control data creation unit 125. If the non-contention based random access procedure is being executed, the non-contention based random access procedure is terminated.
- the cell management unit 129 ends the contention-based random access procedure.
- the cell management unit 129 transmits the transmission processing unit 103, the modulation unit 105, and the transmission via the control unit 109 so as to start transmission processing of the transmission timing group from which the transmission timing information is acquired.
- the cell management unit 129 transmits the transmission processing unit 103, the modulation unit 105, and the transmission HARQ processing unit via the control unit 109 so as to stop the transmission processing of the transmission timing group whose transmission timing timer has expired. 107 is instructed.
- the TA management unit 131 manages the transmission timing and transmission timing timer for each transmission timing group.
- the TA management unit 131 also manages transmission timing groups and timing reference cells.
- the TA management unit 131 acquires the transmission timing message
- the TA management unit 131 notifies the transmission processing unit 103 of the transmission timing group information and the transmission timing information to which the transmission timing included in the transmission timing message is applied via the control unit 109, and transmits the transmission timing message.
- the transmission timing timer of the transmission timing group to which the timing is applied is started or restarted.
- the TA management unit 131 notifies the transmission processing unit 103 of the transmission timing group information, the difference information of the previous reception timing and the current reception timing.
- the TA management unit 131 notifies the cell management unit 129 that the transmission timing timer has expired.
- FIG. 2 shows a configuration diagram of the base station apparatus 3 according to the embodiment of the present invention.
- the base station apparatus 3 includes a radio unit 201, a transmission processing unit 203, a modulation unit 205, a transmission HARQ processing unit 207, a control unit 209, a downlink reference signal generation unit 211, a preamble detection unit 213, a reception processing unit 215, and a demodulation unit 217. , A reception HARQ processing unit 219 and a base station management unit 221.
- the base station management unit 221 includes a DL / UL schedule unit 223, a control data creation unit 225, a control data analysis unit 227, a cell management unit 229, and a TA management unit 231.
- Transmission HARQ processing unit 207 encodes input data according to an instruction from the control unit 209 and performs puncture processing on the encoded data. Then, the transmission HARQ processing unit 207 outputs the punctured data to the modulation unit 205, and stores the encoded data. Transmission HARQ processing section 207, when instructed to retransmit data by control section 209, acquires stored encoded data, performs puncture processing different from the previous puncture, and modulates the punctured data The data is output to the unit 205. The transmission HARQ processing unit 207 deletes the stored data in accordance with an instruction from the control unit 209.
- the modulation unit 205 modulates the input data from the transmission HARQ processing unit 207 and outputs it to the transmission processing unit 203.
- the transmission processing unit 203 receives the input data (or signal) from the modulation unit 205 and the downlink reference signal generation unit 211 according to an instruction from the control unit 209, the downlink control channel PDCCH of the downlink component carrier of each cell, and downlink synchronization.
- OFDM signals such as channel DSCH, broadcast channel PBCH, downlink shared channel PDSCH, etc., and mapped data are serial / parallel converted, IFFT (Inverse Fast Transform) transform, CP insertion, etc. Processing is performed to generate an OFDM signal. Then, the transmission processing unit 203 outputs the generated OFDM signal to the wireless unit 201.
- the radio unit 201 up-converts the input signal from the transmission processing unit 203 to a radio frequency according to an instruction from the control unit 209, and transmits it to the mobile station apparatuses 1-1 to 1-3 from the transmission antenna.
- Radio section 201 receives a radio signal from mobile station apparatus 1-1 from an antenna, down-converts the received signal into a baseband signal, and converts the received signal to reception processing section 215 or preamble detection section 213. Output.
- the reception processing unit 215 performs FFT (Fast Fourier Transform (fast Fourier transform)) processing on the input signal from the radio unit 201 and outputs the processed signal to the demodulation unit 217.
- FFT Fast Fourier Transform
- the reception processing unit 215 measures the uplink radio channel quality or transmission timing deviation amount from the uplink reference signal (measurement reference signal), and passes the measurement result to the base station management unit 221.
