USRE48709E1 - Method and apparatus for reporting a channel quality in a wireless communication system - Google Patents
Method and apparatus for reporting a channel quality in a wireless communication system Download PDFInfo
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- USRE48709E1 USRE48709E1 US16/121,119 US201016121119A USRE48709E US RE48709 E1 USRE48709 E1 US RE48709E1 US 201016121119 A US201016121119 A US 201016121119A US RE48709 E USRE48709 E US RE48709E
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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 signalling, i.e. of overhead other than pilot signals
- H04L5/0057—Physical resource allocation for CQI
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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) or DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT the frequencies being arranged in component carriers
Definitions
- the present invention relates to wireless communications, and more particularly, to a method and apparatus for reporting channel quality in a wireless communication system.
- CQI channel quality indicator
- CSI channel state indicator
- the CQI may be a value obtained by quantizing a channel state (e.g., a signal to interference-plus-noise ratio (SINR), a carrier to interference and noise ratio (CINR), a bit error rate (BER), and a frame error rate (FER)) or a modulation and coding scheme (MCS) index in an MCS table.
- a channel state e.g., a signal to interference-plus-noise ratio (SINR), a carrier to interference and noise ratio (CINR), a bit error rate (BER), and a frame error rate (FER)
- MCS modulation and coding scheme
- the CQI may include a rank indicator (RI) and/or a precoding matrix indicator (PMI) in a multi-antenna system.
- LTE Long term evolution
- 3GPP 3 rd generation partnership project
- TS technical specification
- one component carrier is considered in general even if a bandwidth is differently set between an uplink and a downlink.
- one carrier constitutes each of the uplink and the downlink on the basis of a single carrier, and the bandwidth of the uplink is symmetrical to the bandwidth of the downlink in general.
- the spectrum aggregation includes a technique for supporting a system bandwidth of 100 mega Hertz (MHz) by using multiple carriers even if, for example, the 3GPP LIE supports a bandwidth of up to 20 MHz, and a technique for allocating an asymmetric bandwidth between the uplink and the downlink.
- MHz mega Hertz
- the 3GPP LTE is designed to report channel quality on the basis of a single-component carrier.
- a method capable of reporting channel quality in a multi-carrier system there is a need for a method capable of reporting channel quality in a multi-carrier system.
- the present invention provides a method and apparatus for reporting channel quality in a wireless communication system.
- a method for reporting channel quality in a wireless communication system includes receiving an uplink grant from a base station through one of a plurality of downlink component carriers (CCs), the uplink grant including an uplink allocation and a channel quality indicator (CQI) indicating a triggering of CQI reporting, and reporting a CQI of a linked downlink CC to the base station.
- the linked downlink CC is a downlink CC linked to an uplink CC in which the uplink allocation is scheduled among the plurality of downlink CCs.
- the uplink grant may further include a carrier indicator field (CIF) indicating the uplink CC in which the uplink allocation is scheduled.
- CIF carrier indicator field
- the method may further include receiving system information including a first CC linkage between at least one uplink CC and the plurality of downlink CCs from the base station.
- the uplink CC in which the uplink allocation is scheduled may be determined according to the first CC linkage.
- the method may further include receiving a radio resource control (RRC) message including a second CC linkage between at least one uplink CC and the plurality of downlink CCs from the base station.
- RRC radio resource control
- the uplink CC in which the uplink allocation is scheduled may be determined according to the second CC linkage.
- an apparatus configured for reporting channel quality in a wireless communication system.
- the apparatus includes a radio frequency (RF) unit configured for transmitting and receiving a radio signal, and a processor coupled to the RF unit and configured for receiving an uplink grant from a base station through one of a plurality of downlink component carriers (CCs), the uplink grant including an uplink allocation and a channel quality indicator (CQI) indicating a triggering of CQI reporting, and reporting a CQI of a linked downlink CC to the base station.
