WO2012137294A1 - 移動通信方法及び無線端末 - Google Patents
移動通信方法及び無線端末 Download PDFInfo
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- WO2012137294A1 WO2012137294A1 PCT/JP2011/058562 JP2011058562W WO2012137294A1 WO 2012137294 A1 WO2012137294 A1 WO 2012137294A1 JP 2011058562 W JP2011058562 W JP 2011058562W WO 2012137294 A1 WO2012137294 A1 WO 2012137294A1
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- drx cycle
- enb
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- period
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0212—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave
- H04W52/0216—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave using a pre-established activity schedule, e.g. traffic indication frame
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. TPC [Transmission Power Control], power saving or power classes
- H04W52/02—Power saving arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/20—Manipulation of established connections
- H04W76/28—Discontinuous transmission [DTX]; Discontinuous reception [DRX]
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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
- the present invention relates to a mobile communication method and a radio terminal constituting a DRX cycle (intermittent reception cycle) having an on period and an off period other than the on period in which a downlink signal transmitted from a serving cell should be monitored.
- a DRX cycle intermittent reception cycle
- Non-Patent Document 1 In a next-generation communication system such as LTE (Long Term Evolution), a technique called DRX (Discontinuous Reception) is adopted in order to reduce power consumption of a wireless terminal (for example, Non-Patent Document 1).
- LTE Long Term Evolution
- DRX Continuous Reception
- a downstream signal for example, PDCCH: Physical Downlink Control Channel
- PDCCH Physical Downlink Control Channel
- the radio base station transmits a dedicated signal addressed to the radio terminal only during a period in which the radio terminal is on.
- the wireless terminal is configured to monitor the downlink signal transmitted from the wireless base station only during the on period, and it is considered that the receiver is powered down during the off period.
- two cycles a short DRX cycle and a long DRX cycle
- the DRX mode can be configured in a state (RRC connected state) in which an RRC connection is set between the wireless terminal and the wireless base station. That is, it should be noted that the off period of the DRX cycle is different from the RRC idle state.
- RRC connected state a state in which an RRC connection is set between the wireless terminal and the wireless base station. That is, it should be noted that the off period of the DRX cycle is different from the RRC idle state.
- the long DRX cycle is a mandatory and the short DRX cycle is optional.
- the application is configured to periodically transmit and receive a predetermined message such as a keep alive message or a status update message to a communication partner such as a server.
- a predetermined message such as a keep alive message or a status update message
- a communication partner such as a server.
- Non-Patent Document 2 a DRX cycle having a longer cycle (for example, an extended DRX cycle) than an existing DRX cycle (for example, a short DRX cycle and a long DRX cycle).
- the extended DRX period a period of several seconds or more is assumed as the extended DRX period, and the extended DRX period is very long compared to the short DRX period and the long DRX period. Therefore, it is assumed that the off period of the extended DRX cycle is also very long.
- the radio terminal needs to receive uplink signal transmission timing correction information (hereinafter referred to as TA; Timing Advance).
- TA uplink signal transmission timing correction information
- the wireless terminal receives the TA only during the ON period, it is conceivable that the interval for receiving the transmission timing correction information (TA) exceeds the interval for receiving the TA (hereinafter, TA reception maximum interval). In such a case, an uplink synchronization shift occurs in the radio terminal.
- the present invention has been made to solve the above-described problem, and in the case where an extended DRX cycle is configured, a mobile communication method and a mobile communication method capable of suppressing problems associated with an extended off period and An object is to provide a wireless terminal.
- a mobile communication method includes an on period in which a downlink signal transmitted from a serving base station is to be monitored in an RRC connected state in which an RRC connection is established between a radio terminal and a radio base station, and A DRX cycle having an off period other than the on period is configured.
- the timing adjustment request uplink signal is transmitted via the uplink control channel even if the radio resource of the uplink data channel is not allocated.
- a to the radio base station, and the radio base station to transmit uplink signal transmission timing correction information (TA) to the radio terminal in response to the timing adjustment request uplink signal; including.
- TA uplink signal transmission timing correction information
- the step A includes a step in which the wireless terminal transmits the timing adjustment request uplink signal to the wireless base station when a moving speed of the wireless terminal exceeds a predetermined threshold.
- the mobile communication method includes a step C in which the radio base station determines a maximum reception interval for receiving the transmission timing correction information (TA) based on a moving speed of the radio terminal, and And a step D in which the radio base station transmits the maximum reception interval to the radio terminal.
- TA transmission timing correction information
- the wireless base station transmits the timing adjustment request uplink signal before the interval at which the wireless terminal receives the transmission timing correction information (TA) exceeds the maximum reception interval. Transmitting to the network.
- TA transmission timing correction information
- the wireless terminal receives the downlink signal in the mobile communication system.