- the uplink communication scheme is assumed to be a single carrier scheme such as DFT-spread OFDM, but a multicarrier scheme such as the OFDM scheme may be used.
- the demodulator 217 demodulates input data and outputs the demodulated data to the reception HARQ processor 219.
- the reception HARQ processing unit 219 performs a decoding process on the input data.
- the reception HARQ processing unit 219 outputs the control data to the base station management unit 221 and outputs the user data to the upper layer.
- the reception HARQ processing unit 219 stores the data that has failed in the decoding process when the decoding process of the input data has failed.
- the reception HARQ processing unit 219 combines the stored data and the retransmission data and performs a decoding process. Also, the reception HARQ processing unit 219 notifies the base station management unit 221 of the success or failure of the input data decoding process. Further, the reception HARQ processing unit 219 deletes the stored data in accordance with an instruction from the control unit 209.
- the preamble detection unit 213 performs a correlation process on the input signal from the radio unit 201 and performs a random access preamble detection process. When detecting a random access preamble, the preamble detection unit 213 calculates a transmission timing shift amount from the detected random access preamble. The preamble detection unit 213 notifies the base station management unit 221 of the cell in which the random access preamble is detected, the information on the detected preamble, and the transmission timing shift amount.
- the control unit 209 Based on an instruction from the base station management unit 221, the control unit 209 performs a radio unit 201, a transmission processing unit 203, a modulation unit 205, a transmission HARQ processing unit 207, a downlink reference signal generation unit 211, a reception processing unit 215, a demodulation
- the control unit 217 and the reception HARQ processing unit 219 are controlled.
- the base station management unit 221 includes a DL / UL schedule unit 223 that performs downlink and uplink schedules, a control data creation unit 225, a control data analysis unit 227, a cell management unit 229, and a TA management unit 231. .
- the DL / UL schedule unit 223 includes downlink radio channel quality information notified from the mobile station apparatus 1-1, data information of each user notified from the upper layer, and control data created by the control data creation unit 225. A schedule for mapping user data and control data from the data to each downlink channel is performed, and the schedule result is output to the control unit 209. Also, the DL / UL schedule unit 223 maps user data to each uplink channel from the uplink radio channel quality result from the reception processing unit 215 and the radio resource allocation request from the mobile station apparatus 1-1. Do the schedule.
- the DL / UL schedule unit 223 allocates the uplink shared channel PUSCH, and assigns the allocated uplink shared channel PUSCH and preamble number to the control data.
- the creation unit 225 is notified.
- the DL / UL schedule unit 223 reports that the transmission timing information is transmitted to the TA management unit 231 and transmits the transmission timing.
- the control data generation unit 225 is notified of transmission timing group information to which the information and transmission timing are applied.
- the DL / UL scheduling unit 223 is a cell management unit configured to cause the mobile station apparatus to perform a random access procedure when downlink user data is generated for a mobile station apparatus whose uplink is out of synchronization. 229 is instructed.
- the control data creation unit 225 creates control data arranged on the downlink control channel PDCCH and control data arranged on the downlink shared channel PDSCH.
- Control message including schedule information, uplink data response (ACK / NACK), physical channel configuration information, system information message including transmission power information and random access related information of each channel, setting information of cells to be used ( Initial setting message including random access related information), activation instruction message instructing cell activation / deactivation, random access response message including preamble number, transmission timing information and scheduling information, contention resolution message , Random access instruction information including preamble number and random access channel number, transmission timing group information, timing reference cell information, preamble number and random number Transmission timing group reconfiguration messages containing the access channel number, etc., to create a control data such as transmission timing message including the transmission timing information.
- the control data analysis unit 227 controls the transmission HARQ processing unit 207 via the control unit 209 according to the downlink data response (ACK / NACK) result from the mobile station apparatus 1-1.
