Method and apparatus for transmitting and receiving channel state information in wireless communication system
11489565 · 2022-11-01
Assignee
Inventors
- Younsun Kim (Gyeonggi-do, KR)
- Hyojin Lee (Gyeonggi-do, KR)
- Hyoungju Ji (Seoul, KR)
- Juho Lee (Gyeonggi-do, KR)
- Joonyoung Cho (Gyeonggi-do, KR)
Cpc classification
H04B7/0478
ELECTRICITY
H04L5/0053
ELECTRICITY
H04B7/0469
ELECTRICITY
H04B7/0639
ELECTRICITY
H04L5/0048
ELECTRICITY
H04B7/0626
ELECTRICITY
H04B7/0632
ELECTRICITY
International classification
H04B7/02
ELECTRICITY
Abstract
A method by a terminal, a method by a base station, a terminal, and a base station are provided. The method by the terminal includes receiving a first channel state information reference signal (CSI-RS) and a second CSI-RS from a base station; generating channel state information (CSI) based on both the first CSI-RS and the second CSI-RS; and reporting the CSI to the base station, wherein the CSI includes a rank indicator (RI) and a channel quality indicator (CQI).
Claims
1. A method performed by a terminal in a communication system, the method comprising: receiving, from a base station, channel state information (CSI) configuration information including a configuration on a channel state information reference signal (CSI-RS), a configuration on a CSI interference measurement (CSI-IM), and a configuration for a CSI feedback associated with the CSI-RS and the CSI-IM; receiving, from the base station, the CSI-RS based on the configuration on the CSI-RS; generating the CSI based on the configuration for the CSI feedback, the CSI-RS, and the CSI-IM; and reporting, to the base station, the CSI including at least one of a rank indicator (RI), a precoding matrix indicator (PMI), or a channel quality indicator (CQI), wherein the CSI-RS corresponds to a non-zero power CSI-RS for a channel measurement associated with the CSI, wherein the CSI-IM is a resource for an interference measurement associated with the CSI, and wherein the CSI configuration information includes information on RI restriction which is associated with allowable RIs to be reported.
2. The method of claim 1, wherein the CQI is generated based on the RI based on the information on RI restriction.
3. The method of claim 1, wherein the configuration for the CSI feedback includes information on a CSI feedback among a plurality of CSI feedbacks.
4. The method of claim 1, wherein the configuration on the CSI-RS includes one or more CSI-RS resources.
5. A method performed by a base station in a communication system, the method comprising: transmitting, to a terminal, channel state information (CSI) configuration information including a configuration on a channel state information reference signal (CSI-RS), a configuration on a CSI-interference measurement (CSI-IM), and a configuration for a CSI feedback associated with the CSI-RS and the CSI-IM; transmitting, to the terminal, the CSI-RS; and receiving, from the terminal, the CSI including at least one of a rank indicator (RI), a precoding matrix indicator (PMI), or a channel quality indicator (CQI), wherein the CSI is associated with the configuration for the CSI feedback, the CSI-RS, and the CSI-IM, wherein the CSI-RS corresponds to a non-zero power CSI-RS for a channel measurement associated with the CSI, wherein the CSI-IM is a resource for an interference measurement associated with the CSI, and wherein the CSI configuration information includes information RI restriction which is associated with allowable RIs to be reported.
6. The method of claim 5, wherein the CQI is based on the RI according to the information on RI restriction.
7. The method of claim 5, wherein the configuration for the CSI feedback includes information on a CSI feedback among a plurality of CSI feedbacks.
