WO2013161788A1 - Système de communication, dispositif formant station de base, dispositif formant station mobile, procédé de mesure et circuit intégré - Google Patents

Système de communication, dispositif formant station de base, dispositif formant station mobile, procédé de mesure et circuit intégré Download PDF

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Publication number
WO2013161788A1
WO2013161788A1 PCT/JP2013/061849 JP2013061849W WO2013161788A1 WO 2013161788 A1 WO2013161788 A1 WO 2013161788A1 JP 2013061849 W JP2013061849 W JP 2013061849W WO 2013161788 A1 WO2013161788 A1 WO 2013161788A1
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Prior art keywords
station apparatus
reference signal
measurement
base station
cell
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PCT/JP2013/061849
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English (en)
Japanese (ja)
Inventor
秀和 坪井
克成 上村
恭之 加藤
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シャープ株式会社
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/0001Systems modifying transmission characteristics according to link quality, e.g. power backoff
    • H04L1/0023Systems modifying transmission characteristics according to link quality, e.g. power backoff characterised by the signalling
    • H04L1/0026Transmission of channel quality indication
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/0001Systems modifying transmission characteristics according to link quality, e.g. power backoff
    • H04L1/0023Systems modifying transmission characteristics according to link quality, e.g. power backoff characterised by the signalling
    • H04L1/0027Scheduling of signalling, e.g. occurrence thereof
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • the present invention relates to a communication system, a base station apparatus, a mobile station apparatus, a measurement method, and an integrated circuit, and more particularly to a communication system that measures a received signal based on settings notified from the base station apparatus.
  • LTE Long Term Evolution
  • EUTRA Evolved Universal Terrestrial Radio Access
  • 3GPP Third Generation Partnership Project
  • LTE-A LTE-Advanced, or “Advanced EUTRA”
  • LTE-A LTE-Advanced, or “Advanced EUTRA”
  • Carrier aggregation is a method of receiving data of a transmitting device transmitted from a cell in a plurality of different frequency bands (also referred to as a carrier frequency or a component carrier) at a receiving device corresponding to the different frequency bands. This is a technique for improving the data rate.
  • a base station apparatus allocates a plurality of carrier components (cells) to a mobile station apparatus by RRC (Radio Resource Control; RRC) layer signaling and configures a MAC (Medium Access Control; MAC) layer.
  • RRC Radio Resource Control
  • MAC Medium Access Control
  • inter-cell cooperative Cooperative Multipoint
  • different weighting signal processing precoding processing
  • JP Joint Transmission
  • JT Joint Transmission
  • CS Coordinatd Scheduling
  • CS Coordinated Scheduling
  • a method of transmitting a signal to a station apparatus or a method of transmitting a signal using a predetermined resource only in one cell and not transmitting a signal in a resource overlapping with the resource in one cell (Blanking , Muting) etc. are being studied.
  • each cell may be a cell managed by a different base station device, or may be a cell managed by the same base station device.
  • each cell may be configured by a radio unit (Remote Radio Head; RRH, Remote Radio Unit; RRU) controlled by the control unit of the base station body.
  • the wireless unit may be connected to the base station main body with a wire such as an optical fiber, or may be connected wirelessly like a relay station device.
  • Non-Patent Document 1 the channel state information reference signal (hereinafter referred to as CSI reference signal) is defined such that resource information of one type of CSI reference signal is notified to the mobile station apparatus for quality measurement during MIMO transmission. ing. Further, the feedback of the channel state information using the CSI reference signal is controlled by the MAC layer and is fed back to the base station apparatus.
  • CSI reference signal Channel State Information reference signal
  • Non-Patent Document 1 a plurality of types of resource information of the CSI reference signal are notified to the mobile station device, and the mobile station device receives the reference signal received power (Reference Signal Received Power; RSRP) or reference signal of the plurality of types of resources.
  • RSRP Reference Signal Received Power
  • a cell for performing inter-cell cooperative communication can be selected by measuring each reception quality (Reference, Signal, Received Quality, RSRQ) and notifying the measurement result to a base station apparatus.
  • the report of the reference signal reception power (or reference signal reception quality) is controlled by the RRC layer, and if it is not necessary to report the inactive cell, the report setting change is performed by RRC signaling from the base station apparatus. It is necessary to do.
  • the present invention has been made in view of the above points, and an object thereof is to efficiently set the measurement / report of the reference signal reception power (or reception quality) for the activation / deactivation of the cell.
  • Communication system base station apparatus, mobile station apparatus, measurement method, and integrated circuit.
  • the communication system of the present application is a communication system in which a mobile station apparatus performs communication by simultaneously connecting to a base station apparatus using cells of one or more frequency bands, and the base station apparatus transmits a channel state information reference signal.
  • Channel state information reference signal management measurement setting which is a setting for measuring the reception quality of the mobile station device, is notified to the mobile station device using RRC signaling, and the mobile station device is in the MAC layer of the mobile station device.
  • the communication system of the present application is a communication system in which a mobile station apparatus performs communication by connecting to a base station apparatus using cells of one or more frequency bands at the same time, and the base station apparatus has a channel state Channel state information reference signal management measurement setting, which is a setting for measuring reception quality of information reference signal, and inactive state measurement required to specify whether or not to measure channel state information reference signal in inactive state cell Rejection information is notified to the mobile station device using RRC signaling, and the mobile station device is in an active / inactive state of a cell managed in the MAC layer of the mobile station device, and the inactive state. Whether or not to report the result of channel state information reference signal management measurement for the cell specified in the channel state information reference signal management measurement setting to the base station apparatus based on measurement necessity information Wherein the determining.
  • the base station apparatus of the present application is a base station apparatus that performs communication using a mobile station apparatus and cells of one or more frequency bands at the same time, and the channel state of an inactive cell of the mobile station apparatus Whether to report information reference signal management measurement results, whether or not to perform channel state information reference signal management measurement in an inactive state cell, inactive state measurement necessity information to the mobile station apparatus It designates by notifying using RRC signaling.
  • the mobile station apparatus of the present application is a mobile station apparatus that performs communication by connecting to a base station apparatus using cells of one or more frequency bands at the same time, and the mobile station apparatus includes the base station apparatus
  • the channel state information reference signal management measurement result for the cell specified by the channel state information reference signal management measurement setting which is a setting for measuring the reception quality of the channel state information reference signal notified by RRC signaling. Whether to report to the base station apparatus is determined based on an active / inactive state of a cell managed in the MAC layer.
  • the mobile station apparatus of the present application is a mobile station apparatus that performs communication by connecting to a base station apparatus using cells of one or more frequency bands at the same time.
  • Channel state information reference signal management measurement setting which is a setting for measuring the reception quality of the signal, and inactive state measurement necessity information specifying whether or not to measure the channel state information reference signal in the inactive state cell Whether or not to report the result of channel state information reference signal management measurement for cells in the inactive state to the base station device based on the inactive state measurement necessity information It is characterized by judging.
  • the measurement method of the present application is a measurement method of a mobile station apparatus that performs communication by connecting to a base station apparatus using cells of one or more frequency bands at the same time. And receiving a channel state information reference signal management measurement setting that is a setting for measuring the reception quality of the channel state information reference signal, and targeting a cell specified by the channel state information reference signal management measurement setting. And determining whether to report the result of channel state information reference signal management measurement to the base station apparatus based on the active / inactive state of the cell managed in the MAC layer. .
