WO2010137469A1 - 移動通信システム、基地局装置、移動局装置、および、移動通信方法 - Google Patents
移動通信システム、基地局装置、移動局装置、および、移動通信方法 Download PDFInfo
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- WO2010137469A1 WO2010137469A1 PCT/JP2010/058179 JP2010058179W WO2010137469A1 WO 2010137469 A1 WO2010137469 A1 WO 2010137469A1 JP 2010058179 W JP2010058179 W JP 2010058179W WO 2010137469 A1 WO2010137469 A1 WO 2010137469A1
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- station apparatus
- base station
- component carrier
- mobile station
- downlink
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L1/00—Arrangements for detecting or preventing errors in the information received
- H04L1/12—Arrangements for detecting or preventing errors in the information received by using return channel
- H04L1/16—Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
- H04L1/1607—Details of the supervisory signal
- H04L1/1664—Details of the supervisory signal the supervisory signal being transmitted together with payload signals; piggybacking
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A), DMT the frequencies being arranged in component carriers
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0037—Inter-user or inter-terminal allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signaling, i.e. of overhead other than pilot signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/02—Selection of wireless resources by user or terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/21—Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/535—Allocation or scheduling criteria for wireless resources based on resource usage policies
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
Definitions
- the present invention relates to a mobile communication system and a mobile communication method including a base station apparatus and a mobile station apparatus.
- 3GPP (3rd Generation Partnership Project) examines and creates specifications for mobile communication systems based on networks developed from W-CDMA (Wideband-Code Division Multiple Access) and GSM (Global System for Mobile Communications). It is a project.
- W-CDMA Wideband-Code Division Multiple Access
- GSM Global System for Mobile Communications
- HSDPA High-speed Downlink ⁇ Packet Access
- 3GPP uses the evolution of third-generation radio access technology (hereinafter referred to as “LTE (Long Term Evolution)” or “EUTRA (Evolved Universal Terrestrial Radio Access))) and a wider frequency band.
- LTE Long Term Evolution
- EUTRA Evolution-Advanced
- OFDMA Orthogonal Frequency Division Multiple Access
- SC-FDMA Single Carrier-Frequency Division Multiple Access
- the OFDMA method is used in the downlink
- the SC-FDMA method is used in the uplink
- Clustered-SC-FDMA Clustered-Single Carrier-Frequency Division Multiple Access, DFT-s-OFDM (with Spectrum Division Control) is also under consideration.
- the SC-FDMA scheme proposed as an uplink communication scheme keeps the PAPR (Peak-to-Average-Power-Ratio) when transmitting data low. It has the feature that it can.
- a frequency band used in a general mobile communication system is continuous, whereas a plurality of continuous / discontinuous frequency bands (hereinafter referred to as “carrier element, carrier component (CC)”). ”Or“ element carrier, component carrier (CC: Component Carrier) ”) is used in combination to operate as one frequency band (wideband frequency band) (frequency band aggregation: Spectrum aggregation) , Carrier aggregation, Frequency aggregation, etc.). Furthermore, in order for the base station apparatus and the mobile station apparatus to perform communication using a wide frequency band more flexibly, the frequency band used for downlink communication and the frequency band used for uplink communication differ from each other. It has also been proposed to use a bandwidth (Asymmetric carrier aggregation) (Non-Patent Document 1).
- FIG. 9 is a diagram for explaining frequency band aggregation in the prior art.
- the frequency band used for downlink (DL: Down Link) communication and the frequency band used for uplink (UL: Up Link) communication as shown in FIG. It is also called symmetric frequency band aggregation (Symmetric carrier aggregation).
- the base station apparatus and the mobile station apparatus use a plurality of carrier elements that are continuous / discontinuous frequency bands in a composite manner, thereby providing a wide frequency band composed of a plurality of carrier elements.
- five carrier elements whose frequency band used for downlink communication with a bandwidth of 100 MHz hereinafter also referred to as DL system band or DL system bandwidth
- a frequency band used for uplink communication having a bandwidth of 100 MHz includes five carrier elements having a bandwidth of 20 MHz ( UCC1: Uplink Component Carrier1, UCC2, UCC3, UCC4, UCC5).
- each downlink carrier element includes a downlink channel such as a physical downlink control channel (hereinafter referred to as PDCCH: Physical Downlink Control Channel) and a physical downlink shared channel (hereinafter referred to as PDSCH: Physical Downlink Shared Channel).
- PDCCH Physical Downlink Control Channel
- PDSCH Physical Downlink Shared Channel
- control information resource allocation information, MCS (Modulation and Coding Scheme) for transmitting a downlink transport block transmitted using the PDSCH arranged in each downlink carrier element.
- MCS Modulation and Coding Scheme
- Modulation coding method) information, HARQ (Hybrid Automatic Repeat Request, hybrid automatic retransmission request) processing information, etc.) are transmitted to the mobile station apparatus using PDCCH (PDSCH is allocated to the mobile station apparatus using PDCCH) ), The downlink transaction using PDSCH The sport block is transmitted to the mobile station apparatus.
- an uplink channel such as a physical uplink control channel (hereinafter referred to as PUCCH: Physical Uplink Control Channel) or a physical uplink shared channel (hereinafter referred to as PUSCH: Physical Uplink Shared Channel) is disposed in each uplink carrier element. Then, the mobile station apparatus uses the PUCCH and / or PUSCH arranged in each uplink carrier element to transmit a control signal (control information) in HARQ for the physical downlink control channel and / or the downlink transport block. Transmit to the base station device.
- PUCCH Physical Uplink Control Channel
- PUSCH Physical Uplink Shared Channel
- control signal (control information) in HARQ is ACK / NACK for the physical downlink control channel and / or downlink transport block (acknowledgement: PositivePoAcknowledgement / negative response: Negative Acknowledgement, ACK signal or NACK signal).
- DTX is a signal (information) indicating that the mobile station apparatus has not been able to detect the PDCCH from the base station apparatus.
- FIG. 10 is a diagram for explaining asymmetric frequency band aggregation in the prior art.
- the base station apparatus and the mobile station apparatus have different frequency bands used for downlink communication and frequency bands used for uplink communication, and carrier elements constituting these frequency bands.
- a frequency band used for downlink communication having a bandwidth of 100 MHz is configured by five carrier elements (DCC1, DCC2, DCC3, DCC4, DCC5) having a bandwidth of 20 MHz
- DCC1, DCC2, DCC3, DCC4, DCC5 having a bandwidth of 20 MHz
- the frequency band used for uplink communication having a bandwidth of 40 MHz is configured by two carrier elements (UCC1, UCC2) having a bandwidth of 20 MHz.
- UCC1 carrier elements
- a downlink / uplink channel is arranged in each of the downlink / uplink carrier elements, and the base station apparatus uses the PDSCH assigned by the PDCCH to assign the downlink transport block to the mobile station apparatus.
- the mobile station apparatus transmits a control signal in HARQ to the base station apparatus using PUCCH and / or PUSCH.
- FIG. 11 is a diagram for explaining one PDSCH allocation method using PDCCH in the prior art.
- FIG. 11 is an enlarged view of a part of the downlink carrier elements (DCC1, DCC2, and DCC3) in FIGS.
- the base station apparatus can perform allocation of a plurality of PDSCHs using a plurality of PDCCHs arranged in one downlink carrier element.
- DCC1, DCC2, and DCC3 downlink carrier elements
- the base station apparatus allocates PDSCHs arranged in DCC1, DCC2, and DCC3 using three PDCCHs arranged in DCC2 (PDCCHs indicated by diagonal lines, grid lines, and network lines, respectively).
- the PDSCH of DCC1 is assigned by PDCCH indicated by diagonal lines
- the PDSCH of DCC2 is assigned by PDCCH indicated by grid lines
- the PDSCH of DCC3 is assigned by PDCCH indicated by network lines.
- the base station apparatus can transmit (up to three) downlink transport blocks to the mobile station apparatus in the same subframe using the PDSCH arranged in DCC1, DCC2, and DCC3.
- the base station apparatus allocates a plurality of PDSCHs using a plurality of PDCCHs, and uses the plurality of allocated PDSCHs to transmit a plurality of downlink transport blocks to the mobile station apparatus in the same subframe.
- the mobile station apparatus transmits control signals in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks to the base station apparatus.
- the base station apparatus When the base station apparatus and the mobile station apparatus transmit and receive HARQ control signals, the base station apparatus must efficiently allocate resources for the mobile station apparatus to arrange the HARQ control signals. For example, if the base station apparatus explicitly specifies all resources for allocating control signals in HARQ to a mobile station apparatus that transmits control signals in HARQ, the radio used for the designation Resources are wasted. There is a need for a method for efficiently designating resources for a mobile station apparatus to allocate control signals in HARQ by using the base station apparatus.
- the base station apparatus allocates a plurality of PDSCHs using a plurality of PDCCHs, and uses a plurality of allocated PDSCHs to assign a plurality of downlink transport blocks in the same subframe.
- the resource designation method for allocating control signals in HARQ by the base station device is inefficient.
- the present invention has been made in view of such circumstances, and an object of the present invention is to provide a mobile communication system and a mobile communication method in consideration of a resource designation method for allocating a control signal in HARQ by a base station apparatus.
- the mobile communication system of the present invention is a mobile communication system in which a base station apparatus and a mobile station apparatus communicate with each other using a plurality of component carriers, and the base station apparatus transmits one downlink component carrier
- a plurality of physical downlink shared channels are allocated to the mobile station apparatus in the same subframe using a plurality of physical downlink control channels arranged in the configured downlink component carrier, set in the mobile station apparatus, and
- the mobile station apparatus corresponds to the set downlink component carrier with a plurality of physical uplink control channels corresponding to the plurality of physical downlink control channels arranged in the set downlink component carrier, respectively.
- one uplink component carrier It is characterized by being designated by the base station apparatus.
- the base station apparatus determines the correspondence between the downlink component carrier and the uplink component carrier, Using broadcast information, setting to the mobile station apparatus, setting one downlink component carrier to the mobile station apparatus, and using a plurality of physical downlink control channels arranged on the set downlink component carrier Then, in the same subframe, a plurality of physical downlink shared channels are allocated to the mobile station apparatus, and the mobile station apparatus transmits each of the plurality of physical downlink control channels arranged in the set downlink component carrier.
- a plurality of physical uplink control channels corresponding to In one of the uplink component carrier corresponding to the constant has been downlink component carrier, and characterized in that it is designated by the base station apparatus.
- the base station apparatus determines the correspondence between the downlink component carrier and the uplink component carrier, Using RRC signaling, setting to the mobile station apparatus, setting one downlink component carrier to the mobile station apparatus, and using a plurality of physical downlink control channels arranged on the set downlink component carrier Then, in the same subframe, a plurality of physical downlink shared channels are allocated to the mobile station apparatus, and the mobile station apparatus transmits each of the plurality of physical downlink control channels arranged in the set downlink component carrier. Multiple physical uplink control channels corresponding to And in one of the uplink component carrier corresponding to the set downlink component carrier, and characterized in that it is designated by the base station apparatus.
- a resource region in which the plurality of physical uplink control channels can be arranged is set by the base station device to the mobile station device.
- the mobile station apparatus is characterized in that HARQ control information is arranged on any physical uplink control channel of the plurality of physical uplink control channels and transmitted to the base station apparatus. .
- control information in the HARQ includes information indicating ACK / NACK for the downlink transport block arranged in the plurality of physical downlink shared channels.
- control information in the HARQ includes information indicating that the mobile station apparatus cannot detect a physical downlink control channel.
- a base station apparatus in a mobile communication system in which a base station apparatus and a mobile station apparatus communicate with each other using a plurality of component carriers, and means for setting one downlink component carrier in the mobile station apparatus
- a plurality of physical uplink control channels corresponding to the plurality of physical downlink control channels arranged in a link component carrier are transmitted to the mobile station apparatus in one uplink component carrier corresponding to the set downlink component carrier.