- the linked downlink CC is a downlink CC linked to an uplink Cc in which the uplink allocation is scheduled among the plurality of downlink CCs.
- the present invention provides a method for transmitting a control signal in a multi-carrier system capable of cross carrier scheduling. More specifically, a method and apparatus for reporting channel quality are proposed.
- FIG. 1 shows a downlink radio frame structure in 3 rd generation partnership project (3GPP) long term evolution (LTE).
- 3GPP 3 rd generation partnership project
- LTE long term evolution
- FIG. 2 shows channel quality indicator (CQI) reporting in the conventional 3GPP LTE.
- FIG. 3 shows an example of multiple carriers
- FIG. 4 shows an example of a multi-carrier operation.
- FIG. 5 shows an example of cross-carrier scheduling.
- FIG. 6 is a diagram for describing an operation according to an embodiment of the present invention.
- FIG. 7 is a flowchart showing a CQI reporting method according to an embodiment of the present invention.
- FIG. 8 is a block diagram showing a wireless communication system according to an embodiment of the present invention.
- a user equipment may be fixed or mobile, and may be referred to as another terminology, such as a mobile station (MS), a mobile terminal (MT), a user terminal (UT), a subscriber station (SS), a wireless device, a personal digital assistant (PDA), a wireless modem, a handheld device, etc.
- MS mobile station
- MT mobile terminal
- UT user terminal
- SS subscriber station
- PDA personal digital assistant
- a base station is generally a fixed station that communicates with the UE and may be referred to as another terminology, such as an evolved node-B (eNB), a base transceiver system (BTS), an access point, etc.
- eNB evolved node-B
- BTS base transceiver system
- access point etc.
- Each BS provides a communication service to a specific geographical region (generally referred to as a cell).
- the cell can be divided into a plurality of regions (referred to as sectors).
- FIG. 1 shows a downlink radio frame structure in 3 rd generation partnership project (3GPP) long term evolution (LTE).
- 3GPP 3 rd generation partnership project
- LTE long term evolution
- the section 6 of 3GPP TS 36.211 V8.7.0 (2009-05) “Evolved Universal Terrestrial Radio Access (E-UTRA); Physical Channels and Modulation (Release 8)” may be incorporated herein by reference.
- a radio frame consists of 20 subframes indexed with 0 to 19.
- One subframe consists of 2 slots.
- a time required for transmitting one subframe is defined as a transmission time interval (TTI).
- TTI transmission time interval
- one subframe may have a length of 1 millisecond (ms)
- one slot may have a length of 0.5 ms.
- One slot may include a plurality of orthogonal frequency division multiplexing (OFDM) symbols in a time domain.
- OFDM orthogonal frequency division multiplexing
- the OFDM symbol is only for expressing one symbol period in the time domain, and there is no limitation in a multiple access scheme or terminologies.
- the OFDM symbol may also be referred to as another terminology such as a single carrier frequency division multiple access (SC-FDMA) symbol, a symbol period, etc.
- SC-FDMA single carrier frequency division multiple access
- one slot includes 7 OFDM symbols for example, the number of OFDM symbols included in one slot may vary depending on a length of a cyclic prefix (CP).
- CP cyclic prefix
- a resource block is a resource allocation unit, and includes a plurality of subcarriers in one slot. For example, if one slot includes 7 OFDM symbols in a time domain and the RB includes 12 subcarriers in a frequency domain, one RB can include 7 ⁇ 12 resource elements (REs).
- REs resource elements
- a DL subframe is divided into a control region and a data region in the time domain.
- the control region includes up to three preceding OFDM symbols of a 1 st slot in the subframe.
- the number of OFDM symbols included in the control region may vary.
- a physical downlink control channel (PDCCH) is allocated to the control region, and a physical downlink shared channel (PDSCH) is allocated to the data region.
- PDCCH physical downlink control channel
- PDSCH physical downlink shared channel
- the 3GPP LTE classifies a physical channel into a data channel and a control channel.