- the mobile communication system In an RRC connected state in which an RRC connection is established between a radio terminal and a radio base station, the mobile communication system is configured to monitor an downlink period signal transmitted from a serving base station and an off period other than the on period.
- a DRX cycle having a period is configured.
- the wireless terminal transmits the timing adjustment request uplink signal to the radio base station via the uplink control channel even if the radio resource of the uplink data channel is not allocated.
- a control unit for transmission is provided.
- FIG. 1 is a diagram showing a mobile communication system 100 according to the first embodiment.
- FIG. 2 is a diagram illustrating a radio frame according to the first embodiment.
- FIG. 3 is a diagram illustrating radio resources according to the first embodiment.
- FIG. 4 is a diagram illustrating a short DRX cycle according to the first embodiment.
- FIG. 5 is a diagram illustrating a long DRX cycle according to the first embodiment.
- FIG. 6 is a diagram illustrating an extended DRX cycle according to the first embodiment.
- FIG. 7 is a block diagram showing the UE 10 according to the first embodiment.
- FIG. 8 is a sequence diagram showing the mobile communication method according to the first embodiment.
- FIG. 9 is a sequence diagram showing a mobile communication method according to the first modification.
- FIG. 10 is a sequence diagram illustrating a mobile communication method according to the second modification.
- the mobile communication method includes an on period in which a downlink signal transmitted from a serving base station should be monitored in the RRC connected state in which an RRC connection is established between the radio terminal and the radio base station, and the on A DRX cycle having an off period other than the period is configured.
- the timing adjustment request uplink signal is transmitted via the uplink control channel even if the radio resource of the uplink data channel is not allocated.
- a to the wireless base station, and the wireless base station transmits the uplink signal transmission timing correction information (TA) to the wireless terminal in response to the timing adjustment request uplink signal.
- TA uplink signal transmission timing correction information
- the wireless terminal when the DRX cycle is configured, transmits the timing adjustment request uplink signal even if the radio resource of the uplink data channel is not allocated.
- transmission timing correction information TA
- the wireless terminal when the DRX cycle is configured, transmits the timing adjustment request uplink signal via the uplink control channel. As a result, the synchronization error between the wireless terminal and the wireless base station is suppressed without releasing the DRX cycle.
- FIG. 1 is a diagram showing a mobile communication system 100 according to the first embodiment.
- the mobile communication system 100 includes a mobile terminal 10 (hereinafter, UE 10) and a core network 50.
- the mobile communication system 100 includes a first communication system and a second communication system.
- the first communication system is a communication system that supports, for example, LTE (Long Term Evolution).
- the first communication system includes, for example, a radio base station 110 (hereinafter, eNB 110) and an MME 120.
- eNB 110 radio base station 110
- MME 120 MME
- a first RAT EUTRAN; Evolved Universal Terrestrial Access Network
- the second communication system is a communication system corresponding to, for example, WCDMA (Wideband Code Division Multiple Access).
- the second communication system includes a radio base station 210, an RNC 220, and an SGSN 230.
- a second RAT UTRAN; Universal Terrestrial Access Network
- the UE 10 is a device (User Equipment) configured to communicate with the first communication system and the second communication system.
- the UE 10 has a function of performing wireless communication with the eNB 110 and a function of performing wireless communication with the wireless base station 210.
- the eNB 110 is a device (evolved NodeB) that includes the cell 111 and performs radio communication with the UE 10 existing in the cell 111.
- the MME 120 is a device (Mobility Management Entity) that manages the mobility of the UE 10 that establishes a wireless connection with the eNB 110.
- the MME 120 is provided in the core network 50.
- the radio base station 210 has a cell 211 and is a device (NodeB) that performs radio communication with the UE 10 existing in the cell 211.
- NodeB a device that performs radio communication with the UE 10 existing in the cell 211.
- the RNC 220 is a device (Radio Network Controller) that is connected to the radio base station 210 and sets a radio connection (RRC Connection) with the UE 10 existing in the cell 211.
- Radio Network Controller Radio Network Controller
- SGSN 230 is a device (Serving GPRS Support Node) that performs packet switching in the packet switching domain.
- the SGSN 230 is provided in the core network 50.
- an apparatus MSC: Mobile Switching Center
- MSC Mobile Switching Center
- the first communication system will be mainly described. However, the following description may be applied to the second communication system.
- the cell should be understood as a function of performing radio communication with the UE 10. However, the cell may be considered as a service area indicating a range in which communication with the cell is possible.
- the OFDMA Orthogonal Frequency Division Multiple Access
- SC-FDMA Single-Carrier Frequency Multiplex
- a method is used.
- an uplink control channel (PUCCH; Physical Link Control Channel), an uplink shared channel (PUSCH; Physical Uplink Channel), and the like exist as uplink channels.