- a base station apparatus in a mobile communication system in which a base station apparatus and a mobile station apparatus communicate with each other using a plurality of component carriers, and the correspondence between the downlink component carrier and the uplink component carrier is reported Means for setting in the mobile station apparatus, means for setting one downlink component carrier in the mobile station apparatus, and a plurality of physical downlink control channels arranged in the set downlink component carrier Means for allocating a plurality of physical downlink shared channels to the mobile station apparatus in the same subframe, and a plurality corresponding to each of the plurality of physical downlink control channels arranged in the set downlink component carrier Before the physical uplink control channel In one of the uplink component carrier corresponding to the downlink component carrier set is characterized by comprising, a means for designating to said mobile station apparatus.
- Means for setting in the mobile station apparatus, means for setting one downlink component carrier in the mobile station apparatus, and a plurality of physical downlink control channels arranged in the set downlink component carrier Means for allocating a plurality of physical downlink shared channels to the mobile station apparatus in the same subframe, and a plurality corresponding to each of the plurality of physical downlink control channels arranged in the set downlink component carrier Physical uplink control channel
- the channel, in one of the uplink component carrier corresponding to the downlink component carriers the set is characterized by comprising, a means for designating to said mobile station apparatus.
- the uplink component carrier further includes means for setting, in the mobile station apparatus, a resource area in which the plurality of physical uplink control channels can be arranged.
- a mobile station apparatus in a mobile communication system in which a base station apparatus and a mobile station apparatus communicate with each other using a plurality of component carriers, and one downlink component carrier is set by the base station apparatus Means for allocating a plurality of physical downlink shared channels by the base station apparatus in the same subframe using a plurality of physical downlink control channels arranged in the configured downlink component carrier; A plurality of physical uplink control channels corresponding to the plurality of physical downlink control channels arranged in the configured downlink component carrier, and one uplink component carrier corresponding to the configured downlink component carrier Before Is characterized in that it comprises a means which is designated, the by the base station apparatus.
- Means configured by the base station apparatus, means configured by the base station apparatus to set one downlink component carrier, and a plurality of physical units arranged in the configured downlink component carrier Means for allocating a plurality of physical downlink shared channels in the same subframe using the downlink control channel by the base station apparatus; and the plurality of physical downlinks arranged in the configured downlink component carrier Duplicate for each control channel
- the physical uplink control channel, in one of the uplink component carrier corresponding to the set downlink component carrier is characterized in that it comprises a means which is designated by the base station apparatus.
- Means configured by the base station apparatus, means configured by the base station apparatus to set one downlink component carrier, and a plurality of physical units arranged in the configured downlink component carrier Means for allocating a plurality of physical downlink shared channels in the same subframe using the downlink control channel by the base station apparatus; and the plurality of physical downlinks arranged in the configured downlink component carrier
- a plurality of physical uplink control channel to respond in one of the uplink component carrier corresponding to the set downlink component carrier is characterized in that it comprises a means which is designated by the base station apparatus.
- the uplink component carrier further includes means for setting, by the base station apparatus, a resource area in which the plurality of physical uplink control channels can be arranged.
- (16) is characterized by comprising means for arranging control information in HARQ on any physical uplink control channel of the plurality of physical uplink control channels and transmitting it to the base station apparatus.
- control information in the HARQ includes information indicating ACK / NACK for the downlink transport block arranged in the plurality of physical downlink shared channels.
- control information in the HARQ includes information indicating that the mobile station apparatus cannot detect a physical downlink control channel.
- Using the plurality of physical downlink control channels that are configured and arranged in the configured downlink component carrier assign a plurality of physical downlink shared channels to the mobile station apparatus in the same subframe, and configure the configured downlink
- a plurality of physical uplink control channels corresponding to each of the plurality of physical downlink control channels arranged in a component carrier are designated to the mobile station apparatus in one uplink component carrier corresponding to the set downlink component carrier To be characterized by To have.
- a plurality of physical downlink shared channels are allocated to the mobile station apparatus, and a plurality of physical uplinks corresponding to each of the plurality of physical downlink control channels arranged in the configured downlink component carrier are used.
- Set the link control channel to In one of the uplink component carrier corresponding to the link component carrier is characterized by specifying to the mobile station apparatus.
- Link control channel In one of the uplink component carrier corresponding to the boss was downlink component carriers, and characterized by specifying to the mobile station apparatus.
- a resource region in which the plurality of physical uplink control channels can be arranged is set in the mobile station apparatus.
- a communication method of a mobile station apparatus in a mobile communication system in which a base station apparatus and a mobile station apparatus communicate with each other using a plurality of component carriers, wherein one downlink component carrier is transmitted by the base station apparatus
- a plurality of physical downlink shared channels are allocated by the base station apparatus in the same subframe using a plurality of physical downlink control channels that are configured and arranged in the configured downlink component carrier, and the configuration
- one uplink component carrier corresponding to the set downlink component carrier a plurality of physical uplink control channels corresponding to the plurality of physical downlink control channels arranged in the configured downlink component carrier,
- the base It is characterized by being designated by the device.
- a plurality of physical downlink shared channels are allocated by the base station apparatus in the same subframe, and correspond to each of the plurality of physical downlink control channels arranged in the configured downlink component carrier
- Multiple physical uplinks The click control channel, in one of the uplink component carrier corresponding to the set downlink component carrier, and characterized in that it is designated by the base station apparatus.
- a resource region where the plurality of physical uplink control channels can be arranged is set by the base station apparatus.
- control information in HARQ is arranged in any physical uplink control channel of the plurality of physical uplink control channels and transmitted to the base station apparatus.
- control information in the HARQ includes information indicating ACK / NACK for a downlink transport block arranged in the plurality of physical downlink shared channels.
- control information in the HARQ includes information indicating that the mobile station apparatus cannot detect a physical downlink control channel.
- a base station apparatus and a mobile station apparatus that perform communication using a wide frequency band composed of a plurality of continuous / discontinuous frequency bands (carrier elements) efficiently transmit control signals in HARQ. Can be transmitted and received.
- FIG. 1 is a diagram illustrating a configuration example of a channel according to an embodiment of the present invention.
- the downlink physical channel includes a physical broadcast channel (PBCH), a physical downlink control channel (PDCCH: Physical Downlink Control Channel), a physical downlink shared channel (PDSCH: Physical Downlink Shared Channel), a physical multicast channel ( PMCH: Physical Multicast Channel, physical control format instruction channel (PCFICH: Physical Control Format Indicator Channel), and physical hybrid automatic retransmission request instruction channel (PHICH: Physical Hybrid ARQ Indicator Channel).
- An uplink physical channel is configured by a physical uplink shared channel (PUSCH), a physical uplink control channel (PUCCH), and a physical random access channel (PRACH: Physical Random Access channel).
- PUSCH physical uplink shared channel
- PUCCH Physical Uplink control channel
- PRACH Physical Random Access channel
- the physical broadcast channel maps the broadcast channel (BCH) at intervals of 40 milliseconds.
- the timing of 40 milliseconds is blind detection. That is, explicit signaling is not performed for timing presentation.
- a subframe including a physical broadcast channel (PBCH) can be decoded only by the subframe (self-decodable).
- the physical downlink control channel includes physical downlink shared channel (PDSCH) resource allocation, hybrid automatic repeat request (HARQ) information for downlink data, and physical uplink shared channel (PUSCH). This is a channel used to notify the mobile station apparatus of the uplink transmission permission that is the resource allocation.
- the PDDCH is configured by a plurality of control channel elements (CCE: Control Channel Element), and the mobile station apparatus receives the PDCCH from the base station apparatus by detecting the PDCCH configured by the CCE.
- CCE Control Channel Element
- the CCE is composed of a plurality of resource element groups (REG: Resource Element Group, also referred to as mini-CCE) distributed in the frequency and time domains.
- REG Resource Element Group
- the resource element is a unit resource composed of one OFDM symbol (time component) and one subcarrier (frequency component).
- REG is a downlink pilot channel in the frequency domain within the same OFDM symbol. Except for this, it is composed of four downlink resource elements that are continuous in the frequency domain.
- one PDCCH is composed of one, two, four, and eight CCEs having consecutive CCE identification numbers (CCE indexes).
- the PDCCH is encoded (Separate-Coding) separately for each mobile station device and for each type. That is, the mobile station apparatus detects a plurality of PDCCHs, and acquires information indicating downlink or uplink resource allocation and other control information.
- Each PDCCH has a CRC (Cyclic Redundancy Check) value that can identify the format, and the mobile station apparatus performs CRC for each CCE set in which the PDCCH can be configured, and the CRC succeeds.
- Get PDCCH This is called blind decoding, and the range of CCE sets in which the PDCCH in which the mobile station apparatus performs this blind decoding can be configured is called a search space.
- the mobile station apparatus performs blind decoding on the CCE in the search area and detects the PDCCH.
- the mobile station device uses the physical downlink shared channel (PDSCH) according to the resource allocation indicated by the PDCCH from the base station device.
- Data downlink data (downlink shared channel (DL-SCH)) and / or downlink control data). That is, this PDCCH is a signal for performing resource allocation for the downlink (hereinafter referred to as “downlink transmission permission signal” or “downlink grant”).
- the PDCCH includes an uplink shared channel resource allocation
- the mobile station device uses the physical uplink shared channel (PUSCH) according to the resource allocation indicated by the PDCCH from the base station device.
- Uplink data uplink shared channel (UL-SCH)
- uplink control data is transmitted. That is, the PDCCH is a signal that permits data transmission on the uplink (hereinafter referred to as an “uplink transmission permission signal” or “uplink grant”).
- the physical downlink shared channel is a channel used for transmitting downlink data (downlink shared channel: DL-SCH) or paging information (paging channel: PCH).
- the physical multicast channel is a channel used for transmitting the multicast channel (MCH), and a downlink reference signal, an uplink reference signal, and a physical downlink synchronization signal are separately arranged.
- downlink data indicates transmission of user data
- DL-SCH is a transport channel.
- HARQ and dynamic adaptive radio link control are supported, and beamforming can be used.
- the DL-SCH supports dynamic resource allocation and semi-static resource allocation.
- the physical uplink shared channel is a channel mainly used for transmitting uplink data (uplink shared channel: UL-SCH).
- control data is also transmitted using PUSCH.
- the control data includes channel state information such as downlink channel quality identifier CQI (Channel Quality Indicator), precoding matrix identifier PMI (Precoding Matrix Indicator), rank identifier RI (Rank Rank Indicator), and downlink transmission (downlink).
- CQI Channel Quality Indicator
- PMI Precoding Matrix Indicator
- rank RI Rank Rank Indicator
- downlink transmission downlink transmission
- HARQ ACK / NACK for transport block is included.
- uplink data indicates, for example, transmission of user data
- UL-SCH is a transport channel.
- HARQ and dynamic adaptive radio link control are supported, and beamforming can be used.
- UL-SCH supports dynamic resource allocation and quasi-static resource allocation.
- RRC signaling Radio (Resource Control Signaling”) exchanged between the base station apparatus and the mobile station apparatus.
- RRC signaling Radio (Resource Control Signaling”) exchanged between the base station apparatus and the mobile station apparatus.
- MAC Medium Access Control
- the physical uplink control channel is a channel used for transmitting control data.
- the control data is, for example, channel state information (CQI, PMI, RI) transmitted (feedback) from the mobile station apparatus to the base station apparatus, and resource allocation for the mobile station apparatus to transmit uplink data.
- Scheduling request (SR: Scheduling Request), HARQ ACK / NACK for downlink transmission (downlink transport block), and the like are included.
- the physical control format indication channel is a channel used to notify the mobile station apparatus of the number of OFDM symbols used for PDCCH, and is transmitted in each subframe.
- the physical hybrid automatic repeat request instruction channel is a channel used for transmitting ACK / NACK used for HARQ of uplink data.
- the physical random access channel is a channel used for transmitting a random access preamble and has a guard time.
- the mobile communication system includes a base station device 100 and a mobile station device 200.
- FIG. 2 is a block diagram showing a schematic configuration of the base station apparatus 100 according to the embodiment of the present invention.
- the base station apparatus 100 includes a data control unit 101, a transmission data modulation unit 102, a radio unit 103, a scheduling unit 104, a channel estimation unit 105, a received data demodulation unit 106, a data extraction unit 107, and an upper layer. 108 and an antenna 109.
- the radio unit 103, the scheduling unit 104, the channel estimation unit 105, the reception data demodulation unit 106, the data extraction unit 107, the upper layer 108 and the antenna 109 constitute a reception unit
- the radio unit 103, the scheduling unit 104, the upper layer 108, and the antenna 109 constitute a transmission unit.
