WO2010050105A1 - 無線通信システム、移動局装置および基地局装置 - Google Patents
無線通信システム、移動局装置および基地局装置 Download PDFInfo
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- WO2010050105A1 WO2010050105A1 PCT/JP2009/004043 JP2009004043W WO2010050105A1 WO 2010050105 A1 WO2010050105 A1 WO 2010050105A1 JP 2009004043 W JP2009004043 W JP 2009004043W WO 2010050105 A1 WO2010050105 A1 WO 2010050105A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W28/00—Network traffic management; Network resource management
- H04W28/16—Central resource management; Negotiation of resources or communication parameters, e.g. negotiating bandwidth or QoS [Quality of Service]
- H04W28/26—Resource reservation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/0007—Code type
- H04J13/0055—ZCZ [zero correlation zone]
- H04J13/0059—CAZAC [constant-amplitude and zero auto-correlation]
- H04J13/0062—Zadoff-Chu
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/16—Code allocation
- H04J13/18—Allocation of orthogonal codes
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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
- H04L5/0053—Allocation of signaling, i.e. of overhead other than pilot signals
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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
- H04L5/0091—Signaling for the administration of the divided path
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
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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
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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
Definitions
- the present invention relates to a radio communication system, a mobile station apparatus, and a base station apparatus.
- This application claims priority based on Japanese Patent Application No. 2008-278517 filed in Japan on October 29, 2008, the contents of which are incorporated herein by reference.
- Wideband code division multiple access is the third generation partnership project (hereinafter referred to as “3GPP (3rd Generation Partnership Project)” as the third generation (3G) wireless access method for cellular mobile communications.
- 3GPP Third Generation Partnership Project
- 3G evolution hereinafter referred to as “EUTRA (Evolved Universal Terrestrial Radio Access)”
- EUTRAN Evolved Universal Terrestrials
- an orthogonal frequency division multiplexing (hereinafter referred to as “OFDM (Orthogonal FrequencyFDivision Multiplexing)”) method that is multicarrier transmission is used.
- OFDM Orthogonal FrequencyFDivision Multiplexing
- a single carrier communication method of discrete Fourier transform-spread orthogonal frequency division multiplexing Discrete Fourier Transform: DFT-Spread OFDM
- A-EUTRA fourth generation radio access scheme
- A-EUTRAN 4G network
- A-EUTRA 4G 4th Generation
- A-EUTRA it is considered to support a wider frequency band than EUTRA and to ensure compatibility with EUTRA.
- a mobile station apparatus compatible with EUTRA has a frequency band of a base station apparatus.
- a base station apparatus that controls transmission / reception of a mobile station apparatus performs transmission / reception using any one subband with a mobile station apparatus compatible with EUTRA, and a mobile station apparatus compatible with A-EUTRA Is to perform transmission / reception using one or more subbands depending on the ability of the mobile station apparatus to transmit / receive. That is, in each subband, the base station apparatus allocates some resources (resource blocks) in the subband to the mobile station apparatus corresponding to EUTRA, and transmits the EUTRA to the mobile station apparatus compatible with A-EUTRA. All the subbands are used by allocating some other resources not allocated to the mobile station apparatus corresponding to the above. However, since the number of subbands that can be simultaneously transmitted and received also differs in the mobile station apparatus that supports A-EUTRA, the number of resources to be allocated is changed according to the capability of the mobile station apparatus that supports A-EUTRA.
- a layered OFDM (Layered OFDM) system has been proposed in which OFDM, which is multicarrier transmission, is used as a downlink, which is transmission from a base station apparatus to a mobile station apparatus in A-EUTRA, and communication is performed using a plurality of frequency bands. (See Non-Patent Document 1).
- FIG. 15 is a diagram illustrating a schematic configuration of a downlink radio frame in EUTRA.
- the horizontal axis represents the frequency domain and the vertical axis represents the time domain.
- a downlink radio frame is a unit such as radio resource allocation, and is composed of a physical resource block (hereinafter referred to as “PRB (Physical Resource Block)”) pair consisting of a frequency band and a time band of a predetermined width. .
- PRB Physical Resource Block
- One PRB pair is composed of two PRBs continuous in the time domain.
- One PRB is composed of 12 subcarriers in the frequency domain, and is composed of 7 OFDM symbols in the time domain.
- the system bandwidth is a communication bandwidth of the base station device.
- In the time domain there are a slot composed of 7 OFDM symbols, a subframe composed of 2 slots, and a radio frame composed of 10 subframes.
- a unit composed of one subcarrier and one OFDM symbol is called a resource element.
- In the downlink radio frame a plurality of PRBs are arranged according to the system bandwidth.
- each subframe at least a downlink shared data channel used for transmitting information data and a downlink control channel used for transmitting control data are arranged.
- the downlink shared data channel and the downlink pilot channel used for channel estimation of the downlink control channel are distributed and arranged in a plurality of resource elements.
- the downlink control channel is arranged in the first, second and third OFDM symbols of the subframe, and the downlink shared data channel is arranged in other OFDM symbols.
- the OFDM symbol in which the control channel is arranged can change in units of subframes.
- the control format indicator channel indicating the number of OFDM symbols constituting the downlink control channel is arranged in the first OFDM symbol, and the downlink control channel is provided only in the first OFDM symbol. In some cases, it may be arranged in the first and second OFDM symbols. Note that the downlink control channel and the downlink shared data channel are not arranged together in the same OFDM symbol.
- a mobile station identifier, radio resource allocation information of the downlink shared data channel, multi-antenna related information, modulation scheme, coding rate, retransmission parameter, and the like are arranged.
- the downlink control channel is configured by one or a plurality of control channel elements (CCE: Control Channel Element).
- CCE Control Channel Element
- the number of control channel elements depends on the system bandwidth, the number of OFDM symbols constituting the downlink control channel, and the number of downlink pilot channels corresponding to the number of transmission antennas of the base station apparatus used for communication.
- the control channel element is composed of a plurality of resource elements.
- FIG. 16 is a diagram for explaining a logical relationship between a control channel element and a downlink control channel in EUTRA.
- CCE n indicates a control channel element having a control channel element index n.
- the control channel element index is a number that identifies the control channel element.
- the downlink control channel is configured by a set of one or a plurality of control channel elements.
- CCE aggregation number the number of control channel elements constituting this set.
- the number of CCE sets constituting the downlink control channel is determined according to the coding rate and the amount of control data.
- a set of n control channel elements is hereinafter referred to as “CCE set n”.
- a downlink control channel is configured by one control channel element (CCE set 1)
- a downlink control channel is configured by two control channel elements (CCE set 2), or four control channel elements
- a downlink control channel is configured (CCE set 4)
- a downlink control channel is configured by 8 control channel elements (CCE set 8).
- the control channel element is composed of a plurality of resource element groups (also referred to as mini-CCE).
- FIG. 17 is a diagram for explaining an arrangement example of resource element groups in a downlink subframe by EUTRA.
- the downlink control channel is composed of the first to third OFDM symbols, and downlink pilot channels of two transmission antennas (transmission antenna 1 and transmission antenna 2) are arranged.
- the horizontal axis represents the frequency domain
- the vertical axis represents the time domain.
- one resource element group is composed of four resource elements, and is composed of resource elements adjacent in the frequency domain.
- resource elements to which the same reference numerals of downlink control channels are attached belong to the same resource element group.
- resource element R1 (downlink pilot channel transmitted from transmission antenna 1) and R2 (downlink pilot channel transmitted from transmission antenna 2) in which downlink pilot channels are arranged are skipped to form a resource element group.
- numbering is first performed from the resource element group of the first OFDM symbol having the lowest frequency.
- the resource element group of the second OFDM symbol having the lowest frequency is numbered (symbol “2”).
- the resource element group of the third OFDM symbol having the lowest frequency is numbered (symbol “3”).
- resource element groups adjacent to each other in the frequency direction are numbered in the resource element group (symbol “2”) in which the numbering of the second OFDM symbol in which the downlink pilot channel is not arranged is performed. It is.
- resource element groups adjacent to each other in the frequency direction are numbered in the resource element group (symbol “3”) numbered in the third OFDM symbol in which no downlink pilot channel is arranged. It is.
- the resource element group (symbol “1”) numbered for the first OFDM symbol is numbered (symbol “6”) to the resource element group adjacent in the frequency direction.
- resource element groups adjacent to each other in the frequency direction are numbered in the resource element group (symbol “2”) on which the second OFDM symbol is numbered.
- the resource element group (symbol “8”) that is adjacent to the resource element group (symbol “3”) numbered in the third OFDM symbol in the frequency direction is numbered. Subsequent numbering is performed for the resource element groups of the PRB pair.
- the control channel element is composed of a plurality of resource element groups configured as shown in FIG.
- one control channel element is composed of nine different resource element groups distributed in the frequency domain and the time domain. Specifically, all resource element groups numbered as shown in FIG. 17 for the entire system bandwidth are interleaved in units of resource element groups using a block interleaver.
- One control channel element is constituted by nine consecutive resource element groups.
- the mobile station apparatus demodulates and decodes the received signal assuming a plurality of downlink control channels that may be allocated to the mobile station apparatus for the control channel element received in each subframe, and performs downlink control.
- a CRC check is performed to check whether the downlink control channel is allocated to the mobile station apparatus using a cyclic redundancy check (hereinafter referred to as “CRC (Cyclic Redundancy Check)”) code added to the channel.
- CRC Cyclic Redundancy Check
- the base station device generates a CRC code from the control data using a predetermined generator polynomial, and the exclusive logic between the generated CRC code and the mobile station identifier of the mobile station device to which the downlink control channel is assigned.
- the summed information (CRC masked by UE ID) is added to the downlink control channel, multiplexed to the control channel element, and transmitted.
- the mobile station apparatus that has received the control channel element from the base station apparatus performs reverse processing of the above operation, thereby detecting whether or not the downlink control channel addressed to the mobile station apparatus is multiplexed and transmitted together with error detection.
- the modulation scheme of the downlink control channel is fixed, and several candidates are set for the coding rate for each number of CCE sets. Therefore, when performing brute force decoding, decoding and CRC check are performed for each candidate coding rate corresponding to the number of CCE sets for each combination of control channel elements. That is, if there are two candidate coding rates according to the number of CCE sets of a certain control channel element combination, decoding for the combination of control channel elements when each of these two coding rates is used, CRC Since the check is performed, two types of decoding and CRC check are performed on the combination of the control channel elements. The coding rate at this time varies depending on the amount of control data transmitted on the downlink control channel.
- the coding rate is determined by the number of CCE sets, and therefore, one decoding and CRC check are performed for each control channel element combination. Also, as the system bandwidth becomes wider, the number of control channel elements increases, the total number of downlink control channel decoding increases, and the processing load on the mobile station apparatus increases.
- Each mobile station apparatus sets a control channel element for decoding a downlink control channel. Specifically, the mobile station apparatus uses the hash function with the mobile station identifier as an input, and the mobile station apparatus starts the downlink control channel decoding number (hereinafter referred to as “Starting point index”). Set for each number of CCE sets.
- the mobile station apparatus decodes the downlink control channel using a plurality of control channel elements from the set start point index (hereinafter, the plurality of control channel elements from which the mobile station apparatus decodes the downlink control channel). This area is referred to as a “mobile station individual search area (UE specific search space)”.
- the base station apparatus recognizes the mobile station identifier of the mobile station apparatus to which the downlink control channel is allocated, and is assigned to the control channel element in the mobile station individual search area determined according to the mobile station identifier.
- a downlink control channel including control data is multiplexed and transmitted. In this way, a method is used in which the mobile station apparatus reduces the number of times of decoding the downlink control channel by limiting the control channel elements for decoding the downlink control channel.
- A-EUTRA it is considered to support a wider frequency band than EUTRA and to ensure compatibility with EUTRA.
- a radio communication system that is composed of a plurality of frequency bands (a plurality of subbands) with the frequency bandwidth of EUTRA as one unit (a subband) has been studied.
- A-EUTRA which is a radio communication system composed of a plurality of subbands
- a plurality of methods are being studied as radio resource allocation information indicating radio resource allocation of a downlink shared data channel included in a downlink control channel.
- radio resource allocation method 1 it is considered to use the same radio resource allocation information as EUTRA (hereinafter, this method is referred to as “radio resource allocation method 1”).
- the radio resource allocation information included in the downlink control channel corresponds only to the subband in which the downlink control channel is allocated, and any of the subbands in which the downlink control channel is allocated. It indicates whether a PRB pair is allocated to the downlink shared data channel of the mobile station apparatus to which the downlink control channel is allocated. Since the radio resource allocation method 1 uses the same radio resource allocation information as EUTRA, it is possible to reduce the load on the design and operation test of the mobile station apparatus.
- radio resource allocation method 2 As another method, it has been studied to add subband information to EUTRA radio resource allocation information (hereinafter, this method is referred to as “radio resource allocation method 2”).
- the radio resource allocation information included in the downlink control channel allocates any PRB pair in a single subband to the downlink shared data channel of the mobile station apparatus that allocates the downlink control channel. And information indicating which subband the PRB pair is.
- the radio resource allocation method 2 requires a new control data format including subband information, so the load on the design and operation test of the mobile station apparatus slightly increases. Since the PRB pair of the downlink shared data channel indicated by the radio resource allocation information of the downlink control channel is not limited to the subband in which the downlink control channel is arranged, the degree of freedom of scheduling of the base station apparatus can be increased. .