- PUSCH Physical Uplink Channel
- downlink channels there are a downlink control channel (PDCCH; Physical Downlink Control Channel), a downlink shared channel (PDSCH; Physical Downlink Shared Channel), and the like.
- the uplink control channel is a channel that carries a control signal.
- the control signal includes, for example, CQI (Channel Quality Indicator), PMI (Precoding Matrix Indicator), RI (Rank Indicator), SR (Scheduling Request), ACK / NACK, and the like.
- CQI is a signal notifying the recommended modulation method and coding rate that should be used for downlink transmission.
- PMI is a signal indicating a precoder matrix that is preferably used for downlink transmission.
- the RI is a signal indicating the number of layers (number of streams) to be used for downlink transmission.
- SR is a signal for requesting allocation of uplink radio resources (resource blocks to be described later).
- ACK / NACK is a signal indicating whether or not a signal transmitted via a downlink channel (for example, PDSCH) has been received.
- the uplink shared channel is a channel that carries a control signal (including the control signal described above) and / or a data signal.
- the uplink radio resource may be allocated only to the data signal, or may be allocated so that the data signal and the control signal are multiplexed.
- the downlink control channel is a channel that carries a control signal.
- the control signals are, for example, Uplink SI (Scheduling Information), Downlink SI (Scheduling Information), and TPC bits.
- Uplink SI is a signal indicating the allocation of uplink radio resources.
- Downlink SI is a signal indicating allocation of downlink radio resources.
- the TPC bit is a signal instructing increase / decrease in power of a signal transmitted through an uplink channel.
- the downlink shared channel is a channel that carries control signals and / or data signals.
- the downlink radio resource may be allocated only to the data signal, or may be allocated so that the data signal and the control signal are multiplexed.
- TA Triming Advance
- TA is transmission timing correction information between the UE 10 and the eNB 110, and is measured by the eNB 110 based on an uplink signal transmitted from the UE 10.
- ACK / NACK can be cited as a control signal transmitted via a channel other than the downlink control channel (PDCCH) or downlink shared channel (PDSCH).
- ACK / NACK is a signal indicating whether or not a signal transmitted via an uplink channel (for example, PUSCH) has been received.
- FIG. 2 is a diagram illustrating a radio frame in the first communication system.
- one radio frame is composed of 10 subframes, and one subframe is composed of two slots.
- the time length of one slot is 0.5 msec
- the time length of one subframe is 1 msec
- the time length of one radio frame is 10 msec.
- One slot is composed of a plurality of OFDM symbols (for example, six OFDM symbols or seven OFDM symbols) in the downlink direction.
- one slot is configured by a plurality of SC-FDMA symbols (for example, six SC-FDMA symbols or seven SC-FDMA symbols) in the uplink direction.
- FIG. 3 is a diagram illustrating radio resources in the first communication system.
- radio resources are defined by a frequency axis and a time axis.
- the frequency is composed of a plurality of subcarriers, and a predetermined number of subcarriers (12 subcarriers) are collectively referred to as a resource block (RB).
- RB resource block
- the time has units such as an OFDM symbol (or SC-FDMA symbol), a slot, a subframe, and a radio frame.
- radio resources can be allocated for each resource block. Also, it is possible to divide and allocate radio resources to a plurality of users (for example, user # 1 to user # 5) on the frequency axis and time axis.
- radio resources are allocated by the eNB 110.
- the eNB 110 is assigned to each UE 10 based on CQI, PMI, RI, and the like.
- discontinuous reception In the following, discontinuous reception (DRX) will be described. 4 to 6 are diagrams for explaining the intermittent reception.
- the UE 10 can configure intermittent reception in order to suppress power consumption.
- intermittent reception is configured in a state where an RRC connection is set between the UE 10 and the eNB 110 (RRC connected state).
- an on period in which a downlink signal transmitted from the serving cell should be monitored and an off period other than the on period A period (opportunity for DRX) is provided.
- the eNB 110 transmits a dedicated signal addressed to the UE 10 only in a period in which the UE 10 is on. In this way, the UE 10 is configured to monitor a downlink signal (for example, PDCCH: Physical Downlink Control Channel) transmitted from the eNB 110 only during the on period, and the receiver 10 is powered on during the off period. It is thought to have dropped.
- PDCCH Physical Downlink Control Channel
- DRX cycle a plurality of types of cycles can be configured as the DRX cycle.
- three DRX cycles short DRX cycle, long DRX cycle, extended DRX cycle.
- the short DRX cycle is a short cycle.
- the length of the short DRX cycle is not particularly limited, but is on the order of several milliseconds (for example, 80 msec).
- the short DRX cycle is configured according to an instruction (DRX Command) received from the eNB 110.
- the short DRX cycle is configured when a predetermined period has elapsed since the last reception of a downlink signal (for example, PDCCH).
- a downlink signal for example, PDCCH.
- the short DRX cycle is optional, and the short DRX cycle may not be set.