  • the measurement method of the present application is a measurement method of a mobile station apparatus that performs communication by connecting to a base station apparatus using cells of one or more frequency bands at the same time, from the base station apparatus to RRC signaling.
  • Receiving a channel state information reference signal management measurement setting that is a setting for measuring the reception quality of the channel state information reference signal using RRC signaling from the base station apparatus A step of receiving inactive state measurement necessity information specifying whether or not to perform measurement in the cell, and reporting a result of channel state information reference signal management measurement for cells in the inactive state to the base station apparatus And determining whether or not based on the inactive state measurement necessity information.
  • the integrated circuit of the present application is an integrated circuit mounted on a mobile station apparatus that communicates by connecting to a base station apparatus using cells of one or more frequency bands at the same time, and from the base station apparatus, A function for receiving a channel state information reference signal management measurement setting which is a setting for measuring the reception quality of the channel state information reference signal using RRC signaling, and a cell specified by the channel state information reference signal management measurement setting And a function of determining whether to report a result of channel state information reference signal management measurement for the base station apparatus based on an active / inactive state of a cell managed in the MAC layer.
  • a channel state information reference signal management measurement setting which is a setting for measuring the reception quality of the channel state information reference signal using RRC signaling
  • a cell specified by the channel state information reference signal management measurement setting And a function of determining whether to report a result of channel state information reference signal management measurement for the base station apparatus based on an active / inactive state of a cell managed in the MAC layer.
  • the integrated circuit of the present application is an integrated circuit mounted on a mobile station apparatus that communicates by connecting to a base station apparatus using cells of one or more frequency bands at the same time, from the base station apparatus , A function of receiving a channel state information reference signal management measurement setting, which is a setting for measuring the reception quality of a channel state information reference signal using RRC signaling, and an RRC signaling from the base station apparatus, A function of receiving inactive state measurement necessity information specifying whether or not to perform measurement in an active state cell, and the channel state information reference signal management measurement result for an inactive state cell as the base station device And whether to report whether or not to report based on the inactive state measurement necessity information.
  • a channel state information reference signal management measurement setting which is a setting for measuring the reception quality of a channel state information reference signal using RRC signaling, and an RRC signaling from the base station apparatus
  • a function of receiving inactive state measurement necessity information specifying whether or not to perform measurement in an active state cell, and the channel state information reference signal management measurement result for an inactive state cell
  • a communication system a base station apparatus, a mobile station apparatus, and a base station apparatus, a mobile station apparatus, which can efficiently set measurement / report of reference signal received power (or reception quality) for cell activation / deactivation, A measurement method and an integrated circuit can be provided.
  • a channel means a medium used for signal transmission
  • a physical channel means a physical medium used for signal transmission.
  • the physical channel may be added in the future in EUTRA and Advanced EUTRA, or the structure and format of the physical channel may be changed or added. It does not affect.
  • Radio frames In EUTRA and Advanced EUTRA, physical channel scheduling is managed using radio frames.
  • One radio frame is 10 ms, and one radio frame is composed of 10 subframes. Further, one subframe is composed of two slots (that is, one slot is 0.5 ms).
  • resource blocks are used as a minimum scheduling unit in which physical channels are allocated.
  • a resource block is defined by a constant frequency region composed of a set of a plurality of subcarriers (for example, 12 subcarriers) and a region composed of a constant transmission time interval (1 slot) on the frequency axis.
  • the synchronization signal (Synchronization Signals) is composed of three types of primary synchronization signals and secondary synchronization signals composed of 31 types of codes arranged alternately in the frequency domain. 504 kinds of cell identifiers (physical cell ID (Physical Cell Identity; PCI)) for identifying the base station apparatus and frame timing for radio synchronization are shown by the combination.
  • the mobile station device specifies the cell ID of the synchronization signal received by the cell search.
  • a physical broadcast information channel (Physical Broadcast Channel; PBCH) is transmitted for the purpose of notifying control parameters (broadcast information and system information) commonly used by mobile station apparatuses in a cell. Broadcast information that is not notified on the physical broadcast information channel is transmitted as a layer 3 message (system information) on the physical downlink shared channel after the radio resource is notified on the physical downlink control channel.
  • a cell global identifier (Cell ⁇ ⁇ Global Identifier; CGI) indicating a cell-specific identifier, a tracking area identifier (Tracking Area Identifier; TAI) for managing a standby area by paging, random access setting information (such as a transmission timing timer), Common radio resource setting information and the like are notified.
  • Downlink reference signals are classified into multiple types according to their use.
  • a cell-specific reference signal (CRS) is a pilot signal transmitted at a predetermined power for each cell, and is downlinked periodically in the frequency domain and the time domain based on a predetermined rule.
  • Link reference signal The mobile station apparatus measures the reception quality for each cell by receiving the cell-specific reference signal.
  • the mobile station apparatus also uses the downlink cell specific reference signal as a reference signal for demodulating the physical downlink control channel or the physical downlink shared channel transmitted simultaneously with the cell specific reference signal.
  • the sequence used for the cell-specific reference signal is a sequence that can be identified for each cell.
  • the downlink reference signal is also used for estimating downlink propagation path fluctuations.
  • a downlink reference signal used for estimation of propagation path fluctuation is referred to as a channel state information reference signal (Channel State Reference Signals; CSI-RS).
  • CSI-RS Channel State Reference Signals
  • the downlink reference signal set individually for each mobile station apparatus is called UE specific Reference Signals (URS) or Dedicated RS (DRS), and is used to demodulate the physical downlink control channel or the physical downlink shared channel. Used.
  • the physical downlink control channel (Physical Downlink Control Channel; PDCCH) is transmitted in some OFDM symbols from the beginning of each subframe, radio resource allocation information according to the scheduling of the base station device to the mobile station device, It is used for the purpose of instructing the adjustment amount of increase / decrease of transmission power.
  • the mobile station apparatus monitors (monitors) a physical downlink control channel addressed to itself before transmitting / receiving a layer 3 message (paging, handover command, etc.) that is downlink data or downlink control data, and By receiving the physical downlink control channel, it is necessary to acquire radio resource allocation information called an uplink grant at the time of transmission and a downlink grant (downlink assignment) at the time of reception from the physical downlink control channel.
  • the physical downlink control channel is configured to be transmitted in the area of the resource block that is individually assigned to the mobile station apparatus from the base station apparatus in addition to the above-described ODFM symbol. Is also possible.
  • the physical uplink control channel (Physical Uplink Control Channel; PUCCH) is a data acknowledgment acknowledgment (Acknowledgement / Negative Acknowledgement; ACK / NACK) and downlink propagation path information (channel state information). ) Notification and an uplink radio resource allocation request (radio resource request), a scheduling request (Scheduling Request; SR) is used.
  • CSI includes CQI (Channel Quality Indicator), PMI (Precoding Matrix Indicator), PTI (Precoding Type Indicator), and RI (Rank Indicator). Each indicator may be expressed as “Indication”, but its use and meaning are the same.