- the antenna 109, the radio unit 103, the channel estimation unit 105, the reception data demodulation unit 106, and the data extraction unit 107 perform processing on the uplink physical layer.
- the antenna 109, the radio unit 103, the transmission data modulation unit 102, and the data control unit 101 perform downlink physical layer processing.
- the data control unit 101 receives a transport channel from the scheduling unit 104.
- the data control unit 101 maps the transport channel and the signal and channel generated in the physical layer to the physical channel based on the scheduling information input from the scheduling unit 104.
- Each piece of data mapped as described above is output to transmission data modulation section 102.
- the transmission data modulation unit 102 modulates transmission data to the OFDM scheme.
- the transmission data modulation unit 102 performs data modulation, coding, and coding on the data input from the data control unit 101 based on the scheduling information from the scheduling unit 104 and the modulation scheme and coding scheme corresponding to each PRB.
- Input signal serial / parallel conversion, IFFT (Inverse Fourier Transform) processing, CP (Cyclic Prefix) insertion, filtering, and other signal processing are performed to generate transmission data, and to the wireless unit 103 Output.
- the scheduling information includes downlink physical resource block PRB (Physical Resource Block) allocation information, for example, physical resource block position information composed of frequency and time, and the modulation scheme and encoding corresponding to each PRB.
- the scheme includes, for example, information such as a modulation scheme: 16QAM and a coding rate: 2/3 coding rate.
- the radio unit 103 up-converts the modulation data input from the transmission data modulation unit 102 to a radio frequency to generate a radio signal, and transmits the radio signal to the mobile station apparatus 200 via the antenna 109.
- Radio section 103 receives an uplink radio signal from mobile station apparatus 200 via antenna 109, down-converts it into a baseband signal, and receives received data as channel estimation section 105 and received data demodulation section 106. And output.
- the scheduling unit 104 performs processing of a medium access control (MAC: Medium Access Control) layer.
- the scheduling unit 104 performs mapping between logical channels and transport channels, downlink and uplink scheduling (HARQ processing, selection of transport format, etc.), and the like. Since the scheduling unit 104 controls the processing units of each physical layer in an integrated manner, the scheduling unit 104, the antenna 109, the radio unit 103, the channel estimation unit 105, the reception data demodulation unit 106, the data control unit 101, the transmission data modulation There is an interface between the unit 102 and the data extraction unit 107 (not shown).
- MAC Medium Access Control
- the scheduling unit 104 receives feedback information (uplink channel state information (CQI, PMI, RI), ACK / NACK information for downlink data, etc.) received from the mobile station apparatus 200, each mobile station Downlink transport format (transmission form, ie, allocation of physical resource blocks) for modulating each data based on PRB information usable by the apparatus, buffer status, scheduling information input from higher layer 108, etc. And modulation scheme and coding scheme), HARQ retransmission control, and scheduling information used for downlink.
- the scheduling information used for downlink scheduling is output to the data control unit 101.
- the scheduling unit 104 estimates the uplink channel state (radio channel state) output from the channel estimation unit 105, the resource allocation request from the mobile station device 200, and each mobile station device 200. Based on the available PRB information, scheduling information input from the higher layer 108, etc., an uplink transport format for modulating each data (transmission form, ie, physical resource block allocation and modulation scheme and Encoding information and the like, and scheduling information used for uplink scheduling. Scheduling information used for uplink scheduling is output to the data control unit 101.
- the scheduling unit 104 maps the downlink logical channel input from the higher layer 108 to the transport channel, and outputs it to the data control unit 101.
- the scheduling unit 104 processes the control data and the transport channel acquired in the uplink input from the data extraction unit 107 as necessary, maps them to the uplink logical channel, and outputs them to the upper layer 108. To do.
- the channel estimation unit 105 estimates an uplink channel state from an uplink demodulation reference signal (DRS: Demodulation Reference Signal) for demodulation of uplink data, and outputs the estimation result to the reception data demodulation unit 106. . Further, in order to perform uplink scheduling, an uplink channel state is estimated from an uplink measurement reference signal (SRS: Sounding Reference Signal), and the estimation result is output to the scheduling section 104.
- DRS Demodulation Reference Signal
- Received data demodulator 106 also serves as an OFDM demodulator and / or DFT-Spread-OFDM (DFT-S-OFDM) demodulator that demodulates received data modulated in the OFDM scheme and / or SC-FDMA scheme. Yes. Based on the uplink channel state estimation result input from the channel estimation unit 105, the reception data demodulation unit 106 performs DFT conversion, subcarrier mapping, IFFT conversion, filtering, and the like on the modulation data input from the radio unit 103. Are subjected to demodulation processing and output to the data extraction unit 107.
- DFT-S-OFDM DFT-Spread-OFDM
- the data extraction unit 107 confirms the correctness of the data input from the reception data demodulation unit 106 and outputs a confirmation result (positive signal ACK / negative signal NACK) to the scheduling unit 104.
- the data extraction unit 107 separates the data input from the reception data demodulation unit 106 into a transport channel and physical layer control data, and outputs the data to the scheduling unit 104.
- the separated control data includes channel state information (CQI, PMI, RI) notified from the mobile station apparatus 200, ACK / NACK information, a scheduling request, and the like.
- the upper layer 108 performs processing of a packet data integration protocol (PDCP: Packet Data Convergence Protocol) layer, a radio link control (RLC: Radio Link Control) layer, and a radio resource control (RRC: Radio Resource Control) layer.
- PDCP Packet Data Convergence Protocol
- RLC Radio Link Control
- RRC Radio Resource Control
- the upper layer 108 integrates and controls the processing units of the lower layer, so the upper layer 108, the scheduling unit 104, the antenna 109, the radio unit 103, the channel estimation unit 105, the received data demodulation unit 106, the data control unit 101, There is an interface between the transmission data modulation unit 102 and the data extraction unit 107 (not shown).
- the upper layer 108 has a radio resource control unit 110 (also referred to as a control unit). Further, the radio resource control unit 110 manages various setting information, system information, paging control, communication state management of each mobile station device, mobility management such as handover, management of buffer status for each mobile station device, Management of unicast and multicast bearer connection settings, management of mobile station identifiers (UEID), and the like are performed.
- the upper layer 108 exchanges information with another base station apparatus and information with an upper node.
- FIG. 3 is a block diagram showing a schematic configuration of the mobile station apparatus 200 according to the embodiment of the present invention.
- the mobile station apparatus 200 includes a data control unit 201, a transmission data modulation unit 202, a radio unit 203, a scheduling unit 204, a channel estimation unit 205, a reception data demodulation unit 206, a data extraction unit 207, and an upper layer. 208 and an antenna 209.
- the data control unit 201, transmission data modulation unit 202, radio unit 203, scheduling unit 204, higher layer 208, and antenna 209 constitute a transmission unit
- the radio unit 203, scheduling unit 204, channel estimation unit 205, received data demodulation unit Unit 206, data extraction unit 207, upper layer 208, and antenna 209 constitute a reception unit.
- the data control unit 201, the transmission data modulation unit 202, and the radio unit 203 perform processing of the uplink physical layer.
- the radio unit 203, the channel estimation unit 205, the received data demodulation unit 206, and the data extraction unit 207 perform downlink physical layer processing.
- the data control unit 201 receives the transport channel from the scheduling unit 204.
- the transport channel and the signal and channel generated in the physical layer are mapped to the physical channel based on the scheduling information input from the scheduling unit 204.
- Each piece of data mapped in this way is output to transmission data modulation section 202.
- the transmission data modulation unit 202 modulates the transmission data into the OFDM scheme and / or the SC-FDMA scheme.
- the transmission data modulation unit 202 performs data modulation, DFT (Discrete Fourier Transform) processing, subcarrier mapping, IFFT (Inverse Fast Fourier Transform) processing, CP insertion, filtering, and other signals on the data input from the data control unit 201. Processing is performed, transmission data is generated, and output to the wireless unit 203.
- DFT Discrete Fourier Transform
- subcarrier mapping subcarrier mapping
- IFFT Inverse Fast Fourier Transform
- the radio unit 203 up-converts the modulation data input from the transmission data modulation unit 202 to a radio frequency to generate a radio signal, and transmits the radio signal to the base station apparatus 100 via the antenna 209.
- Radio section 203 receives a radio signal modulated with downlink data from base station apparatus 100 via antenna 209, down-converts it to a baseband signal, and receives the received data as channel estimation section 205. And output to the received data demodulation section 206.
- the scheduling unit 204 performs processing of a medium access control (MAC: Medium Access Control) layer.
- the scheduling unit 104 performs mapping between logical channels and transport channels, downlink and uplink scheduling (HARQ processing, selection of transport format, etc.), and the like. Since the scheduling unit 204 controls the processing units of each physical layer in an integrated manner, the scheduling unit 204, the antenna 209, the data control unit 201, the transmission data modulation unit 202, the channel estimation unit 205, the reception data demodulation unit 206, the data There is an interface between the extraction unit 207 and the wireless unit 203 (not shown).
- MAC Medium Access Control
- the scheduling unit 204 controls reception of transport channels, physical signals, and physical channels based on scheduling information (transport format and HARQ retransmission information) from the base station apparatus 100 and the upper layer 208, and the like. Scheduling information used for HARQ retransmission control and downlink scheduling is generated. The scheduling information used for downlink scheduling is output to the data control unit 201.
- scheduling information transport format and HARQ retransmission information
- the scheduling unit 204 receives the uplink buffer status input from the higher layer 208 and uplink scheduling information from the base station apparatus 100 input from the data extraction unit 207 (transport format and HARQ retransmission). Information), and scheduling processing for mapping the uplink logical channel input from the upper layer 208 to the transport channel and the uplink scheduling based on the scheduling information input from the upper layer 208, etc. Scheduling information to be generated is generated. Note that the information notified from the base station apparatus 100 is used for the uplink transport format. The scheduling information is output to the data control unit 201.
- the scheduling unit 204 maps the uplink logical channel input from the higher layer 208 to the transport channel, and outputs it to the data control unit 201. Further, the scheduling unit 204 also uses the data control unit 201 for the downlink channel state information (CQI, PMI, RI) input from the channel estimation unit 205 and the CRC check confirmation result input from the data extraction unit 207. Output to. In addition, the scheduling unit 204 processes the control data and the transport channel acquired in the downlink input from the data extraction unit 207 as necessary, maps them to the downlink logical channel, and outputs them to the upper layer 208. To do.
- CQI, PMI, RI downlink channel state information
- the channel estimation unit 205 estimates the downlink channel state from the downlink reference signal (RS) and demodulates the downlink data, and outputs the estimation result to the reception data demodulation unit 206. Further, the channel estimation unit 205 estimates the downlink channel state from the downlink reference signal (RS) in order to notify the base station apparatus 100 of the estimation result of the downlink channel state (radio channel state), This estimation result is converted into downlink channel state information (CQI, PMI, RI, etc.) and output to scheduling section 204.
- RS downlink reference signal
- Received data demodulation section 206 demodulates received data modulated by the OFDM method.
- Reception data demodulation section 206 performs demodulation processing on the modulated data input from radio section 203 based on the downlink channel state estimation result input from channel estimation section 205 and outputs the result to data extraction section 207. To do.
- the data extraction unit 207 performs a CRC check on the data input from the reception data demodulation unit 206, confirms the correctness and outputs a confirmation result (acknowledgment ACK / negative response NACK) to the scheduling unit 204.
- the data extraction unit 207 separates the data input from the reception data demodulation unit 206 into transport channel and physical layer control data, and outputs the data to the scheduling unit 204.
- the separated control data includes scheduling information such as downlink or uplink resource allocation and uplink HARQ control information.
- the upper layer 208 performs processing of a packet data integration protocol (PDCP: Packet Data Convergence Protocol) layer, a radio link control (RLC: Radio Link Control) layer, and a radio resource control (RRC: Radio Resource Control) layer.
- PDCP Packet Data Convergence Protocol
- RLC Radio Link Control
- RRC Radio Resource Control
- the upper layer 208 integrates and controls the processing units of the lower layer, so that the upper layer 208, the scheduling unit 204, the antenna 209, the data control unit 201, the transmission data modulation unit 202, the channel estimation unit 205, the reception data demodulation unit 206, an interface between the data extraction unit 207 and the radio unit 203 exists (not shown).