8. The method of claim 5, wherein the configuration on the CSI-RS includes one or more CSI-RS resources.
9. A terminal in a communication system, the terminal comprising: a transceiver; and a controller connected with the transceiver and configured to: receive, from a base station via the transceiver, channel state information (CSI) configuration information including a configuration on a channel state information reference signal (CSI-RS), a configuration on a CSI-interference measurement (CSI-IM), and a configuration for a CSI feedback associated with the CSI-RS and the CSI-IM; receive, from the base station, the CSI-RS and based on the configuration on the CSI-RS; generate the CSI based on the configuration for the CSI feedback, the CSI-RS, and the CSI-IM; and report, to the base station, the CSI including at least one of a rank indicator (RI), a precoding matrix indicator (PMI), or a channel quality indicator (CQI), wherein the CSI-RS corresponds to a non-zero power CSI-RS for a channel measurement associated with the CSI, wherein the CSI-IM is a resource for an interference measurement associated with the CSI, and wherein the CSI configuration information includes information on RI restriction which is associated with allowable RIs to be reported.
10. The terminal of claim 9, wherein the CQI is generated based on the RI based on the information on RI restriction.
11. The terminal of claim 9, wherein the configuration for the CSI feedback includes information on a CSI feedback among a plurality of CSI feedbacks.
12. The terminal of claim 9, wherein the configuration on the CSI-RS includes one or more CSI-RS resources.
13. A base station in a communication system, the base station comprising: a transceiver; and a controller connected with the transceiver and configured to: transmit, to a terminal via the transceiver, channel state information (CSI) configuration information including a configuration on a channel state information reference signal (CSI-RS), a configuration on a CSI-interference measurement (CSI-IM), and a configuration for a CSI feedback associated with the CSI-RS and the CSI-IM; transmit, to the terminal, the CSI-RS; and receive, from the terminal, the CSI including at least one of a rank indicator (RI), a preceding matrix indicator (PMI), or a channel quality indicator (CQI), wherein the CSI is associated with the configuration for the CSI feedback, the CSI-RS, and the CSI-IM, wherein the CSI-RS corresponds to a non-zero power CSI-RS for a channel measurement associated with the CSI, wherein the CSI-IM is a resource for an interference measurement associated with the CSI, and wherein the CSI configuration information includes information RI restriction which is associated with allowable RIs to be reported.
14. The base station of claim 13, wherein the CQI is based on the RI according to the information on RI restriction.
15. The base station of claim 13, wherein the configuration for the CSI feedback includes information on a CSI feedback among a plurality of CSI feedbacks.
16. The base station of claim 13, wherein the configuration on the CSI-RS includes one or more CSI-RS resources.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above and other aspects, features, and advantages of the present disclosure will be more apparent from the following detailed description when taken in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION OF EMBODIMENTS OF THE PRESENT DISCLOSURE
(16) Embodiments of the present disclosure are described in detail with reference to the accompanying drawings. The same or similar components may be designated by the same or similar reference numerals although they are illustrated in different drawings. Detailed descriptions of constructions or processes known in the art may be omitted to avoid obscuring the subject matter of the present disclosure.
(17) The following terms are defined in consideration of the functionality in embodiments of the present disclosure, and may vary according to the intention of a user or an operator, usage, etc. Therefore, the definition should be made on the basis of the overall content of the present specification.
(18) Although the description is directed to an OFDM-based radio communication system, particularly, the 3GPP Evolved Universal Terrestrial Radio Access (E-UTRA), it will be understood by those skilled in the art that embodiments of the present disclosure can be applied to other communication systems having a similar technical background and channel format, with a slight modification, without departing from the spirit and scope of the present disclosure.
(19) Embodiments of the present disclosure relate to a wireless mobile communication system and, in particular, to a method for efficiently transmitting/receiving channel state information in a wireless mobile communication system operating with a multicarrier multiple access scheme such as, for example, Orthogonal Frequency Division Multiple Access (OFDMA).
(20) Mobile communication systems have evolved into high-speed, high-quality wireless packet data communication systems that provide data and multimedia services beyond the early voice-oriented services. Recently, various mobile communication standards, such as, for example, High Speed Downlink Packet Access (HSDPA), High Speed Uplink Packet Access (HSUPA), LTE, and LTE-A defined in 3.sup.rd Generation Partnership Project (3GPP), High Rate Packet Data (HRPD) defined in 3.sup.rd Generation Partnership Project-2 (3GPP2), and 802.16 defined in IEEE, have been developed to support the high-speed, high-quality wireless packet data communication services.