  • the physical downlink shared channel (Physical Downlink Shared Channel; PDSCH) is also used to notify the mobile station apparatus of broadcast information (system information) that is not notified in the paging or physical broadcast information channel as a layer 3 message. used.
  • the radio resource allocation information of the physical downlink shared channel is indicated by the physical downlink control channel.
  • the physical uplink shared channel (Physical Uplink Shared Channel; PUSCH) mainly transmits uplink data and uplink control data, and can also include control data such as downlink reception quality and ACK / NACK. In addition to uplink data, it is also used to notify the base station apparatus of uplink control information as a layer 3 message. Similarly to the downlink, the radio resource allocation information of the physical uplink shared channel is indicated by the physical downlink control channel.
  • PUSCH Physical Uplink Shared Channel
  • An uplink reference signal (Uplink Reference Signal) (also referred to as an uplink pilot signal or an uplink pilot channel) is used by the base station device to demodulate the physical uplink control channel PUCCH and / or the physical uplink shared channel PUSCH.
  • a demodulation reference signal (Demodulation Reference Signal; DMRS) to be used and a sounding reference signal (Sound Reference Reference Signal; SRS) used mainly by the base station apparatus to estimate an uplink channel state are included.
  • the sounding reference signal includes a periodic sounding reference signal (Periodic SRS) and an aperiodic sounding reference signal (Aperiodic SRS).
  • the physical random access channel (Physical Random Access Channel; PRACH) is a channel used to notify a preamble sequence and has a guard time.
  • the preamble sequence is configured so as to express 6-bit information by preparing 64 types of sequences.
  • the physical random access channel is used as a means for accessing the base station apparatus of the mobile station apparatus.
  • the mobile station device requests radio resources when the physical uplink control channel is not set, and transmission timing adjustment information (timing advance (Timing Advance; TA)) necessary to match the uplink transmission timing with the reception timing window of the base station device.
  • the physical random access channel is used to request the base station apparatus.
  • the mobile station apparatus transmits a preamble sequence using the radio resource for the physical random access channel set by the base station apparatus.
  • the mobile station apparatus that has received the transmission timing adjustment information sets a transmission timing timer that measures the effective time of the transmission timing adjustment information that is commonly set by the broadcast information (or set individually by the layer 3 message),
  • the uplink state is managed while the transmission timing timer is valid (during time measurement) during the transmission timing adjustment state, and outside the valid period (during stop), the transmission timing is not adjusted (transmission timing is not adjusted).
  • the layer 3 message is a control plane (Control-plane) message exchanged between the mobile station apparatus and the base station apparatus in the RRC (Radio Resource Control) layer, and is used in the same meaning as the RRC signaling or RRC message. Since other physical channels are not related to each embodiment of the present invention, detailed description thereof is omitted.
  • the carrier aggregation is a technique for aggregating (aggregating) frequencies (component carriers or frequency bands) of a plurality of different frequency bands (frequency bands) and treating them as one frequency (frequency band). For example, when five component carriers having a frequency bandwidth of 20 MHz are aggregated by carrier aggregation, the mobile station device having the capability of carrier aggregation considers these as one frequency bandwidth of 100 MHz and accesses them.
  • the component carriers to be aggregated may be continuous frequencies, or may be frequencies at which all or part of them are discontinuous. For example, when the usable frequency band is 800 MHz band, 2.4 GHz band, and 3.4 GHz band, one component carrier is 800 MHz band, another component carrier is 2 GHz band, and another component carrier is 3.4 GHz band. It may be transmitted.
  • the base station apparatus assigns uplink or downlink to the mobile station apparatus based on various factors such as the amount of data buffer that is staying, the reception quality of the cell reported from the mobile station apparatus, the load in the cell, and QoS.
  • the number of component carriers can be increased or decreased. Note that the number of uplink component carriers that the base station apparatus assigns (sets or adds) to the mobile station apparatus is desirably the same as or less than the number of downlink component carriers.
  • FIG. 10 is a diagram illustrating an example of a communication network configuration according to the embodiment of the present invention.
  • the mobile station apparatus 2 can be wirelessly connected to the base station apparatus 1 by using frequency bands of a plurality of frequencies (component carriers, Band 1 to Band 4) simultaneously by carrier aggregation, there is a certain communication network configuration.
  • One base station apparatus 1 includes transmitters 11 to 14 (and four receivers (not shown)) for each of a plurality of frequencies, and a configuration in which control of each frequency is performed by one base station apparatus 1 simplifies control. It is preferable from the viewpoint.
  • the configuration of the base station apparatus 1 is not limited to FIG.
  • the base station apparatus 1 may be configured to transmit a plurality of frequencies with a single transmitter because the plurality of frequencies are continuous frequencies. Furthermore, a configuration in which transmission / reception timing differs for each frequency may be used. The number of transmitters and receivers and the frequency at which transmission and reception can be performed may be different. The communicable range of each frequency controlled by the transmitter of the base station apparatus 1 is regarded as a cell. At this time, the areas (cells) covered by each frequency may have different widths and different shapes. Moreover, the area to cover may differ for every frequency.
  • the area covered by the frequency of the component carrier that the base station apparatus 1 constitutes will be referred to as a cell, which is the mobile station apparatus or base station in each embodiment of the present invention.
  • a cell which is the mobile station apparatus or base station in each embodiment of the present invention.
  • the definition of a cell in a communication system that actually operates the device may be different.
  • some of the component carriers used by carrier aggregation may be defined simply as additional radio resources rather than cells.
  • it may be defined as an extended cell different from the conventional cell.
  • carrier aggregation is communication by a plurality of cells using a plurality of component carriers (frequency bands), and is also referred to as cell aggregation.
  • the mobile station apparatus 2 may be wirelessly connected to the base station apparatus 1 via a relay station apparatus (or repeater) for each frequency. That is, the base station apparatus 1 of each embodiment of the present invention can be replaced with a relay station apparatus.
  • the third generation base station apparatus 1 defined by 3GPP is called Node B (NodeB), and the base station apparatus in EUTRA and Advanced EUTRA is called eNodeB (eNodeB).
  • NodeB Node B
  • eNodeB the base station apparatus in EUTRA and Advanced EUTRA
  • UE User Equipment
  • the base station device 1 manages a cell that is an area where the mobile station device 2 can communicate, and the cell is also referred to as a macro cell, a femto cell, a pico cell, or a nano cell depending on the size of the area that can communicate with the mobile station device 2. .
  • a cell used for communication with the mobile station device 2 among the cells of the base station device 1 is a serving cell (Serving cell).
  • the other cells are referred to as neighboring cells. That is, when the mobile station apparatus 2 and the base station apparatus 1 communicate using a plurality of cells using carrier aggregation, there are a plurality of serving cells in the mobile station apparatus 2.
  • a mobile station device and a base station device that support communication in which cells having a plurality of uplink transmission timings that differ depending on carrier aggregation are aggregated are supported. Show.
  • FIG. 11 shows the correspondence between the downlink component carrier set by the base station device 1 for the mobile station device 2 and the uplink component carrier when the mobile station device 2 according to the embodiment of the present invention performs carrier aggregation. It is the figure which showed an example of the relationship.