- the upper layer 208 has a radio resource control unit 210 (also referred to as a control unit).
- the radio resource control unit 210 manages various setting information, system information, paging control, own station communication status, mobility management such as handover, buffer status management, unicast and multicast bearer connection setting. Management and management of mobile station identifier (UEID).
- UEID mobile station identifier
- the base station apparatus uses a plurality of PDCCHs arranged in one downlink carrier element, and a carrier element in which a plurality of PDCCHs are arranged or a plurality of PDCCHs are arranged.
- a plurality of PDSCHs arranged in carrier elements different from the carrier elements are allocated, and a plurality of downlink transport blocks are transmitted to the mobile station apparatus in the same subframe using the allocated PDSCHs.
- the mobile station apparatus bundling control signals in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks within one carrier element of the uplink corresponding to one carrier element of the downlink.
- the data is transmitted to the base station apparatus in a bundle (in a lump) or multiplexed (using a plurality of bits).
- the base station apparatus performs bundling or multiplexing a plurality of PDCCHs and / or a plurality of downlink transformers in one uplink carrier element corresponding to one downlink carrier element in which a plurality of PDCCHs are arranged.
- a control signal in HARQ for the port block is received from the mobile station apparatus.
- control signal (control information) in HARQ transmitted from the mobile station apparatus to the base station apparatus is a signal (information) indicating ACK / NACK and / or a signal indicating DTX for the PDCCH and / or downlink transport block.
- Information is a signal (information) indicating that the mobile station apparatus has not been able to detect the PDCCH from the base station apparatus.
- the frequency band is defined by the bandwidth (Hz), but may be defined by the number of resource blocks (RB) configured by the frequency and time.
- the carrier element in this embodiment indicates a (narrow band) frequency band used when a base station apparatus and a mobile station apparatus perform communication in a mobile communication system having a (wide band) system band.
- the base station apparatus and the mobile station apparatus aggregate a plurality of carrier elements (for example, five frequency bands having a bandwidth of 20 MHz) (frequency band aggregation: also called Spectrum aggregation, Carrier aggregation, Frequency aggregation, etc.)
- frequency band aggregation also called Spectrum aggregation, Carrier aggregation, Frequency aggregation, etc.
- a (broadband) system band for example, a DL / UL system band having a bandwidth of 100 MHz
- carrier elements for example, a DL / UL system band having a bandwidth of 100 MHz
- the carrier element is a frequency band (for example, a frequency band having a bandwidth of 20 MHz) that constitutes this (wide band) system band (for example, a DL / UL system band having a bandwidth of 100 MHz). ) Indicates each. That is, the downlink carrier element has a part of the frequency band that can be used when the base station apparatus and the mobile station apparatus transmit and receive downlink information, and the uplink carrier element is The base station device and the mobile station device have a part of the bandwidth that can be used when uplink information is transmitted and received.
- the carrier element may be defined as a unit in which a specific physical channel (for example, PDCCH, PUCCH, etc.) is configured.
- the carrier element may be arranged in a continuous frequency band or a discontinuous frequency band, and a plurality of carrier elements that are continuous and / or discontinuous frequency bands are aggregated.
- a wide system band can be configured.
- the downlink frequency band (DL system band, DL system bandwidth) configured by carrier elements and the uplink frequency band (UL system band, UL system bandwidth) need not be the same bandwidth. Even if the DL system band and the UL system band have different bandwidths, the base station apparatus and the mobile station apparatus can perform communication using those frequency bands (the above-mentioned asymmetric frequency band aggregation: Asymmetric carrier aggregation). ).
- FIG. 4 is a diagram illustrating an example of a mobile communication system to which the first embodiment can be applied.
- FIG. 4 shows five downlink carrier elements (20 MHz bandwidth elements each having a frequency band used for downlink communication having a bandwidth of 100 MHz).
- DCC1, DCC2, DCC3, DCC4, DCC5 the frequency band used for uplink communication with a bandwidth of 100 MHz is configured by five uplink carrier elements (UCC1, UCC2, UCC3, UCC4, UCC5) each having a bandwidth of 20 MHz.
- UCC1, UCC2, UCC3, UCC4, UCC5 each having a bandwidth of 20 MHz. It shows that.
- a downlink / uplink channel is arranged in each downlink / uplink carrier element.
- the base station apparatus can allocate a plurality of PDSCHs using a plurality of PDCCHs arranged in one carrier element of the downlink.
- the base station apparatus uses three PDCCHs (PDCCHs indicated by diagonal lines, grid lines, and network lines) arranged in DCC 3, and sets PDSCHs arranged in DCC 1, DCC 2, and DCC 4.
- Assigned (PDSCH arranged in DCC1 by PDCCH indicated by diagonal lines, PDSCH arranged in DCC2 by PDCCH indicated by grid lines, and PDSCH arranged in DCC4 by PDCCH indicated by network lines) )It is shown that.
- the base station apparatus can transmit (up to three) downlink transport blocks to the mobile station apparatus in the same subframe using PDSCH arranged in DCC1, DCC2, and DCC4.
- a carrier element instruction (Component Carrier Indicator) is assigned to each of the plurality of PDCCHs.
- the base station apparatus can transmit to the mobile station apparatus including information indicating a carrier element instruction indicating which PDSCH is assigned to each PDCCH by a plurality of PDCCHs. For example, in FIG. 4, the base station apparatus assigns information indicating a carrier element indication indicating that the DCSCH PDSCH is assigned to the PDCCH indicated by diagonal lines, and assigns the DCC2 PDSCH is indicated by the PDCCH indicated by grid lines. Is transmitted to the mobile station apparatus, including information indicating the carrier element instruction indicating that the PDSCH of DCC4 is allocated by the PDCCH indicated by the network line.
- the base station apparatus when the PDCCH is allocated in one downlink carrier element, can be allocated in association with the PDSCH assigned by the PDCCH and transmitted to the mobile station apparatus. For example, in FIG. 4, the base station apparatus places the PDCCH indicated by diagonal lines in association with the PDSCH of DCC1 in one downlink carrier element, and associates the PDCCH indicated by grid lines with the PDSCH of DCC2 in downlink.
- the PDCCH indicated by the network line is associated with the PDSCH of DCC4 and is arranged in one downlink carrier element, and is transmitted to the mobile station apparatus.
- the mobile station apparatus associates the order in which the PDCCH arranged in one downlink carrier element is detected with the PDSCH assigned by the PDCCH, and the mobile station apparatus first detects the PDSCH of the DCC 1 and then the PDSCH of the DCC 1
- the PDCCH to be detected can be assigned to the PDSCH of DCC2
- the PDCCH to be detected next can be assigned to the PDSCH of DCC3
- the PDCCH to be detected next can be assigned to the PDSCH of DCC4
- the PDCCH to be detected next can be assigned to the PDSCH of DCC5.
- the mobile station apparatus transmits a control signal in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks from the base station apparatus to an uplink corresponding to one carrier element of a downlink in which the plurality of PDCCHs are arranged. Bundling or multiplexing within one carrier element can be transmitted to the base station apparatus.
- the mobile station apparatus performs a plurality of PDCCHs transmitted from the base station apparatus using DCC3 and / or downlink transport blocks transmitted using the DCSCHs of DCC1, DCC2, and DCC4. It shows that a control signal in HARQ is bundled or multiplexed in UCC3 corresponding to DCC3 and transmitted to the base station apparatus using PUCCH of UCC3.
- the mobile station apparatus bundling the control signal in HARQ and transmitting it to the base station apparatus is based on the control signal (control information) in HARQ for each of a plurality of PDCCHs and / or a plurality of downlink transport blocks.
- the control signal (control information) in one HARQ is calculated (generated), and the calculated control signal (control information) in one HARQ is transmitted to the base station apparatus.
- the mobile station apparatus calculates a logical sum of control signals indicating HARQ ACK / NACK (control signals in HARQ) for each of a plurality of downlink transport blocks, thereby controlling one ACK / NACK control signal ( (Control signal in HARQ) can be transmitted to the base station apparatus. That is, in FIG.
- the mobile station apparatus uses a control signal (indicating HARQ ACK / NACK for each downlink transport block transmitted in the same subframe using the PDSCH of DCC1, DCC2, and DCC4 from the base station apparatus).
- the logical sum of the control signals in HARQ is calculated and transmitted to the base station apparatus as a control signal indicating one ACK / NACK (control signal in HARQ).
- the mobile station apparatus multiplexes HARQ control signals and transmits the multiplexed signals to the base station apparatus from the HARQ control signals (control information) for each of a plurality of PDCCHs and / or a plurality of downlink transport blocks. It is expressed using a plurality of control signals (control information) below signals (information) necessary for expressing the combination, and transmitted to the base station apparatus.
- the mobile station apparatus can express a control signal indicating HARQ ACK / NACK for each of a plurality of downlink transport blocks (control signal in HARQ) using a plurality of bits and transmit the control signal to the base station apparatus. . That is, in FIG.
- the mobile station apparatus uses a control signal (indicating HARQ ACK / NACK for each downlink transport block transmitted in the same subframe using the PDSCH of DCC1, DCC2, and DCC4 from the base station apparatus).
- a control signal in HARQ is expressed using a plurality of bits and transmitted to the base station apparatus.
- the mobile station apparatus performs bundling or multiplexing of control signals in HARQ within one carrier element of the uplink corresponding to one carrier element of the downlink where a plurality of PDCCHs are arranged.
- FIG. 4 shows that the mobile station apparatus performs bundling or multiplexing of control signals in HARQ in UCC 3 corresponding to DCC 3 in which a plurality of PDCCHs are arranged.
- the base station apparatus uses the broadcast information to broadcast the correspondence between one downlink carrier element in which a plurality of PDCCHs are arranged and one uplink carrier element in each downlink carrier element (using a broadcast channel). And can be set cell-specific.
- the base station apparatus transmits a radio resource control signal (hereinafter referred to as RRC) that transmits, for each mobile station apparatus, an association between one downlink carrier element in which a plurality of PDCCHs are arranged and one uplink carrier element. Signaling) can be set specific to the mobile station apparatus.
- RRC radio resource control signal
- the base station apparatus can set one downlink carrier element in which a plurality of PDCCHs are arranged to be cell-specific or mobile station apparatus-specific using a broadcast channel or RRC signaling. .
- the base station apparatus moves one uplink carrier element from which the mobile station apparatus transmits a control signal in HARQ using a broadcast channel or RRC signaling in a cell-specific manner or a mobile station device-specific manner. It can be set in the station device.
- the base station apparatus uses the broadcast information broadcast on each downlink carrier element (using the broadcast channel) to generate a PUCCH resource (PUCCH resource region) for the mobile station apparatus to transmit a control signal in HARQ. Can be directed. Moreover, the base station apparatus can instruct
- the base station apparatus arranges a control signal in HARQ in which area of the PUCCH resource area by the mobile station apparatus depending on the position in the PDCCH resource (PDCCH resource area) of the PDCCH arranged in one carrier element of the downlink. It is possible to specify transmission (which region in the PUCCH resource region is used to transmit a control signal in HARQ). That is, the mobile station apparatus determines whether a plurality of PDCCHs arranged in one downlink carrier element are arranged in a PDCCH resource (PDCCH resource region) or a broadcast channel or RRC signaling.
- the control signal in HARQ can be arranged on the PUCCH in the PUCCH resource region set in step 1 and transmitted to the base station apparatus.
- the correspondence between the plurality of PDCCHs arranged in one carrier element of the downlink and each PUCCH is defined by, for example, associating the CCE index at the head of the CCE constituting each PDCCH with the index of each PUCCH. Is done.
- the base station apparatus uses a broadcast channel or RRC signaling, and one downlink carrier element (DCC3) in which a plurality of PDCCHs are arranged and one uplink carrier element ( UCC3) is associated. Also, it is indicated that the base station apparatus indicates a PUCCH resource (PUCCH resource area) of UCC3 for transmitting a control signal in HARQ using the broadcast channel or RRC signaling. ing.