(21) Existing 3.sup.rd generation mobile communications, including LTE, Ultra Mobile Broadband (UMB), and 802.16m, operate based on a multi-carrier multiple access scheme and adopt Multiple Input Multiple Output (MIMO) with channel sensitive scheduling, such as beamforming and Adaptive Modulation and Coding (AMC), to improve transmission efficiency. These techniques increase the system throughput by improving transmission efficiency in such a way as to concentrate transmit power of a plurality of antennas, adjusting an amount of transmit data, and selectively transmitting data to the user with a best channel quality. Since most of these techniques operate based on the channel state information between the base station (eNB) and the terminal (UE or Mobile Station (MS)), the eNB or UE has to measure the channel state between the eNB and the UE. At this time, the signal used for channel state measurement is a Channel State Indication Reference Signal (CSI-RS). The eNB is a transmitter in downlink and a receiver in uplink. The one eNB may manage a plurality of cells for transmission/reception. A mobile communication system includes a plurality of eNBs distributed geographically, and each eNB performs transmission/reception through a plurality of cells.
(22) Existing 3.sup.rd and 4.sup.th Generation mobile communication systems represented by LTE/LTE-A adopt a MIMO scheme with a plurality of transmit and receive antennas to transmit a plurality of information streams as spatially separated. This technique of transmitting the plurality of information streams as spatially separated is referred to as spatial multiplexing. Typically, the number of information streams capable of being spatially multiplexed depends on the number of antennas of the transmitter and the receiver. The number of information streams that can be spatially multiplexed is referred to rank in general. In the case of the MIMO scheme till the standard of LTE/LTE-A Release 11, the spatial multiplexing of up to 8×8 antennas and up to rank 8 are supported.
(23) The FD-MIMO system, to which a technique proposed in an embodiment of the present disclosure is applied, has been evolved from the LTE/LTE-A MIMO system supporting up to 8 transmit antennas so as to support 32 or more transmit antennas. However, the scope of the present disclosure is not limited thereto.
(24)
(25) Referring to
(26) In
(27) In order to efficiently implement the FD-MIMO system, the terminal has to accurately measure the channel condition and interference size and efficiently transmit the channel state information to the base station. If the channel state information is received, the base station determines the terminals for downlink transmission, downlink data rate, and precoding to be applied. In the case of an FD-MIMO system using a large number of transmit antennas, if the channel state information transmission method of the legacy LTE/LTE-A system is applied without modification, the amount of control information to be transmitted in uplink significantly increases, resulting in uplink overhead.
(28) The mobile communication system is restricted in resources such as, for example, time, frequency, and transmission power. Accordingly, if a resource allocated for a reference signal increases, the resource amount to be allocated for data traffic channel transmission decreases, resulting in a reduction in the amount of data transmission. Although the channel estimation and measurement performance are improved, the data transmission amount decreases, resulting in reduction of entire system throughput. Thus, there is a need for efficiently allocating resources for reference signal and traffic channel transmissions in order to maximize the entire system throughput.
(29)
(30) As shown in
(31) The radio resource structured as shown in
(32) In addition to the above signals, zero power CSI-RS can be configured in order for the UEs within the corresponding cells to receive the CSI-RSs transmitted by different eNBs in the LTE-A system. The zero power CSI-RS (muting) can be mapped to the positions designated for CSI-RS, and the UE receives the traffic signal skipping the corresponding radio resource in general. In the LTE-A system, the zero power CSI-RS is referred to as muting. The zero power CSI-RS (muting) by nature is mapped to the CSI-RS position without transmission power allocation.
(33) In
(34) When transmitting CSI-RSs of two antenna ports, the CSI-RSs are mapped to two consecutive REs in the time domain and distinguished from each other using orthogonal codes. When transmitting CSI-RSs of four antenna ports, the CSI-RSs are mapped in the same way of mapping the two more CSI-RSs to two more consecutive REs. This is applied to the case of transmitting CSI-RSs of eight antenna ports.