  • FIG. 11 shows the correspondence relationship between four downlink component carriers (downlink component carriers DL_CC1 to DL_CC4) and three uplink component carriers (uplink component carriers UL_CC1 to UL_CC3).
  • the configuration is not limited to the configuration example of the component carrier shown in FIG.
  • the downlink component carrier DL_CC1 and the uplink component carrier UL_CC1, the downlink component carrier DL_CC2 and the uplink component carrier UL_CC2, and the downlink component carrier DL_CC3 and the uplink component carrier UL_CC3 are cell-specific connected (Cell Specific Linkage). ing. Further, as in the downlink component carrier DL_CC4, it is also possible to configure a component carrier only for the downlink without uplink component carrier setting (no cell specific connection) for carrier aggregation.
  • Cell-specific connection is the correspondence (linkage, link information) between uplink and downlink component carriers.
  • a part of broadcast information System ⁇ ⁇ Information ⁇ Block Type2; SIB2
  • the cell-specific connection is also referred to as SIB2 linkage.
  • the configuration configuration
  • the configuration is explicitly notified as part of the broadcast information or when a component carrier (cell) in carrier aggregation is added
  • the RRC message layer (3 messages)
  • the setting of the corresponding relationship is notified, or when not explicitly instructed, the setting is notified implicitly by using information on the corresponding relationship between the uplink and the downlink specified uniquely.
  • the base station apparatus 1 may notify the mobile station apparatus 2 of cell-specific connection information different from the uplink component carrier indicated by the broadcast information of the downlink component carrier to be set.
  • the base station apparatus 1 may individually set the correspondence relationship between the downlink component carrier and the uplink component carrier for each mobile station apparatus 2 separately from the cell-specific connection (individual connection: UE Specific Linkage). Is possible.
  • cell-specific connection individual connection: UE Specific Linkage
  • downlink component carrier DL_CC3 and uplink component carrier UL_CC2 are individually connected.
  • the setting of the individual connection is indicated by an RRC message (layer 3 message).
  • the base station apparatus 1 can also assign a plurality of settings (configurations) necessary for transmission of the physical random access channel for each uplink component carrier or each uplink frequency.
  • the cell-specific connection is typically used to indicate a correspondence relationship between uplink and downlink frequencies used for communication with the base station device 1 when the mobile station device 2 is not carrier-aggregated. . Further, it is used to indicate a correspondence relationship between uplink and downlink component carriers to which radio resource allocation notified by the physical downlink control channel is applied during carrier aggregation.
  • the individual connection is typically used to indicate which downlink component carrier the path loss used for the transmission power control of the uplink component carrier of the mobile station apparatus 2 is calculated. Further, the individual connection indicates which downlink component carrier transmits the physical downlink control channel PDCCH that notifies the radio resource allocation information for performing the scheduling (radio resource allocation) of the component carrier of the mobile station apparatus 2. Used for.
  • a cell composed of an uplink component carrier in which an uplink control channel is set for a radio resource request and a downlink component carrier that is cell-specifically connected to the uplink component carrier is a primary cell (Primary Cell; PCell) It is called.
  • a cell composed of component carriers other than the primary cell is referred to as a secondary cell (Secondary cell; SCell).
  • the mobile station apparatus 2 receives a paging message in the primary cell, detects broadcast information update, performs random access for initial access procedures and scheduling requests, and does not perform these in the secondary cell.
  • the primary cell is not subject to activation and deactivation control (that is, it is always considered activated), but the secondary cell is activated and deactivated.
  • An inactive state (state) is provided, and these state changes are explicitly specified by the base station apparatus 1 and the state is changed based on a timer set in the mobile station apparatus 2 for each component carrier. .
  • the primary cell and the secondary cell are collectively referred to as a serving cell.
  • the mobile station device 2 and the base station device 1 allocate cell indexes to the primary cell and the secondary cell, and use the cell index to select a serving cell to be added, deleted, or changed. Identify.
  • the cell index of the primary cell is always 0 (zero), and any one of 1 to 7 is allocated as the cell index of the secondary cell.
  • activation or deactivation of component carriers is configured to be controlled by an L2 (Layer 2) message that can be interpreted by a Layer 2 configuration task. . That is, activation or deactivation is controlled by a control command recognized by layer 2 after being decoded by the physical layer (layer 1). Note that the L2 message in EUTRA and Advanced EUTRA is notified by a control command (MAC control element; MAC Control Element) interpreted in the MAC layer.
  • MAC control element MAC Control Element
  • the mobile station apparatus 2 may stop monitoring the uplink grant and downlink grant (downlink assignment) used for scheduling the deactivated component carrier (secondary cell). That is, monitoring of the physical downlink control channel may be stopped. Moreover, the mobile station apparatus 2 may stop transmission of the periodic sounding reference signal (Periodic SRS) which is an uplink reference signal regarding the uplink of the deactivated component carrier (secondary cell). Moreover, the mobile station apparatus 2 may stop transmission of a physical uplink control channel regarding the uplink of the deactivated component carrier (secondary cell). Further, the mobile station apparatus 2 may perform measurement at a sampling rate lower than that in the activated state with respect to the downlink of the deactivated component carrier (secondary cell).
  • Period SRS periodic sounding reference signal
  • the mobile station apparatus 2 may perform measurement at a sampling rate lower than that in the activated state with respect to the downlink of the deactivated component carrier (secondary cell).
  • FIG. 12 is a sequence chart for explaining an RRM (radio resource management) measurement setting management method of the mobile station apparatus 2 and the base station apparatus 1 in EUTRA.
  • RRM radio resource management
  • the base station apparatus 1 can use two different frequencies, F1 and F2, as frequencies operated by the own station, and the mobile station apparatus 2 and the base station apparatus 1 are wirelessly connected at the frequency F1. Is established (radio resource control connection state (Radio Resource Control Connected: RRC_Connected)).
  • the base station apparatus 1 transmits a measurement setting message to cause the mobile station apparatus 2 to measure the reception quality of the cell in communication (located cell) and other cells (neighboring cells) (step S111).
  • the measurement setting message includes at least one measurement setting information for each frequency (frequency F1 and frequency F2) to be measured.
  • the measurement setting information includes a measurement ID, a measurement target frequency (measurement object), a measurement target frequency ID corresponding to the measurement target frequency, a report setting including a measurement event, and a report setting ID corresponding to the report setting. Is done.
  • a plurality of report setting IDs may be linked to one measurement target frequency ID.
  • one report setting ID may be linked to a plurality of measurement target frequency IDs.
  • a measurement event is, for example, when the reception quality of a cell-specific reference signal of a serving cell falls below or exceeds a predetermined threshold, or when the reception quality of a cell-specific reference signal of a neighboring cell falls below the serving cell.
  • This is information composed of a condition such as when the reception quality of a neighboring cell exceeds a predetermined threshold, and a parameter used to determine the condition.
  • Information such as a threshold value, an offset value, and a time required for establishment of a measurement event is set in the parameter.
  • the mobile station device 2 stores the measurement setting information set from the base station device 1 as internal information, and then starts the measurement process. Specifically, the mobile station apparatus 2 manages the measurement ID, the measurement target frequency ID, and the report setting ID so as to be linked together, and starts measurement based on the measurement information corresponding to each ID. . If these three IDs are linked to one, it is considered valid and the associated measurement is started. If these three IDs are not linked to one (one of the IDs is not set) ), The relevant measurement is not started as invalid. If the measurement setting information can be set without error, the mobile station apparatus 2 transmits a measurement setting completion message to the base station apparatus 1 in step S113.