- the data channel include a physical downlink shared channel (PDSCH) and a physical uplink shared channel (PUSCH).
- Examples of the control channel include a physical downlink control channel (PDCCH), a physical control format indicator channel (PCFICH), a physical hybrid-ARQ indicator channel (PHICH), and a physical uplink control channel (PUCCH).
- the PCFICH transmitted in a 1 st OFDM symbol of the subframe carries a control format indicator (CFI) regarding the number of OFDM symbols (i.e., a size of the control region) used for transmission of control channels in the subframe.
- CFI control format indicator
- the UE first receives the CFI through the PCFICH, and thereafter monitors the PDCCH.
- the PHICH carries a positive-acknowledgement (ACK)/negative-acknowledgement (HACK) signal for uplink hybrid automatic repeat request (HARQ).
- ACK positive-acknowledgement
- HACK negative-acknowledgement
- HARQ uplink hybrid automatic repeat request
- the ACK/NACK signal for uplink (UL) data on the PUSCH transmitted by the UE is transmitted on the PHICH.
- the DCI may include a resource allocation of the PDSCH (this is referred to as a DL grant), a resource allocation of a PUSCH (this is referred to as a UL grant), a set of transmit power control commands for individual UEs in any UE group and/or activation of a voice over Internet protocol (VoIP).
- DCI downlink control information
- the DCI may include a resource allocation of the PDSCH (this is referred to as a DL grant), a resource allocation of a PUSCH (this is referred to as a UL grant), a set of transmit power control commands for individual UEs in any UE group and/or activation of a voice over Internet protocol (VoIP).
- VoIP voice over Internet protocol
- the DCI on the PDCCH is received by using blind decoding.
- a plurality of candidate PDCCHs can be transmitted in the control region of one subframe.
- the UE monitors the plurality of candidate PDCCHs in every subframe.
- monitoring is an operation in which the UE attempts decoding of each PDCCH according to a format of PDCCH to be monitored.
- the UE monitors a set of PDCCH candidates in a subframe to find its own PDCCH.
- a cyclic redundancy check (CRC) error detected by performing de-making on an identifier (i.e., cell-radio network temporary identifier (RNTI)) of the UE in a corresponding PDCCH the UE detects this PDCCH as a PDCCH having its DCI.
- CRC cyclic redundancy check
- the UE In order to receive DL data, the UE first receives a DL grant on the PDCCH. DL data on the PDSCH is received by using the DL grant. In addition, to transmit UL data, the UE first receives a UL grant on the PDCCH. UL data is transmitted on the PUSCH by using the UL grant.
- a physical broadcast channel is transmitted in first four OFDM symbols in a 2 nd slot of a 1 st subframe of a radio frame.
- the PBCH carries system information necessary for communication between a UE and a BS.
- the system information transmitted through the PBCH is referred to as a master information block (MIB).
- MIB master information block
- SIB system information block
- FIG. 2 shows CQI reporting in the conventional 3GPP LTE.
- ABS transmits a CQI request 201 through a PDCCH in a DL subframe.
- the CQI request 201 is included in a DCI format 0 or a random access response.
- the DCI format 0 is used for transmission of a UL grant.
- the UL grant further includes a UL resource allocation for a PUSCH.
- the CQI request 201 indicates whether CQI reporting is triggered by using a 1-bit field. For example, if a value of the CQI request 201 is set to ‘1’, it means that the BS requests the UE to perform CQI reporting.
- the UE transmits a CQI 202 to the BS through a PUSCH.
- CQI feedback there are three types of CQI feedback, that is, Wideband, UE selected, and Higher layer-configured.
- PMI feedback there are also three types of PMI feedback, that is, No PMI, Single PMI, and Multiple PMI.
- CQI feedback type and PMI feedback type a transmission mode is divided as shown in Table 1 below.
- a PMI is selected under the assumption that data is transmitted in each subband.
- the UE determines a CQI by assuming the selected PMI with respect to a system band or a whole band designated by a higher layer (such a band is called a set S).
