WO2015100670A1 - 一种信道信息获取的方法、装置及系统 - Google Patents

一种信道信息获取的方法、装置及系统 Download PDF

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Publication number
WO2015100670A1
WO2015100670A1 PCT/CN2013/091224 CN2013091224W WO2015100670A1 WO 2015100670 A1 WO2015100670 A1 WO 2015100670A1 CN 2013091224 W CN2013091224 W CN 2013091224W WO 2015100670 A1 WO2015100670 A1 WO 2015100670A1
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WO
WIPO (PCT)
Prior art keywords
antennas
antenna
preset
same
preset antenna
Prior art date
Application number
PCT/CN2013/091224
Other languages
English (en)
French (fr)
Inventor
刘鹍鹏
刘江华
Original Assignee
华为技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to JP2016543583A priority Critical patent/JP6351129B2/ja
Priority to CA2935464A priority patent/CA2935464C/en
Priority to PCT/CN2013/091224 priority patent/WO2015100670A1/zh
Priority to CN201380033133.2A priority patent/CN105027458B/zh
Priority to EP13900672.0A priority patent/EP3079266B1/en
Publication of WO2015100670A1 publication Critical patent/WO2015100670A1/zh
Priority to US15/198,939 priority patent/US9900076B2/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/0632Channel quality parameters, e.g. channel quality indicator [CQI]
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q9/00Electrically-short antennas having dimensions not more than twice the operating wavelength and consisting of conductive active radiating elements
    • H01Q9/04Resonant antennas
    • H01Q9/16Resonant antennas with feed intermediate between the extremities of the antenna, e.g. centre-fed dipole
    • H01Q9/28Conical, cylindrical, cage, strip, gauze, or like elements having an extended radiating surface; Elements comprising two conical surfaces having collinear axes and adjacent apices and fed by two-conductor transmission lines
    • H01Q9/285Planar dipole
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/0413MIMO systems
    • H04B7/0456Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/0413MIMO systems
    • H04B7/0456Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting
    • H04B7/046Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting taking physical layer constraints into account
    • H04B7/0469Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting taking physical layer constraints into account taking special antenna structures, e.g. cross polarized antennas into account
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0602Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using antenna switching
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0617Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal for beam forming
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/0626Channel coefficients, e.g. channel state information [CSI]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0686Hybrid systems, i.e. switching and simultaneous transmission
    • H04B7/0691Hybrid systems, i.e. switching and simultaneous transmission using subgroups of transmit antennas
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/12Supports; Mounting means
    • H01Q1/22Supports; Mounting means by structural association with other equipment or articles
    • H01Q1/24Supports; Mounting means by structural association with other equipment or articles with receiving set
    • H01Q1/241Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM
    • H01Q1/246Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM specially adapted for base stations
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/24Combinations of antenna units polarised in different directions for transmitting or receiving circularly and elliptically polarised waves or waves linearly polarised in any direction
    • H01Q21/26Turnstile or like antennas comprising arrangements of three or more elongated elements disposed radially and symmetrically in a horizontal plane about a common centre
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0014Three-dimensional division
    • H04L5/0023Time-frequency-space
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0094Indication of how sub-channels of the path are allocated
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/046Wireless resource allocation based on the type of the allocated resource the resource being in the space domain, e.g. beams

Definitions

  • the present invention relates to the field of communications, and in particular, to a method, device and system for acquiring channel information.
  • the existing active antenna system can perform 3D beamforming, as shown in Figure 1 (the cross-arranged antenna is a dual-polarized antenna (with two polarization directions, plus or minus 45 degrees), and the parallel array of antennas is co-polarized.
  • Antenna (only one polarization direction) :)
  • one form of active antenna system is a two-dimensional (2D) planar antenna array, which has both horizontal and vertical dimensions, by transmitting pilots
  • the base station obtains the channel state information of the 2D antenna array fed back by the terminal, so that the beam is aligned with the target user in the 3D space, the received signal power is increased, the signal to interference and noise ratio is improved, and the throughput of the entire system is improved.
  • the inventors have found that due to the relatively large number of antennas provided by the antenna array in the prior art, the overhead of the pilot signal is increased.
  • Embodiments of the present invention provide a method, an apparatus, and a system for acquiring channel information, which are capable of reducing pilot signal overhead.
  • the first aspect provides a method for acquiring channel information, including: mapping, by a base station, a first preset antenna in an antenna array to a pilot signal; and transmitting the pilot signal and configuration information of the antenna to a terminal, where The configuration information of the antenna includes the pattern information of the first preset antenna and the pattern information of the second preset antenna; receiving channel state information of the second preset antenna fed back by the terminal;
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the first preset antenna when the antenna array is a dual-polarized antenna array, where the first preset antenna satisfies: at least two antennas are not on the same line, At least two antennas are not in the same column, and at least two antennas are in different polarization directions.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column. All antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and two The difference in the number of antennas in one polarization direction cannot exceed 1, and all antennas are in different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column.
  • the antenna pairs in the same column are spaced apart by the same row, and every two adjacent columns including the antenna are equally spaced, and the antenna pairs in each of the two adjacent columns including the antenna are not on the same row; or, the antenna Pairs, and the paired antennas are all in the same row and in the same column.
  • the antenna pairs in the same row are in the same column, and the interval between each two adjacent antennas is the same. In the row, the antenna pairs in each of the two adjacent rows containing the antenna are not in the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, in the same The antennas in the column are spaced apart by the same row and are alternately polarized or in the same polarization direction.
  • the first preset antenna further satisfies: an antenna is in an antenna array that includes the first preset antenna The corners are in pairs.
  • the first preset antenna further satisfies: four antenna arrays that include the first preset antenna Each corner has an antenna and the number of antennas in the two polarization directions is the same.
  • the first preset antenna further satisfies: only two antennas are paired, and the paired antennas are all in the same row And in the same column, the antennas of one polarization direction are in the same column of the row, and the antennas of the other polarization direction are in the same row of the columns.
  • the first preset antenna is further configured to: only two antennas are paired, and the paired antennas are all in the same row And in the same column, one polarization direction antenna is in the same row of the row, and any one of the antennas in the one polarization direction is equally spaced apart in the same row including the other polarization direction Or, only two antennas are paired, and the paired antennas are all in the same row and in the same column, and one antenna in one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction The row in which the row is located is equally spaced apart from the antenna including the other polarization direction.
  • the first preset antenna further satisfies: the antennas in one polarization direction are in the same row at the same row, An antenna of any one of the polarization directions is equally spaced apart from the same row of antennas including another polarization direction; or, an antenna of one polarization direction is equally spaced in the same column, in the one polarization The row of any one of the directional antennas is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the first preset antenna when the antenna array is a co-polarized antenna array, the first preset antenna satisfies: at least two antennas are not on the same line, at least There are two antennas that are not on the same column.
  • the first preset antenna in the twelfth possible implementation, further satisfies: each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are separated by the same row, each two phases The adjacent columns including the antennas are equally spaced, and the antennas in each of the two adjacent columns including the antenna are not on the same line;
  • the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antennas are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not in the same column.
  • the first preset antenna further satisfies: in an antenna array that includes the first preset antenna There is one antenna at each of the four corners.
  • the first preset antenna further satisfies: the antennas are spaced apart on the same column in a row, in the row The equally spaced rows of columns in which any one of the antennas is located include the antenna.
  • the configuration information of the antenna includes: pattern information of the first preset antenna in the second preset antenna.
  • the configuration information of the antenna includes: pattern information of the first preset antenna in the antenna array;
  • Pattern information of the second predetermined antenna in the antenna array includes at least one of: a spacing between antennas, a correlation coefficient between antennas .
  • a second aspect provides a method for acquiring channel information, including: acquiring, by a terminal, a pilot signal sent by a base station and configuration information of the antenna, where the pilot signal is a first preset antenna mapping guide in the antenna array. a frequency signal, the configuration information of the antenna includes pattern information of the first preset antenna and pattern information of a second preset antenna;
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least The two antennas are not in the same column, and at least two antennas are in different polarization directions.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column. All antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and two The difference in the number of antennas in one polarization direction cannot exceed 1, and all antennas are in different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column.
  • the antenna pairs in the same column are spaced apart by the same row, and every two adjacent columns including the antenna are equally spaced, and the antenna pairs in each of the two adjacent columns including the antenna are not on the same row; or, the antenna Pairs, and pairs of antennas are in the same row and in the same column.
  • the antenna pairs in the same row are in the same column, and each two adjacent rows containing the antenna are equally spaced, and each two adjacent antennas The antenna pairs in the row are not on the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, in the same The antennas in the column are equally spaced and are alternately polarized or in the same polarization direction, two per The adjacent columns containing the antennas are equally spaced, and the antennas in each of the two adjacent columns containing the antenna are not on the same line; or, the antennas in the same row and the same column have only one polarization direction, in the same row
  • the antennas in the same interval are in the same column and are alternately polarized or in the same polarization direction.
  • Each two adjacent rows containing the antennas are equally spaced, and the antennas in each of the two adjacent rows containing the antenna are not in the On the same column.
  • the first preset antenna further satisfies: an antenna is in an antenna array that includes the first preset antenna The corners are in pairs.
  • the first preset antenna further satisfies: four in an antenna array that includes the first preset antenna Each corner has an antenna and the number of antennas in the two polarization directions is the same.
  • the first preset antenna further satisfies: only two antennas are paired, and the paired antennas are all in the same row And in the same column, the antennas of one polarization direction are in the same column of the row, and the antennas of the other polarization direction are in the same row of the columns.
  • the first preset antenna further satisfies: only two antennas are paired, and the paired antennas are all in the same row And an antenna of the same column, one polarization direction is in the same row of the row, and any one of the antennas in the one polarization direction is equally spaced apart from the same row of antennas including another polarization direction;
  • the paired antennas are all in the same row and in the same column, and one antenna in one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction
  • the row in which the row is located is equally spaced apart from the antenna including the other polarization direction.
  • the first preset antenna further satisfies: the antennas in one polarization direction are in the same row at the same row, An antenna of any one of the polarization directions is equally spaced apart from the same row of antennas including another polarization direction; or, an antenna of one polarization direction is equally spaced in the same column, in the one polarization The row of any one of the directional antennas is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the first antenna array is a co-polarized antenna array, where the preset number of antennas meet: at least two antennas are not in the same row At least two antennas are not in the same column.
  • the first preset antenna further satisfies:
  • Each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are separated by the same row, each two phases The adjacent columns including the antennas are equally spaced, and the antennas in each of the two adjacent columns including the antenna are not on the same line;
  • the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antennas are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not in the same column.
  • the first preset antenna further satisfies: in an antenna array that includes the first preset antenna There is one antenna at each of the four corners.
  • the first preset antenna further satisfies: the antennas are equally spaced apart on one row, and the equally spaced rows of the columns in which any one of the rows is located include an antenna.
  • the second preset antenna includes The configuration information of the antenna includes: pattern information of the first preset antenna in the second preset antenna.
  • the configuration information of the antenna includes: pattern information of the first preset antenna in the antenna array;
  • Pattern information of the second predetermined antenna in the antenna array further includes at least one of the following: The spacing between the antennas and the correlation coefficient between the antennas.
  • the terminal is configured according to the pilot signal and the antenna
  • the configuration information calculates channel state information of the antenna array, including:
  • the sending the channel state information of the second preset antenna to the base station specifically includes: performing rank information of the second preset antenna
  • the pre-coded matrix indication and channel quality indication are sent to the base station.
  • the channel of the second preset antenna is used Sending the status information to the base station specifically includes: sending, to the base station, the rank information, the pre-coded matrix indication, and the channel quality indicator of the second preset antenna, and pre-arranging the rank information of the first preset antenna The indication and channel quality indication are sent to the base station.
  • the channel of the second preset antenna is The sending of the status information to the base station specifically includes: performing rank information of the second preset antenna, a differential codebook structure indicated by a pre-matrix matrix of the first preset antenna and the second preset antenna, and a second pre- The channel quality indicator of the antenna is sent to the base station, and the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna are sent to the base station; or the rank information of the second preset antenna is The pre-matrix matrix indication of the second preset antenna and the differential channel quality indication of the first preset antenna and the second preset antenna are sent to the base station, and the rank information of the first preset antenna, the pre-matrix matrix indication And transmitting the channel quality indicator to the base station; or, the rank information of the second preset antenna, the differential codebook structure indicated by the pre-matrix matrix of the first preset
  • a transmitting unit configured to map the pilot signal and the antenna
  • the configuration information is sent to the terminal, and the configuration information of the antenna includes the pattern information of the first preset antenna and the pattern information of the second preset antenna.
  • the receiving unit is configured to receive the second feedback by the terminal. Channel state information of the preset antenna; wherein the first preset antenna and the second preset antenna are in the same antenna array, and the first preset antenna is different from the second preset antenna .
  • the first preset antenna of the mapping unit is satisfied: at least two antennas are not on the same line, At least two antennas are not in the same column, and at least two antennas are in different polarization directions.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column. All antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and two The difference in the number of antennas in one polarization direction cannot exceed 1, and all antennas are in different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column.