  • the mobile station device 2 transmits a measurement report message to the base station device 1 assuming that the measurement event is triggered. (Step S114).
  • the measurement report message at least the measurement ID linked to the report setting ID of the triggered measurement event and, if necessary, the measurement result of the associated cell are set. Since the base station apparatus 1 knows to which measurement event report setting ID the measurement ID is linked, the mobile station apparatus 2 does not need to notify the report setting ID in the measurement report message.
  • FIG. 1 is a block diagram showing an example of a base station apparatus 1 according to an embodiment of the present invention.
  • the base station apparatus 1 includes a reception unit 101, a demodulation unit 102, a decoding unit 103, a control unit 104, a coding unit 105, a modulation unit 106, a transmission unit 107, a network signal transmission / reception unit 108, and an upper layer 109.
  • the higher layer 109 outputs downlink traffic data and downlink control data to the encoding unit 105.
  • the encoding unit 105 encodes each input data and outputs the encoded data to the modulation unit 106.
  • Modulation section 106 modulates the signal input from encoding section 105. Further, the signal modulated in the modulation unit 106 is multiplexed with a downlink reference signal and mapped as a frequency domain signal.
  • Transmitter 107 converts the signal input from modulator 106 into a time-domain signal, places the converted signal on a carrier having a predetermined frequency, performs power amplification, and transmits the signal.
  • the downlink data channel in which the downlink control data is arranged typically constitutes a layer 3 message (RRC (Radio Resource Control) message).
  • RRC Radio Resource Control
  • the receiving unit 101 converts a received signal from the mobile station device 2 (see FIG. 2) into a baseband digital signal.
  • the digital signal converted by the reception unit 101 is input to the demodulation unit 102 and demodulated.
  • the signal demodulated by the demodulator 102 is then input to the decoder 103 and decoded.
  • Decoding section 103 appropriately separates the received signal into uplink traffic data and uplink control data, and outputs the separated signals to higher layer 109, respectively.
  • Base station apparatus control information necessary for controlling each of these blocks is input from the upper layer 109 to the control unit 104, and from the control unit 104, base station apparatus control information related to transmission is transmitted as transmission control information.
  • the base station apparatus control information related to reception is appropriately input to each block of the reception unit 101, demodulation unit 102, and decoding unit 103 as reception control information in each block of the modulation unit 106 and transmission unit 107.
  • the network signal transmitting / receiving unit 108 transmits or receives a control message between a plurality of base station apparatuses 1 (or control station apparatus (MME), gateway apparatus (Gateway), MCE) and the base station apparatus 1. .
  • Control messages are transmitted and received via a network line. Control messages are exchanged on logical interfaces called S1 interface, X2 interface, M1 interface, and M2 interface.
  • S1 interface control station apparatus
  • X2 interface gateway apparatus
  • M1 interface Mobility Management Entity
  • FIG. 2 is a block diagram showing an example of the mobile station apparatus 2 according to the embodiment of the present invention.
  • the mobile station apparatus 2 includes a reception unit 201, a demodulation unit 202, a decoding unit 203, a component carrier management unit 204, a control unit 205, a random access processing unit 206, a coding unit 207, a modulation unit 208, a transmission unit 209, and an upper layer 210.
  • the measuring unit 211 is configured.
  • the upper layer 210 Prior to reception, the upper layer 210 outputs the mobile station apparatus control information to the control unit 205.
  • the control unit 205 appropriately outputs the mobile station apparatus control information related to reception to the reception unit 201, the demodulation unit 202, the decoding unit 203, and the measurement unit 211 as reception control information.
  • the reception control information includes information such as demodulation information, decoding information, reception frequency band information, reception timing for each channel, multiplexing method, and radio resource arrangement information as reception schedule information.
  • the receiving unit 201 receives a signal from the base station apparatus 1 to be described later through one or more receivers (not shown) in the frequency band notified by the reception control information, and converts the received signal into a baseband digital signal.
  • the reception unit 201 outputs the received reference signal to the measurement unit 211.
  • Demodulation section 202 demodulates the received signal and outputs it to decoding section 203.
  • the decoding unit 203 correctly decodes the demodulated signal based on the reception control information, appropriately separates it into downlink traffic data and downlink control data, and outputs them to the upper layer 210, respectively.
  • the measurement unit 211 measures RSRP, RSRQ, CSI, and the like of the received reference signal and outputs the measurement result to the upper layer 210.
  • the upper layer 210 activates / deactivates information such as addition, modification, or release of a component carrier to downlink control data, and an allocated component carrier (or a cell that combines uplink and downlink component carriers).
  • the component carrier management unit 204 is notified of the information. Based on the notified content, the component carrier management unit 204 corrects or releases the parameter of the component carrier (cell) of the secondary cell number already assigned to the own station, or the component carrier (cell of a new secondary cell number). ) And the active / inactive state of each secondary cell. Further, when a plurality of assigned secondary cells have different transmission / reception timings, information on a cell group constituted by one or more cells having the same transmission / reception timing is stored.
  • the information on the cell group includes information such as transmission / reception timing for each cell group, transmission timing timer timing status, and the like.
  • the activation / deactivation information of the component carrier may be notified from the decoding unit 203 to the component carrier management unit 204 without passing through the upper layer 210.
  • the upper layer 210 outputs mobile station apparatus control information to the control unit 205.
  • the control unit 205 appropriately outputs the mobile station apparatus control information related to transmission to the random access processing unit 206, the encoding unit 207, the modulation unit 208, and the transmission unit 209 as transmission control information.
  • the transmission control information includes information such as encoding information, modulation information, transmission frequency band information, transmission timing for each channel, multiplexing method, and radio resource arrangement information as uplink scheduling information of the transmission signal.
  • the upper layer 210 appropriately outputs the uplink traffic data and the uplink control data to the encoding unit 207 according to the uplink channel.
  • the encoding unit 207 appropriately encodes each data according to the transmission control information and outputs the data to the modulation unit 208.
  • Modulating section 208 modulates the signal encoded by encoding section 207. Also, the modulation unit 208 multiplexes the downlink reference signal with the modulated signal and maps it to the frequency band.
  • the transmission unit 209 converts the frequency band signal output from the modulation unit 208 into a time-domain signal, places the converted signal on a carrier having a predetermined frequency, performs power amplification, and at least one transmitter (not shown) Send from.
  • the signal decoded by the decoding unit 203 includes information indicating a cell group to which the transmission timing before the handover is applied even after the handover, the information is transmitted through the upper layer 210 (or directly from the decoding unit 203).
  • the carrier management unit 204 and the random access processing unit 206 are notified.
  • the random access processing unit 206 determines whether or not the random access procedure after the handover is necessary based on the notified information and each component carrier information acquired from the component carrier management unit 204.
  • the component carrier management unit 204 performs a process of bringing the cell group to which the transmission timing before the handover is applied into an active state.
  • the transmission timing timer is counting.
  • the timing of the transmission timing timer may be continued while inactive after handover.