- the base station apparatus to which the radio resource allocation method 1 or the radio resource allocation method 2 is applied to A-EUTRA uses the radio resource allocation method 1 or the radio resource allocation method 2 to downlink one mobile station apparatus.
- the base station apparatus When simultaneously assigning a plurality of subband PRB pairs to the shared data channel, it is necessary to use a plurality of downlink control channels including individual control data for the mobile station apparatus. For example, it is necessary to allocate a large number of PRB pairs simultaneously to a mobile station apparatus that requires high-speed and large-capacity data communication.
- the base station apparatus tries to simultaneously allocate PRB pairs to one mobile station apparatus using the radio resource allocation method 1 or the radio resource allocation method 2 over a plurality of subbands, a plurality of downlink control channels are allocated. It is necessary to use it.
- the radio communication system of the present invention transmits a transmission signal comprising a plurality of mobile station apparatuses and a control channel including one or more control channel elements configured of a plurality of time / frequency resources to the mobile station apparatus.
- the base station device generates a control information generator for generating individual control information for the mobile station device, and the mobile station device generated by the control information generator
- a control information number indicator generating unit for generating a control information number indicator indicating the number of the control information for each mobile station apparatus, and the control information number indicator generated by the control information number indicator generating unit Is transmitted to the mobile station apparatus using one or more control channel elements, and the control information is generated.
- a transmission unit that transmits the one or more pieces of control information generated by the mobile station device to the mobile station device using one or more control channels, and the mobile station device includes the mobile station device.
- the control information number indicator transmitted from the base station apparatus a receiving unit for receiving control information, and the receiving unit has received the A control information number indicator detecting unit for detecting a control information number indicator; a control channel decoding unit for decoding the control channel according to the number of the control information detected by the control information number indicator detecting unit; It is characterized by providing.
- control channel decoding unit of the present invention confirms the control information number indicator detected by the control information number indicator detection unit, and the control information number indicator includes one or more control information indicators.
- the control channel is decoded until the control information of the indicated number of the mobile station apparatuses is detected, and the control information number indicator is not present or the individual control is performed for the mobile station apparatus. When there is no information, the control channel is not decoded.
- control information number indicator of the present invention is characterized in that it indicates the number of pieces of individual control information for the mobile station apparatus in a time domain frame in which the control information number indicator is arranged.
- the control channel according to the present invention is arranged in a control channel element subsequent to the control channel element in which the control information number indicator is arranged with respect to the control channel elements in a predetermined order. To do.
- control channel decoding unit of the present invention is characterized in that the number of control channel elements in the mobile station dedicated search region that decodes the control channel according to the number of the control information detected by the control information number indicator detection unit. It is characterized by controlling.
- control information number indicator of the present invention is preferentially arranged in the control channel element searched first in the mobile station individual search region selected based on the mobile station identifier.
- control information number indicator of the present invention is arranged in a predetermined number of control channel elements, and the control information number indicator detecting unit is configured to control the control information in units of the predetermined number of control channel elements. The number of information indicators is detected.
- control information number indicator of the present invention further includes the number of control channel elements constituting one or more control channels including individual control information in the mobile station apparatus, and the control channel
- the decoding unit confirms the number of the control channel elements indicated in the control information number indicator, and includes one or more of the control channel elements indicated in the control information number indicator. The control channel is decoded until the number of pieces of control information indicated by the control information number indicator is detected for the control channel.
- the base station apparatus of the present invention comprises a plurality of frequency bands from a plurality of continuous subcarriers, a control channel element from a plurality of time / frequency resources in the frequency band, and one or more of the above-mentioned base station apparatuses.
- a control channel is configured from control channel elements, the control information number indicator indicates the number of individual control information for the mobile station apparatus for each frequency band, and the control channel decoding unit includes the control channel element for each frequency band. The number of control channels corresponding to the number of the control information detected by the control information number indicator detection unit is decoded.
- the mobile station apparatus of the present invention receives a transmission signal transmitted from a base station apparatus, which includes a control channel including one or more control channel elements composed of a plurality of time / frequency resources.
- a base station apparatus which includes a control channel including one or more control channel elements composed of a plurality of time / frequency resources.
- a receiving unit that receives a transmission signal including the control channel transmitted from the base station apparatus, and the receiving unit
- the control information number indicator detecting unit for detecting the number of control information indicators indicating the number of individual control information for the mobile station device received by the mobile station apparatus, and the number of the control information detected by the control information number indicator detecting unit
- a control channel decoding unit that decodes the control channel according to the control channel.
- control channel decoding unit of the present invention confirms the control information number indicator detected by the control information number indicator detection unit, and the control information number indicator includes one or more control information indicators.
- the control channel is decoded until the control information of the indicated number of the mobile station apparatuses is detected, and the control information number indicator is not present or the individual control is performed for the mobile station apparatus. When there is no information, the control channel is not decoded.
- control information number indicator of the present invention indicates the number of pieces of control information specific to the mobile station apparatus in a time domain frame in which the control information number indicator is arranged, and the control channel decoding unit includes The control channel is decoded according to the number of the control information detected by the control information number indicator detection unit.
- control channel of the present invention is arranged in a control channel element subsequent to the control channel element in which the control information number indicator is arranged with respect to the control channel elements in a predetermined order, and the control channel decoding unit Is characterized in that the control channel is decoded according to the number of the control information detected by the control information number indicator detection unit.
- control channel decoding unit of the present invention is characterized in that the number of control channel elements in the mobile station dedicated search region that decodes the control channel according to the number of the control information detected by the control information number indicator detection unit. It is characterized by controlling.
- control information number indicator of the present invention is preferentially arranged in the control channel element searched first in the mobile station individual search area selected based on the mobile station identifier, and the control channel
- the decoding unit is characterized in that the control channel is decoded according to the number of the control information detected by the control information number indicator detection unit.
- control information number indicator of the present invention is arranged in a predetermined number of control channel elements, and the control information number indicator detecting unit is configured to control the control information in units of the predetermined number of control channel elements. The number of information indicators is detected.
- control information number indicator of the present invention further includes the number of control channel elements constituting one or more control channels including individual control information in the mobile station apparatus, and the control channel
- the decoding unit confirms the number of the control channel elements indicated in the control information number indicator, and includes one or more of the control channel elements indicated in the control information number indicator. The control channel is decoded until the number of pieces of control information indicated by the control information number indicator is detected for the control channel.
- the mobile station apparatus of the present invention comprises a plurality of frequency bands from a plurality of continuous subcarriers, a control channel element from a plurality of time / frequency resources in the frequency band, and one or more of the controls
- the control information number indicator is the mobile station apparatus for each frequency band Indicates the number of individual control information
- the control channel decoding unit decodes the number of control channels corresponding to the number of control information detected by the control information number indicator detection unit for each frequency band. It is characterized by that.
- the base station apparatus of the present invention is a base station apparatus that transmits a transmission signal composed of a control channel including one or more control channel elements composed of a plurality of time / frequency resources to the mobile station apparatus.
- a control information generation unit that generates individual control information in the mobile station device, and a control information number indicator that indicates the number of the control information for each of the mobile station devices generated by the control information generation unit, for each mobile station device.
- the control information number indicator generating unit to be generated at the same time and the control information number indicator generated by the control information number indicator generating unit are transmitted to the mobile station apparatus using one or more control channel elements.
- One or more of the control information generated by the control information generator Characterized in that it comprises a transmitting section that transmits to the mobile station device using said control channel.
- the present invention in order to detect a downlink control channel in a mobile station apparatus in a situation where a plurality of downlink control channels may be assigned to one mobile station apparatus in order to perform high-speed and large-capacity data communication.
- FIG. 1 shows schematic structure of the downlink radio frame by embodiment of this invention. It is a figure explaining the logical relationship of the control channel element of this embodiment, and a downlink control channel. It is a figure explaining the example of arrangement
- the radio communication system in the present embodiment includes a base station apparatus 1 and a plurality of mobile station apparatuses 2.
- the mobile station apparatus 2 includes a mobile station apparatus compatible with A-EUTRA and a mobile station apparatus compatible only with EUTRA. And both.
- FIG. 1 is a diagram showing a schematic configuration of a downlink radio frame that is a link from the base station apparatus 1 to the mobile station apparatus 2 in the present embodiment.
- the horizontal axis represents the frequency domain and the vertical axis represents the time domain.
- the downlink radio frame is composed of PRB pairs each having a predetermined frequency band and time band, and one PRB pair is composed of two PRBs continuous in the time domain.
- One PRB is composed of 12 subcarriers in the frequency domain, and is composed of 7 OFDM symbols in the time domain.
- the system bandwidth is a communication bandwidth of the base station apparatus 1 and is composed of a plurality of subband bandwidths.
- one subband is composed of 100 PRBs.
- In the time domain there are a slot composed of 7 OFDM symbols, a subframe composed of 2 slots, and a radio frame composed of 10 subframes.
- a unit composed of one subcarrier and one OFDM symbol is called a resource element.
- a plurality of PRBs are arranged according to the system bandwidth.
- each subframe at least a downlink shared data channel used for transmitting information data and a downlink control channel used for transmitting control data (control information) are arranged.
- the downlink pilot data channels used for channel estimation of the downlink shared data channel and the downlink control channel are distributed and arranged in a plurality of resource elements.
- the downlink control channel is arranged in the first, second, and third OFDM symbols of the subframe, and the downlink shared data channel is arranged in other OFDM symbols.
- the OFDM symbol in which the control channel is arranged can change in units of subframes.
- a control format indicator channel indicating the number of OFDM symbols constituting the downlink control channel is arranged in the first OFDM symbol.
- the downlink control channel is arranged in the first, second, and third OFDM symbols in FIG. 1, but is arranged only in the first OFDM symbol or arranged in the first and second OFDM symbols. There is also a case. Note that the downlink control channel and the downlink shared data channel are not arranged together in the same OFDM symbol.
- a mobile station identifier, radio resource allocation information of the downlink shared data channel, multi-antenna related information, modulation scheme, coding rate, retransmission parameter, and the like are arranged.
- the downlink control channel includes one or a plurality of control channel elements (CCE: Control Channel Element).
- the control channel element is composed of a plurality of resource elements.
- FIG. 2 is a diagram for explaining the logical relationship between the control channel element and the downlink control channel of the wireless communication system of the present invention.
- CCE n indicates a control channel element having a control channel element index n.
- the control channel element index is a number that identifies the control channel element.
- the downlink control channel is composed of a set of one or a plurality of control channel elements, and the number of CCE sets indicating the number of control channel elements constituting the downlink control channel depends on the coding rate and the amount of control data. Determined.
- a CCE set n composed of n control channel elements includes, for example, a downlink control channel configured by one control channel element (CCE set 1) or a downlink control channel formed by two control channel elements.
- Configure (CCE set 2) configure a downlink control channel with 4 control channel elements (CCE set 4), configure a downlink control channel with 8 control channel elements (CCE set 8) can do.
- the control channel element in the present embodiment is configured by a plurality of resource element groups (also referred to as mini-CCE) in the same subband.
- FIG. 3 is a diagram illustrating an arrangement example of resource element groups in a downlink subframe according to the present embodiment.
- the horizontal axis represents the frequency domain
- the vertical axis represents the time domain.
- the downlink control channel is composed of the first to third OFDM symbols, and the downlink pilot channels of two transmission antennas (transmission antenna 1 and transmission antenna 2) are arranged.
- one resource element group is composed of four resource elements and is composed of adjacent resource elements in the frequency domain.
- resource elements to which the same symbol is assigned in the downlink control channel indicate that they belong to the same resource element group, and are transmitted from the resource element R1 (transmission antenna 1) in which the downlink pilot channel is arranged.
- a resource element group is configured by skipping (downlink pilot channel) and R2 (downlink pilot channel transmitted from the transmission antenna 2).
- numbering is first performed from the resource element group of the first OFDM symbol having the lowest frequency.
- the resource element group of the second OFDM symbol having the lowest frequency is numbered (symbol “2”).
- the resource element group of the third OFDM symbol having the lowest frequency is numbered (symbol “3”).
- resource element groups adjacent to each other in the frequency direction are numbered in the resource element group (symbol “2”) in which the numbering of the second OFDM symbol in which the downlink pilot channel is not arranged is performed. It is.
- resource element groups adjacent to each other in the frequency direction are numbered in the resource element group (symbol “3”) numbered in the third OFDM symbol in which no downlink pilot channel is arranged. It is.
- the resource element group (symbol “1”) numbered for the first OFDM symbol is numbered (symbol “6”) to the resource element group adjacent in the frequency direction.
- resource element groups adjacent to each other in the frequency direction are numbered in the resource element group (symbol “2”) on which the second OFDM symbol is numbered.
- the resource element group (symbol “8”) that is adjacent to the resource element group (symbol “3”) numbered in the third OFDM symbol in the frequency direction is numbered. Subsequent numbering is performed for the resource element groups of the PRB pair.
- the control channel element in the present embodiment is configured by a plurality of resource element groups of the same subband configured as shown in FIG.
- one control channel element is configured by nine different resource element groups distributed in the frequency domain and the time domain within a subband. Specifically, interleaving is performed in units of resource element groups using a block interleaver for all resource element groups numbered as shown in FIG. 3 for the entire subband bandwidth for each subband,
- One control channel element is constituted by nine resource element groups having consecutive numbers after interleaving.