- the cell management unit 229 manages each cell and system information of each cell (physical channel configuration information, transmission power information of each channel, random access related information, transmission timing cell related information, etc.). In addition, the cell management unit 229 allocates one or more cells to the mobile station apparatuses 1-1 to 1-3, and the radio resource of the uplink reference signal (measurement reference signal) and the uplink control channel PUCCH Allocate radio resources. Then, cell management section 229 notifies control data creation section 225 of cell allocation information and cell system information (cell setting information), and mobile station apparatuses 1-1 to 1-3 so as to notify information related to the allocated cells. Outputs radio resource information assigned to
- the cell management unit 229 determines activation / deactivation of the allocated cell from the communication status of data transmission to the mobile station device 1-1 or data transmission from the mobile station device 1-1.
- the cell management unit 229 notifies the control data creation unit 225 of the activation / deactivation instruction information of the determined allocated cell.
- the cell management unit 229 receives an instruction from the DL / UL scheduling unit 223 to cause the mobile station apparatus to execute a random access procedure, the cell management unit 229 selects a preamble number and a random access channel number from the random access related information of the cell, and creates control data Notification to the unit 225.
- the cell management unit 229 determines whether to execute a random access procedure in the transmission timing group.
- the cell management unit 229 selects the preamble number and the random access channel RACH number from the random access related information of the timing reference cell, and transmits transmission timing group information, timing reference cell information, preamble number, and random access.
- the channel number is notified to the control data creation unit 225.
- the cell management unit 229 notifies the control data creation unit 225 of transmission timing group information and timing reference cell information.
- the TA management unit 231 manages the transmission timing and transmission timing timer for each cell of the mobile station apparatuses 1-1 to 1-3.
- the TA management unit 231 also manages cell relation information and timing reference cells that have the same transmission timing.
- the TA management unit 231 acquires a transmission timing shift amount from the preamble detection unit 213 or the reception processing unit 215, the TA management unit 231 determines a group of cells having the same transmission timing, and also refers to a timing that is a timing reference. Determine the cell.
- the TA management unit 231 notifies the cell management unit 229 of the determined transmission timing group information and timing reference cell information.
- the TA management unit 231 starts or restarts the transmission timing timer.
- a radio communication system is assumed in which the base station apparatus described with reference to FIGS. 10 and 11 allocates a plurality of cells to the mobile station apparatus, and the base station apparatus and the mobile station apparatus communicate with each other via the allocated plurality of cells.
- a wireless communication system is assumed in which communication is performed via a plurality of cells having different transmission timings from the mobile station apparatus described in FIG.
- the base station apparatus allocates, for each frequency, one or more cells having different frequencies that meet the communication capability or communication conditions of the mobile station apparatus from among a plurality of cells. And a mobile station apparatus transmits / receives data with a base station apparatus via the allocated cell.
- the mobile station apparatus may connect to the base station apparatus via a repeater (Repeater) or RRH (Radio Remote Head) as shown in FIG. .
- the reception timing of data from the downlink component carrier in the mobile station apparatus may be different for each cell.
- the transmission timing to the base station apparatus may be different for each uplink component carrier of each cell.
- the base station apparatus groups cells having the same transmission timing from the mobile station apparatus (hereinafter, the grouped cells are referred to as transmission timing groups). Show.) The mobile station apparatus adjusts the transmission timing for each cell group having the same transmission timing.
- the mobile station apparatus determines the transmission timing of each transmission timing group from the transmission timing information notified from the base station apparatus and the downlink reception timing of the timing reference cell, based on the downlink reception timing of the timing reference cell. .
- the base station apparatus may reconfigure a transmission timing group for the mobile station apparatus due to a change in communication status due to movement of the mobile station apparatus.
- the base station device resets the transmission timing group and the timing reference cell is deleted from the transmission timing group, or is changed to another transmission timing group, the timing reference cell of that transmission timing group disappears
- the mobile station apparatus cannot transmit uplink.
- the base station apparatus When reconfiguring a transmission timing group, the base station apparatus transmits a transmission timing group reconfiguration message to the mobile station apparatus.
- the transmission timing group reconfiguration message when changing the timing reference cell includes at least a transmission timing group group number, cell information included in the transmission timing group, timing reference cell information, a preamble number, and a random access channel number.
- the mobile station apparatus sets the transmission timing group and the reference cell as instructed by the transmission timing group reconfiguration message.