  • the antenna pairs in the same column are spaced apart by the same row, and every two adjacent columns including the antenna are equally spaced, and the antenna pairs in each of the two adjacent columns including the antenna are not on the same row; or, the antenna Pairs, and pairs of antennas are in the same row and in the same column.
  • the antenna pairs in the same row are in the same column, and each two adjacent rows containing the antenna are equally spaced, and each two adjacent antennas The antenna pairs in the row are not on the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the antennas in the same column are spaced apart by the same row and are alternately polarized or sequentially polarized.
  • Each of two adjacent columns containing the same spacing of the antennas, the antennas in each of the two adjacent columns containing the antenna are not on the same line; or, the antenna having only one polarization direction in the same row and the same column
  • the antennas in the same row are spaced apart by the same column and are alternately polarized or in the same polarization direction.
  • Each two adjacent rows containing the antennas are equally spaced, and each of the two adjacent rows containing the antenna The antennas are not in the same column.
  • the first preset antenna further satisfies: an antenna is in an antenna array that includes the first preset antenna The corners are in pairs.
  • the first preset antenna further satisfies: four in an antenna array that includes the first preset antenna Each corner has an antenna and the number of antennas in the two polarization directions is the same.
  • the first preset antenna is further configured to: only two antennas are paired, and the paired antennas are all in the same row And in the same column, the antennas of one polarization direction are in the same column of the row, and the antennas of the other polarization direction are in the same row of the columns.
  • the first preset antenna is further configured to: only two antennas are paired, and the paired antennas are all in the same row And an antenna of the same column, one polarization direction is in the same row of the row, and any one of the antennas in the one polarization direction is equally spaced apart from the same row of antennas including another polarization direction;
  • antennas of one polarization direction are in the same row of the columns, and the rows of any one of the antennas in one polarization direction are equally spaced apart from the antennas of the other column including the other polarization direction.
  • the first preset antenna further satisfies: the antennas in one polarization direction are in the same row at the same row, An antenna of any one of the polarization directions is equally spaced apart from the same row of antennas including another polarization direction; or, an antenna of one polarization direction is equally spaced in the same column, in the one polarization The row of any one of the directional antennas is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the antenna array is a co-polarized antenna array
  • the first antenna array is a co-polarized antenna array
  • the preset The number of antennas is satisfied: At least two antennas are not on the same line, and at least two antennas are not in the same column.
  • the first preset antenna further satisfies: each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are separated by the same row, each two phases The adjacent columns including the antennas are equally spaced, and the antennas in each of the two adjacent columns including the antenna are not on the same line;
  • the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antennas are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not in the same column.
  • the first preset antenna further satisfies: There is one antenna at each of the four corners of the antenna array including the first predetermined antenna.
  • the first preset antenna further satisfies:
  • the antennas are spaced apart by the same column on one line, and the equally spaced rows of the columns in which any one of the rows is located include the antenna.
  • the configuration information of the antenna sent by the sending unit includes: pattern information of the first preset antenna in the second preset antenna.
  • the configuration information of the antenna sent by the sending unit includes: pattern information of the first preset antenna in the antenna array;
  • the configuration information of the antenna that is sent by the sending unit further includes at least one of the following: , correlation coefficient between antennas.
  • a terminal including: a receiving unit, configured to receive a pilot signal sent by a base station and configuration information of the antenna, where the pilot signal is a first preset antenna in an antenna array a mapping pilot signal, the configuration information of the antenna includes pattern information of the first preset antenna and pattern information of a second preset antenna; and an acquiring unit, configured to receive, according to the pilot signal received by the receiving unit
  • the channel state information of the second preset antenna is calculated by using the configuration information of the antenna, and the sending unit is configured to send channel state information of the second preset antenna acquired by the acquiring unit to the base station;
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the first preset antenna when the antenna array is a dual-polarized antenna array, the first preset antenna satisfies: at least two antennas are not on the same line, at least The two antennas are not in the same column, and at least two antennas are in different polarization directions.
  • the first preset antenna in a second possible implementation manner, further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column. All antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and two The difference in the number of antennas in one polarization direction cannot exceed 1, and all antennas are in different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column.
  • the antenna pairs in the same column are spaced apart by the same row, and every two adjacent columns including the antenna are equally spaced, and the antenna pairs in each of the two adjacent columns including the antenna are not on the same row; or, the antenna Pairs, and pairs of antennas are in the same row and in the same column.
  • the antenna pairs in the same row are in the same column, and each two adjacent rows containing the antenna are equally spaced, and each two adjacent antennas
  • the antenna pairs in the row are not on the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, in the same The antennas in the column are spaced apart by the same row and are alternately polarized or in the same polarization direction. Each two adjacent columns containing the same column of the antenna are spaced apart, and the antennas in each of the two adjacent columns containing the antenna are Not on the same line; Or, in the same row and the same column, there is only one antenna in the polarization direction, and the antennas in the same row are spaced apart by the same column and are alternately polarized or sequentially polarized, and each two adjacent rows of antennas are spaced apart.
  • the antennas in each of the two adjacent rows containing the antenna are not on the same column.
  • the first preset antenna further satisfies:: an antenna is in an antenna array that includes the first preset antenna The corners are in pairs.
  • the first preset antenna further satisfies: four in an antenna array that includes the first preset antenna Each corner has an antenna and the number of antennas in the two polarization directions is the same.
  • the first preset antenna further satisfies: only two antennas are paired, and the paired antennas are all in the same row And in the same column, the antennas of one polarization direction are in the same column of the row, and the antennas of the other polarization direction are in the same row of the columns.
  • the first preset antenna is further configured to: only two antennas are paired, and the paired antennas are all in the same row And an antenna of the same column, one polarization direction is in the same row of the row, and any one of the antennas in the one polarization direction is equally spaced apart from the same row of antennas including another polarization direction;
  • the paired antennas are all in the same row and in the same column, and one antenna in one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction
  • the row in which the row is located is equally spaced apart from the antenna including the other polarization direction.
  • the first preset antenna further satisfies: An antenna of one polarization direction is in the same row at the same row, and any one of the antennas in the one polarization direction is equally spaced apart from the same row of antennas including another polarization direction; or, a polarization direction The antennas are in the same row at the same row, and any one of the antennas in the one polarization direction is equally spaced apart from the same column of antennas including the other polarization direction.
  • the first antenna array is a co-polarized antenna array, where the preset number of antennas meets: at least two antennas are not in the same row At least two antennas are not in the same column.
  • the first preset antenna further satisfies: each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are separated by the same row, each two phases The adjacent columns including the antennas are equally spaced, and the antennas in each of the two adjacent columns including the antenna are not on the same line;
  • the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antennas are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not in the same column.
  • the first preset antenna further satisfies: in an antenna array that includes the first preset antenna There is one antenna at each of the four corners.
  • the first preset antenna further satisfies: the antennas are spaced apart on the same column in a row, in the row Any one of the antennas The columns of the equally spaced rows include the antenna.
  • the configuration information of the antenna received by the receiving unit includes: pattern information of the first preset antenna in the second preset antenna.
  • the configuration information of the antenna received by the receiving unit includes: pattern information of the first preset antenna in the antenna array;
  • Pattern information of the second predetermined antenna in the antenna array further includes at least One of the following: The spacing between the antennas and the correlation coefficient between the antennas.
  • the acquiring unit includes: a first acquiring subunit, Obtaining, from the pilot signal, a channel matrix corresponding to the first preset antenna; the second acquiring subunit, configured to acquire the first preset antenna and the second preset antenna from the configuration information of the antenna An operation subunit, configured to: according to the channel matrix corresponding to the first preset antenna acquired by the first acquiring subunit, and the first preset antenna and the first acquired by the second acquiring subunit The positional relationship between the two preset antennas is interpolated to obtain channel state information of the second preset antenna.
  • the sending unit is specifically used In:
  • the rank information, pre-matrix matrix indication and channel quality indication of the second preset antenna are transmitted to the base station.
  • the sending unit is specifically used to:
  • the sending unit is specifically configured to:
  • a fifth aspect provides a base station, including: a processor, a receiver, a transmitter, a memory, and a bus, wherein the processor, the receiver, the transmitter, and the memory are connected by using the bus, and the memory is used for storing Data processed by the processor; the processor is configured to map the first preset antenna in the antenna array to the pilot signal; The transmitter is configured to send the pilot signal and configuration information of the antenna to a terminal, where configuration information of the antenna includes pattern information of the first preset antenna and a second preset antenna a pattern information, the receiver is configured to receive channel state information of the second preset antenna that is fed back by the terminal, where the first preset antenna is the same as the second preset antenna In the antenna array, the first preset antenna is different from the second preset antenna.
  • the first preset antenna when the antenna array is a dual-polarized antenna array, the first preset antenna satisfies: at least two antennas are not on the same line, at least The two antennas are not in the same column, and at least two antennas are in different polarization directions.
  • the first preset antenna in a second possible implementation manner, further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column. All antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and two The difference in the number of antennas in one polarization direction cannot exceed 1, and all antennas are in different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column.
  • the antenna pairs in the same column are spaced apart by the same row, and every two adjacent columns including the antenna are equally spaced, and the antenna pairs in each of the two adjacent columns including the antenna are not on the same row; or, the antenna Pairs, and pairs of antennas are in the same row and in the same column.
  • the antenna pairs in the same row are in the same column, and each two adjacent rows containing the antenna are equally spaced, and each two adjacent antennas
  • the antenna pairs in the row are not on the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, in the same The antennas in the column are spaced apart by the same row and are alternately polarized or in the same polarization direction.
  • the first preset antenna further satisfies: an antenna is in an antenna array that includes the first preset antenna The corners are in pairs.
  • the first preset antenna further satisfies: four in an antenna array that includes the first preset antenna Each corner has an antenna and the number of antennas in the two polarization directions is the same.
  • the first preset antenna further satisfies: only two antennas are paired, and the paired antennas are all in the same row And in the same column, the antennas of one polarization direction are in the same column of the row, and the antennas of the other polarization direction are in the same row of the columns.
  • the first preset antenna is further configured to: only two antennas are paired, and the paired antennas are all in the same row And an antenna of the same column, one polarization direction is in the same row of the row, and any one of the antennas in the one polarization direction is equally spaced apart from the same row of antennas including another polarization direction; Or, only two antennas are paired, and the paired antennas are all in the same row and in the same column, and one antenna in one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction The row in which the row is located is equally spaced apart from the antenna including the other polarization direction.
  • the first preset antenna further satisfies: the antennas in one polarization direction are in the same row at the same row, An antenna of any one of the polarization directions is equally spaced apart from the same row of antennas including another polarization direction; or, an antenna of one polarization direction is equally spaced in the same column, in the one polarization The row of any one of the directional antennas is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the antenna array is a co-polarized antenna array
  • the first antenna array is a co-polarized antenna array
  • the preset The number of antennas is satisfied: At least two antennas are not on the same line, and at least two antennas are not in the same column.
  • the first preset antenna further satisfies: each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are in the same row, each two phases The adjacent columns including the antennas are equally spaced, and the antennas in each of the two adjacent columns including the antenna are not on the same line;
  • the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antennas are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not in the same column.
  • the first preset antenna further satisfies: one antenna at each of four corners of the antenna array including the first preset antenna.
  • the first preset antenna further satisfies:
  • the antennas are spaced apart by the same column on one line, and the equally spaced rows of the columns in which any one of the rows is located include the antenna.
  • the configuration information of the antenna sent by the transmitter includes: pattern information of the first preset antenna in the second preset antenna.
  • the configuration information of the antenna sent by the transmitter includes: pattern information of the first preset antenna in the antenna array;
  • the configuration information of the antenna sent by the transmitter further includes at least one of the following: The spacing between the antennas and the correlation coefficient between the antennas.
  • a sixth aspect provides a terminal, including: a processor, a receiver, a transmitter, a memory, and a bus, wherein the processor, the receiver, the transmitter, and the memory are connected by using the bus, and the memory is used for storing The data processed by the processor; the receiver is configured to receive a pilot signal sent by the base station and configuration information of the antenna, where the pilot signal is a pilot signal of a first preset antenna mapping in the antenna array, The configuration information of the antenna includes pattern information of the first preset antenna and pattern information of a second preset antenna;
  • the processor is configured to calculate, according to the pilot signal and configuration information of the antenna Calculating channel state information of the second preset antenna; the transmitter, configured to send channel state information of the second preset antenna to the base station; wherein, the first preset The antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least The two antennas are not in the same column, and at least two antennas are in different polarization directions.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column. All antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and two The difference in the number of antennas in one polarization direction cannot exceed 1, and all antennas are in different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column.
  • the antenna pairs in the same column are spaced apart by the same row, and every two adjacent columns including the antenna are equally spaced, and the antenna pairs in each of the two adjacent columns including the antenna are not on the same row; or, the antenna Pairs, and pairs of antennas are in the same row and in the same column.
  • the antenna pairs in the same row are in the same column, and each two adjacent rows containing the antenna are equally spaced, and each two adjacent antennas The antenna pairs in the row are not on the same column.
  • the first preset antenna further satisfies: In the same row and the same column, there is only one antenna with the same polarization direction. The antennas in the same column are spaced apart by the same row and are alternately polarized or the same polarization direction. The interval between each two adjacent antennas is the same.