- the long DRX cycle is longer than the short DRX cycle.
- the length of the long DRX cycle is not particularly limited, but is on the order of several milliseconds (for example, 160 msec).
- a configuration parameter (DRX Config.) Is notified from the eNB 110.
- the long DRX cycle is configured when a predetermined period has elapsed since the last reception of a downlink signal (for example, PDCCH).
- a downlink signal for example, PDCCH.
- the long DRX cycle is configured when a predetermined period elapses after the short DRX cycle is configured.
- the extended DRX cycle is longer than the long DRX cycle.
- the length of the extended DRX cycle is not particularly limited, but is a cycle that is much longer than the short DRX cycle and the long DRX cycle, for example, on the order of several seconds.
- the extended DRX cycle is equivalent to the cycle (Paging Channel Monitoring Cycle) for monitoring the paging signal for notifying the arrival of the UE 10 when the RRC connection is not set between the UE 10 and the eNB 110 (RRC idle state). is there.
- the extended DRX cycle is longer than the cycle for monitoring the paging signal for notifying the UE 10 in the RRC idle state.
- a configuration parameter (DRX Config.) Is notified from the eNB 110.
- the extended DRX cycle is configured according to the eNB 110 permission for the request from the UE 10.
- the extended DRX cycle is configured when a predetermined period has elapsed since the last reception of a downlink signal (for example, PDCCH).
- the extended DRX cycle is configured when a predetermined period elapses after the short DRX cycle or the long DRX cycle is configured.
- the UE 10 knows static configuration parameters in advance, and the extended DRX cycle may be configured according to the eNB 110 permission for a request from the UE 10.
- the predetermined message is a message (keep alive message or status update message) transmitted by various applications mounted on the UE 10 to the communication partner.
- FIG. 7 is a block diagram showing the UE 10 according to the first embodiment. As illustrated in FIG. 7, the UE 10 includes a communication unit 11 and a control unit 12.
- the communication unit 11 receives a signal from the eNB 110 (or the radio base station 210). Alternatively, the communication unit 11 transmits a signal to the eNB 110 (or the radio base station 210). Note that the communication unit 11 includes, for example, an antenna (a plurality of antennas when MIMO is used), a demodulation unit, a modulation unit, and the like.
- the control unit 12 controls the UE 10.
- the control unit 12 controls on / off of the communication unit 11 when discontinuous reception (DRX) is configured. That is, the control unit 12 turns on the communication unit 11 and monitors a downlink signal (for example, PDCCH) transmitted from the eNB 110 in an on period in which the downlink signal transmitted from the serving cell is to be monitored.
- the control unit 12 turns off the communication unit 11 and does not monitor the downlink signal (for example, PDCCH) transmitted from the eNB 110 in the off period other than the on period in which the downlink signal transmitted from the serving cell is to be monitored.
- DRX discontinuous reception
- the control unit 12 does not use an uplink control channel (for example, PDCCH) even if radio resources for the uplink data channel (for example, PDSCH) are not allocated. Then, the timing adjustment request uplink signal is transmitted to the eNB 110.
- an uplink control channel for example, PDCCH
- radio resources for the uplink data channel for example, PDSCH
- the timing adjustment request uplink signal may be a pseudo signal (random information, zero information) added to an existing control signal (for example, CQI, PMI, RI, SRS, etc.).
- the timing adjustment request uplink signal may be a newly defined pseudo signal (random information, zero information).
- the timing adjustment request uplink signal is a signal used by the eNB 110 to measure the propagation delay time between the UE 10 and the eNB 110.
- the timing adjustment request uplink signal is a signal for requesting the eNB 110 for transmission timing correction information (TA; Timing Advance).
- the control unit 12 When receiving the transmission timing correction information (TA) from the eNB 110, the control unit 12 adjusts the transmission timing of the uplink signal.
- the transmission timing is adjusted with an accuracy of 16 ⁇ Ts (0.52 ⁇ sec), for example.
- Ts is a basic unit time in LTE, and is, for example, 1 / (15000 ⁇ 2048) seconds.
- the maximum TA reception interval at which the transmission timing correction information (TA) should be received is determined.
- the maximum TA reception interval may be determined by the eNB 110 and transmitted from the eNB 110 to the UE 10.
- the maximum TA reception interval may be determined by the UE 10.
- the maximum TA reception interval is determined based on the moving speed of the UE 10. Specifically, as the moving speed of the UE 10 is slower, a longer time is determined as the maximum TA reception interval.
- the control unit 12 includes a predetermined timer (TimingAlignmentTimer) that monitors an interval at which the transmission timing correction information (TA) is received.
- TimingAlignmentTimer a predetermined timer that monitors an interval at which the transmission timing correction information (TA) is received.