(35) In a cellular system, the reference signal has to be transmitted for downlink channel state measurement. In the case of the 3GPP LTE-A system, the UE measures the channel state with the eNB using the CSI-RS transmitted by the eNB. The channel state is measured in consideration of a few factors including downlink interference. The downlink interference includes the interference caused by the antennas of neighbor eNBs and thermal noise that are important in determining the downlink channel condition. For example, when an eNB with one transmit antenna transmits a reference signal to a UE with one receive antenna, the UE has to determine an energy per symbol that can be received in downlink and an interference amount that may be received for the duration of receiving the corresponding symbol to calculate Es/Io from the received reference signal. The calculated Es/Io is reported to the eNB such that the eNB determines the downlink data rate for the UE.
(36) In the LTE-A system, the UE feeds back the information on the downlink channel state for use in downlink scheduling of the eNB. Specifically, the UE measures the reference signal transmitted by the eNB in downlink and feeds back the information estimated from the reference signal to the eNB in the format defined in LTE/LTE-A standard. In LTE/LTE-A, the UE feedback information includes the following three indicators: 1. RI: number of spatial layers that can be supported by the current channel experienced at the UE 2. PMI: precoding matrix recommended by the current channel experienced at the UE 3. CQI: maximum possible data rate that the UE can receive signals in the current channel state. CQI may be replaced with the SINR, a maximum error correction code rate and modulation scheme, or per-frequency data efficiency that can be used in a similar way to the maximum data rate.
(37) The RI, PMI, and CQI have associated meanings. For example, the precoding matrix supported in LTE/LTE-A is configured differently per rank. Accordingly, the PMI value ‘X’ is interpreted differently for the cases of RI set to 1 and RI set to 2. Also, when determining CQI, the UE assumes that the PMI and RI, which it has reported, are applied by the eNB. Specifically, if the UE reports RI_X, PMI_Y, and CQI_Z; this means that the UE is capable of receiving the signal at the data rate corresponding to CQI_Z when the rank RI_X and the precoding matrix PMI_Y are applied. In this way, the UE calculates CQI with which the optimal performance is achieved in real transmission under the assumption of the transmission mode to be selected by the eNB.
(38) In LTE/LTE-A, a CSI process is defined as a means for configuring feedback of channel state information such as the CQI, RI, and PMI to the terminal. The CSI process consists of one CSI-RS for measuring a channel and one interference measurement resource (IMR). The base station can set up more than one CSI process per terminal, and the terminal measures the reception strength of the received signal that has passed through the channel by measuring the CSI-RS specified in the CSI process, and measures the intensity of the interference affecting the signal by measurement on the IMR. The IMR is a radio resource that is separately configured by the base station for interference measurement of the terminal, and the terminal assumes that all signals received from the radio resource are interference. In addition, one interference measurement resource consists of radio resources corresponding to one of A, . . . , H of
(39) Typically, in FD-MIMO using a plurality of transmit antennas, the number of CSI-RSs has to increase in proportion to the number of transmit antennas. For an LTE/LTE-A using 8 transmit antennas, the eNB has to transmit CSI-RSs of 8 ports to the UE for downlink channel state measurement. In order to transmit 8-port CSI-RSs, 8 REs must be allocated for CSI-RS transmission in one RB. For example, the REs indicated by A and B can be used for CSI-RS transmission of the corresponding eNB. When applying a CSI-RS transmission scheme of LTE/LTE-A to FD-MIMO, the CSI-RS transmission resource increases in proportion to the number of transmit antennas. Specifically, the eNB having 128 transmit antennas has to transmit CSI-RS on 128 REs in one RB. Such a CSI-RS transmission scheme consumes excessive radio resources, and thus, causes a shortage of resources for data transmission.