- the mobile station apparatus transmits a random access preamble on the uplink of the timing reference cell using the preamble number and the random access channel number included in the transmission timing group reconfiguration message, Start the random access procedure. And a mobile station apparatus acquires transmission timing information from a base station apparatus, and sets the acquired transmission timing. In this way, even when the base station apparatus changes or deletes the timing reference cell in the transmission timing group by notifying the mobile station apparatus by including the random access information such as the preamble number in the transmission timing reconfiguration message, Since the apparatus can set transmission timing immediately, uplink transmission is also possible immediately.
- the base station apparatus and mobile station apparatus manage the transmission timing by having one transmission timing timer for each transmission timing group.
- a transmission timing group composed of cells including the first cell will be described as a first transmission timing group and a transmission timing group composed only of the second cell. Note that there is always one first transmission timing group, and there are one or more second transmission timing groups. There is one timing reference cell for each transmission timing group, and the timing reference cell of the first transmission timing group is always the first cell.
- the base station apparatus 3 is composed of cells 1 to 5 as shown in FIG. 3A, and the cells 1 to 2 are transmission timing groups having the same transmission timing. Are different transmission timings in the same transmission timing group.
- the mobile station device 1-1 performs a cell search and finds one cell of the base station device 3. Here, it is assumed that mobile station apparatus 1-1 finds cell 1.
- the mobile station apparatus 1-1 receives the broadcast channel PBCH of the cell 1, and acquires system information (cell physical channel configuration, transmission power information, random access related information, etc.). Then, the mobile station device 1-1 uses the random access related information included in the system information to transmit a random access preamble to the random access channel RACH of the cell 1 for initial access. Then, the mobile station device 1-1 acquires a random access response message including transmission timing information for the cell 1 from the base station device 3, sets the transmission timing of the uplink component carrier for the cell 1, and sets the transmission timing timer Start.
- the mobile station apparatus 1-1 transmits the message 3 to the base station apparatus 3 via the cell 1.
- the mobile station apparatus 1-1 transmits the message 3 including the contents indicating the initial access in the message 3.
- the mobile station apparatus 1-1 receives the contention resolution from the base station apparatus 3, the mobile station apparatus 1-1 ends the contention based random access procedure.
- the base station device 3 assigns a cell to be used by the mobile station device 1-1, sets a first cell, and sets a transmission timing group and a timing reference cell in each transmission timing group.
- the base station apparatus 3 assigns cells 1 to 5 to the mobile station apparatus 1-1, cell 1 to the first cell, and cells 2 to 5 to the second cell. Set.
- the base station apparatus 3 sets the cells 1 to 2 to the first transmission timing group and the cells 3 to 5 to the second transmission timing group.
- the base station apparatus 3 sets the cell 1 to the timing reference cell of a 1st transmission timing group, and sets the cell 5 to the timing reference cell of a 2nd transmission timing group.
- the first cell is always a timing reference cell.
- the base station apparatus 3 transmits the system information of the cell allocated to the mobile station apparatus 1-1, the group information of the transmission timing group, the timing reference cell information, the allocation information of the uplink control channel PUCCH of the first cell, the uplink reference Also moves configuration information such as signal (measurement reference signal) generation information, radio resource allocation information for transmitting uplink reference signals (measurement reference signals), and radio resource allocation information for periodic uplink shared channel PUSCH Notify the station device 1-1.
- the base station device 3 transmits an activation instruction message to the mobile station device 1-1, and the cells 2 to 5 are activated.
- the mobile station device 1-1 uses the cell 1 as the uplink transmission timing of the cell 2 in the same first transmission timing group as the cell 1. Set the transmission timing. Thereafter, data is exchanged between the mobile station apparatus 1-1 and the base station apparatus 3 via the downlink component carriers of the cell 1 to cell 5 and the uplink component carriers of the cell 1 to cell 2.
- the base station device 3 sets the non-contention base to the cell in the second transmission timing group. Random access instruction information instructing to perform random access is notified by the downlink control channel PDCCH. Here, the base station apparatus 3 notifies the mobile station apparatus 1-1 of random access instruction information for the cell 5.