- the number of subband resource element groups that is, the number of control channel elements is the subband bandwidth, the number of downlink pilot channels according to the number of transmission antennas of the base station apparatus 1 used for communication, and the downlink control channel. It depends on the number of OFDM symbols to be used.
- FIG. 4 is a diagram illustrating numbering of control channel elements in the system band in the first embodiment of the present invention.
- FIG. 4 shows a case where five subbands are configured in the system band and 20 control channel elements are configured in each subband. Further, in the frequency region of FIG. 4, the frequency is assumed to be lower in the order of subband 1 ⁇ subband 2 ⁇ subband 3 ⁇ subband 4 ⁇ subband 5.
- the base station apparatus 1 first interleaves the resource elements in the subband 1 using the block interleaver described above.
- the base station apparatus 1 has CCE 1, CCE 2, CCE 3, CCE 4, CCE 5, CCE 6, in the order output from the block interleaver for control channel elements each consisting of nine resource element groups.
- CCE 7, CCE 8, CCE 9, CCE 10, CCE 11, CCE 12, CCE 13, CCE 14, CCE 15, CCE 16, CCE 17, CCE 18, CCE 19, CCE 20 are numbered.
- CCE 21 to CCE 40 are similarly numbered for the control channel elements of subband 2. Similarly, the numbering is performed for the control channel elements of subband 3, subband 4, and subband 5 in the same manner.
- FIG. 5A to 5D are diagrams for explaining a radio resource allocation method for the downlink shared data channel according to the first embodiment of this invention.
- FIG. 5A is a diagram showing a configuration of radio resource allocation information.
- the radio resource allocation information includes a subband index (Subband index) indicating a subband number to which radio resources of the downlink shared data channel are allocated, and a PRB pair group number in the subband to which radio resources of the downlink shared data channel are allocated.
- a resource block group hereinafter referred to as “RBG (Resource Block Group)” bitmap.
- FIG. 5B is a diagram for explaining the subband index of FIG. 5A.
- FIG. 5B shows a case where five subbands (subband 1 to subband 5) are configured in the system band, and the subband index is the radio of the downlink shared data channel among these five subbands. Stores the number of the subband to which the resource is allocated.
- FIG. 5C is a diagram for explaining the configuration of the RBG.
- the RBG is composed of a plurality of PRB pairs, and the number of PRB pairs constituting one RBG is set according to the number of PRB pairs in the subband band.
- FIG. 5C shows a case where 100 PRB pairs are configured in one subband band, and one RBG is configured by 4 PRB pairs. In FIG. 5C, only one PRB of the PRB pair is shown for simplification of description.
- FIG. 5D is a diagram for explaining the RBG bitmap of FIG. 5A.
- the RBG bitmap one bit is configured for each RBG index (RBG index), and a bit corresponding to the RBG index is associated with a bit at a specific position in the RBG bitmap in advance.
- Each bit indicates whether to assign an RBG corresponding to the downlink shared data channel. For example, when the bit value is “0”, it indicates that the corresponding RBG is not allocated, and when the bit value is “1”, it indicates that the corresponding RBG is allocated.
- the radio resource allocation information as described above is included in the downlink control channel.
- FIG. 6 is a schematic block diagram showing the configuration of the base station apparatus 1 in the first embodiment of the present invention.
- the base station apparatus 1 includes a radio resource control unit 10, a control unit 11, a transmission processing unit 12, and a reception processing unit 13.
- the radio resource control unit 10 transmits the transmission power of each mobile station device 2, intermittent transmission / reception cycles, channel quality indicator (CQI: Channel Quality Indicator) signal transmission period, downlink shared data channel, uplink shared data channel modulation scheme -Radio resource control information including coding rate is managed, and the radio resource control information is transmitted to the mobile station apparatus 2 through the transmission processing unit 12.
- CQI Channel Quality Indicator
- the radio resource control unit 10 schedules radio resource allocation of the downlink control channel to the mobile station apparatus 2, determines the coding rate of the downlink control channel, and sends it to the transmission processing unit 12 via the control unit 11.
- Information including the mobile station identifier of the mobile station apparatus 2 to which the radio resource is allocated is output.
- the control unit 11 includes one or more downlink control channels assigned to the mobile station apparatus 2 based on information indicating the coding rate of one or more downlink control channels input from the radio resource control unit 10.
- the number of control channel elements (the number of CCE sets) is determined for each mobile station apparatus, and related information is output to the transmission processing unit 12 together with the mobile station identifier of the mobile station apparatus 2 to which one or more downlink control channels are allocated. .
- control unit 11 assigns individual control data (control information) to the mobile station device 2 to which one or more downlink control channels are assigned to the transmission processing unit 12 (hereinafter referred to as individual information for the mobile station device 2).
- individual information for the mobile station device 2 An instruction is given to generate a control information number indicator indicating the number of control data (control information) (referred to as “mobile station device individual data”).
- control unit 11 generates mobile station device individual data to be transmitted using one or more downlink control channels, and outputs the data to the transmission processing unit 12.
- the mobile station apparatus individual data to be transmitted in each downlink control channel includes a mobile station identifier, radio resource allocation information of the downlink shared data channel, multi-antenna related information, modulation scheme, coding rate, retransmission parameter, CRC (CRC masked by UE ID) and other information.
- the control unit 11 controls the transmission processing unit 12 to control radio resource allocation, modulation scheme, and coding rate of the downlink shared data channel based on information input from the radio resource control unit 10.
- the transmission processing unit 12 generates one or more downlink control channels, downlink shared data channels, and control information number indicators based on control data including mobile station apparatus individual data input from the control unit 11. Send.
- the transmission processing unit 12 sets a mobile station individual search area of the mobile station apparatus 2 to which one or more downlink control channels are allocated based on the mobile station identifier, and sets one or more mobile station individual search areas in the mobile station individual search area
- the control channel element is multiplexed with an indicator for the number of pieces of control information addressed to the mobile station apparatus 2, and one or more downlink control channels are assigned to one or more other control channel elements in the mobile station dedicated search area. Multiplex transmission.
- the number of control channel elements used for multiplexing of the downlink control channel is based on information input from the control unit 11. Further, the transmission processing unit 12 sets a mobile station individual search area for each number of CCE sets based on the mobile station identifier and the hash function.
- the reception processing unit 13 demodulates and decodes the received signal received from the mobile station apparatus 2 by the reception antenna according to the instruction of the control unit 11, and extracts control data and information data including mobile station apparatus individual data.
- the reception processing unit 13 outputs control data including the extracted mobile station device individual data to the control unit 11, and outputs information data to an upper layer processing device (not shown).
- FIG. 7 is a schematic block diagram showing an internal configuration of the transmission processing unit 12 of the base station apparatus 1 in the first embodiment of the present invention.
- the transmission processing unit 12 of the base station apparatus 1 includes a plurality of downlink shared data channel processing units 210, a plurality of downlink control channel processing units (control information generating units) 220, a CCE aggregation processing unit 250, and a plurality of controls.
- Information number indicator generating section 260, pilot channel processing section 240, multiplexing section 230, IFFT (Inverse Fast Fourier Transform) section 201, GI (Guard Interval: guard interval) insertion section 202, A D / A (digital analog conversion) unit 203 and a transmission RF (Radio Frequency) unit 204 are included.
- the IFFT unit 201, the GI insertion unit 202, the D / A unit 203, and the transmission RF unit 204 are collectively referred to as a transmission unit 200.
- the plurality of downlink shared data channel processing units 210, the plurality of downlink control channel processing units 220, and the plurality of control information number indicator generating units 260 have the same configuration and functions, and therefore one of them will be described as a representative. To do.
- the downlink shared data channel processing unit 210 includes a turbo coding unit 211, a data modulation unit 212, and a shared data channel S / P (Serial / Parallel) unit 213.
- the downlink control channel processing unit 220 includes a convolutional coding unit 221, a QPSK (Quadrature Phase Shift Keying) modulation unit 222, and a control channel S / P unit 223.
- Each downlink shared data channel processing unit 210 performs baseband processing for transmitting information data to each mobile station apparatus 2 by the OFDM method. Further, the downlink shared data channel processing unit 210 also performs processing on control data including information different from the downlink control channel processing unit 220.
- the turbo coding unit 211 performs turbo coding for increasing error tolerance of information data in accordance with the coding rate instruction from the control unit 11.
- the data modulation unit 212 is a modulation method instructed by the control unit 11 among modulation methods such as QPSK, 16QAM (16 Quadrature Amplitude Modulation: 16 quadrature amplitude modulation), 64QAM (64 Quadrature Amplitude Modulation: 64 quadrature amplitude modulation), and the like.
- modulation methods such as QPSK, 16QAM (16 Quadrature Amplitude Modulation: 16 quadrature amplitude modulation), 64QAM (64 Quadrature Amplitude Modulation: 64 quadrature amplitude modulation), and the like.
- the information data encoded by the turbo encoding unit 211 is modulated, and a signal sequence of modulation symbols is output.
- the shared data channel S / P unit 213 converts the serial signal sequence (stream) output from the data modulation unit 212 into a parallel signal sequence.
- Each downlink control channel processing unit 220 is a base for transmitting one or more individual mobile station apparatus individual data to the mobile station apparatus 2 comprising information such as radio resource allocation information and mobile station identifiers in the OFDM scheme. Perform band processing.
- the convolutional coding unit 221 performs convolutional coding for increasing the error tolerance of the mobile station device individual data in accordance with the coding rate instruction from the control unit 11.
- the mobile station apparatus individual data is expressed in units of bits, and the convolutional coding unit 221 adjusts the number of output bits for the bits subjected to the convolutional coding process in accordance with the coding rate instruction from the control unit 11. To do this, rate matching is also performed.
- the QPSK modulation unit 222 modulates the encoded mobile station apparatus individual data using the QPSK modulation method, and outputs a signal sequence of modulation symbols.
- the control channel S / P unit 223 converts the serial signal sequence output from the QPSK modulation unit 222 into a parallel signal sequence.
- the CCE aggregation processing unit 250 outputs one or more downlink control channel signals output from the control channel S / P unit 223 to the control channel elements designated by the control unit 11 and the number of the control channel elements. The rearrangement process is performed for multiplexing to the control channel element. A detailed description of multiplexing one or more downlink control channel signals onto control channel elements will be described later.
- the CCE aggregation processing unit 250 includes a block interleaver, and interleaves the downlink control channel signal arranged in the control channel element for each subband in resource element group units.
- One control channel element is composed of nine resource element groups that are interleaved in units of resource element groups, and the downlink control channel signals output from the control channel S / P unit 223 are multiplexed as described later. Multiplexed in a plurality of resource element groups distributed in unit 230.
- Each of the plurality of control information indicator generation units 260 provided is control information indicating the number of mobile station apparatus individual data of a plurality of mobile station apparatuses, that is, the number of downlink control channels to be allocated to one mobile station apparatus 2 simultaneously. Generate a number indicator. The amount of information of the control information number indicator is different from the various control data formats constituting the mobile station apparatus individual data in the downlink control channel.
- the control information number indicator generation unit 260 generates a CRC code using a predetermined generation polynomial for a bit sequence indicating the number of pieces of individual data of the mobile station device, and uses the control information number indicator to generate the mobile station device.
- the information (CRC masked by UE ID) obtained by exclusive ORing the mobile station identifier of the mobile station apparatus 2 indicating the number of individual data and the generated CRC code and the bit sequence are subjected to convolutional coding, and QPSK Modulation is performed to generate a control information number indicator signal.
- the signal of the control information count indicator is multiplexed with respect to the control channel element designated by the control unit 11 into a plurality of resource element groups distributed in the multiplexing unit 230 in the same manner as the CCE aggregation processing unit 250 described above.
- Pilot channel processing section 240 generates a downlink pilot channel signal that is a known signal in mobile station apparatus 2 and outputs the signal to multiplexing section 230.
- the multiplexing unit 230 includes a signal output from the pilot channel processing unit 240, a signal output from the control information number indicator generating unit 260, a signal output from the CCE aggregation processing unit 250, and a downlink shared data channel processing unit 210.
- the output signal is multiplexed into the downlink radio frame based on the assignment determined by the control unit 11.
- the mobile station identifier of the mobile station apparatus 2 to which the control information number indicator, the downlink control channel, and the downlink shared data channel are allocated is referred to. Note that multiplexing between the downlink shared data channel and the downlink control channel is performed by time multiplexing as shown in FIG. In addition, multiplexing between the downlink pilot channel and other channels is performed by time / frequency multiplexing.
- the multiplexing of the control information number indicator and the downlink control channel is performed by time / frequency multiplexing for each control channel element. Details of the multiplexing process to the control channel element of one or more downlink control channels assigned to the same mobile station apparatus 2 as the control information number indicator of the multiplexing unit 230 will be described later.
- the IFFT unit 201 performs high-speed inverse Fourier transform on the signal multiplexed by the multiplexing unit 230 to perform OFDM modulation.
- the GI insertion unit 202 generates a baseband digital signal composed of symbols in the OFDM scheme by adding a guard interval to the OFDM-modulated signal by the IFFT unit 201.
- the guard interval is generated by duplicating the beginning or end part of the symbol to be transmitted.
- the D / A unit 203 converts the baseband digital signal input from the GI insertion unit 202 into an analog signal.