(40) For the eNB having a plurality of transmit antennas, an FD-MIMO may transmit CSI-RSs on N dimensions such that the UE performs channel measurements for a plurality of transmit antennas without excessive resource allocation for CSI-RS transmission. As shown in
(41)
(42) Referring to
(43) The grouping a plurality of antennas into one CSI-RS port is a concept referred to as antenna virtualization. Typically, antenna virtualization is performed through linear combination of a plurality of antennas. The antenna ports corresponding to V-CSI-RS for use in measuring vertical channel state consist of the following 4 antenna ports: 1. V-CSI-RS port 0: group of antennas A0, B0, C0, D0, E0, F0, G0, and H0 2. V-CSI-RS port 1: group of antennas A1, B1, C1, D1, E1, F1, G1, and H1 3. V-CSI-RS port 2: group of antennas A2, B2, C2, D2, E2, F2, G2, and H2 4. V-CSI-RS port 3: group of antennas A3, B3, C3, D3, E3, F3, G3, and H3
(44) It is assumed that a plurality of antennas are arranged 2-dimensionally as described above. The antennas are arranged orthogonally forming M rows in the vertical direction and N columns in the horizontal direction. The UE is capable of measuring FD-MIMO channels using N H-CSI-RS ports and M V-CSI-RS ports. As aforementioned, if two CSI-RSs are used, the channel state information can be acquired using M+N CSI-RS ports for MxN transmit antennas. Since the channel information on a large number of transmit antennas is acquired using a relatively small number of CSI-RS ports, it is advantageous in reducing the CSI-RS overhead. Although embodiments of the present disclosure are directed to channel information on the FD-MIMO transmit antennas using two CSI-RSs, this approach can be applied to the cases of using two or more CSI-RSs.
(45) In
(46) The following abbreviations are used throughout the specification: RI.sub.H: RI generated based on H-CSI-RS for feedback to the eNB RI.sub.V: RI generated based on V-CSI-RS for feedback to the eNB RI.sub.HV: RI generated based on H-CSI-RS and V-CSI-RS for feedback to the eNB PMI.sub.H: PMI generated based on H-CSI-RS for feedback to the eNB PMI.sub.V: PMI generated based on V-CSI-RS for feedback to the eNB CQI.sub.H: UE-recommended data rate generated under the assumption that only the horizontal direction precoding matrix is applied CQI.sub.V: UE-recommended data rate generated under the assumption that only the vertical precoding matrix is applied CQI.sub.HV: UE-recommended data rage generated under the assumption that both the horizontal and vertical precoding matrices are applied
(47) The following description is directed to the case of using the horizontal direction channel state information and the vertical direction channel state information. When an eNB operates with two or more CSI-RSs, however, other types of channel state information can also be applied to the horizontal and vertical direction channel state information. In an embodiment of the present disclosure where the CSI-RS mapped to an antenna port from the first view point (first CSI-RS) and the CSI-RS mapped to an antenna port from the second view point (second CSI-RS) are used, the UE is capable of acquiring the channel state information (first and second channel state information) based on the two respective CSI-RSs and the channel state information (third channel state information) based on both the CSI-RSs. The configuration described in the following description is applicable to various embodiments in similar manner. The following description is directed to an embodiment of the present disclosure using V-CSI-RS and H-CSI-RS.
(48) In the following description, the channel state information corresponding to the vertical direction CSI-RS is referred to as vertical direction channel state information. The vertical direction channel state information includes at least one of RI, PMI, and CQI acquired based on the vertical direction CSI-RS.
(49) In the following description, the channel state information corresponding to the horizontal direction CSI-RS is referred to as horizontal direction channel state information. The horizontal channel state information includes at least one of RI, PMI, and CQI acquired based on the horizontal direction CSI-RS.
(50) When the eNB sends the UE two or more CSI-RSs, the UE is capable of transmitting the channel state information corresponding to the respective CSI-RSs. Each of the channel state information includes at least one of RI, PMI, and CQI. However, the UE may acquire the channel state information based on the two or more CSI-RSs in an embodiment of the present disclosure. Acquisition of the channel state information is described in greater detail below.