  • the first preset antenna further satisfies:: an antenna in an antenna array including the first preset antenna The corners are in pairs.
  • the first preset antenna further satisfies: four in an antenna array that includes the first preset antenna Each corner has an antenna and the number of antennas in the two polarization directions is the same.
  • the first preset antenna is further configured to: only two antennas are paired, and the paired antennas are all in the same row And in the same column, the antennas of one polarization direction are in the same column of the row, and the antennas of the other polarization direction are in the same row of the columns.
  • the first preset antenna is further configured to: only two antennas are paired, and the paired antennas are all in the same row And an antenna of the same column, one polarization direction is in the same row of the row, and any one of the antennas in the one polarization direction is equally spaced apart from the same row of antennas including another polarization direction;
  • the paired antennas are all in the same row and in the same column, and one polarization direction antenna is in the same row of the columns, in the one polarization direction
  • the row in which any one of the antennas is located is equally spaced apart from the antenna including the other polarization direction.
  • the first preset antenna further satisfies: the antennas in one polarization direction are in the same row at the same row, An antenna of any one of the polarization directions is equally spaced apart from the same row of antennas including another polarization direction; or, an antenna of one polarization direction is equally spaced in the same column, in the one polarization The row of any one of the directional antennas is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the first antenna array is a co-polarized antenna array, where the preset number of antennas meet: at least two antennas are not in the same row At least two antennas are not in the same column.
  • the first preset antenna further satisfies: each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are separated by the same row, each two phases The adjacent columns including the antennas are equally spaced, and the antennas in each of the two adjacent columns including the antenna are not on the same line;
  • the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antennas are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not in the same column.
  • the first preset antenna further satisfies: in an antenna array that includes the first preset antenna One day in each of the four corners Line.
  • the first preset antenna further satisfies: the antennas are spaced apart on the same column in a row, in the row The equally spaced rows of columns in which any one of the antennas is located include the antenna.
  • the configuration information of the antenna received by the receiver includes: pattern information of the first preset antenna in the second preset antenna.
  • the configuration information of the antenna received by the receiver includes: pattern information of the first preset antenna in the antenna array;
  • Pattern information of the second predetermined antenna in the antenna array further includes at least One of the following: The spacing between the antennas and the correlation coefficient between the antennas.
  • the processor is specifically configured to: use the pilot signal Acquiring a channel matrix corresponding to the first preset antenna; obtaining a positional relationship between the first preset antenna and the second preset antenna from the configuration information of the antenna; according to the first preset antenna The corresponding channel matrix and the positional relationship between the first preset antenna and the second preset antenna are interpolated to obtain channel state information of the second preset antenna.
  • the transmitter is specifically configured to: The preset antenna rank information, pre-matrix matrix indication, and channel quality indication are transmitted to the base station.
  • the channel of the second preset antenna is Sending the status information to the transmitter is specifically configured to: send the rank information, the pre-matrix matrix indication, and the channel quality indicator of the second preset antenna to the base station, and obtain rank information of the first preset antenna, The matrix indication and channel quality indication are sent to the base station.
  • the channel of the second preset antenna is And sending the status information to the transmitter, where the identifier information of the second preset antenna, the pre-compilation matrix of the first preset antenna and the second preset antenna, and the differential codebook structure and the first
  • the channel quality indicator of the second preset antenna is sent to the base station, and the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna are sent to the base station; or the rank of the second preset antenna is Information, a pre-programmed matrix indication of the second preset antenna, and a differential channel quality indicator of the first preset antenna and the second preset antenna are sent to the base station, and the rank information of the first preset antenna is pre-programmed
  • the matrix indication and the channel quality indicator are sent to the base station; or the rank information of the second preset antenna, the differential preset code structure indicated by the pre-matrix matrix of the first preset
  • the seventh aspect provides a communication system, comprising: a terminal and a base station that communicate with each other, the base station is the base station according to any one of the third aspect, wherein the terminal is the terminal according to any one of the fourth aspects; or The base station is the base station according to any one of the fifth aspect, wherein the terminal is The terminal of any of the six aspects.
  • the base station selects a first preset antenna to be mapped to the pilot signal in the antenna array, and sends the pilot signal and configuration information of the antenna to the terminal, where the terminal is based on the pilot.
  • the signal and the configuration information of the antenna acquire channel state information of the second preset antenna, and feed back the channel state information of the second preset antenna to the base station. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing the pilot overhead.
  • FIG. 1 is a schematic diagram of an antenna array provided by the prior art
  • FIG. 2 is a schematic flowchart of a method for acquiring channel information according to an embodiment of the present invention
  • FIG. 3 is a schematic diagram of a method for mapping an antenna array according to an embodiment of the present invention
  • FIG. 4 is a schematic flowchart of a method for acquiring channel information according to another embodiment of the present invention
  • FIG. 5 is a schematic flowchart of a method for acquiring channel information according to another embodiment of the present invention.
  • FIG. 7 is a schematic diagram of another antenna selection method according to an embodiment of the present invention
  • FIG. 8 is a schematic diagram of another antenna selection method according to an embodiment of the present invention
  • FIG. 9 is still another embodiment of the present invention
  • FIG. 10 is a schematic diagram of another antenna selection method according to an embodiment of the present invention.
  • FIG. 11 is a schematic diagram of still another method for selecting an antenna according to an embodiment of the present invention.
  • FIG. 12 is a schematic diagram of still another antenna selection method according to an embodiment of the present invention.
  • FIG. 13 is a schematic diagram of another antenna selection method according to an embodiment of the present invention.
  • FIG. 14 is a schematic diagram of still another antenna selection method according to an embodiment of the present invention.
  • FIG. 15 is a schematic diagram of still another antenna selection method according to an embodiment of the present invention.
  • FIG. 16 is a schematic diagram of another antenna selection method according to an embodiment of the present invention.
  • FIG. 17 is a schematic diagram of still another antenna selection method according to an embodiment of the present invention.
  • FIG. 18 is a schematic diagram of still another antenna selection method according to an embodiment of the present invention.
  • FIG. 19 is a schematic diagram of another antenna selection method according to an embodiment of the present invention.
  • FIG. 20 is a schematic diagram of still another antenna selection method according to an embodiment of the present invention.
  • FIG. 21 is a schematic structural diagram of a base station according to an embodiment of the present invention
  • FIG. 22 is a schematic structural diagram of a terminal according to an embodiment of the present invention
  • FIG. 24 is a schematic structural diagram of a terminal according to another embodiment of the present invention
  • FIG. 25 is a schematic diagram of a channel information acquiring system according to an embodiment of the present invention.
  • An embodiment of the present invention provides a method for acquiring channel information of a base station, which is referred to a figure.
  • the base station maps the first preset antenna in the antenna array to the pilot signal.
  • the first preset antenna may be preset by the base station, or the terminal may feed back the setting information of the first preset antenna to the base station, or the base station sends the setting information of the first preset antenna.
  • the first preset antenna is smaller than the total number of antennas or the second preset number of antennas in the antenna array. Mapping a preset number of antennas to pilot signals requires mapping through physical resource block 2.
  • the antenna array in FIG. 3 is a dual-polarized antenna array, and a total of 32 antennas (L1, L2, ..., L32); the physical resource block 2 in FIG.
  • each antenna can be mapped to a corresponding physical resource unit, and labels on each physical resource unit in FIG. 3 represent corresponding antennas; these physical resource units can implement antenna mapping, and can also Achieve data transfer.
  • the base station performs antenna mapping to the pilot signal, if all the antennas in the antenna array are selected, a large number of physical resource units are occupied, so that the number of physical resource units for data transmission is reduced, resulting in a decrease in data transmission performance of the base station.
  • Embodiments of the present invention perform mapping by selecting a part of antennas in an antenna array, occupying relatively few physical resource units, and reducing the impact on data transmission performance of the base station.
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least two antennas are not in the same column, and at least two antennas are in different poles. In the direction. Wherein, at least two antennas are not on the same line, and can reflect the difference of the transmitted signals between the rows of the antenna; similarly, at least two antennas are not in the same column, and the antenna can be reflected between the columns. The difference in signal; at least two antennas have different polarization directions, which can reflect the difference of the transmitted signals between antennas with different polarization directions.
  • the first preset antenna satisfies: at least two antennas are not on the same line, and at least two antennas are not in the same column. Wherein, at least two antennas are not on the same line, and the difference in the transmitted signals between the antennas can be different; likewise, at least two antennas are not in the same column, and the antenna can be reflected The difference in the transmitted signal between the columns.
  • the base station sends the configuration information of the pilot signal and the antenna to the terminal, where the configuration information of the antenna includes the pattern information of the first preset antenna and the pattern information of the second preset antenna.
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the terminal can obtain a positional relationship between the first preset antenna and the second preset antenna according to the configuration information, and according to the positional relationship, the channel state information of the second preset antenna can be obtained by interpolation.
  • the configuration information of the antenna includes: the first preset antenna is in the second preset antenna Pattern information.
  • the configuration information of the antenna includes: pattern information of the first preset antenna in the antenna array;
  • Pattern information of the second predetermined antenna in the antenna array further includes at least one of: a spacing between the antennas, and a correlation coefficient between the antennas.
  • the configuration information carries the spacing between the antennas or the correlation coefficient between the antennas, so that the terminal can obtain the channel state information of the second preset antenna more accurately.
  • the base station receives channel state information of the second preset antenna that is fed back by the terminal.
  • the base station can configure a corresponding transmit antenna to the terminal according to the received channel state information of the second preset antenna.
  • the base station selects a first preset antenna in the antenna array to map to the pilot signal, and sends the pilot signal and configuration information of the antenna to the terminal, and the terminal according to the pilot signal and the
  • the configuration information of the antenna acquires channel state information of the second preset antenna, and feeds back channel state information of the second preset antenna to the base station. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing Pilot overhead.
  • An embodiment of the present invention provides a method for acquiring channel information of a terminal, which is referred to a figure.
  • the terminal acquires a pilot signal sent by the base station and configuration information of the antenna, where the pilot signal is a pilot signal mapped by the first preset antenna in the antenna array, and the configuration information of the antenna includes pattern information of the first preset antenna. Pattern information of the second preset antenna.
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the terminal can obtain a positional relationship between the first preset antenna and the second preset antenna according to the configuration information, and according to the positional relationship, the channel state information of the second preset antenna can be obtained by interpolation.
  • the configuration information of the antenna includes: the first preset antenna is in the second preset antenna Pattern information.
  • the configuration information of the antenna includes: pattern information of the first preset antenna in the antenna array;
  • Pattern information of the second predetermined antenna in the antenna array further includes at least one of: a spacing between the antennas, and a correlation coefficient between the antennas.
  • the configuration information carries the spacing between the antennas or the correlation coefficient between the antennas, so that the terminal can obtain the channel state information of the second preset antenna more accurately.
  • the terminal calculates channel state information of the second preset antenna according to the pilot signal and the configuration information of the antenna. Specifically, the terminal acquires a channel matrix corresponding to the first preset antenna from the pilot signal, and obtains a positional relationship between the first preset antenna and the second preset antenna from the configuration information of the antenna; The channel matrix corresponding to the preset antenna and the positional relationship between the first preset antenna and the second preset antenna are interpolated to obtain a second pre-predetermined Set the channel state information of the antenna.
  • the channel state information of the antenna includes rank information of the antenna, a pre-coded matrix indication, and a channel quality indicator.
  • the terminal sends channel state information of the second preset antenna to the base station.
  • the terminal sends the rank information, the pre-matrix matrix indication, and the channel quality indicator of the second preset antenna to the base station.
  • the rank information, the pre-matrix matrix indication, and the channel quality indicator of the second preset antenna are sent to the base station, and the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna are sent. To the base station. In this way, the channel state information of the first preset antenna can be accurately obtained.
  • the rank information of the second preset antenna, the differential codebook structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna, and the channel quality of the second preset antenna Sending the indication to the base station, and transmitting the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna to the base station; or, the rank information of the second preset antenna, the second preset antenna And transmitting, to the base station, the differential channel quality indicator of the first preset antenna and the second preset antenna, and sending the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna to Or base station; or, the second preset antenna rank information, the first preset antenna and the second preset antenna pre-matrix matrix indicating the differential codebook structure and the first preset antenna and the second
  • the differential channel quality indicator of the preset antenna is sent to the base station, and the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna are sent to the
  • the base station can obtain the pre-matrix matrix indication of the second preset antenna by using the differential codebook structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna. Similarly, the base station passes the foregoing first
  • the differential channel quality indication of the preset antenna and the second preset antenna can obtain a channel quality indication of the second preset antenna.
  • the differential codebook structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna and the differential channel quality indication of the first preset antenna and the second preset antenna occupy relatively less resources. This can reduce the pilot overhead.
  • the terminal receiving base station selects a first preset antenna mapped to the pilot signal in the antenna array, and simultaneously receives configuration information of the antenna, and acquires a second preset according to the pilot signal and the configuration information of the antenna.
  • the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing the pilot overhead.
  • An embodiment of the present invention provides a method for acquiring channel information. Referring to FIG. 5, the method includes the following steps:
  • the base station maps a first preset antenna in the antenna array to a pilot signal.