- the control unit 12 sets the maximum TA reception interval to a predetermined timer. Therefore, the control unit 12 determines that a synchronization shift has occurred between the UE 10 and the eNB 110 when the timer in which the maximum TA reception interval is set expires. In other words, when the interval of the transmission timing correction information (TA) continuously received from the eNB 110 exceeds the TA reception maximum interval, the control unit 12 determines that the synchronization deviation between the UE 10 and the eNB 110 has occurred.
- control unit 12 transmits the timing adjustment request uplink signal to the eNB 110 before the predetermined timer in which the TA reception maximum interval is set expires.
- control unit 12 may transmit a timing adjustment request uplink signal to the eNB 110 at a predetermined period. Alternatively, the control unit 12 may transmit the timing adjustment request uplink signal to the eNB 110 when the moving speed of the UE 10 exceeds a predetermined threshold.
- the moving speed of the UE 10 may be measured by the number of handovers in a predetermined time.
- the moving speed of the UE 10 may be measured using the GPS.
- the moving speed of the UE 10 may be measured using the acceleration sensor.
- FIG. 8 is a sequence diagram showing the mobile communication method according to the first embodiment.
- step 10 the UE 10 transmits a connection request (RRC Connection Request) to the eNB 110.
- RRC Connection Request a connection request
- step 20 the eNB 110 transmits a connection setting (RRC Connection Setup) to the UE 10.
- RRC Connection Setup a connection setting
- step 30 the UE 10 transmits a connection completion (RRC Connection Complete) to the eNB 110.
- RRC Connection Complete a connection completion
- step 40 the UE 10 configures DRX.
- the UE 10 configures an extended DRX cycle.
- Step 50 the UE 10 transmits a timing adjustment request uplink signal to the eNB 110 via the uplink control channel (eg, PUSCH) even if the radio resource of the uplink data channel (eg, PUSCH) is not allocated.
- the timing adjustment request uplink signal is transmitted to the eNB 110 in a period other than the on period in which the downlink signal transmitted from the serving cell is to be monitored (that is, the off period).
- the UE 10 may transmit a timing adjustment request uplink signal to the eNB 110 at a predetermined period. Or UE10 may transmit a timing adjustment request
- the eNB 110 determines transmission timing correction information (that is, TA; Timing Advance) between the UE 10 and the eNB 110 according to the reception timing of the timing adjustment request uplink signal.
- TA Timing Advance
- step 70 the eNB 110 transmits the transmission timing correction information (TA) determined in step 60 to the UE 10.
- TA transmission timing correction information
- step 80 UE10 adjusts the transmission timing of an uplink signal based on the transmission timing correction information (TA) received from eNB110.
- TA transmission timing correction information
- the transmission timing is adjusted with an accuracy of, for example, 16 ⁇ Ts (0.52 ⁇ sec) as described above.
- the UE 10 when the DRX cycle is configured, the UE 10 transmits the timing adjustment request uplink signal even when the radio resource of the uplink data channel is not allocated. As a result, even if a very long DRX cycle is configured, transmission timing correction information (TA) is transmitted from the eNB 110, so that a synchronization shift between the UE 10 and the eNB 110 is suppressed.
- TA transmission timing correction information
- the UE 10 when the DRX cycle is configured, the UE 10 transmits the timing adjustment request uplink signal via the uplink control channel.
- the transmission timing correction information (TA) is transmitted from the eNB 110 without releasing the DRX cycle, so that a synchronization shift between the UE 10 and the eNB 110 is suppressed.
- the TA reception maximum interval is determined based on the moving speed of the UE 10. Therefore, the possibility that it is determined that a synchronization error has occurred between the UE 10 and the eNB 110 is reduced.
- the UE 10 transmits a timing adjustment request uplink signal to the eNB 110 when the moving speed of the UE 10 exceeds a predetermined threshold.
- the UE 10 transmits the timing adjustment request uplink signal only when there is a possibility that the eNB 110 receives a timing shift in receiving the uplink signal.
- waste of radio resources associated with transmission of the timing adjustment request uplink signal can be suppressed.
- Modification Example 1 a case where the process of adjusting the transmission timing of the uplink signal is essential in the eNB 110 and the extended DRX cycle is set under the initiative of the eNB 110 will be described.
- the eNB 110 when there is only one type of extended DRX cycle, the cycle for adjusting the transmission timing of the uplink signal (that is, the transmission timing correction information (TA) should be received)
- the eNB 110 When the TA reception maximum interval) is longer than the extended DRX cycle, the eNB 110 is configured to permit setting of the extended DRX cycle.
- the eNB 110 may be configured to permit setting of the extended DRX cycle.
- the interval at which the transmission timing correction information (TA) is received is monitored by a predetermined timer (TimingAlignmentTimer), and when the transmission timing correction information (TA) is received, the TA reception maximum interval is set to the predetermined timer. Therefore, when the timer in which the TA reception maximum interval is set expires, it is determined that a synchronization shift has occurred between the UE 10 and the eNB 110.