(51)
(52) In
(53) In
(54) As shown in
(55) However, in the channel state information report method of
(56) When a plurality of transmit antennas 110 of the FD-MIMO system are arranged 2-dimentinally, as shown in
(57) If only the CQI.sub.H450 and the CQI.sub.V 420 corresponding to precodings indicated by the respective PMI.sub.H 440 and PMI.sub.V 410 are reported to the eNB, the eNB has to determine the CQI to which both the vertical and horizontal direction precoding matrices are applied, without receipt of such a CQI. If the eNB determines the CQI to which both the vertical and horizontal direction precoding matrices are applied arbitrarily, this may cause degradation of system performance.
(58) As described above, one of the methods for mitigating the use of radio resource for CSI-RS transmission in the FD-MIMO system is to make the UE measure a plurality CSI-RSs capable of efficiently estimating a plurality of transmit antennas. Each CSI-RS can be used for the UE to measure the channel state of one of a plurality dimensions for measuring one radio channel. This method requires a relatively small amount of radio resources for CSI-RS transmission as compared to the method of allocating a unique CSI-RS ports for the respective transmit antennas. For example, when using two CSI-RSs in the vertical and horizontal direction for the transmit antennas of the FD-MIMO that are arranged in the form of a rectangle, the UE is capable of efficiently measuring the channel state. Embodiments of the present disclosure propose a novel technology and apparatus that is capable of allowing the UE to measure a plurality of CSI-RSs and efficiently report the channel state information in the FD-MIMO system including a plurality of transmit antennas.
(59)
(60) In
(61) In the embodiment of
(62) As shown in
(63) First, it is required to define a function for determining whether to take two PMIs into consideration to determine at least one of two CQIs. Specifically, the eNB notifies the UE of the correlation of the feedback information in configuring a plurality of feedbacks to the UE, and the UE generates CQI based thereon. In the case of
(64) Second, it is required to define how to determine CQI in the case of applying a plurality of precodings. When calculating a CQI when only one precoding is applied, the UE calculates CQI under the assumption that the precoding indicated by RI and PMI it has reported is applied in downlink. However, in the case of the CQI.sub.HV 550, the UE calculates CQI under the assumption that two precodings are simultaneously applied in downlink. The UE may interpret the application of two precodings as the Kronecker product. The Kronecker product is defined with two matrices as shown in Equation (1) below.
(65)
(66) In Equation (1), A and B denote matrices, and an to am denote elements of matrix A, and a.sub.ij denotes the element at i.sub.th row and j.sub.th column.
(67) In Equation (1), the UE is capable of acquiring the precoding matrix for the case where two precoding matrices are applied simultaneously by replacing A and B with the precoding matrices indicated by the PMI.sub.H 540 and the PMI.sub.V 510. When calculating the CQI.sub.HV 550, the UE calculates the CQI.sub.HV 550 under the assumption that the precoding matrix acquired by applying the Equation (1) to the precoding matrices indicated by the PMI.sub.H 540 and PMI.sub.V 510 is applied in downlink.
(68) In order to acquire the precoding matrix for the case where the two precoding matrices are applied using the Kronecker product of Equation (1), it is necessary for the UE and eNB to operate differently depending on the rank reported by the UE. Three embodiments are proposed for this purpose.
Rank-Related Embodiment 1
(69) The eNB configures one of the RI.sub.V 500 and the RI.sub.H530 with rank 1 always. For example, if the CQI.sub.HV 550 is reported along with the RI.sub.H530 to the eNB, the RI.sub.V 500 is restricted to be always set to 1. The rank supported in the case where two precoding matrices are applied simultaneously is determined depending on the RI.sub.H530. Specifically, when the RI.sub.H530 is set to 1, the UE is capable of supporting rank 1; and when the RI.sub.H530 is set to 2, the UE is capable of supporting rank 2. The UE and the eNB operate in the FD-MIMO system under this assumption. Although two CSI-RSs are assumed in this embodiment of the present disclosure, if the number of CSI-RS is 3 or more, RIs have to be set to 1 with the exception of the RI corresponding to one CSI-RS.