  • the first preset antenna may be preset by the base station, or the terminal may feed back the setting information of the first preset antenna to the base station, or the base station sends the setting information of the first preset antenna.
  • the antenna array is a dual-polarized antenna array
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least two antennas are not in the same column, and at least two antennas are in different poles. In the direction.
  • At least two antennas are not on the same line, and can reflect the difference of the transmitted signals between the rows of the antenna; similarly, at least two antennas are not in the same column, and the antenna can be reflected between the columns.
  • the difference in signal; at least two antennas have different polarization directions, which can reflect the difference of the transmitted signals between antennas with different polarization directions.
  • two solid lines represent a first preset antenna, and a broken line represents a non-first preset antenna.
  • the selected two antennas can simultaneously reflect the difference between the transmitted signals of the antennas between the rows, the antennas between the columns, and the antennas in different polarization directions.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation through the difference of the transmitted signals in the above three directions and combining the configuration information of the antenna.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column, and all the antenna pairs are in different rows and different columns. Referring to FIG. 7, there are two cases including the method (the two cases are numbered as: P3-l, P3-2); wherein, the solid line represents the first preset antenna, and the dotted line represents the non-first preset. The antenna will not be described in the future selection of the antenna pattern.
  • the corresponding method in Figure 7 can sample the difference of the transmitted signals between multiple antennas between rows and between the antennas, which can improve the accuracy of the interpolation operation.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the difference between the number of antennas in the two polarization directions cannot exceed 1, and all the antennas are in Different rows and different columns.
  • FIG. 8 there are two cases including the method (the numbers of the two cases are: P3-3, P3-4); the method corresponding to FIG.
  • the difference in the transmitted signals of the antennas between the columns can improve the accuracy of the interpolation operation, and the number of antennas mapped by the base station is reduced relative to the method corresponding to FIG. 7, thereby reducing the pilot overhead.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and the same column, and the antenna pairs in the same column are equally spaced, and each two adjacent antennas are included The columns of the same column are spaced apart, and the antenna pairs in each of the two adjacent columns containing the antenna are not on the same row; or, the antennas are paired, and the paired antennas are all in the same row and in the same row, in the same row The pairs of antennas are in the same column, and every two adjacent rows containing the antennas are equally spaced, and the antenna pairs in each of the two adjacent rows containing the antenna are not in the same column. Referring to FIG.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the antennas in the same column are spaced apart by the same row and are alternately polarized or sequentially polarized.
  • Each of two adjacent columns containing the same spacing of the antennas, the antennas in each of the two adjacent columns containing the antenna are not on the same line; or, the antennas having only one polarization direction in the same row and the same column
  • the antennas in the same row are spaced apart by the same column and are alternately polarized or in the same polarization direction.
  • Each two adjacent rows containing the antennas have the same row spacing, and each two adjacent rows containing the antenna The antennas are not in the same column. Referring to FIG.
  • the numbers of the six cases are: P3-7, P3-8, P3-9, P3-10, P3-11, P3-12);
  • the difference between the transmission signals of multiple antennas between rows and between the antennas can be sampled, the accuracy of the interpolation operation can be improved, and the number of antennas mapped by the base station is reduced relative to the method corresponding to FIG. Thereby reducing the pilot overhead.
  • the first preset antenna further satisfies: the antenna is in the first The four corners of the antenna array of the preset antenna are respectively paired. Referring to FIG. 11 (the number of one case is: P3-13), the first preset antenna is distributed at the outermost portion, and the channel state information of the second preset antenna can be used in the interpolation operation.
  • the interpolation algorithm results in an accuracy of the interpolation algorithm.
  • the first preset antenna further satisfies: one antenna is disposed at each of four corners of the antenna array including the first preset antenna, and the number of antennas in the two polarization directions is the same.
  • the three cases are numbered as: P3-14, P3-15, P3-16).
  • the first preset antenna of this method Distributed in the outermost part, the channel state information of the second preset antenna can be obtained by an interpolation algorithm in the interpolation operation, the accuracy of the interpolation algorithm is high, and the number of antennas mapped by the base station is reduced relative to the method corresponding to FIG. Reduced pilot overhead.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and one polarization direction antenna is in the same row of the row, and An antenna with one polarization direction is in the same row of the columns.
  • FIG. 13 (the number of one case is: P3-17)hab The method corresponding to FIG. 13 can be used to increase the difference of the transmitted signals between the plurality of antennas between the rows and between the columns of the antennas, which can be improved. The accuracy of the interpolation operation.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and the antennas in one polarization direction are in the same row of the rows, in An antenna of any one of the one polarization direction antennas is equally spaced apart from the same row of antennas including another polarization direction; or, only two antennas are paired, and the paired antennas are all in the same row and in the same column An antenna having one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction is equally spaced apart from the antenna of the other column including the other polarization direction. Referring to Figure 14 (the two cases are numbered: P3-18, P3-19 respectively).
  • the method corresponding to Figure 14 can be used to transmit signals to multiple antennas between rows and between antennas. The difference is that the accuracy of the interpolation operation can be improved.
  • the first preset antenna further satisfies: the antennas of one polarization direction are in the same row at the same row, and any one of the antennas in the one polarization direction An antenna that is in the same row and that includes another polarization direction; or, a pole The antennas in the same direction are in the same row of the same column, and the rows in which one of the antennas in one polarization direction is equally spaced are the antennas of the other column including the other polarization direction. Refer to Figure 15 (the two cases are numbered: P3 -20, P3 - 21). The corresponding method of FIG.
  • the 15 can sample the difference of the transmitted signals between the plurality of antennas between the rows and between the columns of the antennas, and can improve the accuracy of the interpolation operation, and is mapped with respect to the method corresponding to the method of FIG.
  • the number of antennas is reduced, thereby reducing pilot overhead.
  • the number and arrangement of the preset antennas in the dual-polarized antenna array may also be other modes.
  • the first predetermined antennas selected have different rows, columns, and polarization directions. The scope of the invention.
  • the first preset antenna satisfies: at least two antennas are not on the same line, and at least two antennas are not in the same column.
  • At least two antennas are not on the same line, and the difference between the transmitted signals of the antennas between the lines can be obtained. Similarly, at least two antennas are not in the same column, and the difference of the transmitted signals between the columns can be reflected. Referring to Fig. 16, it is possible to simultaneously reflect the difference in the transmitted signals of the antenna between the rows and between the columns of the antennas.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation by the difference between the transmitted signals in the two directions and the configuration information of the antenna. Further, the first preset antenna also satisfies: Each antenna is in a different row and a different column.
  • Figure 17 there are two cases including the method (the two cases are numbered as: P3-22, P3-23);
  • Figure 17 corresponds to the method, which can sample multiple antennas between rows and antennas The difference in the transmitted signals between the columns can improve the accuracy of the interpolation operation.
  • the first preset antenna further satisfies: the antennas in the same column are spaced apart by the same row, and each two adjacent columns including the antenna are equally spaced, and each of the two adjacent columns including the antenna The antennas are not on the same line; or, the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antenna are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not On the same column.
  • Figure 18 there are two cases including the method (the two cases are numbered as: P3 - 24, P3 - 25);
  • Figure 18 corresponds to the selection method, which can be sampled to multiple antennas between rows and Antenna in the column The difference between the transmitted signals can improve the accuracy of the interpolation operation.
  • the first preset antenna further satisfies: one antenna at each of four corners of the antenna array including the first preset antenna. Referring to FIG. 19 (the number of one case is: P3-26); the first preset antenna is distributed at the outermost portion, and the channel state information of the second preset antenna can be input through the interpolation operation. The interpolation algorithm is obtained, and the interpolation algorithm has high precision.
  • the first preset antenna is further satisfied: the first preset antenna further satisfies: the antennas are spaced apart in the same column on one row, and the equally spaced rows of the columns in which any one of the rows is located are included antenna.
  • This selection method can differentiate the difference of the transmitted signals between the multiple antennas between the rows and between the antennas, and can improve the accuracy of the interpolation operation.
  • the number and arrangement of the antennas in the above-mentioned co-polarized antenna array may also be other manners. It is within the scope of the present invention that the first predetermined antennas have different rows and columns.
  • the base station sends the configuration information of the pilot signal and the antenna to the terminal, where the configuration information of the antenna includes pattern information of the first preset antenna and pattern information of the second preset antenna.
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the configuration information of the antenna sent by the base station is described in detail in step 102, and details are not described herein again.
  • the terminal acquires a pilot signal sent by the base station and configuration information of the antenna, where the pilot signal is a pilot signal mapped by the first preset antenna in the antenna array, and the configuration information of the antenna includes pattern information of the first preset antenna. Pattern information of the second preset antenna.
  • the terminal acquires, from the pilot signal, a channel matrix corresponding to the first preset antenna.
  • the terminal acquires a positional relationship between the first preset antenna and the second preset antenna from the configuration information of the antenna.
  • the terminal performs interpolation according to a channel matrix corresponding to the first preset antenna and a position relationship between the first preset antenna and the second preset antenna, to obtain a second pre-preparation. Set the channel state information of the antenna.
  • the terminal sends channel state information of the second preset antenna to the base station. Specifically, the channel state information sending manner of the second preset antenna is described in detail in step 203, and details are not described herein again.
  • the base station receives channel state information of the antenna feedback antenna array.
  • the base station can configure a corresponding transmit antenna for the terminal according to the received channel state information of the second preset antenna.
  • the base station selects a first preset antenna in the antenna array to map to the pilot signal, and sends the pilot signal and configuration information of the antenna to the terminal, and the terminal according to the pilot signal and the
  • the configuration information of the antenna acquires channel state information of the second preset antenna, and feeds back channel state information of the second preset antenna to the base station. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing pilot overhead.
  • the embodiment of the present invention provides a base station 400, as shown in FIG. 21, for implementing acquisition of channel state information, including: a mapping unit 401, configured to map a first preset antenna in the antenna array to a pilot signal.
  • the first preset antenna may be preset by the base station, or the terminal may feed back the setting information of the first preset antenna to the base station, or the base station sends the setting information of the first preset antenna.
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least two antennas are not in the same column, and at least two antennas are in different poles. In the direction. Wherein, at least two antennas are not on the same line, and can reflect the difference of the transmitted signals between the rows of the antenna; similarly, at least two antennas are not in the same column, and the antenna can be reflected between the columns.
  • the difference in signal at least two antennas have different polarization directions, which can reflect the difference of the transmitted signals between antennas with different polarization directions.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation through the difference of the transmitted signals in the above three directions and combining the configuration information of the antenna.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column, and all the antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the difference between the number of antennas in the two polarization directions cannot exceed 1, and all the antennas are in Different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and the same column, and the antenna pairs in the same column are equally spaced, and each two adjacent antennas are included The columns of the same column are spaced apart, and the antenna pairs in each of the two adjacent columns containing the antenna are not on the same row; or, the antennas are paired, and the paired antennas are all in the same row and in the same row, in the same row The pairs of antennas are in the same column, and every two adjacent rows containing the antennas are equally spaced, and the antenna pairs in each of the two adjacent rows containing the antenna are not in the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the antennas in the same column are spaced apart by the same row and are alternately polarized or sequentially polarized.
  • Each of two adjacent columns containing the same spacing of the antennas, the antennas in each of the two adjacent columns containing the antenna are not on the same line; or, the antennas having only one polarization direction in the same row and the same column
  • the antennas in the same row are spaced apart by the same column and are alternately polarized or in the same polarization direction.
  • Each two adjacent rows containing the antennas have the same row spacing, and each two adjacent rows containing the antenna The antennas are not in the same column.
  • the first preset antenna further satisfies: the antennas are respectively paired at four corners of the antenna array including the first preset antenna.
  • the first preset antenna further satisfies: one antenna is disposed at each of four corners of the antenna array including the first preset antenna, and the number of antennas in the two polarization directions is the same.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and one polarization direction antenna is in the same row of the row, and An antenna with one polarization direction is in the same row of the columns.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and one polarization direction antenna is in the row In the same interval column, any one of the antennas in the one polarization direction is equally spaced apart from the same row of antennas including another polarization direction; or, only two antennas are paired, and the pair of antennas are In the same row and the same column, the antennas of one polarization direction are in the same row of the columns, and the rows of any one of the antennas in the one polarization direction are equally spaced apart from each other including the other polarization direction. antenna.
  • the first preset antenna further satisfies: the antennas of one polarization direction are in the same row at the same row, and the columns of any one of the antennas in the one polarization direction are equally spaced apart.
  • Another polarization direction antenna; or, one polarization direction antenna is in the same row of the same row, and any one of the antennas in the one polarization direction is equally spaced apart from the same column including the other polarization Antenna in the direction.
  • the number and arrangement of the preset antennas in the dual-polarized antenna array may also be other modes.
  • the first predetermined antennas selected have different rows, columns, and polarization directions.
  • the scope of the invention when the antenna is a co-polarized antenna array, the first preset antenna satisfies: at least two antennas are not on the same line, and at least two antennas are not in the same column. At least two antennas are not on the same line, and the difference in the transmitted signals between the lines can be made. Similarly, at least two antennas are not in the same column, and the difference in the transmitted signals between the columns can be reflected.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation by the difference of the transmitted signals in the two directions and the configuration information of the antenna.