- the eNB 110 Configured to allow configuration.
- the eNB 110 is configured to allow the setting of the extended DRX cycle when n times the maximum TA reception interval (n is a real number of 1 or more) is longer than the cycle requested by the UE 10 (extended DRX cycle). May be.
- the UE 10 transmits an uplink signal.
- the transmission of the uplink signal may be performed autonomously by the UE 10, or may be performed by the UE 10 according to an instruction from the eNB 110.
- FIG. 9 is a sequence diagram showing a mobile communication method according to the first modification.
- step 10 the UE 10 transmits a connection request (RRC Connection Request) to the eNB 110.
- RRC Connection Request a connection request
- step 20 the eNB 110 transmits a connection setting (RRC Connection Setup) to the UE 10.
- RRC Connection Setup a connection setting
- step 30 the UE 10 transmits a connection completion (RRC Connection Complete) to the eNB 110.
- RRC Connection Complete a connection completion
- the eNB 110 determines the maximum TA reception interval (TAT in FIG. 9). For example, the maximum TA reception interval is determined based on the moving speed of the UE 10.
- step 150 the eNB 110 transmits the TA reception maximum interval (TAT in FIG. 9) determined in step 140 to the UE 10.
- TAT TA reception maximum interval
- the UE 10 transmits an extended DRX request for requesting setting of an extended DRX cycle to the eNB 110.
- the UE 10 may include the extended DRX cycle selected by the UE 10 in the extended DRX request.
- the eNB 110 determines whether or not the setting of the extended DRX cycle is permitted. Specifically, the eNB 110 determines whether or not the TA reception maximum interval (or n times the TA reception maximum interval (n is a real number of 1 or more)) is longer than the extended DRX cycle. The eNB 110 proceeds to the process of Step 180 when permitting the setting of the extended DRX cycle. On the other hand, when the eNB 110 rejects the setting of the extended DRX cycle, the eNB 110 ends the series of processes after performing the process of Step 190.
- step 180 the eNB 110 transmits to the UE 10 an extended DRX permission that permits the setting of the extended DRX cycle.
- step 190 the eNB 110 transmits to the UE 10 an extended DRX rejection that rejects the setting of the extended DRX cycle.
- step 200 the UE 10 determines whether or not the setting of the extended DRX cycle is permitted.
- the UE 10 proceeds to the process of Step 210.
- UE10 complete finishes a series of processes, when the setting of an extended DRX period is refused.
- step 210 the UE 10 configures an extended DRX cycle.
- step 220 the eNB 110 transmits an uplink signal request for requesting an uplink signal to the UE 10.
- the uplink signal request is transmitted via the PDCCH.
- step 230 the UE 10 transmits the uplink signal requested from the eNB 110 to the eNB 110.
- the eNB 110 determines transmission timing correction information (TA) between the UE 10 and the eNB 110 according to the reception timing of the uplink signal.
- TA transmission timing correction information
- step 250 the eNB 110 transmits the transmission timing correction information (TA) determined in step 240 to the UE 10.
- TA transmission timing correction information
- the UE 10 adjusts the transmission timing of the uplink signal based on the transmission timing correction information (TA) received from the eNB 110.
- TA transmission timing correction information
- Modification Example 2 describes a case where the process of adjusting the uplink signal transmission timing is not essential in the eNB 110, and the extended DRX cycle is set by the UE 10.
- the UE 10 requests the eNB 110 to set the extended DRX cycle.
- the UE 10 may be configured to request the eNB 110 to set the extended DRX cycle when n times the TA reception maximum interval (n is a real number of 1 or more) is longer than the extended DRX cycle.
- the UE 10 sets the extended DRX cycle to the eNB 110 when the TA reception maximum interval is longer than the extended DRX cycle selected by the UE 10.
- the UE 10 may be configured to request the eNB 110 to set the extended DRX cycle. .
- the UE 10 transmits a timing adjustment request uplink signal before a predetermined timer (TimingAlignmentTimer) expires.
- the transmission of the timing adjustment request uplink signal may be performed autonomously by the UE 10 or may be performed by the UE 10 according to an instruction from the eNB 110.
- FIG. 10 is a sequence diagram illustrating a mobile communication method according to the first modification.
- step 10 the UE 10 transmits a connection request (RRC Connection Request) to the eNB 110.
- RRC Connection Request a connection request
- step 20 the eNB 110 transmits a connection setting (RRC Connection Setup) to the UE 10.
- RRC Connection Setup a connection setting
- step 30 the UE 10 transmits a connection completion (RRC Connection Complete) to the eNB 110.
- RRC Connection Complete a connection completion
- the eNB 110 determines the maximum TA reception interval (TAT in FIG. 9). For example, the maximum TA reception interval is determined based on the moving speed of the UE 10.