- DCC3 downlink carrier element
- UCC3 uplink carrier element
- the mobile station apparatus depending on the position in the PDCCH resource region of a plurality of PDCCHs (PDCCHs indicated by oblique lines, lattice lines, and network lines) arranged in the DCC 3, PUCCHs (oblique lines, lattice lines, This indicates that the HARQ control signal is allocated to the PUCCH indicated by the network line and transmitted to the base station apparatus (in FIG.
- the top of the CCEs constituting the PDCCH indicated by the diagonal line CCE index and PUCCH index indicated by diagonal lines, CCE index at the beginning of CCE constituting PDCCH indicated by grid lines, PUCCH index indicated by grid lines, and CCE leading CCEs constituting PDCCH indicated by network lines (The index and the PUCCH index indicated by the network line correspond)
- a mobile station apparatus bundles a control signal in HARQ and transmits it to the base station apparatus, a plurality of PDCCHs arranged in one downlink carrier element (positions of a plurality of PDCCHs in a PDCCH resource region) ), For example, is transmitted as 1-bit information (for example, information indicating ACK or NACK) to the base station apparatus (when transmitting MIMO, 2-bit information) Send).
- the mobile station apparatus further determines several bits of information depending on which PUCCH region is used among the PUCCH-arrangeable regions specified according to the detected positions of the plurality of PDCCHs and the number of PDCCHs. Can be transmitted to the base station apparatus. For example, in FIG.
- the mobile station apparatus uses three PUCCH areas corresponding to three PDCCHs arranged in one carrier element (DCC3) in the downlink, and further selects these three PUCCH areas.
- DCC3 carrier element
- a total of six types of information can be transmitted to the base station apparatus.
- three PUCCHs corresponding to the three PDCCHs are arranged in one uplink carrier element (UCC3), and the mobile station apparatus uses one downlink carrier element.
- UCC3 uplink carrier element
- DCC3 downlink carrier element
- the mobile station apparatus bundles the control signal in HARQ and transmits it to the base station apparatus using any one of the plurality of PUCCHs corresponding to the plurality of PDCCHs.
- the mobile station apparatus uses a PUCCH corresponding to a specific PDCCH among a plurality of PDCCHs arranged in one carrier element of the downlink, and transmits a control signal in HARQ that is bundled to the base station apparatus. Can be sent to.
- the mobile station apparatus transmits a bundled HARQ control signal using a PUCCH corresponding to a specific PDCCH, so that the base station apparatus can transmit a PUCCH (mobile station apparatus with a HARQ control signal). From the PUCCH in which the control signal in HARQ is arranged), it is possible to detect up to which PDCCH the mobile station apparatus has received (detected) from among a plurality of PDCCH arranged in one downlink carrier element.
- the base station apparatus receives the control signal in HARQ. It is possible to detect up to which PDCCH the mobile station apparatus has received (detected) from the arranged PUCCH. At this time, the order in which the mobile station apparatus searches for a plurality of PDCCHs is defined.
- the mobile station apparatus detects a plurality of PDCCHs (PDCCHs indicated by diagonal lines, grid lines, and network lines) arranged in one downlink carrier element (DCC3) in the direction in which the CCE index increases. Then, using the PUCCH corresponding to the PDCCH detected last, a bundled HARQ control signal can be transmitted to the base station apparatus.
- the mobile station apparatus detects the PDCCH in the order of PDCCH indicated by diagonal lines, PDCCH indicated by grid lines, and PDCCH indicated by network lines as the direction in which the CCE index increases, and the PDCCH indicated by the last detected network line is detected.
- the base station apparatus receives (detects) the PDCCH indicated by the network line by transmitting the bundled HARQ control signal to the base station apparatus using the PUCCH indicated by the corresponding network line.
- the mobile station apparatus transmits a control signal in HARQ using the PUCCH indicated by the network line, so that the base station apparatus is able to detect the mobile station apparatus up to the PDCCH indicated by the network line. It is possible to detect that it has been received (detected)).
- the mobile station apparatus transmits a control signal in HARQ to the base station apparatus using a PUCCH corresponding to a specific CCE index among a plurality of PDCCHs detected in one carrier element of the downlink.
- the base station apparatus determines to which PDCCH the mobile station apparatus has received (detected) from the PUCCH in which the control signal in HARQ is arranged (PUCCH in which the mobile station apparatus arranges the control signal in HARQ). Can be detected.
- the mobile station apparatus detects and detects a plurality of PDCCHs (PDCCHs indicated by oblique lines, grid lines, and network lines) arranged in one downlink carrier element (DCC3) in an arbitrary order. Then, using the PUCCH corresponding to the PDCCH having the largest (or smallest) CCE index among the CCEs constituting the PDCCH, the bundled HARQ control signal is transmitted to the base station apparatus.
- PDCCHs indicated by oblique lines, grid lines, and network lines
- DCC3 downlink carrier element
- the mobile station apparatus detects the PDCCH indicated by diagonal lines, the PDCCH indicated by grid lines, and the PDCCH indicated by network lines in an arbitrary order, and the CCE index constituting the PDCCH indicated by network lines is the largest (or In the case of the smallest), the PUCCH indicated by the network line is used to transmit a HARQ control signal to the base station apparatus.
- the base station apparatus detects that the mobile station apparatus has received (detected) the PDCCH indicated by the network line because the mobile station apparatus transmits the control signal in HARQ using the PUCCH indicated by the network line. be able to.
- the mobile station apparatus transmits a control signal in HARQ using a specific PUCCH among a plurality of PUCCHs arranged in one uplink carrier element corresponding to a plurality of PDCCHs.
- the base station apparatus can detect up to which PDCCH the mobile station apparatus has received (detected).
- the mobile station apparatus has the largest (or smallest) index among a plurality of PUCCHs (PUCCHs indicated by diagonal lines, grid lines, and network lines) arranged in one carrier element of the uplink.
- a control signal in HARQ is transmitted to the base station apparatus using PUCCH indicated by a network line.
- the base station apparatus detects that the mobile station apparatus has received (detected) the PDCCH indicated by the network line because the mobile station apparatus transmits the control signal in HARQ using the PUCCH indicated by the network line. be able to.
- the base station apparatus and the mobile station apparatus can receive (detect) up to the HARQ control signal and / or the mobile station apparatus. For example, (ACK, received up to the shaded PDCCH), (NACK, received up to the shaded PDCCH), (ACK, received up to the grid PDCCH), (NACK, received up to the grid PDCCH), ( Signals (information) such as ACK, reception up to network PDCCH, and (NACK, reception up to network PDCCH) can be transmitted and received.
- the mobile station apparatus can transmit a signal indicating NACK to the base station apparatus when detecting DTX for at least one PDCCH among the plurality of PDCCHs.
- the base station apparatus transmits, for example, 1-bit or 2-bit information on one PUCCH according to a preset format. Can be sent to.
- the mobile station apparatus further determines several bits of information depending on which PUCCH region is used among the PUCCH-arrangeable regions specified according to the detected positions of the plurality of PDCCHs and the number of PDCCHs. Can be transmitted to the base station apparatus. For example, in FIG.
- the base station device and the mobile station device can use, for example, (ACK, ACK, ACK), (ACK, (ACK, NACK), (ACK, ACK, DTX), (ACK, NACK, ACK), (ACK, NACK, NACK), (ACK, NACK, DTX), (NACK, NACK, ACK), (NACK, NACK, Signals (information) mapped in advance such as (NACK), (NACK, NACK, DTX), (ACK, DTX, ACK), (ACK, DTX, NACK), (ACK, DTX, DTX) can be transmitted and received. .
- NACK and DTX can be combined and transmitted.
- the base station device and the mobile station device can transmit and receive signals such as (ACK, ACK, NACK / DTX)).
- FIG. 5 is a diagram showing another example of a mobile communication system to which the first embodiment can be applied.
- FIG. 5 shows, as an example for explaining the first embodiment, five downlink carrier elements (20 MHz bandwidth elements each having a frequency band used for downlink communication having a bandwidth of 100 MHz). DCC1, DCC2, DCC3, DCC4, DCC5). Also, it is shown that the frequency band used for uplink communication having a bandwidth of 40 MHz is composed of two uplink carrier elements (UCC1, UCC2) each having a bandwidth of 20 MHz. Yes.
- a downlink / uplink channel is allocated to each downlink / uplink carrier element.
- the base station apparatus can allocate a plurality of PDSCHs using a plurality of PDCCHs arranged in one downlink carrier element.
- the base station apparatus uses three PDCCHs arranged in DCC3 (PDCCHs indicated by diagonal lines, grid lines, and network lines, respectively) to assign PDSCHs arranged in DCC1, DCC2, and DCC4. Indicates that it is assigned.
- the base station apparatus can transmit (up to three) downlink transport blocks to the mobile station apparatus in the same subframe using PDSCH arranged in DCC1, DCC2, and DCC4.
- the base station apparatus allocates a plurality of PDSCHs using a plurality of PDCCHs arranged in one downlink carrier element by using an explicit allocation method as described above or an implicit allocation method. Can be used.
- the mobile station apparatus transmits a control signal in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks in one carrier element of the uplink corresponding to one carrier element of the downlink in which the plurality of PDCCHs are arranged. Can be bundled or multiplexed and transmitted to the base station apparatus.
- the method as described above can be used as a method in which the mobile station apparatus transmits the control signal in HARQ to the base station apparatus by bundling or multiplexing the control signal.
- the mobile station apparatus performs a plurality of PDCCHs transmitted from the base station apparatus using DCC3 and / or downlink transport blocks transmitted using the DCSCHs of DCC1, DCC2, and DCC4. It shows that control signals in HARQ are bundled or multiplexed in UCC1 corresponding to DCC3 and transmitted to the base station apparatus using PUCCH of UCC1.
- the base station apparatus uses a broadcast channel or RRC signaling to associate one downlink downlink carrier element in which a plurality of PDCCHs are arranged with one uplink carrier element, so that the cell It can be set unique or mobile station device specific.
- the base station apparatus indicates that the association between DCC3 and UCC1 is set for the mobile station apparatus using a broadcast channel or RRC signaling.
- the base station apparatus can set one downlink carrier element in which a plurality of PDCCHs are arranged to be cell-specific or mobile station apparatus-specific using a broadcast channel or RRC signaling.
- the base station apparatus sets one uplink carrier element from which the mobile station apparatus transmits a control signal in HARQ to be cell specific or mobile station apparatus specific using a broadcast channel or RRC signaling. can do.
- the base station apparatus allocates a plurality of PDSCHs using a plurality of PDCCHs arranged in one carrier element of the downlink, and assigns the allocated PDSCHs.
- a plurality of downlink transport blocks are used and transmitted to the mobile station apparatus in the same subframe.
- the mobile station apparatus transmits a control signal in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks in one carrier element of the uplink corresponding to one carrier element of the downlink in which the plurality of PDCCHs are arranged. And bundling or multiplexing and transmitting to the base station apparatus.
- the base station apparatus receives, from the mobile station apparatus, a control signal in HARQ that is bundled or multiplexed in one uplink carrier element corresponding to one downlink carrier element in which a plurality of PDCCHs are arranged. To do.
- the mobile station apparatus can perform one uplink carrier corresponding to one downlink carrier element in which a plurality of PDCCHs are arranged.
- the control signal in HARQ can be transmitted within the element, and the transmission power when transmitting the control signal in HARQ can be kept low.
- the base station apparatus can specify the PUCCH resource in which the mobile station apparatus arranges the control signal in HARQ by the position in the PDCCH resource area of each of the plurality of PDCCHs arranged in one carrier element of the downlink. Efficient allocation can be performed.
- the mobile station apparatus when the mobile station apparatus bundles and transmits the HARQ control signal to the base station apparatus, the mobile station apparatus transmits the HARQ control signal to the base station apparatus using a specific PUCCH, whereby the base station apparatus Can detect up to which PDCCH the mobile station apparatus has received (detected).
- the base station apparatus uses a plurality of physical downlink control channels arranged in one or a plurality of downlink carrier elements, a carrier element in which a plurality of PDCCHs are arranged, or , PDSCH allocated to a carrier element different from the carrier element where a plurality of PDCCHs are allocated is allocated, and a plurality of downlink transport blocks are transmitted to the mobile station apparatus in the same subframe using the allocated PDSCH .