  • the demodulating unit 203 demodulates the signal instructing activation of the cell group from the base station apparatus 1, the corresponding cell is activated, and the cell that has become active Performs uplink transmission without performing a random access procedure. Only one transmission timing timer may be prepared for each mobile station apparatus or may be prepared for each cell group.
  • FIG. 2 other components of the mobile station apparatus 2 are omitted because they are not related to the present embodiment.
  • FIG. 3 is a block diagram showing a radio protocol structure (radio protocol) of a user plane (user plane).
  • FIG. 4 is a block diagram showing a radio protocol structure of a control plane (control plane; C plane).
  • the user plane is a protocol stack for user data transmission / reception
  • the control plane is a protocol stack for control signal transmission / reception.
  • the physical layer which is the first layer (layer 1), uses the above-described physical channel between different physical layers, that is, between the physical layer on the transmission side and the reception side. Communication takes place.
  • the physical layer is connected to the upper medium access control (Medium Access Control; MAC) layer via a transport channel (Transport channel), through which the physical layer transfers information to the MAC layer. Perform (information transfer) service).
  • Medium Access Control Medium Access Control
  • Transport channel Transport channel
  • the MAC layer In the MAC layer of the second layer (layer 2), mapping between logical channels (logical channels) and transport channels, error correction by HARQ (Hybrid Automatic Automatic Repeats reQuest), transfer processing based on priority between logical channels, etc. It is carried out.
  • the MAC layer is connected to a radio link control (Radio Link Control; RLC) layer, which is an upper layer, via a logical channel.
  • RLC Radio Link Control
  • the RLC layer in the second layer supports data transfer reliability.
  • TM Transparent Mode
  • UM Non-acknowledged Mode
  • AM Acknowledged Mode
  • AM error correction by ARQ, protocol error detection, and the like are performed.
  • the PDCP (Packet Data Convergence Protocol) layer in the second layer performs header compression to reduce the IP packet header size, data encryption, and decryption.
  • PDCP Packet Data Convergence Protocol
  • the radio resource control (Radio Resource Control; RRC) layer of the third layer (layer 3) is defined only in the control plane.
  • the RRC layer broadcasts NAS (non-access stratum) and AS (access stratum) related information, manages RRC connection (Establishment / maintenance / release), configures radio bearer (Radio Bearer; RB), re- It performs re-configuration and release, mobility (handover), measurement management and reporting, QoS management, and the like.
  • the NAS layer located above the RRC layer performs session management and mobility management.
  • the MAC layer and the RRC layer of the base station device 1 exist as part of the upper layer 109.
  • the MAC layer of the mobile station apparatus 2 exists as a part of the component carrier management unit 204, the random access processing unit 206, and a part of the upper layer 209, and the RRC layer of the mobile station apparatus 2 includes the component carrier management unit 204. And a part of the upper layer 209.
  • the measurement unit 211 includes an RRC layer reference signal measurement unit 51 and a PHY layer reference signal measurement unit 52.
  • the PHY layer reference signal measurement unit 52 measures the RSRP, RSRQ, channel state, and the like of the reference signal input from the reception unit 201 and notifies the RRC layer reference signal measurement unit 51 of the measurement.
  • the RRC layer reference signal measurement unit 51 needs individual measurement results notified from the PHY layer reference signal measurement unit 52 in the measurement target cell set by the CSI reference signal management measurement setting notified from the upper layer 210. If it is averaged, it is determined whether or not it matches the report setting, and the measurement result is notified to the upper layer 210.
  • the RRC layer reference signal measurement unit 51 receives from the component carrier management unit 204 the active / inactive state information of the component carrier managed in the MAC layer.
  • the RRC layer reference signal measurement unit 51 can stop the measurement of the reference signal of the component carrier in the inactive state based on the input active / inactive state information of the component carrier.
  • the conventional CSI reference signal setting is notified by using the information element (CSI-RS-Config-r10) included in PhysicalConfigDedicatedSphyl-r10 and PhysicalConfigDedicatedScell-r10, which are information elements (Information element; IE) of the RRC message.
  • Information element Information element
  • the CSI reference signal setting in the present embodiment will be described as being notified using the information elements of PhysicalConfigDedicatedSted and PhysicalConfigDedicatedSCell-r10 as before, but is not limited to this, and is not limited to this.
  • This information element may be newly defined and notified, or may be included in a CSI reference signal management measurement setting described later and notified.
  • the base station apparatus 1 notifies the mobile station apparatus 2 of one or more CSI reference signal settings using an RRC message (step S61).
  • the CSI reference signal setting notified here includes information uniquely indicating the signal sequence of the CSI reference signal, resource information indicating the arrangement of the CSI reference signal, and an index (first number) for identifying a plurality of CSI reference signal settings. 1 identifier). For example, when this index is defined as a sequential number from 0, it may be a sequential number from 0 in each cell (PCell and each SCell), or a sequential number from 0 for all settings of all cells. It is good. Alternatively, when the signal sequence of the CSI reference signal is different for each setting in each cell, information uniquely indicating this signal sequence can be used as an index substitute.
  • the CSI reference signal setting may be a method of notifying a complete setting list every time there is a change, or by adding, correcting, or deleting information elements so that individual settings can be added, corrected, or deleted. It is also possible to do it.
  • the base station apparatus 1 notifies the mobile station apparatus 2 of the CSI reference signal management measurement setting (also referred to as CoMP Resource Management set) using the RRC message (step S62).
  • the CSI reference signal management measurement means measuring the reception quality (RSRP or RSRQ) of the CSI reference signal set in the CSI reference signal setting in order to select the CSI reference signal used in CoMP communication.
  • the CSI reference signal management measurement setting is uniquely associated with a combination of a setting (second identifier) that uniquely indicates a cell to be measured, such as a cell index, a report setting, and the two settings. Measurement ID (third identifier).
  • the report setting includes information such as whether to report periodically (Periodic) or when an event occurs, whether to report RSRP or RSRQ (or both).
  • the measurement event is, for example, when the reception quality of an arbitrary CSI reference signal in a measurement target cell is lower than or exceeds a predetermined threshold value, and the reception quality of an arbitrary CSI reference signal is reception of a specific CSI reference signal. It is information composed of conditions such as when quality is below / above and parameters used to determine the conditions.
  • the parameter is set with a threshold, an offset value, a time required for establishment of a measurement event, and the like.
  • the information elements for addition / change / deletion may be provided for each of the two settings and the measurement ID so that the addition / change / deletion can be performed individually. For example, a case where two measurement target cells and three report settings are notified and three measurement IDs are set for the combination of the cell and the report setting will be described with reference to FIG.
  • the base station apparatus 1 assigns identifiers 0 and 1 to the cell with the cell index # 1 and the cell with the cell index # 2 as measurement target cells, and notifies the mobile station apparatus 2 of them. Further, the base station apparatus 1 assigns identifiers 0, 1, and 2 to report setting 1, report setting 2, and report setting 3, respectively, as measurement settings, and notifies the mobile station apparatus 2 of them. Furthermore, the base station apparatus 1 notifies the mobile station apparatus 2 of the measurement ID associated with the combination of the measurement cell identifier and the report setting identifier.