- the random access instruction information includes a preamble number and a random access channel number, and when the mobile station apparatus 1-1 confirms the preamble number and the preamble number indicates a non-contention based random access procedure, The random access preamble is transmitted to the random access channel RACH of the cell 5 using the preamble number and the random access channel number designated by the base station apparatus 3.
- the base station device 3 When the base station device 3 detects the random access preamble, it calculates transmission timing information from the random access preamble, and the mobile station device 1-1 receives the random access including the transmission timing information via the downlink component carrier of the cell 5. Notify the response message.
- the mobile station device 1-1 sets the transmission timing included in the random access response message as the uplink transmission timing of the cell 5. Further, the mobile station apparatus 1-1 sets the transmission timing as the uplink transmission timing of the cell 3 and the cell 4 that are the same transmission timing group, and starts the transmission timing timer. Then, the mobile station apparatus 1-1 completes the non-contention based random access procedure. Thereafter, data is exchanged between the mobile station apparatus 1-1 and the base station apparatus 3 including the uplink component carriers of the cells 3 to 5.
- the mobile station apparatus 1-1 has one transmission timing timer for each transmission timing group, and starts or restarts the target transmission timing timer when receiving the transmission timing information.
- the base station apparatus 3 has one transmission timing timer for each transmission timing group, and starts or restarts the target transmission timing timer when transmitting the transmission timing information. While the transmission timing timer is operating, the target uplink is in uplink synchronization (the transmission timing is valid), and the mobile station apparatus 1-1 transmits the uplink component of the target transmission timing group. Uplink transmission on the carrier is possible.
- the transmission timing timer may be configured to be provided for each cell.
- the base station apparatus 3 measures the uplink reference signal from the mobile station apparatus 1-1 and calculates transmission timing information. When it is necessary to maintain the transmission timing, the base station device 3 notifies the mobile station device 1-1 of the transmission timing information.
- the base station apparatus 3 receives an uplink signal such as an uplink reference signal of each cell from the mobile station apparatus 1-1, and calculates a transmission timing shift of each cell in the transmission timing group.
- the base station device 3 reconfigures the transmission timing group.
- the base station apparatus 3 reconfigures the transmission timing group and changes the timing reference cell, the transmission timing group identification information, the cell identification information included in the transmission timing group, the new timing reference cell identification information, and the preamble number
- the mobile station apparatus 1-1 is notified of a transmission timing group reconfiguration message including the random access channel number.
- FIG. 3-3 cell 5 is deleted from the second transmission timing group, the second transmission timing group is reconfigured by cell 3 and cell 4, and the timing reference cell is changed to cell 3. An example of changing will be described.
- the mobile station apparatus 1-1 When the mobile station apparatus 1-1 receives the transmission timing group reconfiguration message, the mobile station apparatus 1-1 reconfigures the second transmission timing group in the cell 3 and the cell 4, and sets the timing reference cell in the cell 3. Then, the mobile station device 1-1 generates a random access preamble from the random access preamble number included in the transmission timing group reconfiguration message, and uses the generated random access preamble as the random access channel number included in the transmission timing group reconfiguration message. Is transmitted on the random access channel RACH of the timing reference cell (cell 3) indicated in. Then, the mobile station apparatus 1-1 receives a random access response message for the random access preamble transmitted from the base station apparatus 3. The mobile station apparatus 1-1 sets the transmission timing information included in the random access response message in the cells (cell 3 and cell 4) of the second transmission timing group. Then, the mobile station apparatus 1-1 continues uplink transmission.
- the transmission timing group reconfiguration message in this case includes the identification information of the second transmission timing group, the identification information of the cells 3 and 4 included in the second transmission timing group, and the identification of the cell 3 that is the new timing reference cell. Information, preamble number, and random access channel number are included.
- the transmission timing timer set in the transmission timing group is continuously operated as it is.