- the transmission RF unit 204 generates an in-phase component and a quadrature component of the intermediate frequency from the input analog signal, removes excess frequency components for the intermediate frequency band, and converts (ups) the intermediate frequency signal to a high frequency signal. Convert), remove excess frequency components, amplify the power, and transmit via the transmission antenna.
- the transmission unit 200 including the IFFT unit 201, the GI insertion unit 202, the D / A unit 203, and the transmission RF unit 204 includes a control information number indicator multiplexed by the multiplexing unit 230 on the control channel element, one or more A downlink control channel or the like is transmitted via a transmission antenna.
- the reception process part 13 of the base station apparatus 1 is abbreviate
- FIG. 8 is a schematic block diagram showing the configuration of the mobile station apparatus 2 in the first embodiment of the present invention.
- the mobile station device 2 includes a control unit 20, a reception processing unit 21, and a transmission processing unit 22.
- the reception processing unit 21 receives a signal from the base station device 1 and uses the control channel element in the mobile station individual search region based on the mobile station identifier of the mobile station device 2 input from the control unit 20 to control the number of control information.
- the indicator is decoded to detect the number of individual mobile station device data addressed to the mobile station device 2 itself.
- the downlink control channel is decoded using other control channel elements in the mobile station individual search region. Then, the number of downlink control channels addressed to the own mobile station apparatus 2 indicated in the control information number indicator is detected. Details of detection of the number of control information indicators and detection of one or more downlink control channels will be described later.
- the reception processing unit 21 When the reception processing unit 21 detects one or more downlink control channels addressed to the own mobile station device 2, the reception processing unit 21 controls the mobile station device individual data acquired from one or more downlink control channels. 20 is output. Further, the reception processing unit 21 outputs information data obtained by decoding the downlink shared data channel addressed to the own mobile station device 2 to an upper layer processing device (not shown).
- the control unit 20 controls the transmission processing unit 22 and the reception processing unit 21 based on the control data notified from the base station apparatus 1 using the downlink control channel and the downlink shared data channel. Further, the control unit 20 outputs the mobile station identifier assigned by the base station device 1 in advance to the reception processing unit 21. Specifically, the mobile station apparatus 2 communicates with the base station apparatus 1 at the time of initial communication connection, and the mobile station identifier is notified from the base station apparatus 1 to the mobile station apparatus 2 in the procedure.
- the transmission processing unit 22 encodes information data and control data in accordance with an instruction from the control unit 20, and transmits the modulated signal to the base station apparatus 1 via the transmission antenna.
- FIG. 9 is a schematic block diagram showing an internal configuration of the reception processing unit 21 of the mobile station device 2 according to the first embodiment of the present invention.
- the reception processing unit 21 of the mobile station apparatus 2 includes a reception RF unit 301, an A / D (analog / digital conversion) unit 302, a symbol timing detection unit 303, a GI removal unit 304, an FFT unit 305, and a demultiplexing unit.
- a channel estimation unit 340 for downlink shared data channel
- a P / S Parallel / Serial; parallel-serial conversion
- a data demodulation unit 380 for data demodulation unit 380
- a turbo decoding unit 390 for a data demodulation unit 380
- Channel compensation unit 360 for control information number indicator and downlink control channel
- start CCE selection unit 410 for control information number indicator and downlink control channel
- CCE reconfiguration unit 370 for control information number indicator detection unit 400
- CCE selection unit 311 A QPSK demodulator 312, a Viterbi decoder 313, and a CRC checker 314 are included.
- the CCE selection unit 311, the QPSK demodulation unit 312, the Viterbi decoder unit 313, and the CRC check unit 314 are collectively referred to as a control channel decoding unit 310.
- the reception RF unit 301, A / D unit 302, GI removal unit 304, FFT unit 305, and symbol timing detection unit 303 are collectively referred to as a reception unit 300.
- the reception RF unit 301 appropriately amplifies the signal received by the reception antenna, converts it to an intermediate frequency (down-conversion), removes unnecessary frequency components, and sets the amplification level so that the signal level is properly maintained. Control and perform quadrature demodulation based on the in-phase and quadrature components of the received signal.
- the A / D unit 302 converts the quadrature demodulated analog signal into a digital signal.
- the symbol timing detection unit 303 detects the timing of the symbol boundary based on the digital signal output from the A / D unit 302 and outputs a control signal indicating the detected timing of the symbol boundary.
- GI removal section 304 removes a portion corresponding to the guard interval from the digital signal output from A / D section 302 based on the control signal from symbol timing detection section 303, and outputs the remaining signal.
- the FFT unit 305 performs fast Fourier transform on the signal output from the GI removal unit 304 and performs OFDM demodulation.
- receiving section 300 including receiving RF section 301, A / D section 302, GI removing section 304, FFT section 305, and symbol timing detecting section 303 receives a signal from base station apparatus 1 via a receiving antenna.
- the demultiplexing unit 320 based on an instruction from the control unit 20, a signal demodulated by the FFT unit 305, a time / frequency domain signal in which a downlink control channel and a control information number indicator are arranged, and downlink shared data
- the signal is separated into a time / frequency domain signal in which a channel is arranged, and is output to the channel compensation unit 360 and the channel compensation unit 330.
- the demultiplexing unit 320 outputs a signal of a resource element (which constitutes a control channel element) in which a control information number indicator and a downlink control channel are arranged to the channel compensation unit 360, and downlink shared data
- the signal of the resource element in which the channel is arranged is output to the channel compensation unit 330.
- the control unit 20 controls the demultiplexing unit 320 based on the number of OFDM symbols of the downlink control channel indicated in the received control format indicator channel.
- the control information number indicator and the downlink control channel are multiplexed in the same OFDM symbol.
- the channel estimation unit 340 estimates a channel state using a received reference signal (downlink pilot channel) (not shown) and a specified value of the reference signal at the time of transmission (notified to the mobile station apparatus 2 in advance), A control signal for adjusting the amplitude and the phase is output so as to compensate for the channel fluctuation. This control signal is output for each subcarrier.
- the demultiplexing unit 320 demultiplexes the resource element in which the downlink pilot channel is arranged and outputs it to the channel estimation unit 340.
- the channel compensation unit 330 adjusts the amplitude and phase of the signal of the resource element in which the downlink shared data channel separated by the demultiplexing unit 320 is arranged for each subcarrier according to the control signal from the channel estimation unit 340.
- the P / S unit 350 converts the parallel signal sequence adjusted by the channel compensation unit 330 into a serial signal sequence.
- the data demodulator 380 demodulates the downlink shared data channel signal converted by the P / S unit 350. This demodulation is a demodulation corresponding to the modulation method used in the data modulation unit 212 of the base station apparatus 1.
- the data demodulator 380 combines the data channel in which the error is detected and the retransmitted data channel. .
- Turbo decoding section 390 decodes information data from the downlink shared data channel demodulated by data demodulation section 380.
- turbo decoding is performed by combining the downlink shared data channel in which the error is detected and the retransmitted downlink shared data channel. 390 does.
- the channel compensation unit 360 determines the amplitude and phase of the signal of the resource element (control channel element) in which the downlink control channel is arranged according to the information from the channel estimation unit 340 and the control information number indicator separated by the demultiplexing unit 320. adjust.
- the start CCE selection unit 410 selects a start point index of a control channel element for starting detection of the control information number indicator, based on a hash function having the mobile station identifier input from the control unit 20 as an input. In addition, the start CCE selection unit 410 outputs the start point index of the control channel element selected for each number of CCE sets and the mobile station individual search region determined according to the mobile station identifier to the control information number indicator detection unit 400. To do.
- the CCE reconfiguration unit 370 includes a block deinterleaver that performs an inverse process of the interleave process performed by the block interleaver of the base station apparatus 1, and performs deinterleaving in units of resource element groups within the selected subband.
- the CCE reconfiguration unit 370 reconfigures one control channel element from nine consecutive resource element groups having the numbers that have undergone deinterleaving, and sets all control channel elements in order of increasing number of control information.
- the data is output to the detection unit 400 and the CCE selection unit 311.
- the control information number indicator detection unit 400 is based on the control channel element input from the CCE reconfiguration unit 370 and the start point index of the control channel element input from the start CCE selection unit 410 and the mobile station individual search region. Then, the control information element indicator is detected by the control channel element in the mobile station individual search area. The control information number indicator detection unit 400 detects the control information number indicator for each control channel element of the number of CCE sets. Control information number indicator detection section 400 performs QPSK demodulation on the signal arranged in the control channel element, and performs Viterbi decoding on the QPSK demodulated signal. Control information number indicator detection section 400 performs Viterbi decoding at a fixed coding rate for each number of CCE sets.
- control information number indicator detection unit 400 performs a CRC (CRC masked by UE ID) check using the mobile station identifier on the bit sequence subjected to the Viterbi decoding.
- CRC CRC masked by UE ID
- control information number indicator detection section 400 checks the bit sequence excluding the CRC code and moves to the mobile station apparatus 2 itself. The number of station device individual data is determined.
- the CCE selecting unit 311 detects the control channel number and the mobile station individual search.
- a control signal for instructing to start processing is output together with information indicating the range of the control channel element in the region and information indicating the number of mobile station device individual data addressed to own mobile station device 2.
- the control information number indicator detection unit 400 detects no error by the CRC check, but the bit sequence excluding the CRC code is a sequence that is not predicted, that is, a sequence that is not predefined in the wireless communication system, The control information number indicator is continuously detected in the other control channel elements in the mobile station individual search area without determining that the control information number indicator addressed to the mobile station apparatus 2 has been detected. When an error is detected by the CRC check, the control information number indicator detection unit 400 continues to detect the control information number indicator in the other control channel elements in the mobile station dedicated search area. Further, when the control information number indicator is not detected in the mobile station individual search region of the number of CCE sets for which the control information number indicator has been detected, the control information number indicator is set for the control channel element of the next CCE set number. Decanter detection.
- the CCE selection unit 311 When the CCE selection unit 311 receives a control signal indicating the start of processing from the control information number indicator detection unit 400, the CCE selection unit 311 starts processing on the control channel element. When the CCE selection unit 311 does not receive a control signal indicating the start of processing from the control information number indicator detection unit 400, the CCE selection unit 311 does not perform processing on the control channel element.
- the CCE selection unit 311 When receiving a control signal indicating the start of processing from the control information number indicator detection unit 400, the CCE selection unit 311 controls the control information number indicator detection unit for the control channel element input from the CCE reconfiguration unit 370. 400, the number of downlinks indicated by the control information number indicator detecting unit 400 based on the number of control channel elements that have detected the control information number indicator input from 400 and the range of control channel elements in the mobile station individual search area. A candidate control channel element in which a control channel is arranged is selected, and a signal arranged in the control channel element is output to QPSK demodulation section 312. Note that the CCE selection unit 311 outputs a signal arranged in the control channel element to the QPSK demodulation unit 312 in units of control channel elements corresponding to the number of CCEs.
- the CCE selection unit 311 detects the mobile station device individual data (control information) included in the downlink control channel addressed to the number of own mobile station devices 2 indicated by the control information number indicator detection unit 400 in the subsequent processing unit. Until then, the control channel element signal in the mobile station individual search area is output to the QPSK demodulator 312, and the detection information of the mobile station apparatus individual data included in the downlink control channel addressed to the mobile station apparatus 2 is Is input.
- the control channel element in which the control information number indicator is arranged and the control channel element in which one or more downlink control channels including mobile station apparatus individual data are arranged will be described later.
- the QPSK demodulating unit 312 receives QPSK from signals input from the CCE selecting unit 311 and signals arranged in candidate control channel elements in which downlink control channels addressed to one or more own mobile station apparatuses 2 are arranged. Demodulate.
- the Viterbi decoder 313 decodes the signal demodulated by the QPSK demodulator 312 based on the coding rate input from the controller 20.
- the signal is expressed in bit units, and the Viterbi decoder unit 313 performs rate decoding in order to adjust the number of bits to be subjected to Viterbi decoding processing on the input bits in accordance with the coding rate instruction from the control unit 20. Matching is also done.
- the CRC checking unit 314 performs a CRC check on the bit sequence decoded by the Viterbi decoder unit 313.
- the CRC checking unit 314 recognizes that the bit sequence that has passed the check without being detected by the CRC check is mobile station device individual data addressed to the mobile station device 2 that has been received without error, The station device individual data is output to the control unit 20.
- the processing for the downlink control channel is performed on the control channel element in the mobile station individual search region in the downlink subframe in which the control information number indicator is detected. Against.
- the mobile station apparatus 2 ends decoding of the downlink control channel.
- the control unit that has received the information included in the mobile station apparatus individual data of one or more downlink control channels detected in this way, for example, one or more radio resource allocation information of the downlink shared data channel 20 instructs the demultiplexing unit 320, the data demodulating unit 380, and the turbo decoding unit 390 to perform reception processing of the downlink shared data channel addressed to the mobile station apparatus 2.
- the mobile station identifier is arranged as information combined with the CRC code for error detection in the mobile station apparatus individual data.
- a CRC code is generated from mobile station device individual data using a predetermined generator polynomial, and exclusive ORed with the mobile station identifier of the mobile station device 2 that is the destination of the mobile station device individual data.
- Information is arranged in the downlink control channel.