  • the first preset antenna also satisfies: Each antenna is in a different row and a different column. Further optionally, the first preset antenna further satisfies: the antennas in the same column are spaced apart by the same row, and each two adjacent columns including the antenna are equally spaced, and each of the two adjacent columns including the antenna The antennas are not on the same line; or, the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antenna are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not On the same column. Further optionally, the first preset antenna further satisfies: one antenna at each of four corners of the antenna array including the first preset antenna.
  • the first preset antenna is further satisfied: the first preset antenna is still full Foot: The antennas are spaced apart in the same column on one line, and the equally spaced rows of the columns in which any one of the rows is located include the antenna.
  • the number and arrangement of the antennas in the above-mentioned co-polarized antenna array may also be other manners. It is within the scope of the present invention that the first predetermined antennas have different rows and columns.
  • the sending unit 402 is configured to send the pilot signal mapped by the mapping unit 401 and the configuration information of the antenna to the terminal, where the configuration information of the antenna includes pattern information of the first preset antenna and a second pre- Set the pattern information of the antenna.
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the configuration information of the antenna sent by the sending unit 402 includes: the first preset antenna is in the second pre The pattern information in the antenna.
  • the configuration information of the antenna sent by the sending unit 402 includes: the first preset antenna is in the antenna array Pattern information in ;
  • Pattern information of the second predetermined antenna in the antenna array further includes at least one of the following: a spacing between the antennas and a correlation coefficient between the antennas.
  • the configuration information carries the spacing between the antennas or the correlation coefficient between the antennas, so that the terminal can obtain the channel state information of the second preset antenna more accurately.
  • the receiving unit 403 is configured to receive channel state information of the second preset antenna fed back by the terminal.
  • the base station can configure a corresponding transmit antenna to the terminal according to the received channel state information of the second preset antenna.
  • the base station selects a first preset antenna in the antenna array and maps the signal to the pilot signal, and sends the pilot signal and the configuration information of the antenna to the terminal.
  • the terminal acquires channel state information of the second preset antenna according to the pilot signal and the configuration information of the antenna, and feeds back channel state information of the second preset antenna to the base station. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing the pilot overhead.
  • An embodiment of the present invention provides a terminal 500, as shown in FIG.
  • a receiving unit 501 configured to receive a pilot signal and an antenna configuration information, and a pilot signal sent by a base station.
  • the pilot signal mapped to the first preset antenna in the antenna array, the configuration information of the antenna includes pattern information of the first preset antenna and pattern information of the second preset antenna.
  • the first preset antenna may be preset by the base station, or the terminal may feed back the setting information of the first preset antenna to the base station, or the base station sends the setting information of the first preset antenna. To the terminal.
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least two antennas are not in the same column, and at least two antennas are in different poles. In the direction. Wherein, at least two antennas are not on the same line, and can reflect the difference of the transmitted signals between the rows of the antenna; similarly, at least two antennas are not in the same column, and the antenna can be reflected between the columns. The difference in signal; at least two antennas have different polarization directions, which can reflect the difference of the transmitted signals between antennas with different polarization directions.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation through the difference of the transmitted signals in the above three directions and combining the configuration information of the antenna.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column, and all the antenna pairs are in different rows and different columns. Further, the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the difference between the number of antennas in the two polarization directions cannot exceed 1, and all the antennas are in Different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and the same column, and the antenna pairs in the same column are equally spaced, and each two adjacent antennas are included Columns are equally spaced columns, every two adjacent columns containing antennas The antenna pairs are not on the same line; or, the antennas are paired, and the paired antennas are all in the same row and in the same column, the antenna pairs in the same row are in the same column, and each two adjacent rows containing the antenna In the same interval, the antenna pairs in each of the two adjacent rows containing the antenna are not in the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the antennas in the same column are spaced apart by the same row and are alternately polarized or sequentially polarized.
  • Each of two adjacent columns containing the same spacing of the antennas, the antennas in each of the two adjacent columns containing the antenna are not on the same line; or, the antennas having only one polarization direction in the same row and the same column
  • the antennas in the same row are spaced apart by the same column and are alternately polarized or in the same polarization direction.
  • Each two adjacent rows containing the antennas have the same row spacing, and each two adjacent rows containing the antenna The antennas are not in the same column.
  • the first preset antenna further satisfies: the antennas are respectively paired at four corners of the antenna array including the first preset antenna.
  • the first preset antenna further satisfies: one antenna is disposed at each of four corners of the antenna array including the first preset antenna, and the number of antennas in the two polarization directions is the same.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and one polarization direction antenna is in the same row of the row, and An antenna with one polarization direction is in the same row of the columns.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and the antennas in one polarization direction are in the same row of the rows, in An antenna of any one of the one polarization direction antennas is equally spaced apart from the same row of antennas including another polarization direction; or, only two antennas are paired, and the paired antennas are all in the same row and in the same column An antenna having one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the first preset antenna further satisfies: the antennas of one polarization direction are in the same row at the same row, and the columns of any one of the antennas in the one polarization direction are equally spaced apart. Another antenna in the direction of polarization; or, a pole The antennas in the same direction are in the same row of the same column, and the rows in which one of the antennas in one polarization direction is equally spaced are the antennas of the other column including the other polarization direction.
  • the number and arrangement of the preset antennas in the dual-polarized antenna array may also be other modes.
  • the first predetermined antennas selected have different rows, columns, and polarization directions. The scope of the invention.
  • the first preset antenna satisfies: at least two antennas are not on the same line, and at least two antennas are not in the same column. At least two antennas are not on the same line, and the difference between the transmitted signals of the antennas between the lines can be obtained. Similarly, at least two antennas are not in the same column, and the difference of the transmitted signals between the columns can be reflected.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation by the difference between the transmitted signals in the two directions and the configuration information of the antenna. Further, the first preset antenna also satisfies: Each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are spaced apart by the same row, and each two adjacent columns including the antenna are equally spaced, and each of the two adjacent columns including the antenna The antennas are not on the same line; or, the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antenna are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not On the same column. Further optionally, the first preset antenna further satisfies: one antenna at each of four corners of the antenna array including the first preset antenna.
  • the first preset antenna is further satisfied: the first preset antenna further satisfies: the antennas are spaced apart in the same column on one row, and the equally spaced rows of the columns in which any one of the rows is located are included antenna.
  • the number and arrangement of the antennas in the above-mentioned co-polarized antenna array may also be other manners.
  • the first predetermined antennas have different rows and columns.
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the terminal can obtain a positional relationship between the first preset antenna and the second preset antenna according to the configuration information, and according to the positional relationship, the channel state information of the second preset antenna can be obtained by performing an interpolation operation.
  • the configuration information of the antenna received by the receiving unit 501 includes:
  • Pattern information of the first preset antenna in the second preset antenna when the second preset antenna does not include the first preset antenna, the configuration information of the antenna received by the receiving unit 501 includes:
  • Pattern information of the first predetermined antenna in the antenna array
  • Pattern information of the second predetermined antenna in the antenna array further includes at least one of the following:
  • the spacing between the antennas and the correlation coefficient between the antennas The configuration information carries the spacing between the antennas or the correlation coefficient between the antennas, so that the terminal can obtain the channel state information of the second preset antenna more accurately.
  • the obtaining unit 502 is configured to calculate channel state information of the second preset antenna according to the pilot signal received by the receiving unit 501 and the configuration information of the antenna.
  • the obtaining unit 502 includes:
  • the first obtaining sub-unit 502- 1 is configured to obtain, from the pilot signal, a channel matrix corresponding to the first preset antenna;
  • a second obtaining sub-unit 502-2 configured to obtain, from the configuration information of the antenna, a positional relationship between the first preset antenna and the second preset antenna;
  • the operation subunit 502-3 is configured to: according to the channel matrix corresponding to the first preset antenna acquired by the first acquiring subunit, and the first preset antenna acquired by the second acquiring subunit and the second preset antenna The positional relationship is interpolated to obtain channel state information of the second preset antenna.
  • the channel state information of the antenna includes rank information of the antenna, a pre-coded matrix indication, and a channel quality indicator.
  • the terminal 500 further includes: a sending unit 503, configured to send channel state information of the second preset antenna acquired by the obtaining unit 502 to the base station.
  • the sending unit 503 is specifically configured to send the rank information, the pre-matrix matrix indication, and the channel quality indicator of the second preset antenna to the base station.
  • the sending unit 503 is configured to send the rank information, the pre-matrix matrix indication, and the channel quality indicator of the second preset antenna to the base station, and pre-program the rank information of the first preset antenna.
  • the matrix indication and channel quality indication are sent to the base station.
  • the sending unit 503 is specifically configured to: use the second preset antenna rank information, the first preset antenna, and the second preset antenna, the pre-arranged matrix indication differential codebook structure and the second The channel quality indicator of the preset antenna is sent to the base station, and the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna are sent to the base station; or, the sending unit 503 is specifically configured to use the second a preset antenna rank information, a pre-coded matrix indication of the second preset antenna, and a differential channel quality indicator of the first preset antenna and the second preset antenna are sent to the base station, and the first preset antenna is The rank information, the pre-coded matrix indication, and the channel quality indicator are sent to the base station; or, the sending unit 503 is specifically configured to use the second preset antenna rank information, the first preset antenna, and the second preset The differential codebook structure indicated by the pre-matrix matrix of
  • the base station can obtain the pre-matrix matrix indication of the second preset antenna by using the differential codebook structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna. Similarly, the base station passes the foregoing first The differential channel quality indication of the preset antenna and the second preset antenna can obtain a channel quality indication of the second preset antenna.
  • the differential codebook structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna and the differential channel quality indication of the first preset antenna and the second preset antenna occupy relatively less resources. This can reduce the pilot overhead.
  • the terminal receiving base station selects the first preset day in the antenna array.
  • An embodiment of the present invention provides a base station 600, as shown in FIG.
  • the bus 605 is connected, and the memory 604 is used to store data processed by the processor 601;
  • the bus 605 may be an ISA (Industry Standard Architecture) bus, a PCI (Peripheral Component) bus, or an EISA (Extended Industry Standard) Architecture, extended industry standard architecture) bus, etc.
  • the bus 605 can be divided into an address bus, a data bus, a control bus, and the like. For ease of representation, only one thick line is shown in Figure 23, but it does not mean that there is only one bus or one type of bus. among them:
  • Memory 604 is for storing executable program code, the program code including computer operating instructions.
  • Memory 604 may include high speed RAM memory and may also include non-volatile memory, such as at least one disk memory.
  • the processor 601 may be a central processing unit (CPU), or an application specific integrated circuit (ASIC), or one or more configured to implement the embodiments of the present invention. integrated circuit.
  • a processor configured to map the first preset antenna in the antenna array to the pilot signal.
  • the first preset antenna may be preset by the base station, or the terminal may feed back the setting information of the first preset antenna to the base station, or the base station sends the setting information of the first preset antenna. To the terminal.
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least two antennas are not in the same column, and at least two antennas are in different poles. In the direction. Wherein, at least two antennas are not on the same line, and can reflect the difference of the transmitted signals between the rows of the antenna; similarly, at least two antennas are not in the same column, and the antenna can be reflected between the columns. Signal The difference is that at least two antennas have different polarization directions, which can reflect the difference of the transmitted signals between the antennas with different polarization directions.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation through the difference of the transmitted signals in the above three directions and combining the configuration information of the antenna.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column, and all the antenna pairs are in different rows and different columns. Further, the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the difference between the number of antennas in the two polarization directions cannot exceed 1, and all the antennas are in Different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and the same column, and the antenna pairs in the same column are equally spaced, and each two adjacent antennas are included The columns of the same column are spaced apart, and the antenna pairs in each of the two adjacent columns containing the antenna are not on the same row; or, the antennas are paired, and the paired antennas are all in the same row and in the same row, in the same row The pairs of antennas are in the same column, and every two adjacent rows containing the antennas are equally spaced, and the antenna pairs in each of the two adjacent rows containing the antenna are not in the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the antennas in the same column are spaced apart by the same row and are alternately polarized or sequentially polarized.
  • Each of two adjacent columns containing the same spacing of the antennas, the antennas in each of the two adjacent columns containing the antenna are not on the same line; or, the antennas having only one polarization direction in the same row and the same column
  • the antennas in the same row are spaced apart by the same column and are alternately polarized or in the same polarization direction.
  • Each two adjacent rows containing the antennas have the same row spacing, and each two adjacent rows containing the antenna The antennas are not in the same column.
  • the first preset antenna further satisfies: the antennas are respectively paired at four corners of the antenna array including the first preset antenna.
  • the first preset antenna further satisfies: one antenna is disposed at each of four corners of the antenna array including the first preset antenna, and the number of antennas in the two polarization directions is the same.