- the mobile station apparatus 1-1 maintains uplink radio resources such as an uplink reference signal assigned to each cell of the transmission timing group. Note that the transmission timing timer may be stopped or expired, but even in that case, uplink radio resources such as an uplink reference signal assigned to each cell of the transmission timing group are maintained.
- the example in which the timing reference cell is deleted is shown, but the same applies to the case where only the timing reference cell is changed in the transmission timing group.
- the cell configuration in the transmission timing group is the same, and the same is true even when only the timing reference cell is changed from cell 5 to cell 3.
- the base station apparatus 3 changes or deletes the timing reference cell in the transmission timing group by notifying the mobile station apparatus by including the random access information such as the preamble number in the transmission timing reconfiguration message. Since the station apparatus 1-1 can set transmission timing immediately, uplink transmission is also possible immediately.
- the mobile station apparatus 1-1 sets all the cells in the transmission timing group to the deactivated state. Further, when the deactivation cell is set as the timing reference cell, the base station device 3 may not include the random access preamble number and the random access channel number in the transmission timing group reconfiguration message.
- the mobile station apparatus 1-1 When the new timing reference cell set in the transmission timing group reconfiguration message is in a deactivated state and the preamble number and the random access channel number are assigned in the transmission timing group reconfiguration message, the mobile station apparatus 1-1 May activate the timing reference cell to transmit a random access preamble. By doing so, the base station apparatus 3 can quickly activate the timing reference cell without transmitting an activation instruction message.
- the base station apparatus 3 may notify only the cell number included in the transmission timing group and the transmission timing group. . Then, the mobile station apparatus 1-1 performs only the reconfiguration of the cell transmission timing group. Further, when the random access related information is not notified in the system information of each cell notified from the base station apparatus 3 to the mobile station apparatus 1-1, the base station apparatus 3 includes the random number in the transmission timing group reconfiguration message. You may notify access related information. In this case, the base station apparatus 3 may notify the random access related information only to the timing reference cell. The random access related information may be notified by being included in random access information such as a preamble number.
- the mobile station apparatus 1-1 determines the timing reference cell state of the destination transmission timing group and the state of the cell before the movement. Determine the cell state after the move. That is, when the cell deleted from the transmission timing group moves to another transmission timing group and the timing reference cell of the destination transmission timing group is in the activated state, the mobile station apparatus 1-1 moves the cell after the movement.
- the state before being deleted from the transmission timing group before moving is maintained. For example, when the cell 5 deleted from the second transmission timing group moves to the first transmission timing group, the timing reference cell of the first transmission timing group is in the activated state, and the cell 5 is in the activated state. The mobile station apparatus 1-1 maintains the cell 5 in the activated state.
- the mobile station apparatus 1-1 When the cell deleted from the transmission timing group moves to another transmission timing group, and the timing reference cell of the moved transmission timing group is in a deactivated state, the mobile station apparatus 1-1 deactivates the cell. Set to state. When a cell deleted from the transmission timing group is set to a new transmission timing group, the mobile station apparatus 1-1 sets the cell to a deactivated state.
- the mobile station apparatus 1-1 adds the transmission timing group of the destination to the transmission timing of the cell after movement. Set the transmission timing. In this case, the mobile station apparatus 1-1 maintains uplink radio resources such as an uplink reference signal assigned to the moving cell before moving.
- the mobile station apparatus 1-1 invalidates the transmission timing before movement, and the cell transmission timing after movement. Is not set. In this case, the mobile station apparatus 1-1 releases uplink radio resources such as an uplink reference signal assigned to the moving cell before moving.
- the mobile station device 1-1 when the cell 5 deleted from the second transmission timing group moves to the first transmission timing group, the mobile station device 1-1 is in the activated state, and the first transmission timing group Therefore, the timing reference cell of cell 5 is set to cell 1, and the transmission timing of the first transmission timing group is set to the transmission timing of cell 5.
- the mobile station apparatus 1-1 When the transmission timing of the destination transmission timing group is invalid, the mobile station apparatus 1-1 only sets the destination timing reference cell and does not set the transmission timing.