- the UE transmits the CQI and the PMI of each subband. Since the CQI of a whole band or subbands included in the set S is transmitted, it is called a wideband CQI.
- a size of each subband may vary depending on a size of the system band.
- the UE selects M (M>0) preferred subbands in the system band or the set S.
- the UE determines a CQI for the selected M subbands (such a subband is called a subband CQI).
- the UE additionally determines a wideband CQI with respect to the system band or the set S.
- the UE transmits the selected M subbands, one CQI for the selected M subbands, and the wideband CQI.
- M preferred subbands and a single PMI for the M preferred subbands are determined.
- the UE determines a wideband CQI with respect to the system band or the set S.
- the UE transmits the selected M subbands, one CQI for the selected M subbands, a single PMI for the M selected subbands, and a wideband CQI.
- the UE determines the wideband CQI. Further, the UE determines a CQI for each subband.
- the UE determines a single PMI with respect to the system band or the set S.
- the UE determines a wideband CQI and a subband CQI for each subband by assuming the single PMI.
- uplink power control is used in the wireless communication system.
- the BS increases uplink power when a channel environment is not good, and decreases the uplink transmit power when the channel environment is good. This is to decrease interference to a neighboring cell due to excessive transmit power and to optimize a power usage amount as much as possible.
- a transmit power command is used for uplink transmit power control, and transmit power is controlled independently in each of a PUCCH and a PUSCH.
- the TPC for the PUCCH used in transmission of an HARQ ACK/NACK signal is included in a DL grant.
- the TPC for the PUSCH is included in a UL grant.
- a multiple-carrier system supporting a plurality of component carriers (CCs) is taken into account.
- Spectrum aggregation supports a plurality of CCs.
- the spectrum aggregation is introduced to support an increasing throughput, to prevent a cost increase caused by using a broadband radio frequency (RF) element, and to ensure compatibility with legacy systems. For example, if 5 CCs are assigned as a granularity of a carrier unit having a bandwidth of 20 MHz, a bandwidth of up to 100 MHz can be supported.
- RF radio frequency
- FIG. 3 shows an example of multiple carriers. Although three DL CCs and three UL CCs are shown herein, the number of DL CCs and the number of UL CCs are not limited thereto.
- a PDCCH and a PDSCH are independently transmitted in each DL CC.
- a PUCCH and a PUSCH are independently transmitted in each UL CC.
- FIG. 4 shows an example of a multi-carrier operation. Even if a multi-carrier system supports a plurality of CCs, the number of supported CCs may differ depending on a cell or UE capability.
- An available CC indicates all CCs that can be used by the system. Herein, there are 6 CCs (i.e., CC # 0 to CC # 5 ).
- An assigned CC is a CC assigned by a BS to a UE according to the UE capacity among available CCs. Although it is shown that the CC # 0 to the CC # 3 are assigned CCs, the number of assigned CCs may be less than or equal to the number of available CCs.
- An active CC is a CC used by the UE to perform reception and/or transmission of a control signal and/or data with respect to the BS.
- the UE can perform PDCCH monitoring and/or PDSCH buffering with respect to some or all of the active CCs.
- the active CCs can be activated or deactivated among the assigned CCs.
- a CC which is always activated is called a reference CC.
- a CC linkage can be defined between a DL CC and a UL CC.
- the CC linkage implies a mapping relation between a DL CC in which a PDCCH for carrying a UL grant is transmitted and a UL CC scheduled by the UL grant.
- the CC linkage may be a mapping relation between a DL CC (or UL CC) in which data for HARQ is transmitted or a UL CC (or DL CC) in which an HARQ ACK/NACK signal is transmitted.
- the CC linkage may be a relationship between a DL CC which is a target of CQI reporting and a UL CC for transmitting a CQI.
- FIG. 3 shows a symmetric CC linkage in which a DL CC and a UL CC are one-to-one mapped.