  • a combination of the measurement target cell with identifier 0 and the report setting with identifier 0 is designated as measurement ID # 0.
  • the combination of the measurement target cell of identifier 0 and the report setting of identifier 1 is designated as measurement ID # 1
  • the combination of the measurement target cell of identifier 1 and the report setting of identifier 2 is designated as measurement ID # 2.
  • the measurement target cell is uniquely set.
  • the setting shown (for example, cell index) may be used as a substitute for the measurement ID.
  • the mobile station apparatus 2 notified of the CSI reference signal management measurement setting in step S62 stores the notified measurement setting as internal information (step S63). Specifically, the mobile station apparatus 2 performs measurement by associating and managing the measurement ID, the measurement target cell identifier, and the report setting identifier. When the measurement target cell identifier and report setting identifier associated with the measurement ID exist, the measurement is performed on the measurement target cell associated with the setting as valid, and the measurement target associated with the measurement ID When either or both of the cell identifier and the report setting identifier do not exist, the setting is regarded as invalid and the measurement related to the measurement ID is not performed. If the measurement setting information can be set without error, the mobile station apparatus 2 notifies the base station apparatus 1 of CSI reference signal management measurement setting completion (step S64), and the RRC layer reference signal measurement unit 51 performs the reference signal. Start measuring.
  • the RRC layer reference signal measurement unit 51 acquires the active / inactive state information of the measurement target cell (component carrier) from the component carrier management unit 204, the measurement target cell is in the active state, and the report setting condition When satisfy
  • the CSI reference signal management measurement report preferably includes the measurement ID and the index set by the CSI reference signal setting notification. When only one report setting is set for one measurement target cell and CSI reference signal management measurement report is performed for each cell, the measurement ID may not be required.
  • the RRC layer reference signal measurement unit 51 acquires the active / inactive state information of the measurement target cell (component carrier) from the component carrier management unit 204, and when the measurement target cell is in an inactive state, In step S65, control is performed so that the CSI reference signal management measurement report in step S66 is not performed.
  • the RRC layer reference signal measurement unit 51 may discard the measurement result notified from the PHY layer reference signal measurement unit 52 so as not to determine whether or not the reporting condition is satisfied.
  • the management unit 204 may notify the PHY layer reference signal measurement unit 52 of the active / inactive state information, and when the measurement target cell is in an inactive state, the reference signal measurement in the PHY layer may be stopped.
  • the base station apparatus 1 notifies the mobile station apparatus 2 of the CSI reference signal setting and the CSI reference signal management measurement setting, and the mobile station apparatus 2 measures the measurement target cell specified by the CSI reference signal management measurement setting (CSI reference signal for measuring the reception quality of the CSI reference signal set in the CSI reference signal set in the cell when the active / inactive state of the cell set in the MAC layer is the active state in the measurement object) Perform management measurements. Further, the mobile station apparatus 2 transmits a CSI reference signal management measurement report obtained by the CSI reference signal management measurement to the base station apparatus 1 using an RRC message.
  • the CSI reference signal management measurement setting CSI reference signal for measuring the reception quality of the CSI reference signal set in the CSI reference signal set in the cell when the active / inactive state of the cell set in the MAC layer is the active state in the measurement object
  • the base station apparatus 1 can control a cell that requires measurement based on signaling in the MAC layer, so it is not necessary to reconfigure a cell that requires measurement with an RRC message,
  • the measurement target cell can be controlled efficiently and at high speed.
  • step S63 addition / correction / deletion of the measurement target cell and the report setting is performed at an arbitrary timing, and the validity / invalidity of the setting in step S63 is determined at the time of update.
  • the measurement unit 211 includes an RRC layer reference signal measurement unit 91 and a PHY layer reference signal measurement unit 92.
  • the PHY layer reference signal measurement unit 92 measures the RSRP, RSRQ, channel state, and the like of the reference signal input from the reception unit 201 and notifies the RRC layer reference signal measurement unit 91 of it.
  • the RRC layer reference signal measurement unit 91 needs individual measurement results notified from the PHY layer reference signal measurement unit 92 in the measurement target cell set by the CSI reference signal management measurement setting notified from the upper layer 210. If it is averaged, it is determined whether or not it matches the report setting, and the measurement result is notified to the upper layer 210.
  • the RRC layer reference signal measurement unit 91 receives from the component carrier management unit 204 the active / inactive state information of the component carrier managed in the MAC layer, and receives the inactive state cell (component Carrier) measurement necessity information is input. The RRC layer reference signal measurement unit 91 determines whether or not to stop the measurement of the reference signal of the component carrier in the inactive state based on the input active / inactive state information of the component carrier and the measurement necessity information.
  • the base station apparatus 1 notifies the mobile station apparatus 2 of one or more CSI reference signal settings using an RRC message (step S81).
  • the CSI reference signal setting notified here includes information uniquely indicating the signal sequence of the CSI reference signal, resource information indicating the arrangement of the CSI reference signal, and an index (first number) for identifying a plurality of CSI reference signal settings. 1 identifier). For example, when this index is defined as a sequential number from 0, it may be a sequential number from 0 in each cell (PCell and each SCell), or a sequential number from 0 for all settings of all cells. It is good. Alternatively, when the signal sequence of the CSI reference signal is different for each setting in each cell, information uniquely indicating this signal sequence can be used as an index substitute.
  • the CSI reference signal setting may be a method of notifying a complete setting list every time there is a change, or by adding, correcting, or deleting information elements so that individual settings can be added, corrected, or deleted. It is also possible to do it.
  • the base station apparatus 1 notifies the mobile station apparatus 2 of the CSI reference signal management measurement setting and the inactive state measurement necessity indicator using the RRC message (step S82).
  • the CSI reference signal management measurement means measuring the reception quality (RSRP or RSRQ) of the CSI reference signal set in the CSI reference signal setting in order to select the CSI reference signal used in CoMP communication.
  • the inactive state measurement necessity indicator is information indicating whether or not a measurement report is performed when a cell to be measured is in an inactive state.
  • the CSI reference signal management measurement setting is uniquely associated with a combination of a setting (second identifier) that uniquely indicates a cell to be measured, such as a cell index, a report setting, and the two settings. Measurement ID (third identifier).
  • the report setting includes information such as whether to report periodically (Periodic) or when an event occurs, whether to report RSRP or RSRQ (or both).
  • the measurement event is, for example, when the reception quality of an arbitrary CSI reference signal in a measurement target cell is lower than or exceeds a predetermined threshold value, and the reception quality of an arbitrary CSI reference signal is reception of a specific CSI reference signal. It is information composed of conditions such as when quality is below / above and parameters used to determine the conditions.
  • the parameter is set with a threshold, an offset value, a time required for establishment of a measurement event, and the like.
  • the information elements for addition / change / deletion may be provided for each of the two settings and the measurement ID so that the addition / change / deletion can be performed individually. For example, a case where two measurement target cells and three report settings are notified and three measurement IDs are set for the combination of the cell and the report setting will be described with reference to FIG.