  • the first preset antenna is further satisfied: only two antennas are paired, And the paired antennas are all in the same row and in the same column, the antennas of one polarization direction are in the same row of the rows, and the antennas of the other polarization direction are in the same row of the columns.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and the antennas in one polarization direction are in the same row of the rows, in An antenna of any one of the one polarization direction antennas is equally spaced apart from the same row of antennas including another polarization direction; or, only two antennas are paired, and the paired antennas are all in the same row and in the same column An antenna having one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the first preset antenna further satisfies: the antennas of one polarization direction are in the same row at the same row, and the columns of any one of the antennas in the one polarization direction are equally spaced apart. Another polarization direction antenna; or, one polarization direction antenna is in the same row of the same row, and any one of the antennas in the one polarization direction is equally spaced apart from the same column including the other polarization Antenna in the direction.
  • the number and arrangement of the preset antennas in the dual-polarized antenna array may also be other modes.
  • the first predetermined antennas selected have different rows, columns, and polarization directions. The scope of the invention.
  • the first preset antenna satisfies: at least two antennas are not on the same line, and at least two antennas are not in the same column. At least two antennas are not on the same line, and the difference between the transmitted signals of the antennas between the lines can be obtained. Similarly, at least two antennas are not in the same column, and the difference of the transmitted signals between the columns can be reflected.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation by the difference between the transmitted signals in the two directions and the configuration information of the antenna. Further, the first preset antenna also satisfies: Each antenna is in a different row and a different column.
  • the first preset antenna further satisfies: the antennas in the same column are spaced apart by the same row, and each two adjacent columns including the antenna are equally spaced, and each of the two adjacent columns including the antenna The antennas are not on the same line; or, the antennas in the same row are spaced apart by the same column, and each two adjacent rows including the antenna are equally spaced, each two The antennas in adjacent rows including the antenna are not in the same column. Further optionally, the first preset antenna further satisfies: one antenna at each of four corners of the antenna array including the first preset antenna.
  • the first preset antenna is further satisfied: the first preset antenna further satisfies: the antennas are spaced apart in the same column on one row, and the equally spaced rows of the columns in which any one of the rows is located are included antenna.
  • the number and arrangement of the antennas in the above-mentioned co-polarized antenna array may also be other manners. It is within the scope of the present invention that the first predetermined antennas have different rows and columns.
  • the transmitter 603 is configured to send the pilot signal and the configuration information of the antenna to the terminal, where the configuration information of the antenna includes pattern information of the first preset antenna and pattern information of the second preset antenna.
  • the first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the configuration information of the antenna sent by the transmitter 603 includes: the first preset antenna is in the second pre- The pattern information in the antenna.
  • the configuration information of the antenna sent by the transmitter 603 includes: the first preset antenna is in the antenna array Pattern information in ;
  • Pattern information of the second predetermined antenna in the antenna array further includes at least one of the following: a spacing between the antennas and a correlation coefficient between the antennas.
  • the configuration information carries the spacing between the antennas or the correlation coefficient between the antennas, so that the terminal can obtain the channel state information of the second preset antenna more accurately.
  • the receiver 602 is configured to receive channel state information of the second preset antenna that is fed back by the terminal.
  • the base station can configure a corresponding transmit antenna to the terminal according to the received channel state information of the second preset antenna.
  • the base station selects a first preset antenna in the antenna array to map to the pilot signal, and sends the pilot signal and configuration information of the antenna to the terminal, and the terminal according to the pilot signal and the The configuration information of the antenna acquires channel state information of the second preset antenna, and feeds back channel state information of the second preset antenna to the base station. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing the pilot overhead.
  • An embodiment of the present invention provides a terminal 700, as shown in FIG.
  • the bus 705 is connected, and the memory 704 is used to store data processed by the processor 701;
  • the bus 705 may be an ISA (Industry Standard Architecture) bus, a PCI (Peripheral Component) bus, or an EISA (Extended Industry Standard) Architecture, extended industry standard architecture) bus, etc.
  • the bus 705 can be divided into an address bus, a data bus, a control bus, and the like. For ease of representation, only one thick line is shown in Figure 24, but it does not mean that there is only one bus or one type of bus. among them:
  • Memory 704 is for storing executable program code, the program code including computer operating instructions.
  • Memory 704 may include high speed RAM memory and may also include non-volatile memory, such as at least one disk memory.
  • the processor 701 may be a central processing unit (CPU), or an application specific integrated circuit (ASIC), or one or more configured to implement the embodiments of the present invention. integrated circuit.
  • the receiver 702 is configured to receive a pilot signal sent by the base station and configuration information of the antenna, where the pilot signal is a pilot signal mapped by the first preset antenna in the antenna array, and the configuration information of the antenna includes the first preset antenna. Pattern information and pattern information of the second preset antenna.
  • the first preset antenna may be preset by the base station, or may be The terminal feeds back the setting information of the first preset antenna to the base station, or the base station sends the setting information of the first preset antenna to the terminal.
  • the antenna array is a dual-polarized antenna array
  • the first preset antenna satisfies: at least two antennas are not on the same line, at least two antennas are not in the same column, and at least two antennas are in different poles. In the direction.
  • at least two antennas are not on the same line, and can reflect the difference of the transmitted signals between the rows of the antenna; similarly, at least two antennas are not in the same column, and the antenna can be reflected between the columns.
  • the difference in signal at least two antennas have different polarization directions, which can reflect the difference of the transmitted signals between antennas with different polarization directions.
  • the channel state information of the second preset antenna can be obtained by performing the interpolation operation through the difference of the transmitted signals in the above three directions and combining the configuration information of the antenna.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and in the same column, and all the antenna pairs are in different rows and different columns.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the difference between the number of antennas in the two polarization directions cannot exceed 1, and all the antennas are in Different rows and different columns.
  • the first preset antenna further satisfies: the antennas are paired, and the paired antennas are all in the same row and the same column, and the antenna pairs in the same column are equally spaced, and each two adjacent antennas are included The columns of the same column are spaced apart, and the antenna pairs in each of the two adjacent columns containing the antenna are not on the same row; or, the antennas are paired, and the paired antennas are all in the same row and in the same row, in the same row The pairs of antennas are in the same column, and every two adjacent rows containing the antennas are equally spaced, and the antenna pairs in each of the two adjacent rows containing the antenna are not in the same column.
  • the first preset antenna further satisfies: an antenna having only one polarization direction in the same row and the same column, and the antennas in the same column are spaced apart by the same row and are alternately polarized or sequentially polarized.
  • Each of two adjacent columns containing the same spacing of the antennas, the antennas in each of the two adjacent columns containing the antenna are not on the same line; or, the antennas having only one polarization direction in the same row and the same column
  • the antennas in the same row are spaced apart by the same column and are alternately polarized or in the same polarization direction.
  • Each two adjacent rows containing the antenna are equally spaced, and each two adjacent rows containing the antenna The antennas in the are not in the same column.
  • the first preset antenna further satisfies: the antennas are respectively paired at four corners of the antenna array including the first preset antenna. Further optionally, the first preset antenna further satisfies: one antenna is disposed at each of four corners of the antenna array including the first preset antenna, and the number of antennas in two polarization directions is the same.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and one polarization direction antenna is in the same row of the row, and An antenna with one polarization direction is in the same row of the columns.
  • the first preset antenna is further satisfied: only two antennas are paired, and the paired antennas are all in the same row and the same column, and the antennas in one polarization direction are in the same row of the rows, in An antenna of any one of the one polarization direction antennas is equally spaced apart from the same row of antennas including another polarization direction; or, only two antennas are paired, and the paired antennas are all in the same row and in the same column An antenna having one polarization direction is in the same row of the columns, and any one of the antennas in the one polarization direction is equally spaced apart from the antenna of the other column including the other polarization direction.
  • the first preset antenna further satisfies: the antennas of one polarization direction are in the same row at the same row, and the columns of any one of the antennas in the one polarization direction are equally spaced apart.
  • Another polarization direction antenna; or, one polarization direction antenna is in the same row of the same row, and any one of the antennas in the one polarization direction is equally spaced apart from the same column including the other polarization Antenna in the direction.
  • the number and arrangement of the preset antennas in the dual-polarized antenna array may also be other modes.
  • the first predetermined antennas selected have different rows, columns, and polarization directions.
  • the scope of the invention when the antenna is a co-polarized antenna array, the first preset antenna satisfies: at least two antennas are not on the same line, and at least two antennas are not in the same column. At least two antennas are not on the same line, and the difference between the transmitted signals of the antennas between the lines can be obtained. Similarly, at least two antennas are not in the same column, and the difference of the transmitted signals between the columns can be reflected.
  • the second preset antenna can be obtained.
  • the first preset antenna also satisfies: Each antenna is in a different row and a different column. Further optionally, the first preset antenna further satisfies: the antennas in the same column are spaced apart by the same row, and each two adjacent columns including the antenna are equally spaced, and each of the two adjacent columns including the antenna The antennas are not on the same line; or, the antennas in the same row are spaced apart by the same column, and every two adjacent rows including the antenna are equally spaced, and the antennas in each of the two adjacent rows including the antenna are not On the same column.
  • the first preset antenna further satisfies: one antenna at each of four corners of the antenna array including the first preset antenna. Further, the first preset antenna is further satisfied: the first preset antenna further satisfies: the antennas are spaced apart in the same column on one row, and the equally spaced rows of the columns in which any one of the rows is located are included antenna.
  • the number and arrangement of the antennas in the above-mentioned co-polarized antenna array may also be other manners. It is within the scope of the present invention that the first predetermined antennas have different rows and columns. The first preset antenna is in the same antenna array as the second preset antenna, and the first preset antenna is different from the second preset antenna.
  • the terminal can obtain a positional relationship between the first preset antenna and the second preset antenna according to the configuration information, and according to the positional relationship, the channel state information of the second preset antenna can be obtained by performing an interpolation operation.
  • the configuration information of the antenna received by the receiver 702 includes: the first preset antenna is in the second pre The pattern information in the antenna.
  • the configuration information of the antenna received by the receiver 702 includes: the first preset antenna is in the antenna array Pattern information in ;
  • Pattern information of the second predetermined antenna in the antenna array Further, the configuration information of the antenna received by the receiver 702 further includes at least one of: a spacing between the antennas, and a correlation coefficient between the antennas.
  • the configuration information carries the spacing between the antennas or the correlation coefficient between the antennas, so that the terminal can obtain the channel state information of the second preset antenna more accurately.
  • the processor 701 is configured to calculate channel state information of the second preset antenna according to the pilot signal received by the receiver 702 and the configuration information of the antenna.
  • the processor 701 is configured to: obtain, from the pilot signal, a channel matrix corresponding to the first preset antenna; and obtain, between the first preset antenna and the second preset antenna, the configuration information of the antenna. a positional relationship; performing interpolation calculation according to a channel matrix corresponding to the first preset antenna and a positional relationship between the first preset antenna and the second preset antenna, to obtain channel state information of the second preset antenna .
  • the channel state information of the antenna includes rank information of the antenna, a pre-coded matrix indication, and a channel quality indicator.
  • the transmitter 703 is configured to send channel state information of the second preset antenna to the base station.
  • the transmitter 703 is specifically configured to send the rank information, the pre-matrix matrix indication, and the channel quality indicator of the second preset antenna to the base station.
  • the transmitter 703 is configured to send the rank information, the pre-matrix matrix indication, and the channel quality indicator of the second preset antenna to the base station, and pre-program the rank information of the first preset antenna.
  • the matrix indication and channel quality indication are sent to the base station. In this way, the channel state information of the first preset antenna can be accurately obtained.
  • the transmitter 703 is specifically configured to: use the second preset antenna rank information, the first preset antenna, and the second preset antenna, the pre-arranged matrix indication differential codebook structure and the second The channel quality indicator of the preset antenna is sent to the base station, and the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna are sent to the base station; Or the transmitter 703 is specifically configured to: use the second preset antenna rank information, the second preset antenna pre-matrix indication, and the first preset antenna and the second preset antenna differential channel.
  • the quality indicator is sent to the base station, and the rank information, the pre-matrix matrix indication, and the channel quality indicator of the first preset antenna are sent to the base station; or the transmitter 703 is specifically configured to use the rank of the second preset antenna.
  • Information, the differential preset code structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna, and the differential channel quality indication of the first preset antenna and the second preset antenna are sent to the base station, and The rank information of the first preset antenna, the pre-coded matrix indication, and the channel quality indication are transmitted to the base station.
  • the base station can obtain the pre-matrix matrix indication of the second preset antenna by using the differential codebook structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna. Similarly, the base station passes the foregoing first
  • the differential channel quality indication of the preset antenna and the second preset antenna can obtain a channel quality indication of the second preset antenna.
  • the differential codebook structure indicated by the pre-matrix matrix of the first preset antenna and the second preset antenna and the differential channel quality indication of the first preset antenna and the second preset antenna occupy relatively less resources. This can reduce the pilot overhead.
  • the terminal receiving base station selects a first preset antenna mapped to the pilot signal in the antenna array, and simultaneously receives configuration information of the antenna, and acquires a second preset according to the pilot signal and the configuration information of the antenna. Channel state information of the antenna, and feeding back channel state information of the second preset antenna to the base station. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing the pilot overhead.
  • the embodiment of the present invention provides a communication system 800 for implementing channel information acquisition. Referring to FIG. 25, the method includes: a base station 801 and a terminal 802 capable of communicating with each other, and the base station 801 is implemented corresponding to FIG. 21 or FIG.