- the CRC checking unit 314 performs the reverse process of the above operation on the mobile station device individual data using the mobile station identifier of the own mobile station device 2, thereby detecting errors and detecting individual mobile station devices addressed to the mobile station device 2. Determine if it is data.
- the control unit 20 controls the data demodulation unit 380, the turbo decoding unit 390, the demultiplexing unit 320, and the transmission processing unit 22 based on one or more pieces of individual mobile station device data output from the CRC checking unit 314.
- This mobile station apparatus individual data includes radio resource allocation information, modulation scheme / coding rate, retransmission parameter, and the like.
- the control unit 20 outputs information indicating that mobile station apparatus individual data has been input from the CRC check unit 314 to the CCE selection unit 311. In addition, since it is not relevant to the present invention, detailed description of the transmission processing unit 22 of the mobile station device 2 is omitted.
- the multiplexing unit 230 of the base station apparatus 1 multiplexes the control information number indicator on any control channel element in the mobile station individual search area of the mobile station apparatus 2 to which the downlink control channel is allocated.
- the multiplexing unit 230 of the base station apparatus 1 is a control channel element subsequent to the control channel element in which the control information number indicator is multiplexed, and the control channel element in the mobile station dedicated search area includes the number of control information.
- the number of downlink control channels indicated by the indicator is multiplexed.
- the multiplexing unit 230 multiplexes the control information number indicator using the same number of control channel elements as the number of CCE aggregates of the downlink control channel. That is, when the downlink control channel is allocated using two control channel elements, the control information number indicator is also generated and multiplexed so as to be multiplexed on the two control channel elements.
- the control information number indicator detection unit 400 of the mobile station apparatus 2 detects the control information number indicator for the control channel elements in the mobile station individual search area for each number of CCE sets.
- the control information number indicator detection unit 400 inputs information indicating the number of CCE sets from which the control information number indicator is detected to the CCE selection unit 311.
- the CCE selection unit 311 of the mobile station apparatus 2 is a control channel element subsequent to the control channel element in which the control information number indicator is multiplexed.
- the control channel elements in the mobile station dedicated search region are sequentially assigned to the number of CCE sets. This is selected and output to the QPSK demodulator 312 until the number of downlink control channels indicated by the control information number indicator including the mobile station device individual data addressed to the mobile station device 2 is detected.
- the multiplexing unit 230 of the base station apparatus 1 multiplexes the control information number indicator into two control channel elements CCE 33 and CCE 34, two control channel elements CCE 37 and CCE 38, CCE 39 and CCE.
- the downlink control channel is multiplexed on 40 control channel elements.
- the control information count indicator indicates that two downlink control channels are allocated to the same mobile station apparatus 2.
- the control information number indicator detection unit 400 of the mobile station apparatus 2 selects the mobile station individual search area when the number of CCE sets is two, and starts detecting the control information number indicator from the control channel element of the CCE 31. , CCE 33 and CCE 34 control channel number indicators are detected by two control channel elements. In addition, the control information number indicator detection unit 400 of the mobile station apparatus 2 recognizes that two downlink control channels are allocated to the own mobile station apparatus 2 from the control information number indicator, and selects this information as CCE. To the unit 311.
- the CCE selection unit 311 of the mobile station apparatus 2 outputs two control channel elements from the control channel elements of the CCE 35 to the subsequent processing unit.
- the downstream processing unit performs a downlink control channel decoding process assuming a plurality of types of control data formats with different amounts of information.
- the mobile station apparatus 2 detects the downlink control channel addressed to the mobile station apparatus 2 by using the two control channel elements CCE 37 and CCE 38 and the two control channel elements CCE 39 and CCE 40, and the downlink.
- the control channel decoding process is terminated.
- the downstream processing unit in which the control unit 20 of the mobile station apparatus 2 detects the downlink control channel addressed to the mobile station apparatus 2 to the CCE selection unit 311, and the CCE selection unit 311 is input from the control unit 20.
- the number of downlink control channels detected in step 1 is compared with the number indicated by the control information number indicator detection unit 400, and if it is determined that all the indicated number of downlink control channels have been detected, the signal output is Stop.
- control information number indicator detection unit 400 of the mobile station apparatus 2 has one CCE set number when no control information number indicator is detected in the mobile station individual search area when the number of CCE sets is two.
- the control information number indicator is similarly detected for the mobile station individual search areas in the case of four or eight.
- control information number indicator detection unit 400 of the mobile station apparatus 2 may start detecting the control information number indicator from any number of CCE sets.
- the control information number indicator detection process is not performed on the other CCE sets.
- FIG. 10 is a flowchart showing a process of multiplexing the control information number indicator and one or more downlink control channels of the transmission processing unit 22 of the base station apparatus 1.
- the transmission processing unit 22 of the base station apparatus 1 selects a start point index based on the mobile station identifier of the mobile station apparatus 2 to which the downlink control channel is allocated (Step S101).
- the transmission processing unit 22 of the base station apparatus 1 multiplexes the control information number indicator on the control channel element in the mobile station individual search region based on the selected start point index (step S102).
- the transmission processing unit 22 of the base station device 1 multiplexes one or more downlink control channels to other control channel elements in the mobile station dedicated search region (step S103).
- FIG. 11 is a flowchart showing a process of detecting the number of control information indicators and one or more downlink control channels in the reception processing unit 21 of the mobile station apparatus 2.
- the reception processing unit 21 of the mobile station device 2 selects a start point index based on the mobile station identifier of the own mobile station device 2 (step S201).
- the reception processing unit 21 of the mobile station apparatus 2 detects the control information number indicator using the control channel element in the mobile station individual search region based on the selected start point index (step S202).
- the reception processing unit 21 of the mobile station device 2 determines whether or not a control information number indicator has been detected (step S203).
- step S203 determines in step S203 that the control information number indicator has not been detected, the control information number indicator is further applied to all control channel elements in the mobile station individual search area. It is determined whether or not the detection process has been performed (step S204).
- step S204 when the reception processing unit 21 of the mobile station apparatus 2 determines that the control information number indicator detection processing is not performed for all control channel elements in the mobile station individual search area, the process proceeds to step S202. Returning, the control information number indicator is detected using the control channel element for which the detection processing of the control information number indicator is not performed. In step S204, when the reception processing unit 21 of the mobile station apparatus 2 determines that the control information number indicator detection processing has been performed for all control channel elements in the mobile station individual search region, the processing ends.
- step S203 when the reception processing unit 21 of the mobile station apparatus 2 detects the control information count indicator, it uses one or more downlink control channels using other control channel elements in the mobile station dedicated search area. Is detected (step S205). Next, the reception processing unit 21 of the mobile station apparatus 2 determines whether or not the number of downlink control channels addressed to the mobile station apparatus 2 and indicated by the control information number indicator has been detected (step S206). ).
- step 206 if the reception processing unit 21 of the mobile station apparatus 2 determines that the number of downlink control channels indicated by the control information number indicator has been detected, the process ends.
- step S206 when the reception processing unit 21 of the mobile station apparatus 2 determines that the number of downlink control channels indicated by the control information number indicator has not been detected, the reception processing unit 21 further detects other downlink mobile channel search areas. It is determined whether downlink control channel detection processing has been performed for all control channel elements (step S207).
- step S207 when the reception processing unit 21 of the mobile station apparatus 2 determines that the downlink control channel detection processing has been performed on all other control channel elements in the mobile station dedicated search region, the processing ends. .
- step S207 when the reception processing unit 21 of the mobile station apparatus 2 determines that the downlink control channel detection processing is not performed for all other control channel elements in the mobile station dedicated search region, step S205 is performed.
- the downlink control channel is continuously detected using the control channel element that has not been subjected to the downlink control channel detection process.
- the base station apparatus 1 uses the control information number indicator indicating the number of downlink control channels including mobile station apparatus individual data as the control channel in the mobile station individual search area. 1 or more downlink control channels including mobile station apparatus specific data are transmitted using other control channel elements in the mobile station dedicated search area.
- the mobile station apparatus 2 detects the control information number indicator for the control channel element in the mobile station individual search area, and controls the control information number indicator when the control information number indicator is detected.
- the control information number indicator for the control channel element in the mobile station individual search area
- controls the control information number indicator when the control information number indicator is detected.
- the number of downlink control channels indicated by the number of information indicators it is assumed that multiple types of control data formats differ in information amount from other control channel elements in the mobile station dedicated search area. Decode the link control channel.
- the processing load of decoding of the downlink control channel of the mobile station apparatus 2 can be reduced.
- the mobile station apparatus 2 to which no downlink control channel has been assigned only needs to perform detection processing by decoding only one type of control information number indicator for each number of CCE sets. Decoding processing load can be reduced. Further, by using the control information number indicator, the mobile station device 2 needs to continue decoding the downlink control channel until a possible number of downlink control channels are detected for each downlink subframe. Therefore, the processing load can be reduced.
- the control information number indicator performs QPSK modulation in the same manner as the downlink control channel and performs convolutional coding to generate the transmission signal of the control information number indicator.
- Other signal configurations may be used.
- the bit sequence indicating the number of downlink control channels to be allocated simultaneously may be generated by performing QPSK modulation without adding a CRC code and multiplying the mobile station apparatus 2 by an individual scrambling code.
- the mobile station apparatus 2 determines that the control information number indicator has been detected when the correlation value exceeds a predetermined threshold using the scrambling code of the mobile station apparatus 2 for the signal of the control channel element. Then, the scrambling code multiplied from the signal of the control channel element may be removed and QPSK demodulation may be performed.
- BPSK modulation may be used instead of QPSK modulation.
- one or more downlink control channels including mobile station apparatus individual data are control channel elements subsequent to the control channel element in which the control information number indicator is multiplexed.
- the case of multiplexing to any control channel element in the mobile station dedicated search area has been described, but it may be limited in advance so that the downlink control channel is multiplexed to a specific control channel element. For example, it may be limited in advance so that one or more downlink control channels are multiplexed from the control channel element of the next number of the control channel element in which the control information number indicator is multiplexed. Thereby, the processing load of decoding of the downlink control channel of the mobile station apparatus 2 can be reduced.
- control channel element region for multiplexing the downlink control channel may be controlled according to the number of downlink control channels to be allocated simultaneously.
- the number of CCE aggregates is 2
- the number of control channel elements constituting the mobile station dedicated search area is 10
- the start point index of the control channel elements is CCE 25 (belongs to subband 2).
- the multiplexing unit 230 of the base station apparatus 1 allocates two downlink control channels to the mobile station apparatus 2, the two downlink channel configured by two control channel elements in the control channel elements up to CCE 34. Multiplex control channels.
- the control information number indicator detection unit 400 of the mobile station apparatus 2 is configured to include two control channel elements when the control information number indicator indicates that two downlink control channels are allocated.
- the CCE selection unit 311 is instructed to output the control channel element signals up to CCE 34 to the subsequent processing unit in order to decode and detect the downlink control channel. That is, in this case, the mobile station individual search area is not expanded.
- the multiplexing unit 230 of the base station apparatus 1 When allocating four downlink control channels to the mobile station apparatus 2, the multiplexing unit 230 of the base station apparatus 1 has four downlink control channels configured by two control channel elements in control channel elements up to CCE 40. Is multiplexed.
- the control information count indicator 400 of the mobile station apparatus 2 indicates that four downlink control channels are allocated by the control information count indicator
- the control information count indicator detection section 400 has four control channel elements.
- the CCE selection unit 311 is instructed to output the control channel element signals up to CCE 40 to the subsequent processing unit in order to decode and detect the downlink control channel. That is, in this case, the mobile station individual search area is expanded.
- a processing load for decoding the downlink control channel is added to the mobile station apparatus 2 having many downlink control channels to be allocated at the same time, and the degree of freedom of multiplexing of the downlink control channel is increased.
- the number of control channel elements to be controlled for each number of CCE sets when controlling the control channel element region (mobile station dedicated search region) for multiplexing the downlink control channel according to the number of downlink control channels allocated at the same time. May be different.
- control information number indicator is multiplexed to any one of the control channel elements in the mobile station dedicated search area. It may be limited in advance to multiplex several indicators.
- the control information number indicator may be limited in advance to the control channel element with the first number in the mobile station individual search area. Thereby, the processing load of the detection of the control information number indicator of the mobile station apparatus 2 can be reduced.
- control information number indicator may be multiplexed only on a specific number of CCE sets. That is, the control information number indicator may be arranged in a specific number of control channel elements.
- the number of CCE sets of the downlink control channel is CCE set 1 (configured by one control channel element), CCE set 2 (configured by two control channel elements), CCE set 4 (four In the case of CCE set 8 (consisting of 8 control channel elements), the control information number indicator is multiplexed only in CCE set 1 and CCE set 4.
- the base station apparatus 1 allocates one or more downlink control channels configured by the CCE set 1 to the mobile station apparatus 2, or one or more downlink control channels configured by the CCE set 2 Is assigned to the mobile station apparatus 2, the control information number indicator is multiplexed into the CCE set 1, and one or more downlink control channels configured by the CCE set 4 are assigned to the mobile station apparatus 2, or the CCE When one or more downlink control channels configured in the set 8 are allocated to the mobile station apparatus 2, the control information number indicator is multiplexed in the CCE set 4.
- the mobile station apparatus 2 When the mobile station apparatus 2 detects the control information count indicator in the CCE set 1, the mobile station apparatus 2 performs a process of decoding and detecting one or more downlink control channels allocated in the CCE set 1 and the CCE set 2. When the control information number indicator is detected in the set 4, a process of decoding and detecting one or more downlink control channels assigned in the CCE set 4 and the CCE set 8 is performed.