- the CC linkage can be configured as a static CC linkage and a dynamic CC linkage as follows.
- the CC linkage is fixed. This is called a fixed CC linkage or a static CC linkage. This can be signaled by using system information which is common information. Since a UL CC to be scheduled by a UL grant can be determined through the static CC linkage, additional signaling for configuring a linkage between a UL CC and a DL CC and transmitted for each UE is not necessary.
- the CC linkage is dynamically or semi-statically changed or overridden. This is called the dynamic CC linkage. This can be reported by the BS to the UE by using a radio resource control (RRC) message or L 1 /L 2 signaling.
- RRC radio resource control
- the dynamic CC linkage can be UE-specific (in this case, it can be specific for each CC or may be common for each CC), or can be UE group-specific or cell-specific.
- the dynamic CC linkage can be mapped in a 1:1 manner or 1:M or M:1 manner
- a fixed CC linkage is utilized.
- a UL grant is transmitted through a DL CC.
- a UL transport block is transmitted by using the UL grant through a UL CC linked to the DL CC. Since a UL CC to be scheduled by the UL grant can be determined through a predefined CC linkage, additional signaling is not necessary.
- a CC to be scheduled is directly indicated.
- a PDCCH and a PDSCH are transmitted in different DL CCs, or a PUSCH is transmitted through a UL CC not linked to a DL CC in which the PDCCH is transmitted. This is called cross-carrier scheduling.
- FIG. 5 shows an example of cross-carrier scheduling. It is assumed that a DL CC # 0 is linked to a UL CC # 0 , a DL CC # 1 is linked to a UL CC # 1 , and a DL CC # 2 is linked to a UL CC # 2 .
- a 1 st PDCCH 710 701 of the DL CC # 0 carries DCI for a PDSCH 702 of the same DL CC # 0 .
- a 2 nd PDCCH 711 of the DL CC # 0 carries DCI for a PDSCH 712 of the DL CC # 1 .
- a 3 rd PDCCH 721 of the DL CC # 0 carries DCI for a PUSCH 722 723 of the unlinked UL CC # 2 .
- the DCI of the PDCCH may include a carrier indicator field (CIF).
- the CIF indicates a DL CC or a UL CC scheduled through the DCI.
- the CIF may include an index of a UL CC or an index of a DL CC scheduled through the DCI.
- the 2 nd PDCCH 711 may include a CIF indicating the DL CC # 1 .
- the 3 rd PDCCH 721 may include a CIF indicating the UL CC # 2 .
- a UL frequency band and a DL frequency band correspond to each other, and only one UL and one DL CC are present. Therefore, a TPC included in DCI for a DL grant is control information for a UL CC corresponding to a DL CC, and a CQI request included in DCI for a UL grant is control information for a DL CC corresponding to a scheduled UL CC.
- an ambiguity may occur in a multi-carrier system using a plurality of CCs according to the conventional 3GPP LTE structure.
- a 3 rd PDCCH 721 transmitted through a DL CC # 0 carries a UL grant for scheduling a UL CC # 2 .
- the UL CC # 2 is linked to a DL CC # 2 .
- whether the CQI request is a CQI for one DL CC or a CQI for a DL CC group (or all CCs)or which CC(s) is a target DL CC thereof may be ambiguous.
- the CQI request is for one CC, it may be ambiguous whether the CQI request is for requesting CQI reporting for the DL CC # 0 in which the 3 rd PDCCH 721 is transmitted or is for requesting CQI reporting for the DL CC # 2 linked to the UL CC # 2 in which the UL grant is scheduled.
- the static CC linkage can be reported by the BS to the UE by using a part of system information (i.e., MIB or SIB).
- a CC index of a CIF in a UL grant is an index of a UL CC scheduled by the UL grant.
- a CC index of a CIF in a UL grant may be an index of a DL CC linked to a UL CC to be scheduled by the UL grant.
- DCI of a 1 st PDCCH 801 of the DL CC # 1 includes a UL grant for scheduling the UL CC # 0 .