Rank-Related Embodiment 2
(70) When the vertical and horizontal direction precoding matrices are applied simultaneously, the eNB and the UE determine the rank supportable by the UE using Equation (2) set forth below.
rank.sub.HV=rank(RI.sub.H)×rank(RI.sub.V) (2)
(71) Specifically, the UE and the eNB exchange the channel state information under the assumption that the rank for the case where the vertical and horizontal direction precoding matrices are applied simultaneously is the product of the two ranks supportable in the respective directions. For example, if the UE reports the RI.sub.H set to 2 and RI.sub.V set to 3 to the eNB, the eNB and the UE assume that the rank for the case where all of the precoding matrices are applied is 6.
(72) In LTE/LTE-A, if the UE reports to the eNB the RI corresponding to rank 2 or higher, two CQI values are reported to the eNB. This is due to the fact that the eNB transmits two codewords to the UE, and thus, the UE has to separately report the CQIs corresponding to respective codewords.
(73) When the method of Equation (2) is applied to the embodiment of
(74) In the method of measuring, at the UE, the horizontal and vertical direction channel state information corresponding to two CSI-RS and reporting the channel state information to the eNB, as shown in
(75)
(76) Although the UE reports the channel state information corresponding to two CSI-RSs, the feedback method of
(77) TABLE-US-00001 TABLE 1 Horizontal direction Vertical direction RI.sub.HV rank rank 000 1 1 001 2 1 010 3 1 011 4 1 100 1 2 101 2 2 110 3 2 111 4 2
(78) The eNB may acquire the horizontal and vertical direction ranks from the RI.sub.HV 600 transmitted by the UE. The UE determines the value of the RI.sub.HV 600 based on both the two CSI-RS, i.e., H-CSI-RS and V-CSI-RS. The eNB checks the information on the horizontal and vertical direction precodings and UE-supportable data rate based on PMIs 610 and 630 and CQIs 620 and 640 corresponding to the H-CSI-RS and V-CSI-RS. Since the horizontal and vertical direction PMIs and CQIs are transmitted alternately in one feedback process, it is possible to avoid the collisions of the feedback transmissions that may occur in the embodiments of
(79) Referring to
(80) In a real system, however, such a method may not be appropriate. Specifically, it may be advantageous for the UE to report specific direction channel state information at an interval shorter than that of the other direction channel state information in view of system throughput optimization. In order for the UE to report channel state information corresponding to a plurality of CSI-RSs to the eNB at different intervals, it is preferred for the eNB to perform configuration thereon. Specifically, in the case that the UE reports different direction channel state information to the eNB in one feedback process, the eNB may notify the UE of the following information for configuration thereon: Feedback interval and frame offset for horizontal direction channel state information (CQI.sub.H, PMI.sub.H), i.e., first channel state information Feedback interval and frame offset for vertical direction channel state information (CQI.sub.V and PMI.sub.V), i.e., second channel state information
(81) The subframe offset value is the value determining the subframe position for real transmission in a period. For example, if the period is 10 milliseconds (msec) and the subframe offset is 5, this means that the corresponding signal is transmitted at the subframe 5 in the period of 10 milliseconds.