- control information number indicator may include information on the number of CCE aggregates of the downlink control channel.
- the number of CCE sets of the control information number indicator that is, the number of control channel elements used for multiplexing one control information number indicator is limited in advance, and the mobile station apparatus 2 controls the number of control information numbers only with the limited number of CCE sets. Decatur can be detected. Thereby, the load of the detection process of the control information number indicator of the mobile station apparatus 2 can be reduced.
- control information number indicator information indicating the number of mobile station device individual data for each subband allocated to the same mobile station device 2 as the control information number indicator, that is, the number of downlink control channels is configured. The case where it does is demonstrated.
- the control information number indicator generating unit 261 of the base station apparatus 1 generates a control information number indicator including information indicating the number of downlink control channels for each subband assigned to the same mobile station apparatus 2. Note that the number of downlink control channels for each subband assigned to the same mobile station apparatus 2 is specified by the control unit 11 of the base station apparatus 1.
- the control information number indicator detection unit 401 of the mobile station apparatus 2 detects the control information number indicator when the control channel number within the mobile station individual search area detects the control information number indicator addressed to the mobile station apparatus 2.
- Control channel element number information indicating the range of the control channel element in the mobile station individual search area, the number of CCE sets in which the control information number indicator is detected, and the number of control information for each subband indicated by the control information number indicator.
- a control signal for instructing to start processing is output to the CCE selection unit 311 together with information indicating the number of pieces of mobile station device individual data addressed to the mobile station device 2.
- the CCE selection unit 311 outputs the signal of the control channel element for each subband selected based on the control signal input from the control information number indicator detection unit 401 to the subsequent processing unit.
- the control unit 11 of the base station apparatus 1 transmits four downlink control channel signals including two CCE aggregates including mobile station apparatus individual data to CCE 35 and CCE 36, CCE 51 and CCE 52, and CCE. 53 and CCE 54 and CCE 95 and CCE 96 are specified to be multiplexed, and a control signal including information on the control channel element for multiplexing the downlink control channel is output to the transmission processing unit 22. Further, the control unit 11 of the base station apparatus 1 specifies that the control information number indicator is multiplexed on the control channel elements of the CCE 33 and CCE 34, and the control channel that multiplexes the control information number indicator on the transmission processing unit 22 A control signal including information on the element is output.
- the control information number indicator generating unit 261 of the base station apparatus 1 includes 0 downlink control channels assigned in subband 1 and downlink control assigned in subband 2 based on the control signal input from control unit 11. Control information indicating one channel, two downlink control channels assigned in subband 3, zero downlink control channels assigned in subband 4, and one downlink control channel assigned in subband 5 A number indicator is generated and output to the multiplexing unit 230.
- the multiplexing unit 230 of the base station apparatus 1 multiplexes the control information number indicator signal input from the control information number indicator generation unit 261 into the control channel elements of CCE 33 and CCE 34, and CCE 35, CCE 36, and CCE.
- the signals of four downlink control channels addressed to the same mobile station apparatus 2 are multiplexed on the control channel elements 51 and CCE 52, CCE 53 and CCE 54, CCE 95 and CCE 96.
- the control information number indicator detection unit 401 of the mobile station apparatus 2 is a mobile station individual search area CCE 31, CCE 32, CCE 33, CCE 34, CCE 35, CCE 36, CCE 37, CCE 38, CCE 39, CCE.
- the control information number indicator is detected for every 40 control channel elements, and the control information number indicator is detected in the control channel elements of CCE 33 and CCE 34.
- the control information number indicator detection unit 401 that has detected the control information number indicator has zero downlink control channels assigned in subband 1 and downlink control assigned in subband 2 included in the control information number indicator.
- Information indicating one channel, two downlink control channels assigned in subband 3, zero downlink control channels assigned in subband 4, and one downlink control channel assigned in subband 5 Information indicating the control channel elements CCE 33 and CCE 34 that detected the control information count indicator, information indicating that the mobile station individual search area is CCE 31 to CCE 40, and the control information count indicator are detected. Together with information indicating that the number of CCE sets performed is CCE set 2 And outputs an instruction to the control signal to start the CCE selecting section 311.
- the CCE selection unit 311 is based on the control signal input from the control information number indicator detection unit 401, CCE 35 to CCE 40 in subband 2, CCE 51 to CCE 60 in subband 3, and CCE 91 in subband 5.
- the signals of every two control channel elements of CCE 100 are output to the processing unit at the subsequent stage.
- the CCE selection unit 311 When the CCE selection unit 311 outputs the signal of the control channel element of the subband in which the control information number indicator is detected to the subsequent processing unit, the CCE selection unit 311 is in the mobile station individual search region and the control in which the control information number indicator is detected.
- the signal of the control channel element after the channel element number is output to the subsequent processing unit.
- the control channel element number in the subband is the mobile station individual search region.
- a signal of the control channel element that is relatively the same as the control channel element is output to the subsequent processing unit.
- the control channel elements CCE 31 to CCE 40 in the mobile station individual search area are the control channel elements having the control channel element numbers 11 to 20 in the subband 2. Accordingly, the CCE selection unit 311 controls signals of the control channel elements CCE 51 to CCE 60, which are control channel elements of the 11th to 20th control channel elements in the subband 3, and the control channel elements in the subband 5.
- the signals of the control channel elements CCE 91 to CCE 100 which are 11th to 20th control channel elements, are output to the processing unit at the subsequent stage.
- the control unit 20 of the mobile station apparatus 2 includes the CCE 35 and CCE 36 control channel elements of the subband 2 and is included in one downlink control channel addressed to the own mobile station apparatus 2.
- the station device individual data is the mobile station device individual data included in the two downlink control channels addressed to the own mobile station device 2 by the control channel elements of CCE 51 and CCE 52, CCE 53 and CCE 54 of subband 3.
- the mobile station apparatus individual data included in one downlink control channel addressed to the own mobile station apparatus 2 is acquired by the control channel elements of CCE 95 and CCE 96 of subband 5.
- the control unit 20 When acquiring the mobile station apparatus individual data included in the downlink control channel, the control unit 20 displays information indicating the subband number to which the downlink control channel belongs together with information indicating that the mobile station apparatus individual data has been acquired. The data is output to the selection unit 311.
- the CCE selection unit 311 detects all the downlink control channels allocated in the subband based on the information input from the control unit 20 and the information input from the control information number indicator detection unit 401, Stop outputting the signal of the control channel element that has not yet been subjected to the downlink control channel decoding detection process in the subband to the subsequent processing unit.
- the mobile station apparatus 2 acquires information data included in the downlink shared data channel based on the radio resource allocation information of the downlink shared data channel included in the acquired mobile station apparatus individual data of each downlink control channel.
- the second embodiment of the present invention shows the number of mobile station apparatus individual data for each subband allocated to the same mobile station apparatus 2 as the control information number indicator, that is, the number of downlink control channels. Contains information. Thereby, although the process accompanying decoding of a downlink control channel increases, the freedom degree of multiplexing of a downlink control channel can be increased.
- control channel elements that multiplex downlink control channel signals in subbands that do not multiplex the number of control information indicators are relative to each other.
- one or more downlink control channels may be multiplexed from a specific control channel element. For example, in a subband in which the control information number indicator is not multiplexed, the control channel element in which the control information number indicator is multiplexed and one or more downlink control from the control channel element having the same control channel number Multiple channels may be multiplexed.
- control information number indicator is multiplexed using two control channel elements from the CCE 33 in which the control channel element number is the 13th in subband 2, two downlink control channels are assigned in subband 3.
- the control channel element number may be multiplexed using four control channel elements from the 13th CCE 53.
- any subband one or more downlinks from the control channel element having the same control channel element number and the control channel element number relatively next to the control channel element in which the control information number indicator is multiplexed.
- Multiple control channels may be multiplexed.
- FIG. 14 is a diagram illustrating numbering of control channel elements in the system band in the second embodiment of the present invention.
- FIG. 14 shows a case where five subbands are configured in the system band and 20 control channel elements are configured in each subband.
- the number of subbands and the number of control channel elements in FIG. 14 are the same as those in FIG.
- the frequency is assumed to be lower in the order of subband 1 ⁇ subband 2 ⁇ subband 3 ⁇ subband 4 ⁇ subband 5.
- the base station apparatus 1 first interleaves the resource elements in the subband 1 using the block interleaver described above.
- the base station apparatus 1 has CCE 1, CCE 2, CCE 3, CCE 4, CCE 5, CCE 6, in the order output from the block interleaver for control channel elements each consisting of nine resource element groups.
- CCE 7, CCE 8, CCE 9, CCE 10, CCE 11, CCE 12, CCE 13, CCE 14, CCE 15, CCE 16, CCE 17, CCE 18, CCE 19, CCE 20 are numbered.
- X in CCE (X, Y) indicates a subband number
- Y indicates a control channel element number in the subband.
- CCE (2, 1) to CCE (2, 20) are similarly numbered for the control channel elements of subband 2. Similarly, the numbering is performed for the control channel elements of subband 3, subband 4, and subband 5 in the same manner.
- the base station apparatus 1 uses four CCE (2, 15), CCE (2, 16), and CCE (3) signals for four downlink control channels each including two CCE aggregates including mobile station apparatus individual data. 11) and CCE (3, 12), CCE (3, 13) and CCE (3, 14), and CCE (5, 15) and CCE (5, 16).
- the base station apparatus 1 has 0 downlink control channels assigned in subband 1, 1 downlink control channel assigned in subband 2, 2 downlink control channels assigned in subband 3, and subbands.
- a control information number indicator is generated, which indicates 0 downlink control channels allocated in 4 and 1 downlink control channel allocated in subband 5.
- the base station apparatus 1 multiplexes the control information number indicator on the control channel elements of CCE (2, 13) and CCE (2, 14).
- the mobile station apparatus 2 includes CCE (2, 11), CCE (2, 12), CCE (2, 13), CCE (2, 14), CCE (2, 15), CCE ( 2, 16), CCE (2, 17), CCE (2, 18), CCE (2, 19), and CCE (2, 20) for every two control channel elements, detection of the number of control information indicators Processing is performed, and the control information number indicator is detected in the control channel elements of CCE (2, 13) and CCE (2, 14).
- the mobile station apparatus 2 that has detected the control information count indicator has zero downlink control channels assigned in subband 1 and one downlink control channel assigned in subband 2 included in the control information count indicator.
- the control channel element of each subband that performs the decoding process of the downlink control channel based on the detection of the dedicator in CCE set 2 To select the door.
- the mobile station apparatus 2 includes CCE (2,15) to CCE (2,20) in subband 2, CCE (3,11) to CCE (3,20) in subband 3, and CCE (5,5) in subband 5. 11) to the CCE (5, 20) every two control channel element signals are subjected to decoding of the downlink control channel.
- the mobile station apparatus 2 When the mobile station apparatus 2 performs the downlink control channel decoding process on the signal of the control channel element of the subband in which the control information number indicator is detected, the mobile station apparatus 2 is in the mobile station individual search area, and the control information number indicator
- the downlink control channel decoding process is performed on the signals of the control channel elements subsequent to the number of the control channel element that has detected.
- the control channel element number moves within the subband.
- the downlink control channel decoding process is performed on the signal of the control channel element relatively the same as the control channel element in the station dedicated search area.
- the mobile station apparatus 2 uses the CCE (2, 15) and CCE (2, 16) control channel elements of the subband 2 to transmit one downlink control channel addressed to the mobile station apparatus 2 to the CCE (subband 3). 3, 11) and CCE (3, 12), CCE (3, 13) and CCE (3, 14), the two downlink control channels addressed to the mobile station apparatus 2 are transmitted in subband 5.
- One downlink control channel addressed to the mobile station apparatus 2 is detected by the control channel elements of CCE (5, 15) and CCE (5, 16), and mobile station apparatus individual data is acquired.
- the mobile station apparatus 2 is assigned within the subband based on the number of downlink control channels detected in each subband and the number of downlink control channels assigned to each subband indicated in the control information number indicator. When all of the downlink control channels are detected, the decoding of the downlink control channel is stopped for the control channel elements that have not yet performed the decoding detection process of the downlink control channel in the subband. To do.
- the program that operates in the mobile station apparatus 2 and the base station apparatus 1 related to the present invention is a program (a program that causes a computer to function) that controls the CPU and the like so as to realize the functions of the above-described embodiments related to the present invention.
- Information handled by these devices is temporarily stored in the RAM at the time of processing, then stored in various ROMs and HDDs, read out by the CPU as necessary, and corrected and written.
- a recording medium for storing the program a semiconductor medium (for example, ROM, nonvolatile memory card, etc.), an optical recording medium (for example, DVD, MO, MD, CD, BD, etc.), a magnetic recording medium (for example, magnetic tape, Any of a flexible disk etc. may be sufficient.
- the processing is performed in cooperation with the operating system or other application programs.
- the functions of the invention may be realized.
- the program when distributing to the market, the program can be stored and distributed in a portable recording medium, or transferred to a server computer connected via a network such as the Internet. In this case, the storage device of the server computer is also included in the present invention.
- the radio communication system of the present invention can be applied to mobile station apparatuses and base station apparatuses of mobile communication systems such as mobile phones.