  • the terminal 802 is any of the terminals described in the embodiment corresponding to FIG. 22 or FIG. 24, and therefore the structures of the base station 801 and the terminal 802 are not described herein again.
  • the base station selects a part of the antenna in the antenna array to map to the pilot signal, and receives configuration information of the antenna and pattern information of the antenna array through the terminal, and the terminal acquires the channel of the antenna array from the received information. status information. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, which reduces Pilot overhead.
  • the base station selects a first preset antenna in the antenna array to map to the pilot signal, and sends the pilot signal and configuration information of the antenna to the terminal, and the terminal according to the pilot signal and the
  • the configuration information of the antenna acquires channel state information of the second preset antenna, and feeds back channel state information of the second preset antenna to the base station. In this way, the base station is prevented from mapping all the antennas in the antenna array to the pilot signals, reducing pilot overhead.

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Abstract

本发明的实施例提供一种获取信道信息方法、装置及系统,涉及通信领域,能够在获取信道状态信息的过程中减少导频信号的开销。具体方案为:基站在天线阵列中选取第一预设的天线映射至导频信号,将所述导频信号和天线的配置信息发送至终端,所述终端根据所述导频信号和所述天线的配置信息计算得到第二预设的天线的信道状态信息。本发明具体用于信道状态信息的获取。

Description

一种信道信息获取的方法、 装置及系统 技术领域 本发明涉及通信领域, 尤其涉及一种信道信息获取的方法、 装 置及系统。
背景技术
在 LTE (长期演进, Long Term Evolution,简称 LTE)+标准子组 第 34届会议上提出, 为了进一步提高小区用户总吞吐率和平均吞 吐率, 需要专门研究 4G系统的先进无线接口技术(Advanced Radio Interface Technologies for 4G SysTems , 简称 ARTIST4G )。 其中, 动态三维 (Three Dimensions , 简称 3D ) 波束赋形技术、 3D多天线 技术是提高小区边缘用户吞吐率、小区用户总吞吐率和平均吞吐率 的关键技术, 引起了业界的重视。
现有有源天线系统可以进行 3D 波束赋形, 参照图 1 所示(交 叉排列的天线为双极化天线 (有两个极化方向, 正负 45度), 并列 排列的天线为同极化天线 (只有一个极化方向 ) :), 有源天线系统 其中一种形式是二维 ( Two Dimensions , 简称 2D ) 的平面的天线 阵列, 该天线阵列同时具有水平维度和垂直维度, 通过发送导频信 号, 基站获得终端反馈的 2D天线阵列的信道状态信息, 从而使得 波束在 3D空间中对准目标用户, 更大地提高接收信号功率, 提高 信干噪比, 进而提升整个系统的吞吐量。 在实现上述 3D波束赋形技术的过程中, 发明人发现由于现有 技术中, 由于天线阵列提供的天线数量比较多, 会导致导频信号的 开销增加。
发明内容 本发明的实施例提供一种信道信息获取的方法、 装置及系统, 能够在降低导频信号开销。 为达到上述目的, 本发明的实施例釆用如下技术方案: 第一方面, 提供一种信道信息获取的方法, 包括: 基站将天线阵列中第一预设的天线映射至导频信号; 将所述导频信号和所述天线的配置信息发送至终端,所述天线 的配置信息包括所述第一预设的天线的图案信息和第二预设的天 线的图案信息; 接收所述终端反馈的所述第二预设的天线的信道状态信息; 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 结合第一方面, 在第一种可能的实现方式中, 当所述天线阵列 为双极化天线阵列时, 其中, 所述第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上, 至少有两根天线在不同的极化方向上。 结合第一方面的第一种可能的实现方式,在第二种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。 结合第一方面的第一种可能的实现方式,在第三种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。 结合第一方面的第一种可能的实现方式,在第四种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列,每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。 结合第一方面的第一种可能的实现方式,在第五种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的,每两个 相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线 的行中的天线都不在同一列上。 结合第一方面的第一种可能的实现方式,在第六种可能的实现 方式中, 所述第一预设的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
结合第一方面的第一种可能的实现方式,在第七种可能的实现 方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线且两个极化方向上的天线的数量相同。 结合第一方面的第一种可能的实现方式,在第八种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,另一个极化方向的天线在 所述列间隔相同的行。 结合第一方面的第一种可能的实现方式,在第九种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 或者,只有两根天线成对,且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行,在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向 的天线。 结合第一方面的第一种可能的实现方式,在第十种可能的实现 方式中, 所述第一预设的天线还满足: 一个极化方向的天线在同一行间隔相同的列,在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化 方向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一 个极化方向的天线。 结合第一方面, 在第十一种可能的实现方式中, 当所述天线阵 列为同极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上。 结合第一方面的第十一种可能的实现方式,在第十二种可能的 实现方式中, 所述第一预设的天线还满足: 每一根天线都在不同的行和不同的列。 结合第一方面的第十一种可能的实现方式,在第十三种可能的 实现方式中, 所述第一预设的天线还满足: 在同一列中的天线间隔相同行,每两个相邻的包括天线的列间 隔相同的列, 每两个相邻的包括天线的列中的天线都不在同一行 上;
或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行,每两个相邻的包括天线的行中的天线都不在同 一列上。 结合第一方面的第十一种可能的实现方式,在第十四种可能的 实现方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。 结合第一方面的第十一种可能的实现方式,在第十五种可能的 实现方式中, 所述第一预设的天线还满足: 天线在一个行上间隔相同的列,在所述行的任意一根天线所在 的列等间隔行的包括天线。 结合第一方面及第一方面的第一种到第十五种可能的实现方 式, 在第十六种可能的实现方式中, 当所述第二预设的天线包含所 述第一预设的天线时, 所述天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 结合第一方面及第一方面的第一种到第十五种可能的实现方 式, 在第十七种可能的实现方式中, 当所述第二预设的天线不包含 所述第一预设的天线, 所述天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 结合第一方面或第一方面的任一种可能的实现方式,在第十八 种可能的实现方式中, 所述天线的配置信息至少包括以下一项: 天线间的间距、 天线间的相关系数。
第二方面, 提供一种获取信道信息获取的方法, 包括: 终端获取基站发送的导频信号和所述天线的配置信息,所述导 频信号为天线阵列中第一预设的天线映射的导频信号,所述天线的 配置信息包括所述第一预设的天线的图案信息和第二预设的天线 的图案信息;
所述终端根据所述导频信号和所述天线的配置信, ¾计算得到 所述第二预设的天线的信道状态信息; 所述终端将所述第二预设的天线的信道状态信息发送至所述 基站;
其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 结合第二方面, 在第一种可能的实现方式中, 当所述天线阵列 为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上, 至少有两根天线在不同的极化方向上。
结合第二方面的第一种可能的实现方式,在第二种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。
结合第二方面的第一种可能的实现方式,在第三种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
结合第二方面的第一种可能的实现方式,在第四种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列,每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。
结合第二方面的第一种可能的实现方式,在第五种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的,每两个 相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线 的行中的天线都不在同一列上。
结合第二方面的第一种可能的实现方式,在第六种可能的实现 方式中, 所述第一预设的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
结合第二方面的第一种可能的实现方式,在第七种可能的实现 方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线且两个极化方向上的天线的数量相同。
结合第二方面的第一种可能的实现方式,在第八种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,另一个极化方向的天线在 所述列间隔相同的行。
结合第二方面的第一种可能的实现方式,在第九种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者,只有两根天线成对,且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行,在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向 的天线。 结合第二方面的第一种可能的实现方式,在第十种可能的实现 方式中, 所述第一预设的天线还满足: 一个极化方向的天线在同一行间隔相同的列,在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化 方向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一 个极化方向的天线。
结合第二方面, 在第十一种可能的实现方式中, 当所述第一天 线阵列为同极化天线阵列时, 其中, 所述预设数量的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上。
结合第二方面的第十一种可能的实现方式,在第十二种可能的 实现方式中, 所述第一预设的天线还满足:
每一根天线都在不同的行和不同的列。
结合第二方面的第十一种可能的实现方式,在第十三种可能的 实现方式中, 所述第一预设的天线还满足: 在同一列中的天线间隔相同行,每两个相邻的包括天线的列间 隔相同的列, 每两个相邻的包括天线的列中的天线都不在同一行 上;
或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行,每两个相邻的包括天线的行中的天线都不在同 一列上。
结合第二方面的第十一种可能的实现方式,在第十四种可能的 实现方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
结合第二方面的第十一种可能的实现方式,在第十六种可能的 实现方式中, 所述第一预设的天线还满足: 天线在一个行上间隔相同的列,在所述行的任意一根天线所在 的列等间隔行的包括天线。
结合第二方面或第二方面的第一种到第十六种任一种可能的 实现方式, 在第十七种可能的实现方式中, 其特征在于, 当所述第 二预设的天线包含所述第一预设的天线时,所述天线的配置信息包 括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 结合第二方面或第二方面的第一种到第十六种任意一种可能 的实现方式, 在第十八种可能的实现方式中, 当所述第二预设的天 线不包含所述第一预设的天线, 所述天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 结合第二方面或第二方面的第一种到第十八种任一种可能的 实现方式, 在第十九种可能的实现方式中, 所述天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。
结合第二方面或第二方面的第一种到第十九种任一种可能的 实现方式, 在第二十种可能的实现方式中, 所述终端根据所述导频 信号和所述天线的配置信息计算所述天线阵列的信道状态信息包 括:
从所述导频信号中获取第一预设的天线对应的信道矩阵; 从所述天线的配置信息中获取第一预设的天线与第二预设的 天线之间的位置关系; 根据所述第一预设的天线对应的信道矩阵和所述第一预设的 天线与第二预设的天线之间的位置关系进行插值运算,得到第二预 设的天线的信道状态信息。
结合第二方面或第二方面的第一种到第二十种任一种可能的 实现方式, 在第二十一种可能的实现方式中, 所述将所述第二预设 的天线的信道状态信息发送至所述基站具体包括: 将所述第二预设的天线的秩信息、预编矩阵指示和信道质量指 示发送至基站。
结合第二方面或第二方面的第一种到第二十种任一种可能的 实现方式, 在第二十二种可能的实现方式中, 所述将所述第二预设 的天线的信道状态信息发送至所述基站具体包括: 将所述第二预设的天线的秩信息、预编矩阵指示和信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站。
结合第二方面或第二方面的第一种到第二十种任一种可能的 实现方式, 在第二十三种可能的实现方式中, 所述将所述第二预设 的天线的信道状态信息发送至所述基站具体包括: 将所述第二预设的天线的秩信息,第一预设的天线和第二预设 的天线的预编矩阵指示的差分码本结构和第二预设的天线的信道 质量指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指 示和信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第二预设的天线的预 编矩阵指示和第一预设的天线和第二预设的天线的差分信道质量 指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和 信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第一预设的天线和第 二预设的天线的预编矩阵指示的差分码本结构和第一预设的天线 和第二预设的天线的差分信道质量指示发送至基站,并将第一预设 的天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。 第三方面, 提供一种基站, 包括: 映射单元, 用于将天线阵列中第一预设的天线映射至导频信 号;
发送单元,用于将所述映射单元映射的导频信号和所述天线的 配置信息发送至终端, 所述天线的配置信息包括所述第一预设的 天线的图案信息和第二预设的天线的图案信息; 接收单元,用于接收所述终端反馈的所述第二预设的天线的信 道状态信息; 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 结合第三方面, 在第一种可能的实现方式中, 当所述天线阵列 为双极化天线阵列时, 所述映射单元第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上, 至少有两根天线在不同的极化方向上。
结合第三方面的第一种可能的实现方式,在第二种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。 结合第三方面的第一种可能的实现方式,在第三种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
结合第三方面的第一种可能的实现方式,在第四种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列,每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。 结合第三方面的第一种可能的实现方式,在第五种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的,每两个 相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线 的行中的天线都不在同一列上。
结合第三方面的第一种可能的实现方式,在第六种可能的实现 方式中, 所述第一预设的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
结合第三方面的第一种可能的实现方式,在第七种可能的实现 方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线且两个极化方向上的天线的数量相同。 结合第三方面的第一种可能的实现方式,在第八种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,另一个极化方向的天线在 所述列间隔相同的行。
结合第三方面的第一种可能的实现方式,在第九种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者,只有两根天线成对,且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行,在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向 的天线。
结合第三方面的第一种可能的实现方式,在第十种可能的实现 方式中, 所述第一预设的天线还满足: 一个极化方向的天线在同一行间隔相同的列,在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化 方向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一 个极化方向的天线。 结合第三方面, 在第十一种可能的实现方式中, 当所述天线阵 列为同极化天线阵列时, 当所述第一天线阵列为同极化天线阵列 时, 其中, 所述预设数量的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上。