- the base station apparatus 3 When the timing reference cell of the second transmission timing group is changed from the cell 5 to the cell 3 and the cell 5 is moved to the first transmission timing group, the base station apparatus 3 and the transmission timing for the first transmission timing group The group reconfiguration message and the second transmission timing group reconfiguration message are transmitted to the mobile station apparatus 1-1.
- the cell in the activated state is changed to another cell. Communication can be continued even when moving to the transmission timing group.
- the process of the mobile station apparatus 1-1 when receiving the transmission timing group reconfiguration message will be described with reference to the flowchart of FIG.
- the mobile station apparatus 1-1 receives the transmission timing reconfiguration message (step S101).
- the mobile station apparatus 1-1 confirms whether there is a change of the timing reference cell in the transmission timing reconfiguration message (step S102).
- the mobile station apparatus 1-1 reconfigures the transmission timing group according to the transmission timing reconfiguration message (step S103).
- the mobile station apparatus 1-1 confirms whether the new timing reference cell is activated (step S104).
- the mobile station apparatus 1-1 uses the preamble number included in the transmission timing reconfiguration message to transmit the random access preamble to the base station apparatus 3 via the new timing reference cell. Transmit (step S105).
- the mobile station apparatus 1-1 receives the random access response message from the base station apparatus 3, it sets the transmission timing of the transmission timing group (step S106).
- the mobile station apparatus 1-1 sets all the cells in the transmission timing group to the deactivated state (step S107).
- the mobile station apparatus 1-1 reconfigures the transmission timing group according to the transmission timing reconfiguration message (step S108).
- the mobile station apparatus 1-1 and the base station apparatus 3 of the embodiment have been described using functional block diagrams, but the functions of the respective units of the mobile station apparatus 1-1 and the base station apparatus 3 or these
- a program for realizing a part of the above functions is recorded on a computer-readable recording medium, and the program recorded on the recording medium is read into a computer system and executed, whereby the mobile station apparatus and the base station apparatus Control may be performed.
- the “computer system” here includes an OS and hardware such as peripheral devices.
- the “computer-readable recording medium” means a storage device such as a flexible disk, a magneto-optical disk, a portable medium such as a ROM and a CD-ROM, and a hard disk incorporated in a computer system.
- the “computer-readable recording medium” means that a program is dynamically held for a short time, like a communication line when a program is transmitted via a network such as the Internet or a communication line such as a telephone line. In this case, it is intended to include those that hold a program for a certain period of time, such as a volatile memory inside a computer system serving as a server or a client in that case.
- the program may be a program for realizing a part of the functions described above, and may be a program capable of realizing the functions described above in combination with a program already recorded in a computer system. .
- each functional block used in each of the above embodiments may be realized as an LSI that is typically an integrated circuit.
- Each functional block may be individually formed into chips, or a part or all of them may be integrated into a chip.
- the method of circuit integration is not limited to LSI, and may be realized by a dedicated circuit or a general-purpose processor.
- an integrated circuit based on the technology can also be used.