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Abstract
Description
本願は、2008年10月29日に、日本に出願された特願2008-278517号に基づき優先権を主張し、その内容をここに援用する。
A-EUTRAでは、EUTRAよりも広い周波数帯域に対応すること、およびEUTRAとの互換性(compatibility)を確保することが検討されており、EUTRAに対応した移動局装置は、基地局装置の周波数帯域の一部(以下、「サブバンド」という)を用いて基地局装置と通信を行い、A-EUTRAに対応した移動局装置は、基地局装置の1個またはそれ以上のサブバンドを用いて基地局装置と通信を行うことが提案されている。すなわち、移動局装置の送受信を制御している基地局装置は、EUTRAに対応した移動局装置とは、いずれか1個のサブバンドを用いて送受信を行い、A-EUTRAに対応した移動局装置とは、送受信する移動局装置の能力に応じて1個またはそれ以上のサブバンドを用いて送受信を行うというものである。つまり、基地局装置は、各サブバンドにおいて、EUTRAに対応した移動局装置には、サブバンド内のいくつかのリソース(リソースブロック)を割り当て、A-EUTRAに対応した移動局装置には、EUTRAに対応した移動局装置に割り当てていない別のいくつかのリソースを割り当てることによって、全てのサブバンドを使用するというものである。ただし、A-EUTRAに対応した移動局装置においても、同時に送受信できるサブバンドの数が異なるため、A-EUTRAに対応した移動局装置の能力に応じて割り当てるリソースの数を変更する。
図16は、EUTRAにおける制御チャネルエレメントと下りリンク制御チャネルの論理的な関係を説明する図である。ここで、CCE nは、制御チャネルエレメントインデックスnの制御チャネルエレメントを示す。制御チャネルエレメントインデックスは、制御チャネルエレメントを識別する番号である。
無線リソース割り当て方法2は、無線リソース割り当て方法1と比較してサブバンドの情報を含む新たな制御データのフォーマットが必要になるので、移動局装置の設計、動作テストの負荷は多少増加するが、下りリンク制御チャネルの無線リソース割り当て情報で示す下りリンク共有データチャネルのPRBペアは該下りリンク制御チャネルが配置されるサブバンドに限定されないので、基地局装置のスケジューリングの自由度を増大させることができる。
基地局装置が複数のサブバンドに亘ってPRBペアを無線リソース割り当て方法1、または無線リソース割り当て方法2を用いて1個の移動局装置に同時に割り当てようとした場合、複数の下りリンク制御チャネルを用いる必要がある。
図4は、本発明の第一の実施形態におけるシステム帯域内の制御チャネルエレメントの番号付けを説明する図である。図4では、システム帯域内に5個のサブバンドが構成され、各サブバンドに20個の制御チャネルエレメントが構成される場合について示す。また、図4の周波数領域においては、サブバンド1<サブバンド2<サブバンド3<サブバンド4<サブバンド5の順で周波数が低いものとする。
また、制御部11は、1個またはそれ以上の下りリンク制御チャネルを用いて送信する移動局装置個別データを生成し、送信処理部12に出力する。
なお、各下りリンク制御チャネルで送信する移動局装置個別データは、移動局識別子、下りリンク共有データチャネルの無線リソース割り当て情報、マルチアンテナ関連情報、変調方式、符号化率、再送パラメータ、CRC(CRC masked by UE ID)符号等の情報からなる。また、制御部11は、無線リソース制御部10から入力された情報に基づき下りリンク共有データチャネルの無線リソース割り当て、変調方式、符号化率の制御を送信処理部12に対して行なう。
ターボ符号部211は、制御部11からの符号化率の指示に従い、情報データの誤り耐性を高めるためのターボ符号化を行う。
畳み込み符号部221は、制御部11からの符号化率の指示に従い、移動局装置個別データの誤り耐性を高めるための畳み込み符号化を行う。ここで、移動局装置個別データはビット単位で表現され、畳み込み符号部221は、制御部11からの符号化率の指示に従い、畳み込み符号化処理を行なったビットに対して出力ビットの数を調整するためにレートマッチングも行う。
制御チャネルS/P部223は、QPSK変調部222が出力した直列的な信号系列を並列的な信号系列に変換する。
CCE集合処理部250は、ブロックインタリーバーを備え、サブバンド毎に制御チャネルエレメントに配置する下りリンク制御チャネルの信号をリソースエレメントグループ単位でインタリーブを行う。なお、1個の制御チャネルエレメントはリソースエレメントグループ単位でインタリーブが行なわれた9個のリソースエレメントグループにより構成され、制御チャネルS/P部223が出力した各下りリンク制御チャネルの信号が後述の多重部230において分散した複数のリソースエレメントグループに多重される。
制御情報数インディケーター生成部260は、移動局装置個別データの個数を示すビット系列に対して予め決められた生成多項式を用いてCRC符号を生成し、制御情報数インディケーターを用いて移動局装置個別データの個数を示す移動局装置2の移動局識別子と生成したCRC符号との排他的論理和をとった情報(CRC masked by UE ID)と前記ビット系列に対して畳み込み符号化を行い、QPSK変調を行い、制御情報数インディケーターの信号を生成する。なお、制御情報数インディケーターの信号は、制御部11から指定された制御チャネルエレメントに対して、前述のCCE集合処理部250と同様に、多重部230において分散した複数のリソースエレメントグループに多重される。
なお、下りリンク共有データチャネルと下りリンク制御チャネル間の多重は図1に示したように時間多重で行う。また、下りリンクパイロットチャネルと、その他のチャネル間の多重は時間・周波数多重で行う。また、制御情報数インディケーターと下りリンク制御チャネルの多重は制御チャネルエレメント単位で時間・周波数多重で行なう。多重部230の制御情報数インディケーターと同一の移動局装置2に割り当てる1個またはそれ以上の下りリンク制御チャネルの制御チャネルエレメントへの多重処理の詳細については後述する。
GI挿入部202は、IFFT部201によりOFDM方式の変調済みの信号にガードインターバルを付加することで、OFDM方式におけるシンボルからなるベースバンドのディジタル信号を生成する。ガードインターバルは、伝送するシンボルの先頭又は末尾の一部を複製することによって生成される。
送信RF部204は、入力されたアナログ信号から、中間周波数の同相成分および直交成分を生成し、中間周波数帯域に対する余分な周波数成分を除去し、中間周波数の信号を高周波数の信号に変換(アップコンバート)し、余分な周波数成分を除去し、電力増幅し、送信アンテナを介して送信する。
具体的には、初期通信接続時に移動局装置2は基地局装置1と通信を行ない、その手順の中で移動局識別子が基地局装置1から移動局装置2に通知される。
データ復調部380は、P/S部350が変換した下りリンク共有データチャネルの信号の復調を行う。この復調は、基地局装置1のデータ変調部212で用いた変調方式に対応した復調である。また、ハイブリッド自動再送HARQ(Hybrid Automatic Repeat reQuest)として、チェース合成(Chase combining)法を用いているときは、誤りを検出したデータチャネルと再送信されたデータチャネルの合成をデータ復調部380が行う。
また、開始CCE選択部410は、CCE集合数毎に選択した制御チャネルエレメントの開始ポイントインデックスと移動局識別子に応じて決定される移動局個別探索領域とを制御情報数インディケーター検出部400に出力する。
制御情報数インディケーター検出部400は、CCE集合数の制御チャネルエレメント単位で制御情報数インディケーターの検出を行なう。制御情報数インディケーター検出部400は、制御チャネルエレメントに配置された信号に対してQPSK復調を行い、QPSK復調した信号に対してビタビデコーディングを行なう。なお、制御情報数インディケーター検出部400は、CCE集合数毎に固定の符号化率でビタビデコーディングを行なう。
次に、制御情報数インディケーター検出部400は、CRC(CRC masked by UE ID)チェックにより誤りが検出されなかった場合、CRC符号を除くビット系列を確認して、自移動局装置2宛ての移動局装置個別データの個数を判断する。制御情報数インディケーター検出部400は、自移動局装置2宛ての制御情報数インディケーターを検出した場合、CCE選択部311に制御情報数インディケーターを検出した制御チャネルエレメントの番号と移動局個別探索領域の制御チャネルエレメントの範囲を示す情報と自移動局装置2宛ての移動局装置個別データの個数を示す情報と共に、処理を開始するように指示をする制御信号を出力する。
制御情報数インディケーター検出部400は、CRCチェックにより誤りが検出された場合、移動局個別探索領域内のその他の制御チャネルエレメントで制御情報数インディケーターの検出を引き続き行なう。
さらに、制御情報数インディケーターの検出を行ったCCE集合数の移動局個別探索領域内で制御情報数インディケーターが検出されなかった場合は、次のCCE集合数の制御チャネルエレメントについて制御情報数インディケーターの検出を行なう。
CCE選択部311は、制御情報数インディケーター検出部400より処理の開始を示す制御信号を入力されなかった場合、制御チャネルエレメントに対して処理を行なわない。
ビタビデコーダ部313は、制御部20から入力された符号化率に基づいてQPSK復調部312が復調した信号を復号する。ここで、信号はビット単位で表現され、ビタビデコーダ部313は、制御部20からの符号化率の指示に従い、入力ビットに対してビタビデコーディング処理を行なうビットの数を調整するためにレートデマッチングも行なう。
このようにして検出した1個またはそれ以上の下りリンク制御チャネルの移動局装置個別データ内に含まれる情報、例えば下りリンク共有データチャネルの1個またはそれ以上の無線リソース割り当て情報を受けた制御部20が、多重分離部320、データ復調部380、ターボ復号部390に対して指示することで、当該移動局装置2宛ての下りリンク共有データチャネルの受信処理を行う。
CRC検査部314は、自移動局装置2の移動局識別子を用いて前記操作の逆処理を移動局装置個別データに対して行うことにより、誤り検出と共に自移動局装置2宛ての移動局装置個別データであるかを判定する。
始めに、基地局装置1の送信処理部22は、下りリンク制御チャネルを割り当てる移動局装置2の移動局識別子に基づき開始ポイントインデックスを選択する(ステップS101)。次に、基地局装置1の送信処理部22は、選択した開始ポイントインデックスに基づき移動局個別探索領域内の制御チャネルエレメントに制御情報数インディケーターを多重する(ステップS102)。次に、基地局装置1の送信処理部22は、移動局個別探索領域内のその他の制御チャネルエレメントに1個またはそれ以上の下りリンク制御チャネルを多重する(ステップS103)。
始めに、移動局装置2の受信処理部21は、自移動局装置2の移動局識別子に基づき開始ポイントインデックスを選択する(ステップS201)。次に、移動局装置2の受信処理部21は、選択した開始ポイントインデックスに基づき移動局個別探索領域内の制御チャネルエレメントを用いて制御情報数インディケーターの検出を行なう(ステップS202)。次に、移動局装置2の受信処理部21は、制御情報数インディケーターを検出したか否かを判断する(ステップS203)。
また、制御情報数インディケーターを用いることにより、移動局装置2は、下りリンクのサブフレーム毎に可能性のある個数の下りリンク制御チャネルを検出するまで下りリンク制御チャネルの復号を行ない続ける必要がなくなるので、処理負荷を軽減することができる。
移動局装置2は、制御チャネルエレメントの信号に対して自移動局装置2のスクランブリング符号を用いて相関値が予め決められた閾値を超えた場合に、制御情報数インディケーターが検出されたと判断し、制御チャネルエレメントの信号から乗算されたスクランブリング符号を除去してQPSK復調するようにしてもよい。
なお、QPSK変調ではなく、BPSK変調を用いてもよい。
これにより、移動局装置2の下りリンク制御チャネルの復号の処理負荷を軽減することができる。
図4を用いて一例を説明する。ここでは、CCE集合数が2個、移動局個別探索領域を構成する制御チャネルエレメントの数が10個、制御チャネルエレメントの開始ポイントインデックスがCCE 25(サブバンド2に属する)の場合について説明する。
同時に割り当てる下りリンク制御チャネルが多い移動局装置2に対して下りリンク制御チャネルの復号の処理負荷を追加して、下りリンク制御チャネルの多重の自由度を増加させる。
なお、同時に割り当てる下りリンク制御チャネルの個数に応じて下りリンク制御チャネルを多重する制御チャネルエレメントの領域(移動局個別探索領域)を制御する場合に、CCE集合数毎に制御する制御チャネルエレメントの数を異なるようにしてもよい。
これにより、移動局装置2の制御情報数インディケーターの検出の処理負荷を軽減することができる。
これにより、制御情報数インディケーターと下りリンク制御チャネルのCCE集合数を同一にする制約は解除される。
これにより、移動局装置2の制御情報数インディケーターの検出処理の負荷を軽減することができる。
以下、本発明の第二の実施形態として、制御情報数インディケーターに同一の移動局装置2に割り当てるサブバンド毎の移動局装置個別データの個数、つまり下りリンク制御チャネルの個数を示す情報を構成する場合について説明する。
第二の実施形態においては、図12に示す基地局装置1の送信処理部12a内の制御情報数インディケーター生成部261と、図13に示す移動局装置2の受信処理部21a内の制御情報数インディケーター検出部401の機能が異なり、その他の構成は第一の実施形態と同様であるため、説明を省略する。
例えば、制御情報数インディケーターを多重しないサブバンド内において制御情報数インディケーターが多重された制御チャネルエレメントと制御チャネルエレメントの番号が相対的に同じ制御チャネルエレメントから1個またはそれ以上の下りリンク制御チャネルを多重するようにしてもよい。
プログラムを格納する記録媒体としては、半導体媒体(例えば、ROM、不揮発性メモリカード等)、光記録媒体(例えば、DVD、MO、MD、CD、BD等)、磁気記録媒体(例えば、磁気テープ、フレキシブルディスク等)等のいずれであってもよい。
また、ロードしたプログラムを実行することにより、上述した実施形態の機能が実現されるだけでなく、そのプログラムの指示に基づき、オペレーティングシステムあるいは他のアプリケーションプログラム等と共同して処理することにより、本発明の機能が実現される場合もある。
また市場に流通させる場合には、可搬型の記録媒体にプログラムを格納して流通させたり、インターネット等のネットワークを介して接続されたサーバコンピュータに転送することができる。この場合、サーバコンピュータの記憶装置も本発明に含まれる。
2・・・移動局装置