  • the base station apparatus 1 assigns identifiers 0 and 1 to the cell with the cell index # 1 and the cell with the cell index # 2 as measurement target cells, and notifies the mobile station apparatus 2 of them. Further, the base station apparatus 1 assigns identifiers 0, 1, and 2 to report setting 1, report setting 2, and report setting 3, respectively, as measurement settings, and notifies the mobile station apparatus 2 of them. Furthermore, the base station apparatus 1 notifies the mobile station apparatus 2 of the measurement ID associated with the combination of the measurement cell identifier and the report setting identifier.
  • a combination of the measurement target cell with identifier 0 and the report setting with identifier 0 is designated as measurement ID # 0.
  • the combination of the measurement target cell of identifier 0 and the report setting of identifier 1 is designated as measurement ID # 1
  • the combination of the measurement target cell of identifier 1 and the report setting of identifier 2 is designated as measurement ID # 2.
  • the measurement target cell is uniquely set.
  • the setting shown (for example, cell index) may be used as a substitute for the measurement ID.
  • the inactive state measurement necessity indicator may be included in the measurement setting. In this case, it is possible to set whether or not to perform measurement in an inactive cell for each measurement setting.
  • the inactive state measurement necessity indicator may be notified to be set for each of the measurement IDs (third identifiers). In this case, it is possible to set whether or not to perform measurement in the inactive cell for each third identifier. Further, the inactive state measurement necessity indicator may be notified to the mobile station apparatus 2 so that only one type is set. In this case, it is possible to set whether or not to perform measurement in all inactive cells assigned to the mobile station apparatus 2.
  • the mobile station apparatus 2 that has been notified of the CSI reference signal management measurement setting and the inactive state measurement necessity indicator in step S82 is informed of the measurement setting and the necessity of measurement in the inactive state cell.
  • Information is stored as internal information (step S83). Specifically, the mobile station apparatus 2 performs measurement by associating and managing the measurement ID, the measurement target cell identifier, and the report setting identifier. When the measurement target cell identifier and report setting identifier associated with the measurement ID exist, the measurement is performed on the measurement target cell associated with the setting as valid, and the measurement target associated with the measurement ID When either or both of the cell identifier and the report setting identifier do not exist, the setting is regarded as invalid and the measurement related to the measurement ID is not performed. If the measurement setting information can be set without error, the mobile station apparatus 2 notifies the base station apparatus 1 of CSI reference signal management measurement setting completion (step S84), and the RRC layer reference signal measurement unit 51 performs the reference signal. Start measuring.
  • the RRC layer reference signal measurement unit 91 acquires the active / inactive state information of the measurement target cell (component carrier) from the component carrier management unit 204, and measures the inactive state cell from the upper layer 210. Get necessity information.
  • the RRC layer reference signal measurement unit 91 measures the inactive state when the measurement target cell is in the active state and the report setting condition is satisfied, or when the measurement target cell is in the inactive state but the measurement necessity information is used.
  • the CSI reference signal management measurement report is transmitted to the base station apparatus 1 using the RRC message (steps S85 and S86).
  • the CSI reference signal management measurement report preferably includes a measurement ID and an index set by the CSI reference signal setting notification.
  • step S85 control is performed so as not to perform the CSI reference signal management measurement report in step S86.
  • the RRC layer reference signal measurement unit 91 may discard the measurement result notified from the PHY layer reference signal measurement unit 92 so as not to determine whether or not the reporting condition is satisfied.
  • the active / inactive state information is notified from the component carrier management unit 204 to the PHY layer reference signal measuring unit 92, the measurement necessity information of the inactive state cell is notified from the upper layer 210, and the measurement target cell is notified.
  • the inactive state when it is specified by the measurement necessity information that the measurement of the inactive cell is not performed, the reference signal measurement in the PHY layer may be stopped.
  • the base station apparatus 1 notifies the mobile station apparatus 2 of CSI reference signal setting, CSI reference signal management measurement setting, and inactive state measurement necessity information (inactive state measurement necessity indicator).
  • the station device 2 determines that the active / inactive state of the cell managed by the MAC layer is an inactive state.
  • the CSI reference signal management measurement for measuring the reception quality of the CSI reference signal set in the CSI reference signal set in the cell and the CSI reference signal management measurement are reported in accordance with the inactive state measurement necessity information set in step (1). Determine whether or not.
  • the base station apparatus 1 allows the cell that needs to be measured in the MAC layer even when the CSI reference signal management measurement of the inactive cell is required for reasons such as mobility management. Therefore, it is not necessary to reset a cell that needs to be measured with the RRC message, and the measurement target cell can be controlled efficiently and at high speed.
  • step S63 addition / correction / deletion of the measurement target cell and the report setting is performed at an arbitrary timing, and the validity / invalidity of the setting in step S63 is determined at the time of update.
  • the measurement necessity information of inactive cells may be set as common information for all cells (frequency), or set for each cell (frequency). May be.
  • measurement necessity information that is common to all cells may be reported as broadcast information (system information), or may be notified by individual RRC signaling for each mobile station apparatus. Further, in order to set the measurement necessity information for each cell (frequency), the measurement necessity information may be notified so that the cell (frequency) information is included, or the measurement target of the CSI reference signal management measurement setting You may comprise and notify so that the information which shows the measurement necessity in the said cell (component carrier) may be contained in the setting of a cell (frequency) and the setting of a component carrier.
  • the reception quality of the CSI reference signal in the first and second embodiments described above is not limited to RSRP or RSRQ, but instead uses path loss, other measured values (SIR, SINR, RSSI, BLER), and the like. It is also possible to use a combination of a plurality of these measured values.
  • the names of the parameters shown in the embodiment according to the present invention are referred to for convenience of explanation, and even if the parameter names actually applied and the parameter names of the present invention are different, It does not affect the gist of the claimed invention.
  • each embodiment may be performed by recording a program for recording on a computer-readable recording medium, causing the computer system to read and execute the program recorded on the recording medium.
  • the “computer system” 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. Further, the “computer-readable recording medium” dynamically holds a program for a short time, like a communication line when transmitting a program via a network such as the Internet or a communication line such as a telephone line. In this case, it is also assumed that a server that holds a program for a certain time, such as a volatile memory inside a computer system that serves as a server or client.
  • 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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Abstract

La présente invention se rapporte à un dispositif formant station de base qui informe un dispositif formant station mobile d'une configuration de gestion et de mesure pour un signal de référence de données d'état de canal. Ladite configuration est une configuration qui est utilisée afin de mesurer la qualité de réception d'un signal de référence de données d'état de canal, au moyen d'une signalisation RRC. Par ailleurs, le dispositif formant station mobile détermine s'il doit, ou non, rendre compte des résultats de gestion et de mesure relatifs au signal de référence de données d'état de canal ciblé en tant qu'une cellule désignée, au dispositif formant station de base, en fonction de l'état actif ou inactif d'une cellule gérée dans une couche MAC de la station mobile.
PCT/JP2013/061849 2012-04-27 2013-04-23 Système de communication, dispositif formant station de base, dispositif formant station mobile, procédé de mesure et circuit intégré WO2013161788A1 (fr)

Applications Claiming Priority (2)

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JP2012-101929 2012-04-27
JP2012101929A JP2013229830A (ja) 2012-04-27 2012-04-27 通信システム、基地局装置、移動局装置、測定方法、および集積回路

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WO2013161788A1 true WO2013161788A1 (fr) 2013-10-31

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