- the UL grant includes a UL resource allocation 802 , a CQI request, and a CIF.
- CQI reporting is not triggered, and if the value of the CQI request is 1, CQI reporting is triggered.
- the UE can report a CQI for the DL CC # 0 linked to a UL CC having a CC index 0 (i.e., UL CC # 0 ). That is, when CQI reporting is triggered, the UE reports a CQI of a DL CC linked to a UL CC indicated by a CIF included in the UL grant.
- a UL CC in which a UL grant is scheduled can be predetermined.
- the CIF value indicates the UL CC # 0 .
- the CIF value indicating the dynamic CC linkage is for exemplary purposes only, and thus can be set to any specific value.
- a UL CC scheduled by a UL grant may be a UL CC defined by a higher layer message such as an RRC message, or may be a UL CC which is predetermined to transmit a control signal.
- the dynamic CC linkage indicates CC mapping for CQI reporting.
- the dynamic CC linkage can indicate at least any one of the following four types.
- a DL CC group (or DL CC list) including at least one DL CC
- the UE reports a CQI for DL CCs in a DL CC group.
- the dynamic CC linkage may be pre-defined, or may be transmitted by the BS to the UE by using a radio resource control (RRC) message or L 1 /L 2 signaling.
- RRC radio resource control
- the dynamic CC linkage may be UE-specific, UE group-specific, or cell-specific.
- the dynamic linkage may be specific for each CC or common for each CC.
- One or more dynamic CC linkages can be used.
- the CIF value is 6, it may indicate the dynamic CC linkage type (1), and if the CIF value is 7, it may indicate the dynamic CC linkage type (4).
- DCI of a 2 nd PDCCH 811 of a DL CC # 2 includes a DL grant for a DL CC # 3 .
- the DL grant includes a DL resource allocation 812 , a CIF, and a TPC.
- the CIF value is set to 3 which is an index of the DL CC # 3 .
- the TPC may be a TPC for a UL CC # 3 linked to the DL CC # 3 .
- the TPC may be a TPC for the UL CC # 2 linked to the DL CC # 2 in which the 2 nd PDCCH 811 is transmitted.
- the TPC may be included in a UL grant.
- the TPC may be a TPC for a UL CC indicated by the CIF.
- the TPC may be a TPC for a UL CC linked to a DL CC in which the UL grant is transmitted.
- a CQI request is a signal used when the BS requests the UE to set or trigger a control signal for a corresponding DL CC (or UL CC), and can be called a control setup signal or a control trigger signal.
- the dynamic CC linkage is not determined by a specific CIF value, but can be predetermined by using an RRC message or the like. If the CQI request is 0, the UE may not transmit the CQI report, and if the CQI request is 1, the UE may transmit the CQI report according to a dynamic CC linkage determined by using the RRC message.
- the UE reports the CQI according to the static CC linkage. For example, upon receiving a UL grant for a UL CC # 1 , the UE reports a CQI for a DL CC linked to the UL CC # 1 . If the CQI request value is 2 or 3, the UE reports a CQI according to the pre-defined 1 st or 2 nd dynamic CC linkage.
- the 1 st and 2 nd dynamic CC linkages can be determined by using an RRC message.
- FIG. 7 is a flowchart showing a CQI reporting method according to an embodiment of the present invention.
- a UE receives a 1 st CC linkage from a BS (step S 910 ).
- the 1 st CC linkage can be received as a part of system information, and can be called a static CC linkage.
- the UE receives a 2 nd CC linkage from the BS (step S 920 ).
- the 2 nd CC linkage can be received by using an RRC message, and can be called a dynamic CC linkage.
- the UE receives a UL grant including a CQI request from the BS (step S 930 ).
- the CQI request can be configured as shown in Table 3.