10・・・無線リソース制御部
11・・・制御部
12,12a・・・送信処理部
13・・・受信処理部
20・・・制御部
21,21a・・・受信処理部
22・・・送信処理部
200・・・送信部
201・・・IFFT部
202・・・GI挿入部
203・・・D/A部
204・・・送信RF部
210・・・下りリンク共有データチャネル処理部
211・・・ターボ符号部
212・・・データ変調部
213・・・共有データチャネルS/P部
220・・・下りリンク制御チャネル処理部
221・・・畳み込み符号部
222・・・QPSK変調部
223・・・制御チャネルS/P部
230・・・多重部
240・・・パイロットチャネル処理部
250・・・CCE集合処理部
260,261・・・制御情報数インディケーター生成部
300・・・受信部
301・・・受信RF部
302・・・A/D部
303・・・シンボルタイミング検出部
304・・・GI除去部
305・・・FFT部
310・・・制御チャネル復号部
311・・・CCE選択部
312・・・QPSK復調部
313・・・ビタビデコーダ部
314・・・CRC検査部
320・・・多重分離部
330・・・チャネル補償部
340・・・チャネル推定部
350・・・P/S部
360・・・チャネル補償部
370・・・CCE再構成部
380・・・データ復調部
390・・・ターボ復号部
400,401・・・制御情報数インディケーター検出部
410・・・開始CCE選択部
Claims (19)
- 複数の移動局装置と、複数の時間・周波数リソースから構成された制御チャネルエレメントを1個またはそれ以上含んだ制御チャネルからなる送信信号を前記移動局装置に送信する基地局装置と、を具備する無線通信システムにおいて、
前記基地局装置は、
前記移動局装置に個別の制御情報を生成する制御情報生成部と、
前記制御情報生成部によって生成された前記移動局装置毎の前記制御情報の個数を示す制御情報数インディケーターを前記移動局装置毎に生成する制御情報数インディケーター生成部と、
前記制御情報数インディケーター生成部によって生成された前記制御情報数インディケーターを1個またはそれ以上の前記制御チャネルエレメントを用いて前記移動局装置に送信し、前記制御情報生成部によって生成された1個またはそれ以上の前記制御情報を1個またはそれ以上の前記制御チャネルを用いて前記移動局装置に送信する送信部と、
を備え、
前記移動局装置は、
前記移動局装置の移動局識別子に基づいて選択される移動局個別探索領域内で、前記基地局装置から送信された制御情報数インディケーターと、制御情報とを受信する受信部と、
前記受信部が受信した前記制御情報数インディケーターの検出を行なう制御情報数インディケーター検出部と、
前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じて前記制御チャネルの復号を行なう制御チャネル復号部と、
を備えることを特徴とする無線通信システム。 - 前記制御チャネル復号部は、
前記制御情報数インディケーター検出部が検出した前記制御情報数インディケーターを確認し、前記制御情報数インディケーターが1個またはそれ以上の前記制御情報の個数を示す場合には、該示された個数の当該移動局装置の制御情報を検出するまで前記制御チャネルの復号を行い、前記制御情報数インディケーターが無いまたは当該移動局装置に個別の前記制御情報が無いことを示す場合には、前記制御チャネルの復号を行わない、
ことを特徴とする請求項1に記載の無線通信システム。 - 前記制御情報数インディケーターは、
前記制御情報数インディケーターが配置された時間領域のフレームにおける前記移動局装置に個別の制御情報の個数を示す、
ことを特徴とする請求項1に記載の無線通信システム。 - 前記制御チャネルは、
予め定められた順番の制御チャネルエレメントに対して前記制御情報数インディケーターが配置された制御チャネルエレメントに後続する制御チャネルエレメントに配置される、
ことを特徴とする請求項1に記載の無線通信システム。 - 前記制御チャネル復号部は、
前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じて前記制御チャネルの復号を行なう前記移動局個別探索領域の制御チャネルエレメントの個数を制御する、
ことを特徴とする請求項1に記載の無線通信システム。 - 前記制御情報数インディケーターは、
前記移動局識別子に基づいて選択される前記移動局個別探索領域内で最初に探索される前記制御チャネルエレメントに優先的に配置される、
ことを特徴とする請求項1に記載の無線通信システム。 - 前記制御情報数インディケーターは、
予め定められた数の制御チャネルエレメントに配置され、
前記制御情報数インディケーター検出部は、
該予め定められた数の制御チャネルエレメント単位で前記制御情報数インディケーターの検出を行なう、
ことを特徴とする請求項1に記載の無線通信システム。 - 前記制御情報数インディケーターは、更に、
前記移動局装置に個別の制御情報を含む、1個またはそれ以上の前記制御チャネルを構成する制御チャネルエレメントの個数を含み、
前記制御チャネル復号部は、
前記制御情報数インディケーターに示された前記制御チャネルエレメントの個数を確認し、前記制御情報数インディケーターに示された個数の制御チャネルエレメントによって構成される1個またはそれ以上の前記制御チャネルに対して、前記制御情報数インディケーターに示された個数の制御情報を検出するまで前記制御チャネルの復号を行なう、
ことを特徴とする請求項1に記載の無線通信システム。 - 前記基地局装置は、
連続する複数のサブキャリアから複数の周波数帯域を構成し、周波数帯域の複数の時間・周波数リソースから制御チャネルエレメントを構成し、1個またはそれ以上の前記制御チャネルエレメントから制御チャネルを構成し、
前記制御情報数インディケーターは、
前記周波数帯域毎の前記移動局装置に個別の制御情報の個数を示し、
前記制御チャネル復号部は、
前記周波数帯域毎に前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じた個数の前記制御チャネルの復号を行なう、
ことを特徴とする請求項1に記載の無線通信システム。 - 複数の時間・周波数リソースから構成された制御チャネルエレメントを1個またはそれ以上含んだ制御チャネルからなる、基地局装置から送信された送信信号を受信する移動局装置において、
前記移動局装置の移動局識別子に基づいて選択される移動局個別探索領域内で、前記基地局装置から送信された前記制御チャネルを含む送信信号を受信する受信部と、
前記受信部が受信した該移動局装置に個別の制御情報の個数を示す制御情報数インディケーターの検出を行なう制御情報数インディケーター検出部と、
前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じて前記制御チャネルの復号を行なう制御チャネル復号部と、
を備えることを特徴とする移動局装置。 - 前記制御チャネル復号部は、
前記制御情報数インディケーター検出部が検出した前記制御情報数インディケーターを確認し、前記制御情報数インディケーターが1個またはそれ以上の前記制御情報の個数を示す場合には、該示された個数の当該移動局装置の制御情報を検出するまで前記制御チャネルの復号を行い、前記制御情報数インディケーターが無いまたは当該移動局装置に個別の前記制御情報が無いことを示す場合には、前記制御チャネルの復号を行わない、
ことを特徴とする請求項10に記載の移動局装置。 - 前記制御情報数インディケーターは、
前記制御情報数インディケーターが配置された時間領域のフレームにおける前記移動局装置に個別の制御情報の個数を示し、
前記制御チャネル復号部は、
前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じて前記制御チャネルの復号を行なう、
ことを特徴とする請求項10に記載の移動局装置。 - 前記制御チャネルは、
予め定められた順番の制御チャネルエレメントに対して前記制御情報数インディケーターが配置された制御チャネルエレメントに後続する制御チャネルエレメントに配置され、
前記制御チャネル復号部は、
前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じて前記制御チャネルの復号を行なう、
ことを特徴とする請求項10に記載の移動局装置。 - 前記制御チャネル復号部は、
前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じて前記制御チャネルの復号を行なう前記移動局個別探索領域の制御チャネルエレメントの個数を制御する、
ことを特徴とする請求項10に記載の移動局装置。 - 前記制御情報数インディケーターは、
前記移動局識別子に基づいて選択される前記移動局個別探索領域内で最初に探索される前記制御チャネルエレメントに優先的に配置され、
前記制御チャネル復号部は、
前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じて前記制御チャネルの復号を行なう、
ことを特徴とする請求項10に記載の移動局装置。 - 前記制御情報数インディケーターは、
予め定められた数の制御チャネルエレメントに配置され、
前記制御情報数インディケーター検出部は、
該予め定められた数の制御チャネルエレメント単位で前記制御情報数インディケーターの検出を行なう、
ことを特徴とする請求項10に記載の移動局装置。 - 前記制御情報数インディケーターは、更に、
前記移動局装置に個別の制御情報を含む、1個またはそれ以上の前記制御チャネルを構成する制御チャネルエレメントの個数を含み、
前記制御チャネル復号部は、
前記制御情報数インディケーターに示された前記制御チャネルエレメントの個数を確認し、前記制御情報数インディケーターに示された個数の制御チャネルエレメントによって構成される1個またはそれ以上の前記制御チャネルに対して、前記制御情報数インディケーターに示された個数の制御情報を検出するまで前記制御チャネルの復号を行なう、
ことを特徴とする請求項10に記載の移動局装置。 - 連続する複数のサブキャリアから複数の周波数帯域を構成し、周波数帯域の複数の時間・周波数リソースから制御チャネルエレメントを構成し、1個またはそれ以上の前記制御チャネルエレメントから制御チャネルを構成し、前記制御チャネルを含んで基地局装置から送信された送信信号を受信する前記移動局装置において、
前記制御情報数インディケーターは、
前記周波数帯域毎の前記移動局装置に個別の制御情報の個数を示し、
前記制御チャネル復号部は、
前記周波数帯域毎に前記制御情報数インディケーター検出部が検出した前記制御情報の個数に応じた個数の前記制御チャネルの復号を行なう、
ことを特徴とする請求項10に記載の移動局装置。 - 複数の時間・周波数リソースから構成された制御チャネルエレメントを1個またはそれ以上含んだ制御チャネルからなる送信信号を移動局装置に送信する基地局装置において、
前記移動局装置に個別の制御情報を生成する制御情報生成部と、
前記制御情報生成部によって生成された前記移動局装置毎の前記制御情報の個数を示す制御情報数インディケーターを前記移動局装置毎に生成する制御情報数インディケーター生成部と、
前記制御情報数インディケーター生成部によって生成された前記制御情報数インディケーターを1個またはそれ以上の前記制御チャネルエレメントを用いて前記移動局装置に送信し、前記制御情報生成部によって生成された1個またはそれ以上の前記制御情報を1個またはそれ以上の前記制御チャネルを用いて前記移動局装置に送信する送信部と、
を備えることを特徴とする基地局装置。
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NOKIA ET AL.: "Reducing the decoding complexity of the PDCCH", R1-074317, 3GPP, 8 October 2007 (2007-10-08), XP050107833, Retrieved from the Internet <URL:http://www.3gpp.org/ftp/tsg_ran/WG1_RL1/TSGR1_50b/Docs/R1-074317.zip> * |
NTT DOCOMO: "PDCCH Allocation Based on Hashing Function Generation Method for PDCCH Blind Decoding", R1-081406, 3GPP, 31 March 2008 (2008-03-31), XP050109823, Retrieved from the Internet <URL:http://www.3gpp.org/ftp/tsg_ran/WG1_RL1/TSGR1_52b/Docs/R1-081406.zip> * |
SAMSUNG: "Configuration of PDCCH candidate sets for the control of blind decoding attempts", R1-080675, 3GPP, 11 February 2008 (2008-02-11), XP008146796, Retrieved from the Internet <URL:http://www.3gpp.org/ftp/tsg_ran/WG1_RL1/TSGR1_52/Docs/R1-080675.zip> * |
See also references of EP2352242A4 |
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Also Published As
Publication number | Publication date |
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BRPI0920413B1 (pt) | 2020-09-24 |
ZA201102850B (en) | 2013-07-31 |
US9479968B2 (en) | 2016-10-25 |
CN102197612A (zh) | 2011-09-21 |
EP2352242B1 (en) | 2018-03-07 |
EA024395B1 (ru) | 2016-09-30 |
BRPI0920413A2 (pt) | 2015-12-22 |
US20140321420A1 (en) | 2014-10-30 |
EP2352242A4 (en) | 2015-07-08 |
CN102197612B (zh) | 2016-08-03 |
EA201170495A1 (ru) | 2011-12-30 |
EP2352242A1 (en) | 2011-08-03 |
JPWO2010050105A1 (ja) | 2012-03-29 |
US20110200004A1 (en) | 2011-08-18 |
JP5545666B2 (ja) | 2014-07-09 |
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