- the mobile station apparatus bundles or multiplexes HARQ control signals for a plurality of physical downlink control channels and / or a plurality of downlink transport blocks for each downlink carrier element in which a plurality of PDCCHs are arranged.
- the base station apparatus receives, from the mobile station apparatus, a bundling or multiplexed HARQ control signal for each downlink carrier element in which a plurality of PDCCHs are arranged.
- control signal (control information) in HARQ transmitted from the mobile station apparatus to the base station apparatus is a signal (information) indicating ACK / NACK and / or a signal indicating DTX for the PDCCH and / or downlink transport block.
- Information a signal (information) indicating that the mobile station apparatus has not been able to detect the PDCCH from the base station apparatus.
- the method similar to the method demonstrated in 1st Embodiment can be used for the method in which a mobile station apparatus carries out the bundling or multiplexing of the control signal in HARQ to a base station apparatus.
- FIG. 6 is a diagram illustrating an example of a mobile communication system to which the second embodiment can be applied.
- FIG. 6 shows, as an example for explaining the second embodiment, five downlink carrier elements each having a bandwidth of 20 MHz as frequency bands used for downlink communication having a bandwidth of 100 MHz. DCC1, DCC2, DCC3, DCC4, DCC5). Further, the frequency band used for uplink communication with a bandwidth of 100 MHz is configured by five uplink carrier elements (UCC1, UCC2, UCC3, UCC4, UCC5) each having a bandwidth of 20 MHz. It shows that.
- a downlink / uplink channel is arranged in each downlink / uplink carrier element.
- the base station apparatus can allocate a plurality of PDSCHs using a plurality of PDCCHs arranged in one downlink or a plurality of carrier elements.
- the base station apparatus uses three PDCCHs (PDCCHs indicated by diagonal lines, grid lines, and network lines) arranged in DCC2, and uses PDSCHs arranged in DCC1, DCC2, and DCC3.
- Assigned (PDSCH arranged in DCC1 by the PDCCH indicated by diagonal lines, PDSCH arranged in DCC2 by PDCCH indicated by grid lines, and PDSCH arranged in DCC3 by PDCCH indicated by network lines) )It is shown that.
- the base station apparatus allocates PDSCHs arranged in DCC4 and DCC5 using two PDCCHs arranged in DCC4 (PDCCHs indicated by horizontal lines and dotted patterns, respectively) (in PDCCHs indicated by horizontal lines).
- PDSCH arranged in DCC4 is assigned to PDSCH arranged in DCC5 by PDCCH indicated by a dot pattern).
- the base station apparatus can transmit (up to 5) downlink transport blocks to the mobile station apparatus in the same subframe using PDSCH arranged in DCC1, DCC2, DCC3, DCC4, and DCC5. .
- a method in which the base station apparatus allocates a plurality of PDSCHs using a plurality of PDCCHs arranged in one downlink or a plurality of carrier elements is an explicit method as described in the first embodiment.
- An assignment method or an implicit assignment method can be used.
- the mobile station apparatus performs bundling or multiplexing control signals in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks from the base station apparatus for each downlink carrier element in which the plurality of PDCCHs are arranged. Then, it can be transmitted to the base station apparatus.
- a mobile station apparatus performs a plurality of PDCCHs transmitted from the base station apparatus using DCC2 and / or downlink transport blocks transmitted using the DCSCHs of DCC1, DCC2, and DCC3. It shows that a control signal in HARQ is bundled or multiplexed in UCC2 corresponding to DCC2 and transmitted to the base station apparatus using PUCCH of UCC2.
- the mobile station apparatus transmits a control signal in HARQ for the downlink transport block transmitted using a plurality of PDCCHs transmitted from the base station apparatus using DCC4 and / or the DCSCHs of DCC4 and DCC5 to DCC4. It is shown that bundling or multiplexing is performed within the UCC4 corresponding to 1 and transmitted to the base station apparatus using the PUCCH of the UCC4.
- transmission of control signals in bundling or multiplexed HARQ in UCC2 and transmission of control signals in bundling or multiplexed HARQ in UCC4 are performed in the same subframe.
- the mobile station apparatus transmits a control signal (HARQ control signal in HARQ) indicating HARQ ACK / NACK for each downlink transport block transmitted from the base station apparatus using the DCSCH of DCC1, DCC2, and DCC3. ) And a logical sum from a control signal (control signal in HARQ) indicating HARQ ACK / NACK for each downlink transport block transmitted using the PDSCH of DCC4 and DCC5.
- HARQ control signal in HARQ indicating the calculated ACK / NACK can be transmitted to the base station apparatus in the same subframe using the UCC2 and UCC4 PUCCH.
- the mobile station apparatus transmits a control signal (control signal in HARQ) indicating HARQ ACK / NACK for each downlink transport block transmitted from the base station apparatus using the DCSCH of DCC1, DCC2, and DCC3.
- a control signal (control signal in HARQ) indicating HARQ ACK / NACK for each downlink transport block transmitted using the PDSCH of DCC4 and DCC5 is expressed using a plurality of bits.
- Each of the control signals (control signals in HARQ) can be transmitted to the base station apparatus in the same subframe using UCC2 and UCC4 PUCCH.
- the base station apparatus associates one of the downlinks in which a plurality of PDCCHs are arranged, or a plurality of carrier elements with one of the uplinks, or a plurality of carrier elements, a broadcast channel, or RRC signaling can be used to set cell-specific or mobile station device-specific. That is, in FIG. 6, the base station apparatus sets the association between DCC2 and UCC2 and the association between DCC4 and UCC4 with respect to the mobile station apparatus using a broadcast channel or RRC signaling. It is shown that.
- the base station apparatus uses one broadcast channel or RRC signaling to make one downlink or a plurality of carrier elements on which a plurality of PDCCHs are arranged, cell-specific or mobile station apparatus-specific. Can be set.
- the base station apparatus uses a broadcast channel or RRC signaling to transmit one or a plurality of carrier elements of the uplink from which the mobile station apparatus transmits a control signal in HARQ. It can be set specific to the station device.
- the base station apparatus can change the downlink carrier element (number) in which a plurality of PDCCHs are arranged according to the situation in the cell to be managed and the situation of each mobile station apparatus, and the mobile station apparatus Can perform control in consideration of the transmission power when transmitting a control signal in HARQ to the base station apparatus more flexibly.
- the base station apparatus allocates a plurality of PDSCHs by arranging a plurality of PDCCHs on a plurality of downlink carrier elements with respect to a mobile station apparatus having a sufficient transmission power.
- a mobile station apparatus having sufficient transmission power transmits a control signal in HARQ to the base station apparatus by bundling or multiplexing each downlink carrier element in which a plurality of PDCCHs are arranged (multiple downlink downlink signals).
- Information indicating HARQ ACK / NACK is transmitted to the base station apparatus using a plurality of uplink carrier elements corresponding to the carrier element of
- the base station apparatus allocates a plurality of PDSCHs by arranging a plurality of PDCCHs in one downlink carrier element for a mobile station apparatus having no sufficient transmission power.
- a mobile station apparatus with insufficient transmission power transmits a HARQ control signal using one uplink carrier element corresponding to one downlink carrier element.
- the base station apparatus changes the downlink carrier elements (number) in which a plurality of PDCCHs are arranged according to the situation in the cell to be managed and the situation of each mobile station apparatus, and the mobile station apparatus performs control in HARQ.
- the base station apparatus controls uplink carrier elements (number) for transmitting signals, thereby enabling more flexible transmission control.
- the mobile station apparatus when bundling a control signal in HARQ and transmitting it to the base station apparatus, transmits to the base station apparatus using one of a plurality of PUCCHs corresponding to a plurality of PDCCHs. At this time, similarly to the transmission method described in the first embodiment, the mobile station apparatus transmits a specific PDCCH among a plurality of PDCCHs arranged in one or a plurality of carrier elements in the downlink. A bundled HARQ control signal can be transmitted to the base station apparatus using the corresponding PUCCH.
- the mobile station apparatus uses the PUCCH corresponding to a specific CCE index among a plurality of PDCCHs detected by one of the downlink or each of a plurality of carrier elements to transmit a control signal in HARQ to the base station apparatus. You may send it. Further, the mobile station apparatus supports a plurality of PDCCH corresponding to a plurality of PDCCHs arranged in one or a plurality of carrier elements, and a plurality of arranged in each of one or a plurality of carrier elements. A control signal in HARQ may be transmitted to the base station apparatus using a specific PUCCH from among the PUCCHs.
- FIG. 7 is a diagram illustrating another example of a mobile communication system to which the second embodiment can be applied.
- FIG. 7 shows, as an example for explaining the second embodiment, five downlink carrier elements each having a bandwidth of 20 MHz as frequency bands used for downlink communication having a bandwidth of 100 MHz. DCC1, DCC2, DCC3, DCC4, DCC5). Also, it is shown that the frequency band used for uplink communication having a bandwidth of 40 MHz is composed of two uplink carrier elements (UCC1, UCC2) each having a bandwidth of 20 MHz. Yes.
- a downlink / uplink channel is arranged in each downlink / uplink carrier element.
- the base station apparatus allocates a plurality of PDSCHs using a plurality of PDCCHs arranged in one downlink or a plurality of carrier elements.
- the base station apparatus uses three PDCCHs arranged in DCC2 (PDCCHs indicated by diagonal lines, grid lines, and network lines, respectively) to assign PDSCHs arranged in DCC1, DCC2, and DCC3. Indicates that it is assigned.
- PDSCHs arranged in DCC4 and DCC5 are allocated using two PDCCHs arranged in DCC4 (PDCCHs indicated by horizontal lines and dotted patterns, respectively).
- the base station apparatus can transmit (up to 5) downlink transport blocks to the mobile station apparatus in the same subframe using PDSCH arranged in DCC1, DCC2, DCC3, DCC4, and DCC5. .
- a method in which the base station apparatus allocates a plurality of PDSCHs using a plurality of PDCCHs arranged in one downlink or a plurality of carrier elements is an explicit method as described in the first embodiment. An assignment method or an implicit assignment method can be used.
- the mobile station apparatus performs bundling or multiplexing control signals in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks from the base station apparatus for each downlink carrier element in which the plurality of PDCCHs are arranged. And transmit to the base station apparatus.
- a downlink transport block transmitted from a base station apparatus using a plurality of PDCCHs transmitted using DCC2 and / or PDSCHs of DCC1, DCC2, and DCC3 is transmitted from the base station apparatus. It shows that the control signal in HARQ for bundling or multiplexing in UCC1 corresponding to DCC2 is transmitted to the base station apparatus using PUCCH of UCC1.
- the mobile station apparatus transmits a control signal in HARQ for a downlink transport block transmitted using a plurality of PDCCHs and / or DCC4 and DCC5 PDSCHs transmitted using DCC4 from the base station apparatus, This shows that bundling or multiplexing is performed within the UCC2 corresponding to the DCC4 and transmitted to the base station apparatus using the PUCCH of the UCC2.
- transmission of control signals in bundling or multiplexed HARQ in UCC1 and transmission of control signals in bundling or multiplexed HARQ in UCC2 are performed in the same subframe.
- the base station device associates one or a plurality of carrier elements with a downlink where a plurality of PDCCHs are arranged with one or a plurality of carrier elements with a broadcast channel
- it can be set to be cell specific or mobile station device specific using RRC signaling. That is, in FIG. 7, the base station apparatus sets the association between DCC2 and UCC1 and the association between DCC4 and UCC2 with respect to the mobile station apparatus using a broadcast channel or RRC signaling. It is shown that.
- the base station apparatus uses one broadcast channel or RRC signaling to make one downlink or a plurality of carrier elements on which a plurality of PDCCHs are arranged, cell-specific or mobile station apparatus-specific. Can be set.
- the base station apparatus uses a broadcast channel or RRC signaling to transmit one or a plurality of carrier elements of the uplink from which the mobile station apparatus transmits a control signal in HARQ. It can be set specific to the station device.
- FIG. 8 is a diagram showing another example of a mobile communication system to which the second embodiment can be applied.
- the mobile station apparatus performs bundling of control signals in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks from the base station apparatus for each downlink carrier element in which a plurality of PDCCHs are arranged. Or, it is multiplexed and transmitted to the base station apparatus using the PUCCH arranged in one uplink carrier element, and the other points are the same as in the mobile communication system described in FIG. is there.