- step 350 the eNB 110 transmits the TA reception maximum interval determined in step 140 (TAT in FIG. 10) to the UE 10.
- step 360 the UE 10 determines whether or not to request the setting of the extended DRX cycle. Specifically, the UE 10 determines whether or not the TA reception maximum interval (or n times the TA reception maximum interval (n is a real number of 1 or more)) is longer than the extended DRX cycle. When the UE 10 requests setting of the extended DRX cycle, the UE 10 proceeds to the process of step 360. On the other hand, when the eNB 110 does not request the setting of the extended DRX cycle, the eNB 110 ends the series of processes.
- the UE 10 transmits an extended DRX request for requesting setting of an extended DRX cycle to the eNB 110.
- the UE 10 may include the extended DRX cycle selected by the UE 10 in the extended DRX request.
- step 380 the eNB 110 transmits to the UE 10 an extended DRX permission that permits setting of an extended DRX cycle.
- step 390 the UE 10 configures an extended DRX cycle.
- step 400 the UE 10 transmits the timing adjustment request uplink signal to the eNB 110 via the uplink control channel (eg, PUCCH) even if the radio resource of the uplink data channel (eg, PUSCH) is not allocated.
- the uplink control channel eg, PUCCH
- the radio resource of the uplink data channel eg, PUSCH
- the eNB 110 determines transmission timing correction information (TA) between the UE 10 and the eNB 110 according to the reception timing of the timing adjustment request uplink signal.
- TA transmission timing correction information
- step 250 the eNB 110 transmits the transmission timing correction information (TA) determined in step 240 to the UE 10.
- TA transmission timing correction information
- the UE 10 adjusts the transmission timing of the uplink signal based on the transmission timing correction information (TA) received from the eNB 110.
- TA transmission timing correction information
- the configuration necessary for transmitting the timing adjustment request uplink signal (Configuration) is transmitted from the eNB 110 to the UE 10 before the DRX cycle is configured.
- the configuration necessary for transmitting the timing adjustment request uplink signal includes, for example, a condition for transmitting the timing adjustment request uplink signal (for example, a predetermined threshold to be compared with the moving speed), and a timing adjustment request uplink signal. This is the transmission cycle.
- the configuration necessary for transmitting the timing adjustment request uplink signal may be notified to the UE 10 by RRC signaling or may be notified to the UE 10 by a broadcast channel, for example.
- the broadcast channel is a channel broadcast from the eNB 110 and carries an MIB (Master Information Block) or an SIB (System Information Block).
- a DRX cycle setting request is transmitted from the UE 10 to the eNB 110, and the eNB 110 permits the UE 10 to set the DRX cycle.
- the case where it is transmitted is considered.
- the configuration necessary for transmitting the timing adjustment request uplink signal is considered to be included in the setting permission transmitted from the eNB 110 to the UE 10.
- the timing for transmitting the timing adjustment request uplink signal may be determined according to the TA reception maximum interval and the extended DRX cycle. That is, the timing for transmitting the timing adjustment request uplink signal is determined so that the transmission timing correction information (TA) can be received from the eNB 110 in the ON period.
- the timing for transmitting the timing adjustment request uplink signal is a timing that is a predetermined time before the timing at which the ON period starts.
- the timing for transmitting the timing adjustment request uplink signal may be determined by the eNB 110 or the UE 10.
- the extended DRX cycle may be released when a release condition for releasing the extended DRX cycle is satisfied.
- the eNB 110 may instruct the UE 10 to cancel the extended DRX cycle, or the UE 10 may request the eNB 110 to cancel the extended DRX cycle.
- the release condition is that the moving speed of the UE 10 is faster as the TA receiving maximum interval is inappropriate, that is, the moving speed of the UE 10 exceeds a predetermined threshold determined by the TA receiving maximum interval.
- the cancellation condition is that the TA reception maximum interval that can configure the extended DRX cycle cannot be set as the value of a predetermined timer (TimingAlignmentTimer).
- the cancellation condition is that the eNB 110 determines that the uplink signal transmission timing is out of the predetermined range.
- the cancellation condition is that the amount of change in TA continuously received by the UE 10 from the eNB 110 is larger than a predetermined threshold.