- the UE determines a DL CC in which a CQI is reported according to the CQI request (step S 940 ). For example, if the CQI request value is 3, the UE can determine a DL CC linked based on the 2 nd CC linkage, that is, the dynamic CC linkage. Alternatively, if the CQI request value is 2, the UE can determine a DL CC linked based on the 1 st CC linkage, that is, the static CC linkage. Determining of the DL CC according to the dynamic CC linkage and the static CC linkage is described in the embodiment of FIG. 6 .
- the UE reports a CQI for the determined DL CC to the BS (step S 950 ).
- FIG. 8 is a block diagram showing a wireless communication system according to an embodiment of the present invention.
- a BS 50 includes a processor 51 , a memory 52 , and a radio frequency (RF) unit 53 .
- the memory 52 is coupled to the processor 51 , and stores a variety of information for driving the processor 51 .
- the RF unit 53 is coupled to the processor 51 , and transmits and/or receives a radio signal.
- the processor 51 implements the proposed functions, procedures, and/or methods.
- the processor 51 can implement an operation of the BS 50 according to the embodiments of FIG. 6 and FIG. 7 .
- a UE 60 includes a processor 61 , a memory 62 , and an RF unit 63 .
- the memory 62 is coupled to the processor 61 , and stores a variety of information for driving the processor 61 .
- the RF unit 63 is coupled to the processor 61 , and transmits and/or receives a radio signal.
- the processor 61 implements the proposed functions, procedures, and/or methods.
- the processor 51 can implement an operation of the UE 60 according to the embodiments of FIG. 6 and FIG. 7 .
- the processor may include Application-Specific Integrated Circuits (ASICs), other chip sets, logic circuits, and/or data processors.
- the memory may include Read-Only Memory (ROM), Random Access Memory (RAM), flash memory, memory cards, storage media and/or other storage devices.
- the RF unit may include a baseband circuit for processing a radio signal.
- the above-described scheme may be implemented using a module (process or function) which performs the above function.
- the module may be stored in the memory and executed by the processor.
- the memory may be disposed to the processor internally or externally and connected to the processor using a variety of well-known means.
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Abstract
Description
| TABLE 1 | |||
| No PMI | Single PMI | Multiple PMI | |
| Wideband | Mode 1-2 | ||
| (wideband CQI) | |||
| UE selected | Mode 2-0 | Mode 2-2 | |
| (subband CQI) | |||
| Higher layer- | Mode 3-0 | Mode 3-1 | |
| configured | |||
| (subband CQI) | |||
| TABLE 2 | ||
| | Description | |
| 0 | |
|
| 1 | |
|
| 2 | |
|
| 3 | |
|
| 4 | |
|
| 5 | Reserved | |
| 6 | Reserved | |
| 7 | |
|
| TABLE 3 | ||
| Value of | Description | |
| 0 | No CQI reporting | |
| 1 | CQI reporting based on |
|
| 2 | CQI reporting based on 1st |
|
| 3 | CQI reporting based on 2nd dynamic CC linkage | |
Claims (22)
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US16/121,119 USRE48709E1 (en) | 2009-12-16 | 2010-12-16 | Method and apparatus for reporting a channel quality in a wireless communication system |
Applications Claiming Priority (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US28716809P | 2009-12-16 | 2009-12-16 | |
| US13/516,950 US8644182B2 (en) | 2009-12-16 | 2010-12-16 | Method and apparatus for reporting a channel quality in a wireless communication system |
| US16/121,119 USRE48709E1 (en) | 2009-12-16 | 2010-12-16 | Method and apparatus for reporting a channel quality in a wireless communication system |
| PCT/KR2010/009002 WO2011074885A2 (en) | 2009-12-16 | 2010-12-16 | Method and apparatus for reporting a channel quality in a wireless communication system |
| US201615015975A | 2016-02-04 | 2016-02-04 | |
| US201615015707A | 2016-02-04 | 2016-02-04 |
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| USRE48709E1 true USRE48709E1 (en) | 2021-08-24 |
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| US (1) | USRE48709E1 (en) |
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