- the base station apparatus uses DCB 2 and UCC 1 to correspond to each other, and further uses DCC 4 and UCC 1 to correspond to each other using a broadcast channel or RRC signaling.
- the mobile station apparatus bundles or multiplexes the control signal in HARQ for each downlink carrier element in which a plurality of PDCCHs are arranged, and each of them is one uplink corresponding to a plurality of downlink carrier elements. It transmits to a base station apparatus using PUCCH arrange
- the mobile station apparatus performs bundling or multiplexing of the control signal in HARQ for the downlink transport block transmitted using a plurality of PDCCHs transmitted by DCC4 and / or PDSCHs of DCC4 and DCC5 within UCC1. And it transmits to a base station apparatus using PUCCH of UCC1. The mobile station apparatus transmits each bundling or multiplexed control signal in HARQ to the base station apparatus in the same subframe.
- the base station apparatus allocates and allocates a plurality of PDSCHs using a plurality of PDCCHs arranged in one or a plurality of carrier elements in the downlink.
- a plurality of downlink transport blocks are transmitted to the mobile station apparatus in the same subframe using a plurality of PDSCHs.
- the mobile station apparatus bundles or multiplexes control signals in HARQ for a plurality of PDCCHs and / or a plurality of downlink transport blocks for each downlink carrier element in which a plurality of PDCCHs are arranged.
- the base station apparatus receives a bundling or multiplexed HARQ control signal for each downlink carrier element from the mobile station apparatus.
- the mobile station apparatus can transmit the control signal in HARQ for each downlink carrier element in which a plurality of PDCCHs are arranged.
- the transmission power when the mobile station apparatus transmits the HARQ control signal to the base station apparatus can be controlled more flexibly.
- the base station apparatus designates the PUCCH resource in which the mobile station apparatus arranges the control signal in HARQ according to the position in the PDCCH resource area of the plurality of PDCCHs arranged in one or a plurality of carrier elements in the downlink. And efficient allocation can be performed.
- the mobile station apparatus when the mobile station apparatus bundles and transmits the HARQ control signal to the base station apparatus, the mobile station apparatus transmits the HARQ control signal to the base station apparatus using a specific PUCCH, whereby the base station apparatus Can detect up to which PDCCH the mobile station apparatus has received (detected).
- each function in the base station device and a program for realizing each function in the mobile station device are recorded on a computer-readable recording medium and recorded on this recording medium.
- the base station apparatus and the mobile station apparatus may be controlled by causing the computer system to read and execute the program.
- 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.
- the mobile communication system of the present invention is a mobile communication system including a base station apparatus and a mobile station apparatus, and the base station apparatus includes a plurality of physical downlinks arranged in one downlink carrier element.
- a plurality of physical downlink shared channels allocated to the carrier element or a carrier element different from the carrier element are allocated using a link control channel, and a plurality of downlinks are allocated using the allocated physical downlink shared channels
- a link transport block is transmitted to the mobile station apparatus in the same subframe, and the mobile station apparatus performs HARQ (Hybrid Automatic Repeat Request) for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks.
- Control signal in the downlink is required for one carrier It is characterized by transmitting to the base station apparatus and bundling in one carrier element of the corresponding uplink to.
- the mobile communication system includes a base station device and a mobile station device, wherein the base station device uses a plurality of physical downlink control channels arranged in one or a plurality of downlink carrier elements.
- a plurality of physical downlink shared channels allocated to the carrier element or a carrier element different from the carrier element, and a plurality of downlink transport blocks are allocated using the plurality of allocated physical downlink shared channels.
- the mobile station apparatus transmits a control signal in HARQ for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks to the plurality of physical downlinks For each downlink carrier element in which a control channel is allocated, Doringu to is characterized by transmitting to the base station apparatus.
- the mobile communication system includes a base station apparatus and a mobile station apparatus, wherein the base station apparatus allocates a plurality of physical downlink shared channels using a plurality of physical downlink control channels, and A plurality of downlink transport blocks are transmitted to the mobile station apparatus in the same subframe using a plurality of physical downlink shared channels, and the mobile station apparatus is the last among the plurality of physical downlink control channels. Bundling control signals in HARQ for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks using a physical uplink control channel corresponding to the detected physical downlink control channel; It transmits to a base station apparatus.
- the mobile communication system includes a base station apparatus and a mobile station apparatus, wherein the base station apparatus allocates a plurality of physical downlink shared channels using a plurality of physical downlink control channels, and A plurality of downlink transport blocks are transmitted to the mobile station apparatus in the same subframe using a plurality of physical downlink shared channels, and the mobile station apparatus selects a specific one of the plurality of physical downlink control channels.
- the mobile communication system includes a base station apparatus and a mobile station apparatus, wherein the base station apparatus allocates a plurality of physical downlink shared channels using a plurality of physical downlink control channels, and A plurality of downlink transport blocks are transmitted to the mobile station apparatus in the same subframe using a plurality of physical downlink shared channels, and the mobile station apparatus transmits the plurality of physical downlink control channels and / or the plurality It is characterized in that a control signal in HARQ for the downlink transport block is transmitted to the base station apparatus using a physical uplink control channel having the largest index.
- the mobile communication system includes a base station device and a mobile station device, wherein the base station device uses a plurality of physical downlink control channels arranged in one carrier element of the downlink.
- a plurality of physical downlink shared channels allocated to a carrier element or a carrier element different from the carrier element are allocated, and a plurality of downlink transport blocks are assigned to the same subframe using the allocated plurality of physical downlink shared channels.
- the mobile station apparatus transmits control signals in HARQ for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks to one carrier element of the downlink. Multiplexed within one carrier element of the corresponding uplink It is characterized by transmitting to the Chikyoku device.
- the mobile communication system includes a base station device and a mobile station device, wherein the base station device uses a plurality of physical downlink control channels arranged in one or a plurality of downlink carrier elements.
- a plurality of physical downlink shared channels allocated to the carrier element or a carrier element different from the carrier element, and a plurality of downlink transport blocks are allocated using the plurality of allocated physical downlink shared channels.
- the mobile station apparatus transmits a control signal in HARQ for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks to the plurality of physical downlinks Many for each downlink carrier element in which a control channel is allocated It is characterized in that to transmit to the base station apparatus.
- the control signal in the HARQ indicates ACK (acknowledgement) / NACK (negative acknowledgment) and / or DTX (DiscontinuouscontinuTransmission) for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks. It is a signal.
- a base station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, and the carrier element using a plurality of physical downlink control channels arranged in one downlink carrier element
- a base station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, using a plurality of physical downlink control channels arranged in one or a plurality of downlink carrier elements
- HARQ for the downlink transport block of The control signal is characterized by comprising, means for receiving from the mobile station apparatus.
- a base station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, wherein a plurality of physical downlink shared channels are allocated using a plurality of physical downlink control channels, and the allocated Means for transmitting a plurality of downlink transport blocks to the mobile station apparatus in the same subframe using a plurality of physical downlink shared channels, and the mobile station apparatus includes the plurality of physical downlink control channels, The plurality of physical downlink control channels and / or the plurality of downlink transport blocks bundled by the mobile station apparatus using a physical uplink control channel corresponding to the physical downlink control channel detected last A control signal in HARQ for the mobile station apparatus is received from the mobile station apparatus It is characterized in that it comprises a means.
- a base station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, wherein a plurality of physical downlink shared channels are allocated using a plurality of physical downlink control channels, and the allocated Means for transmitting a plurality of downlink transport blocks to the mobile station apparatus in the same subframe using a plurality of physical downlink shared channels, and a specific control channel element in the plurality of physical downlink control channels Using the corresponding physical uplink control channel, HARQ control signals for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks bundled by the mobile station device are transmitted from the mobile station device. And means for receiving.
- a base station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, wherein a plurality of physical downlink shared channels are allocated using a plurality of physical downlink control channels, and the allocated Means for transmitting a plurality of downlink transport blocks to the mobile station apparatus in the same subframe using a plurality of physical downlink shared channels; and the plurality of physical downlink control channels bundled by the mobile station apparatus And / or means for receiving a control signal in HARQ for the plurality of downlink transport blocks from the mobile station apparatus using a physical uplink control channel having the largest index.
- a base station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, and the carrier element using a plurality of physical downlink control channels arranged in one downlink carrier element
- the control signal in HARQ for the transport block is transferred to the transport block.
- Means for receiving from the station apparatus is characterized in that it comprises.
- a base station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, using a plurality of physical downlink control channels arranged in one or a plurality of downlink carrier elements
- Control signal in HARQ for downlink transport block Is characterized in that it comprises, means for receiving from the mobile station apparatus.
- control signal in the HARQ is a signal indicating ACK / NACK and / or DTX for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks.
- a mobile station apparatus in a mobile communication system including a base station apparatus and a mobile station apparatus, wherein the base station apparatus has a plurality of physical downlink control channels arranged in one downlink carrier element.
- a plurality of downlinks transmitted using the plurality of physical downlink shared channels allocated and allocated to a plurality of physical downlink shared channels that are allocated to the carrier element or a carrier element different from the carrier element.
- One uplink carrier corresponding to the carrier element And bundling is characterized in that it comprises, means for transmitting to the base station apparatus in Motonai.
- a mobile station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, wherein the base station apparatus is arranged in one or more carrier elements in the downlink.
- a plurality of physical downlink shared channels allocated to the carrier element or a carrier element different from the carrier element using a control channel, and a plurality of physical downlink shared channels transmitted using the allocated physical downlink shared channels Means for receiving the downlink transport block of the plurality of physical downlink control channels and / or the plurality of downlink transport blocks in the same subframe, and the HARQ control signals for the plurality of downlink transport blocks.
- Downlink with physical downlink control channel And bundling each carrier element is characterized in that it comprises, means for transmitting to the base station apparatus.
- a mobile station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, wherein the base station apparatus allocates a plurality of physical downlinks shared by using a plurality of physical downlink control channels.
- Means for receiving a plurality of downlink transport blocks transmitted using a channel in the same subframe from the base station apparatus, and a physical downlink control channel detected last among the plurality of physical downlink control channels Means for bundling HARQ control signals for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks and transmitting the same to the base station apparatus using a physical uplink control channel corresponding to It is characterized by providing these.
- a mobile station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, wherein the base station apparatus allocates a plurality of physical downlinks shared by using a plurality of physical downlink control channels.
- Means for receiving a plurality of downlink transport blocks from the base station apparatus in the same subframe using a channel, and physical uplink control corresponding to a specific control channel element in the plurality of physical downlink control channels Means for bundling control signals in HARQ for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks using a channel and transmitting the signals to the base station apparatus. It is said.
- a mobile station apparatus in a mobile communication system composed of a base station apparatus and a mobile station apparatus, wherein the base station apparatus allocates a plurality of physical downlinks shared by using a plurality of physical downlink control channels.
- Means for receiving a plurality of downlink transport blocks from the base station apparatus in the same subframe using a channel, and control in HARQ for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks Means for bundling a signal and transmitting to the base station apparatus using a physical uplink control channel having the largest index.
- a mobile station apparatus in a mobile communication system including a base station apparatus and a mobile station apparatus, wherein the base station apparatus has a plurality of physical downlink control channels arranged in one downlink carrier element.
- a plurality of downlinks transmitted using the plurality of physical downlink shared channels allocated and allocated to a plurality of physical downlink shared channels that are allocated to the carrier element or a carrier element different from the carrier element.
- One uplink carrier corresponding to the carrier element It is characterized in that it comprises means for transmitting multiplexed with the said base station apparatus, with Motonai.
- a mobile communication system comprising a base station apparatus and a mobile station apparatus, wherein the base station apparatus uses a plurality of physical downlink control channels arranged in one or a plurality of downlink carrier elements. Then, a plurality of physical downlink shared channels allocated to the carrier element or a carrier element different from the carrier element are allocated, and a plurality of downlink transformers are transmitted using the allocated physical downlink shared channels.
- control signal in the HARQ is a signal indicating ACK / NACK and / or DTX for the plurality of physical downlink control channels and / or the plurality of downlink transport blocks.