- a DRX cycle such as an extended DRX cycle
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Abstract
Description
実施形態に係る移動通信方法は、無線端末と無線基地局との間でRRCコネクションが設定されたRRCコネクティッド状態において、サービング基地局から送信される下り方向信号を監視すべきオン期間及び前記オン期間以外のオフ期間を有するDRX周期を構成する。移動通信方法は、前記無線端末が、前記DRX周期が構成されている場合に、上り方向データチャネルの無線リソースが割当てられていなくても、上り方向制御チャネルを介して、タイミング調整要求上り方向信号を前記無線基地局に送信する工程Aと前記無線基地局が、前記タイミング調整要求上り方向信号に応じて、上り方向信号の送信タイミング補正情報(TA)を前記無線端末に送信する工程Bとを含む。
(移動通信システム)
以下において、第1実施形態に係る移動通信システムについて説明する。図1は、第1実施形態に係る移動通信システム100を示す図である。
以下において、第1通信システムにおける無線フレームについて説明する。図2は、第1通信システムにおける無線フレームを示す図である。
以下において、第1通信システムにおける無線リソースについて説明する。図3は、第1通信システムにおける無線リソースを示す図である。
以下において、間欠受信(DRX;Discontinuous Reception)について説明する。図4~図6は、間欠受信について説明するための図である。UE10は、消費電力を抑制するために、間欠受信を構成することが可能である。なお、ここでは、UE10とeNB110との間でRRCコネクションが設定された状態(RRCコネクティッド状態)において間欠受信が構成されるケースについて説明する。
以下において、第1実施形態に係る無線端末について説明する。図7は、第1実施形態に係るUE10を示すブロック図である。図7に示すように、UE10は、通信部11と、制御部12とを有する。
以下において、第1実施形態に係る移動通信方法について説明する。図8は、第1実施形態に係る移動通信方法を示すシーケンス図である。
第1実施形態では、UE10は、DRX周期が構成されている場合に、上り方向データチャネルの無線リソースが割当てられていなくても、タイミング調整要求上り方向信号を送信する。これによって、非常に長いDRX周期が構成されたとしても、eNB110から送信タイミング補正情報(TA)が送信されるため、UE10とeNB110との同期ずれが抑制される。
以下において、第1実施形態の変更例1について説明する。以下においては、第1実施形態に対する差異について主として説明する。
以下において、変更例1に係る移動通信方法について説明する。図9は、変更例1に係る移動通信方法を示すシーケンス図である。
以下において、第1実施形態の変更例2について説明する。以下においては、第1実施形態に対する差異について主として説明する。
以下において、変更例1に係る移動通信方法について説明する。図10は、変更例1に係る移動通信方法を示すシーケンス図である。
本発明は上述した実施形態によって説明したが、この開示の一部をなす論述及び図面は、この発明を限定するものであると理解すべきではない。この開示から当業者には様々な代替実施形態、実施例及び運用技術が明らかとなろう。
Claims (5)
- 無線端末と無線基地局との間でRRCコネクションが設定されたRRCコネクティッド状態において、サービング基地局から送信される下り方向信号を監視すべきオン期間及び前記オン期間以外のオフ期間を有するDRX周期を構成する移動通信方法であって、
前記無線端末が、前記DRX周期が構成されている場合に、上り方向データチャネルの無線リソースが割当てられていなくても、上り方向制御チャネルを介して、タイミング調整要求上り方向信号を前記無線基地局に送信する工程Aと、
前記無線基地局が、前記タイミング調整要求上り方向信号に応じて、上り方向信号の送信タイミング補正情報を前記無線端末に送信する工程Bとを含むことを特徴とする移動通信方法。 - 前記工程Aは、前記無線端末が、前記無線端末の移動速度が所定閾値を超えている場合に、前記タイミング調整要求上り方向信号を前記無線基地局に送信する工程を含むことを特徴とする請求項1に記載の移動通信方法。
- 前記無線基地局が、前記無線端末の移動速度に基づいて、前記送信タイミング補正情報を受信すべき最大受信間隔を決定する工程Cと、
前記無線基地局が、前記最大受信間隔を前記無線端末に送信する工程Dとを含むことを特徴とする請求項1に記載の移動通信方法。 - 前記工程Aは、前記無線端末が、前記送信タイミング補正情報を受信する間隔が前記最大受信間隔を超える前に、前記タイミング調整要求上り方向信号を前記無線基地局に送信する工程を含むことを特徴とする請求項3に記載の移動通信方法。
- 無線端末と無線基地局との間でRRCコネクションが設定されたRRCコネクティッド状態において、サービング基地局から送信される下り方向信号を監視すべきオン期間及び前記オン期間以外のオフ期間を有するDRX周期を構成する移動通信システムにおいて、前記下り方向信号を受信する無線端末であって、
前記DRX周期が構成されている場合に、上り方向データチャネルの無線リソースが割当てられていなくても、上り方向制御チャネルを介して、タイミング調整要求上り方向信号を前記無線基地局に送信する制御部を備えることを特徴とする無線端末。
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CN103477685A (zh) | 2013-12-25 |
JP5478775B2 (ja) | 2014-04-23 |
EP2696631A1 (en) | 2014-02-12 |
JPWO2012137294A1 (ja) | 2014-07-28 |
EP2696631A4 (en) | 2014-10-22 |
EP2908576A1 (en) | 2015-08-19 |
EP3522615B1 (en) | 2020-09-09 |
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