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- Engineering & Computer Science (AREA)
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- Computer Networks & Wireless Communication (AREA)
- Mobile Radio Communication Systems (AREA)
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| EP12865250.0A EP2804432B1 (en) | 2012-01-10 | 2012-12-20 | Wireless communication system, mobile station device, base station device, wireless communication method, and integrated circuit |
| US14/370,252 US9591630B2 (en) | 2012-01-10 | 2012-12-20 | Wireless communication system, mobile station apparatus, base station apparatus, wireless communication method, and integrated circuit |
| CN201280066583.7A CN104041164B (zh) | 2012-01-10 | 2012-12-20 | 移动台装置、无线通信方法以及集成电路 |
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| US20100094739A1 (en) * | 2008-10-14 | 2010-04-15 | Peter Ellis | System and method for providing transaction-based profit solutions |
| EP3122140A4 (en) * | 2014-03-19 | 2017-11-15 | Sharp Kabushiki Kaisha | Terminal device, base station device, communication system, communication method, and integrated circuit |
| US9767443B1 (en) * | 2014-05-13 | 2017-09-19 | Square, Inc. | Timing a notification of an online financial event |
| US10614445B1 (en) | 2014-06-04 | 2020-04-07 | Square, Inc. | Proximity-based payments |
| US9699722B2 (en) * | 2014-06-27 | 2017-07-04 | Sharp Laboratories Of America, Inc. | Systems and methods for wireless power management |
| US10963868B1 (en) | 2014-09-09 | 2021-03-30 | Square, Inc. | Anonymous payment transactions |
| CN105591721A (zh) * | 2014-10-24 | 2016-05-18 | 杭州华为数字技术有限公司 | 一种小区上行协作的方法和基站 |
| US10402794B2 (en) | 2014-10-31 | 2019-09-03 | Square, Inc. | Money transfer in a forum using a payment proxy |
| US9699804B2 (en) * | 2014-11-06 | 2017-07-04 | Alcatel Lucent | Methods and systems for scheduling unlicensed band transmissions |
| US9973257B1 (en) * | 2015-08-19 | 2018-05-15 | Sprint Spectrum L.P. | RF slave repeater management |
| EP4340456A3 (en) * | 2015-10-29 | 2024-06-12 | Telefonaktiebolaget LM Ericsson (publ) | Method and terminal for broadcasting system information on demand |
| WO2020113367A1 (en) * | 2018-12-03 | 2020-06-11 | Qualcomm Incorporated | Fast recovery from link failure in dual-connectivity systems |
| US20220078737A1 (en) * | 2019-01-09 | 2022-03-10 | Ntt Docomo, Inc. | Terminal and communication method |
| CN110557825B (zh) * | 2019-09-17 | 2020-05-26 | 中国水利水电科学研究院 | 基于新无线电系统的智慧水务信息传输方法及信息传输系统 |
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| WO2011039969A1 (ja) * | 2009-09-29 | 2011-04-07 | パナソニック株式会社 | 無線通信装置、無線通信基地局及び無線通信システム |
| WO2012124558A1 (ja) * | 2011-03-11 | 2012-09-20 | シャープ株式会社 | 無線通信システム、基地局装置、移動局装置、無線通信方法、および集積回路 |
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| WO2011038272A1 (en) * | 2009-09-25 | 2011-03-31 | Mo-Han Fong | System and method for multi-carrier network operation |
| KR102073027B1 (ko) * | 2011-04-05 | 2020-02-04 | 삼성전자 주식회사 | 반송파 집적 기술을 사용하는 무선통신시스템에서 복수 개의 타임 정렬 타이머 운용 방법 및 장치 |
| US8837304B2 (en) * | 2011-04-08 | 2014-09-16 | Sharp Kabushiki Kaisha | Devices for multi-group communications |
| US20130034085A1 (en) * | 2011-08-05 | 2013-02-07 | Bostroem Lisa | Medium Access Control Timing Advance Group Assignment |
| US20140161111A1 (en) * | 2011-08-10 | 2014-06-12 | Samsung Electronics Co., Ltd. | Method and apparatus for transmitting data using a multi-carrier in a mobile communication system |
| JP5426718B2 (ja) * | 2012-05-10 | 2014-02-26 | 株式会社Nttドコモ | 移動局及び無線基地局 |
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- 2012-12-20 CN CN201280066583.7A patent/CN104041164B/zh active Active
- 2012-12-20 EP EP12865250.0A patent/EP2804432B1/en active Active
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| WO2011039969A1 (ja) * | 2009-09-29 | 2011-04-07 | パナソニック株式会社 | 無線通信装置、無線通信基地局及び無線通信システム |
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Also Published As
| Publication number | Publication date |
|---|---|
| EP2804432A1 (en) | 2014-11-19 |
| US20140348143A1 (en) | 2014-11-27 |
| US9591630B2 (en) | 2017-03-07 |
| JP2013143615A (ja) | 2013-07-22 |
| EP2804432A4 (en) | 2015-09-30 |
| CN104041164B (zh) | 2018-04-17 |
| EP2804432B1 (en) | 2020-12-16 |
| CN104041164A (zh) | 2014-09-10 |
| JP5888646B2 (ja) | 2016-03-22 |
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