- DESCRIPTION OF SYMBOLS 100 Base station apparatus, 101 ... Data control part, 102 ... Transmission data modulation part, 103 ... Radio
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Abstract
Description
図2は、本発明の実施形態に係る基地局装置100の概略構成を示すブロック図である。基地局装置100は、データ制御部101と、送信データ変調部102と、無線部103と、スケジューリング部104と、チャネル推定部105と、受信データ復調部106と、データ抽出部107と、上位層108と、アンテナ109と、を含んで構成される。また、無線部103、スケジューリング部104、チャネル推定部105、受信データ復調部106、データ抽出部107、上位層108およびアンテナ109で受信部を構成し、データ制御部101、送信データ変調部102、無線部103、スケジューリング部104、上位層108およびアンテナ109で送信部を構成している。
図3は、本発明の実施形態に係る移動局装置200の概略構成を示すブロック図である。移動局装置200は、データ制御部201と、送信データ変調部202と、無線部203と、スケジューリング部204と、チャネル推定部205と、受信データ復調部206と、データ抽出部207と、上位層208、アンテナ209と、を含んで構成されている。また、データ制御部201、送信データ変調部202、無線部203、スケジューリング部204、上位層208、アンテナ209で送信部を構成し、無線部203、スケジューリング部204、チャネル推定部205、受信データ復調部206、データ抽出部207、上位層208、アンテナ209で受信部を構成している。
次に、基地局装置100および移動局装置200を用いた移動通信システムにおける第1の実施形態を説明する。第1の実施形態では、基地局装置は、下りリンクの1つのキャリア要素内に配置された複数のPDCCHを使用して、複数のPDCCHが配置されたキャリア要素、もしくは、複数のPDCCHが配置されたキャリア要素とは異なるキャリア要素に配置される複数のPDSCHを割り当て、割り当てた複数のPDSCHを使用して複数の下りリンクトランスポートブロックを同一サブフレームで移動局装置へ送信する。移動局装置は、複数のPDCCHおよび/または複数の下りリンクトランスポートブロックに対するHARQにおける制御信号を、前記下りリンクの1つのキャリア要素に対応する上りリンクの1つのキャリア要素内でバンドリング(bundling:束にして、塊にして)、もしくは、多重して(multiplexing、複数ビットを使用して)基地局装置へ送信する。基地局装置は、複数のPDCCHが配置された下りリンクの1つのキャリア要素に対応する上りリンクの1つのキャリア要素内でバンドリング、もしくは、多重された複数のPDCCHおよび/または複数の下りリンクトランスポートブロックに対するHARQにおける制御信号を、移動局装置から受信する。
次に、本発明の第2の実施形態について説明する。第2の実施形態では、基地局装置は、下りリンクの1つもしくは複数のキャリア要素内に配置された複数の物理下りリンク制御チャネルを使用して、複数のPDCCHが配置されたキャリア要素、もしくは、複数のPDCCHが配置されたキャリア要素とは異なるキャリア要素に配置されるPDSCHを割り当て、割り当てた複数のPDSCHを使用して複数の下りリンクトランスポートブロックを同一サブフレームで移動局装置へ送信する。移動局装置は、複数の物理下りリンク制御チャネルおよび/または複数の下りリンクトランスポートブロックに対するHARQにおける制御信号を、複数のPDCCHが配置された下りリンクのキャリア要素毎にバンドリング、もしくは、多重して基地局装置へ送信する。基地局装置は、複数のPDCCHが配置された下りリンクのキャリア要素毎にバンドリング、もしくは、多重されたHARQにおける制御信号を、移動局装置から受信する。
Claims (29)
- 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムであって、
前記基地局装置は、
1つの下りリンクコンポーネントキャリアを前記移動局装置へ設定し、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当て、
前記移動局装置は、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される
ことを特徴とする移動通信システム。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムであって、
前記基地局装置は、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、報知情報を使用して、前記移動局装置へ設定し、
1つの前記下りリンクコンポーネントキャリアを前記移動局装置へ設定し、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当て、
前記移動局装置は、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される
ことを特徴とする移動通信システム。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムであって、
前記基地局装置は、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、RRCシグナリングを使用して、前記移動局装置へ設定し、
1つの前記下りリンクコンポーネントキャリアを前記移動局装置へ設定し、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当て、
前記移動局装置は、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される
ことを特徴とする移動通信システム。 - 前記上りリンクコンポーネントキャリアにおいて、前記複数の物理上りリンク制御チャネルが配置可能なリソース領域は、前記基地局装置によって前記移動局装置へ設定される
ことを特徴とする請求項1から請求項3のいずれかに記載の移動通信システム。 - 前記移動局装置は、前記複数の物理上りリンク制御チャネルのいずれかの物理上りリンク制御チャネルにHARQにおける制御情報を配置して、前記基地局装置へ送信する
ことを特徴とする請求項1から請求項4のいずれかに記載の移動通信システム。 - 前記HARQにおける制御情報は、前記複数の物理下りリンク共用チャネルに配置される下りリンクトランスポートブロックに対するACK/NACKを示す情報を含む
ことを特徴とする請求項5に記載の移動通信システム。 - 前記HARQにおける制御情報は、前記移動局装置が、物理下りリンク制御チャネルを検出できなかったことを示す情報を含む
ことを特徴とする請求項5に記載の移動通信システム。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける基地局装置であって、
1つの下りリンクコンポーネントキャリアを前記移動局装置へ設定する手段と、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当てる手段と、
前記設定した下りリンクコンポーネントキャリアに配置した前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定した下りリンクコンポーネントキャリアに対応する1つの上りリンクコンポーネントキャリアにおいて、前記移動局装置へ指定する手段と、
を備えることを特徴とする基地局装置。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける基地局装置であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、報知情報を使用して、前記移動局装置へ設定する手段と、
1つの前記下りリンクコンポーネントキャリアを前記移動局装置へ設定する手段と、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当てる手段と、
前記設定した下りリンクコンポーネントキャリアに配置した前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定した下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記移動局装置へ指定する手段と、
を備えることを特徴とする基地局装置。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける基地局装置であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、RRCシグナリングを使用して、前記移動局装置へ設定する手段と、
1つの前記下りリンクコンポーネントキャリアを前記移動局装置へ設定する手段と、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当てる手段と、
前記設定した下りリンクコンポーネントキャリアに配置した前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定した下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記移動局装置へ指定する手段と、
を備えることを特徴とする基地局装置。 - 前記上りリンクコンポーネントキャリアにおいて、前記複数の物理上りリンク制御チャネルが配置可能なリソース領域を、前記移動局装置へ設定する手段を、
備えることを特徴とする請求項8から請求項10のいずれかに記載の基地局装置。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける移動局装置であって、
1つの下りリンクコンポーネントキャリアを前記基地局装置によって設定される手段と、
前記設定された下りリンクコンポーネントキャリアに配置された複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記基地局装置によって割り当てられる手段と、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される手段と、
を備えることを特徴とする移動局装置。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける移動局装置であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、報知情報を使用して、前記基地局装置によって設定される手段と、
1つの前記下りリンクコンポーネントキャリアを前記基地局装置によって設定される手段と、
前記設定された下りリンクコンポーネントキャリアに配置された複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記基地局装置によって割り当てられる手段と、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される手段と、
を備えることを特徴とする移動局装置。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける移動局装置であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、RRCシグナリングを使用して、前記基地局装置によって設定される手段と、
1つの前記下りリンクコンポーネントキャリアを前記基地局装置によって設定される手段と、
前記設定された下りリンクコンポーネントキャリアに配置された複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記基地局装置によって割り当てられる手段と、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される手段と、
を備えることを特徴とする移動局装置。 - 前記上りリンクコンポーネントキャリアにおいて、前記複数の物理上りリンク制御チャネルが配置可能なリソース領域を、前記基地局装置によって設定される手段を、
備えることを特徴とする請求項12から請求項14のいずれかに記載の移動局装置。 - 前記複数の物理上りリンク制御チャネルのいずれかの物理上りリンク制御チャネルにHARQにおける制御情報を配置して、前記基地局装置へ送信する手段を、
備えることを特徴とする請求項12から請求項15のいずれかに記載の移動局装置。 - 前記HARQにおける制御情報は、前記複数の物理下りリンク共用チャネルに配置される下りリンクトランスポートブロックに対するACK/NACKを示す情報を含む
ことを特徴とする請求項16に記載の移動局装置。 - 前記HARQにおける制御情報は、前記移動局装置が、物理下りリンク制御チャネルを検出できなかったことを示す情報を含む
ことを特徴とする請求項16に記載の移動局装置。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける基地局装置の通信方法であって、
1つの下りリンクコンポーネントキャリアを前記移動局装置へ設定し、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当て、
前記設定した下りリンクコンポーネントキャリアに配置した前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定した下りリンクコンポーネントキャリアに対応する1つの上りリンクコンポーネントキャリアにおいて、前記移動局装置へ指定する
ことを特徴とする通信方法。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける基地局装置の通信方法であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、報知情報を使用して、前記移動局装置へ設定し、
1つの前記下りリンクコンポーネントキャリアを前記移動局装置へ設定し、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当て、
前記設定した下りリンクコンポーネントキャリアに配置した前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定した下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記移動局装置へ指定する
ことを特徴とする通信方法。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける基地局装置の通信方法であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、RRCシグナリングを使用して、前記移動局装置へ設定し、
1つの前記下りリンクコンポーネントキャリアを前記移動局装置へ設定し、
前記設定した下りリンクコンポーネントキャリアに配置した複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記移動局装置へ割り当て、
前記設定した下りリンクコンポーネントキャリアに配置した前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定した下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記移動局装置へ指定する
ことを特徴とする通信方法。 - 前記上りリンクコンポーネントキャリアにおいて、前記複数の物理上りリンク制御チャネルが配置可能なリソース領域を、前記移動局装置へ設定する
ことを特徴とする請求項19から請求項21のいずれかに記載の通信方法。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける移動局装置の通信方法であって、
1つの下りリンクコンポーネントキャリアを前記基地局装置によって設定され、
前記設定された下りリンクコンポーネントキャリアに配置された複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記基地局装置によって割り当てられ、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される
ことを特徴とする通信方法。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける移動局装置の通信方法であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、報知情報を使用して、前記基地局装置によって設定され、
1つの前記下りリンクコンポーネントキャリアを前記基地局装置によって設定され、
前記設定された下りリンクコンポーネントキャリアに配置された複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記基地局装置によって割り当てられ、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される
ことを特徴とする通信方法。 - 複数のコンポーネントキャリアを使用して基地局装置と移動局装置が通信を行う移動通信システムにおける移動局装置の通信方法であって、
下りリンクコンポーネントキャリアと上りリンクコンポーネントキャリアの対応を、RRCシグナリングを使用して、前記基地局装置によって設定され、
1つの前記下りリンクコンポーネントキャリアを前記基地局装置によって設定され、
前記設定された下りリンクコンポーネントキャリアに配置された複数の物理下りリンク制御チャネルを使用して、同一サブフレームで、複数の物理下りリンク共用チャネルを前記基地局装置によって割り当てられ、
前記設定された下りリンクコンポーネントキャリアに配置された前記複数の物理下りリンク制御チャネルそれぞれに対応する複数の物理上りリンク制御チャネルを、前記設定された下りリンクコンポーネントキャリアに対応する1つの前記上りリンクコンポーネントキャリアにおいて、前記基地局装置によって指定される
ことを特徴とする通信方法。 - 前記上りリンクコンポーネントキャリアにおいて、前記複数の物理上りリンク制御チャネルが配置可能なリソース領域を、前記基地局装置によって設定される
ことを特徴とする請求項23から請求項25のいずれかに記載の通信方法。 - 前記複数の物理上りリンク制御チャネルのいずれかの物理上りリンク制御チャネルにHARQにおける制御情報を配置して、前記基地局装置へ送信する
ことを特徴とする請求項23から請求項26のいずれかに記載の通信方法。 - 前記HARQにおける制御情報は、前記複数の物理下りリンク共用チャネルに配置される下りリンクトランスポートブロックに対するACK/NACKを示す情報を含む
ことを特徴とする請求項27に記載の通信方法。 - 前記HARQにおける制御情報は、前記移動局装置が、物理下りリンク制御チャネルを検出できなかったことを示す情報を含む
ことを特徴とする請求項27に記載の通信方法。
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