(82) In
(83)
(84) Referring to
(85)
(86) When the UE reports the channel state information corresponding to a plurality of CSI-RSs in a signal feedback process, as in the embodiments of
(87) Referring to
(88) This method of transmitting the horizontal and vertical direction channel state information and the CQI.sub.Hv 840 from the UE to the eNB in a signal feedback process, as shown in
(89)
(90) In the channel state information transmission method of
(91) In order to transmit CQI.sub.HV at every CQI transmission occasion, as shown in
(92) In
(93)
(94) In
(95) In
(96) Herein, a method for a UE to report channel state information efficiently to an eNB with a large number of transmit antennas for FD-MIMO is proposed. In order to use the channel state information, there is a need of a method for the eNB to configure the channel state information to UE. That is, the UE has to have a capability for determining whether to use a legacy method for reporting the channel state information or a new method for performing measurement on multiple CSI-RSs and reporting information, which is not conventionally supported, such as CQI.sub.HV as described with reference to
(97) As described above, a CSI process is performed with one CSI-RS and one IMR. Meanwhile, in order to perform measurement on multiple CSI-RSs to generate the CSI-RS as described with reference to
(98) A method for determining a channel state information report method based on a number of CSI-RS configured in a CSI process according to an embodiment may be summarized as follows. If the number of CSI-RSs configured in a CSI process is one, the UE performs measurement on one CSI-RS and generates and reports the corresponding CQI. If the number of CSI-RSs configured in a CSI process is two, the UE performs measurement on the two CSI-RSs and generates and reports CQI.sub.HV. Although the CQI.sub.HV report is exemplified, a different channel state information report method may be determined according to a different number of CSI-RSs configured in the CSI-RS process. For example, if the number of CSI-RSs configured in a CSI-RS process is two, a method for transmitting PMI.sub.H, CQI.sub.H, PMI.sub.V and CQI.sub.V at preconfigured timings may be applied as in the embodiment of
(99)
(100) In
(101)
(102) The UE receives the information on how to receive the horizontal and vertical direction CSI-RSs, i.e., CSI-RS.sub.H and CSI-RS.sub.V, from the eNB. in step 1200. Although CSI-RS.sub.H and CSI-RS.sub.V are configured in an embodiment of the present disclosure, the present disclosure may be embodied in such a way of configuring a first type CSI-RS and a second CSI-RS in another format. The UE receives CSI feedback configuration information on how to measure the CSI-RS.sub.H and CSI-RS.sub.V and reports the channel state information, in step operation 1210. The UE measures the CSI-RSH and CSI-RSV and transmits channel state information according to the CSI feedback configuration information, in step 1220. The channel state information is generated and transmitted as described with reference to
(103) Although the embodiments of
(104)
(105) As shown in
(106)
(107) A receiver 1420 receives the configuration information on the plurality of CSI-RSs, and channel state information generation and feedback scheme. A controller 1400 controls the receiver 1420 to receive the plurality of CSI-RSs transmitted by the eNB. The controller 1400 generates channel state information based on the plurality of CSI-RSs. The controller 1400 controls a transmitter 1410 to transmit the channel state information to the eNB.
(108) As described above, the channel state information feedback method of the present disclosure is capable of transmitting/receiving channel state information efficiently in a wireless system using a plurality of antennas.
(109) It will be understood that each block of the flowchart illustrations and/or block diagrams, and combinations of blocks in the flowchart illustrations and/or block diagrams, can be implemented by computer program instructions. These computer program instructions may be provided to a processor of a general purpose computer, special purpose computer, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, create means for implementing the functions/acts specified in the flowchart and/or block diagram block or blocks. These computer program instructions may also be stored in a computer-readable memory that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer-readable memory produce an article of manufacture including instruction means which implement the function/act specified in the flowchart and/or block diagram block or blocks. The computer program instructions may also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions/acts specified in the flowchart and/or block diagram block or blocks.
(110) Furthermore, the respective block diagrams may illustrate parts of modules, segments or codes including at least one or more executable instructions for performing specific logic function(s). Moreover, it should be noted that the functions of the blocks may be performed in different order in several modifications. For example, two successive blocks may be performed substantially at the same time, or may be performed in reverse order according to their functions.
(111) The term “module” according to embodiments of the present disclosure, means, but is not limited to, a software or hardware component, such as a Field Programmable Gate Array (FPGA) or Application Specific Integrated Circuit (ASIC), which performs certain tasks. A module may advantageously be configured to reside on the addressable storage medium and configured to be executed on one or more processors. Thus, a module may include, by way of example, components, such as software components, object-oriented software components, class components and task components, processes, functions, attributes, procedures, subroutines, segments of program code, drivers, firmware, microcode, circuitry, data, databases, data structures, tables, arrays, and variables. The functionality provided for in the components and modules may be combined into fewer components and modules or further separated into additional components and modules. In addition, the components and modules may be implemented such that they execute one or more CPUs in a device or a secure multimedia card.
(112) While the invention has been shown and described with reference to certain embodiments thereof, it will be understood by those skilled in the art that various changes in form and detail may be made therein without departing form the spirit and scope of the invention as defined by the appended claims.