结合第三方面的第十一种可能的实现方式,在第十二种可能的 实现方式中, 所述第一预设的天线还满足: 每一根天线都在不同的行和不同的列。
结合第三方面的第十一种可能的实现方式,在第十三种可能的 实现方式中, 所述第一预设的天线还满足: 在同一列中的天线间隔相同行,每两个相邻的包括天线的列间 隔相同的列, 每两个相邻的包括天线的列中的天线都不在同一行 上;
或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行,每两个相邻的包括天线的行中的天线都不在同 一列上。
结合第三方面的第十一种可能的实现方式,在第十四种可能的 实现方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
结合第三方面的第十一种可能的实现方式,在第十五种可能的 实现方式中, 所述第一预设的天线还满足:
天线在一个行上间隔相同的列,在所述行的任意一根天线所在 的列等间隔行的包括天线。
结合第三方面及第三方面的第一种到第十五种可能的实现方 式, 在第十六种可能的实现方式中, 当所述第二预设的天线包含所 述第一预设的天线时, 所述发送单元发送的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 结合第三方面及第三方面的第一种到第十五种可能的实现方 式, 在第十七种可能的实现方式中, 当所述第二预设的天线不包含 所述第一预设的天线, 所述发送单元发送的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 结合第三方面或第三方面的任一种可能的实现方式,在第十八 种可能的实现方式中, 所述发送单元发送的天线的配置信息, 还包 括至少以下一项: 天线间的间距、 天线间的相关系数。 第四方面, 提供一种终端, 其特征在于, 包括: 接收单元,用于接收基站发送的导频信号和所述天线的配置信 息, 所述导频信号为天线阵列中第一预设的天线映射的导频信号, 所述天线的配置信息包括所述第一预设的天线的图案信息和第二 预设的天线的图案信息; 获取单元,用于根据所述接收单元接收的导频信号和所述天线 的配置信息计算得到所述第二预设的天线的信道状态信息; 发送单元,用于将所述获取单元获取的第二预设的天线的信道 状态信息发送至所述基站; 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 结合第四方面, 在第一种可能的实现方式中, 当所述天线阵列 为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上, 至少有两根天线在不同的极化方向上。 结合第四方面的第一种可能的实现方式,在第二种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。 结合第四方面的第一种可能的实现方式,在第三种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。 结合第四方面的第一种可能的实现方式,在第四种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列,每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。 结合第四方面的第一种可能的实现方式,在第五种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的,每两个 相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线 的行中的天线都不在同一列上。 结合第四方面的第一种可能的实现方式,在第六种可能的实现 方式中, 所述第一预设的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
结合第四方面的第一种可能的实现方式,在第七种可能的实现 方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线且两个极化方向上的天线的数量相同。 结合第四方面的第一种可能的实现方式,在第八种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,另一个极化方向的天线在 所述列间隔相同的行。 结合第四方面的第一种可能的实现方式,在第九种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者,只有两根天线成对,且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行,在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向 的天线。 结合第四方面的第一种可能的实现方式,在第十种可能的实现 方式中, 所述第一预设的天线还满足: 一个极化方向的天线在同一行间隔相同的列,在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化 方向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一 个极化方向的天线。 结合第四方面, 在第十一种可能的实现方式中, 当所述第一天 线阵列为同极化天线阵列时, 其中, 所述预设数量的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上。 结合第四方面的第十一种可能的实现方式,在第十二种可能的 实现方式中, 所述第一预设的天线还满足: 每一根天线都在不同的行和不同的列。 结合第四方面的第十一种可能的实现方式,在第十三种可能的 实现方式中, 所述第一预设的天线还满足: 在同一列中的天线间隔相同行,每两个相邻的包括天线的列间 隔相同的列, 每两个相邻的包括天线的列中的天线都不在同一行 上;
或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行,每两个相邻的包括天线的行中的天线都不在同 一列上。 结合第四方面的第十一种可能的实现方式,在第十四种可能的 实现方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。 结合第四方面的第十一种可能的实现方式,在第十六种可能的 实现方式中, 所述第一预设的天线还满足: 天线在一个行上间隔相同的列,在所述行的任意一根天线所在 的列等间隔行的包括天线。 结合第四方面或第四方面的第一种到第十六种任一种可能的 实现方式, 在第十七种可能的实现方式中, 当所述第二预设的天线 包含所述第一预设的天线时,所述接收单元接收的天线的配置信息 包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 结合第四方面或第四方面的第一种到第十六种任意一种可能 的实现方式, 在第十八种可能的实现方式中, 当所述第二预设的天 线不包含所述第一预设的天线,所述接收单元接收的天线的配置信 息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 结合第四方面或第四方面的第一种到第十八种任一种可能的 实现方式, 在第十九种可能的实现方式中, 所述接收单元接收的天 线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。 结合第四方面或第四方面的第一种到第十九种任一种可能的 实现方式, 在第二十种可能的实现方式中, 所述获取单元, 包括: 第一获取子单元,用于从所述导频信号中获取第一预设的天线 对应的信道矩阵; 第二获取子单元,用于从所述天线的配置信息中获取第一预设 的天线与第二预设的天线之间的位置关系; 运算子单元,用于根据所述第一获取子单元获取的第一预设的 天线对应的信道矩阵和所述第二获取子单元获取的第一预设的天 线与第二预设的天线之间的位置关系进行插值运算,得到第二预设 的天线的信道状态信息。 结合第四方面或第四方面的第一种到第二十种任一种可能的 实现方式, 在第二十一种可能的实现方式中, 所述发送单元具体用 于:
将所述第二预设的天线的秩信息、预编矩阵指示和信道质量指 示发送至基站。 结合第四方面或第四方面的第一种到第二十种任一种可能的 实现方式, 在第二十二种可能的实现方式中, 所述发送单元具体用 于:
将所述第二预设的天线的秩信息、预编矩阵指示和信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站。 结合第四方面或第四方面的第一种到第二十种任一种可能的 实现方式, 在第二十三种可能的实现方式中, 所述发送单元具体用 于:
将所述第二预设的天线的秩信息,第一预设的天线和第二预设 的天线的预编矩阵指示的差分码本结构和第二预设的天线的信道 质量指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指 示和信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第二预设的天线的预 编矩阵指示和第一预设的天线和第二预设的天线的差分信道质量 指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和 信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第一预设的天线和第 二预设的天线的预编矩阵指示的差分码本结构和第一预设的天线 和第二预设的天线的差分信道质量指示发送至基站,并将第一预设 的天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。 第五方面, 提供一种基站, 包括: 处理器、 接收器、 发送器、 存 储器和总线, 其中所述处理器、 接收器、 发送器、 存储器通过所述总线 连接, 所述存储器用于存储所述处理器处理的数据; 所述处理器,用于将天线阵列中第一预设的天线映射至导频信 号; 所述发送器,用于将所述导频信号和所述天线的配置信息发送 至终端, 所述天线的配置信息包括所述第一预设的天线的图案信 息和第二预设的天线的图案信息; 所述接收器,用于接收所述终端反馈的所述第二预设的天线的 信道状态信息; 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 结合第五方面, 在第一种可能的实现方式中, 当所述天线阵列 为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上, 至少有两根天线在不同的极化方向上。 结合第五方面的第一种可能的实现方式,在第二种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。 结合第五方面的第一种可能的实现方式,在第三种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。 结合第五方面的第一种可能的实现方式,在第四种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列,每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。 结合第五方面的第一种可能的实现方式,在第五种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的,每两个 相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线 的行中的天线都不在同一列上。 结合第五方面的第一种可能的实现方式,在第六种可能的实现 方式中, 所述第一预设的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
结合第五方面的第一种可能的实现方式,在第七种可能的实现 方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线且两个极化方向上的天线的数量相同。 结合第五方面的第一种可能的实现方式,在第八种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,另一个极化方向的天线在 所述列间隔相同的行。 结合第五方面的第一种可能的实现方式,在第九种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线; 或者,只有两根天线成对,且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行,在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向 的天线。 结合第五方面的第一种可能的实现方式,在第十种可能的实现 方式中, 所述第一预设的天线还满足: 一个极化方向的天线在同一行间隔相同的列,在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化 方向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一 个极化方向的天线。 结合第五方面, 在第十一种可能的实现方式中, 当所述天线阵 列为同极化天线阵列时, 当所述第一天线阵列为同极化天线阵列 时, 其中, 所述预设数量的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上。 结合第五方面的第十一种可能的实现方式,在第十二种可能的 实现方式中, 所述第一预设的天线还满足: 每一根天线都在不同的行和不同的列。 结合第五方面的第十一种可能的实现方式,在第十三种可能的 实现方式中, 所述第一预设的天线还满足: 在同一列中的天线间隔相同行,每两个相邻的包括天线的列间 隔相同的列, 每两个相邻的包括天线的列中的天线都不在同一行 上;
或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行,每两个相邻的包括天线的行中的天线都不在同 一列上。 结合第五方面的第十一种可能的实现方式,在第十四种可能的 实现方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。 结合第五方面的第十一种可能的实现方式,在第十五种可能的 实现方式中, 所述第一预设的天线还满足:
天线在一个行上间隔相同的列,在所述行的任意一根天线所在 的列等间隔行的包括天线。 结合第五方面及第五方面的第一种到第十五种可能的实现方 式, 在第十六种可能的实现方式中, 当所述第二预设的天线包含所 述第一预设的天线时, 所述发送器发送的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 结合第五方面及第五方面的第一种到第十五种可能的实现方 式, 在第十七种可能的实现方式中, 当所述第二预设的天线不包含 所述第一预设的天线, 所述发送器发送的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 结合第五方面或第五方面的任一种可能的实现方式,在第十八 种可能的实现方式中, 其特征在于, 所述发送器发送的天线的配置 信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。 第六方面, 提供一种终端, 包括: 处理器、 接收器、 发送器、 存 储器和总线, 其中所述处理器、 接收器、 发送器、 存储器通过所述总线 连接, 所述存储器用于存储所述处理器处理的数据; 所述接收器,用于接收基站发送的导频信号和所述天线的配置 信息, 所述导频信号为天线阵列中第一预设的天线映射的导频信 号,所述天线的配置信息包括所述第一预设的天线的图案信息和第 二预设的天线的图案信息;
所述处理器,用于根据所述导频信号和所述天线的配置信息计 算得到所述第二预设的天线的信道状态信息; 所述发送器,用于将所述第二预设的天线的信道状态信息发送 至所述基站; 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 结合第六方面, 在第一种可能的实现方式中, 当所述天线阵列 为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上, 至少有两根天线在不同的极化方向上。 结合第六方面的第一种可能的实现方式,在第二种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。 结合第六方面的第一种可能的实现方式,在第三种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。 结合第六方面的第一种可能的实现方式,在第四种可能的实现 方式中, 所述第一预设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列,每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。 结合第六方面的第一种可能的实现方式,在第五种可能的实现 方式中, 所述第一预设的天线还满足: 在同一行和同一列只有一个极化方向的天线,在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的,每两个 相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线 的行中的天线都不在同一列上。 结合第六方面的第一种可能的实现方式,在第六种可能的实现 方式中, 所述第一预设的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
结合第六方面的第一种可能的实现方式,在第七种可能的实现 方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线且两个极化方向上的天线的数量相同。 结合第六方面的第一种可能的实现方式,在第八种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,另一个极化方向的天线在 所述列间隔相同的行。 结合第六方面的第一种可能的实现方式,在第九种可能的实现 方式中, 所述第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列,在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者,只有两根天线成对,且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行,在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向 的天线。 结合第六方面的第一种可能的实现方式,在第十种可能的实现 方式中, 所述第一预设的天线还满足: 一个极化方向的天线在同一行间隔相同的列,在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化 方向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一 个极化方向的天线。 结合第六方面, 在第十一种可能的实现方式中, 当所述第一天 线阵列为同极化天线阵列时, 其中, 所述预设数量的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列 上。 结合第六方面的第十一种可能的实现方式,在第十二种可能的 实现方式中, 所述第一预设的天线还满足: 每一根天线都在不同的行和不同的列。 结合第六方面的第十一种可能的实现方式,在第十三种可能的 实现方式中, 所述第一预设的天线还满足: 在同一列中的天线间隔相同行,每两个相邻的包括天线的列间 隔相同的列, 每两个相邻的包括天线的列中的天线都不在同一行 上;
或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行,每两个相邻的包括天线的行中的天线都不在同 一列上。 结合第六方面的第十一种可能的实现方式,在第十四种可能的 实现方式中, 所述第一预设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。 结合第六方面的第十一种可能的实现方式,在第十六种可能的 实现方式中, 所述第一预设的天线还满足: 天线在一个行上间隔相同的列,在所述行的任意一根天线所在 的列等间隔行的包括天线。 结合第六方面或第六方面的第一种到第十六种任一种可能的 实现方式, 在第十七种可能的实现方式中, 当所述第二预设的天线 包含所述第一预设的天线时,所述接收器接收的天线的配置信息包 括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 结合第六方面或第六方面的第一种到第十六种任意一种可能 的实现方式, 在第十八种可能的实现方式中, 当所述第二预设的天 线不包含所述第一预设的天线,所述接收器接收的天线的配置信息 包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 结合第六方面或第六方面的第一种到第十八种任一种可能的 实现方式, 在第十九种可能的实现方式中, 所述接收器接收的天线 的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。 结合第六方面或第六方面的第一种到第十九种任一种可能的 实现方式, 在第二十种可能的实现方式中, 所述处理器具体用于: 从所述导频信号中获取第一预设的天线对应的信道矩阵; 从所述天线的配置信息中获取第一预设的天线与第二预设的 天线之间的位置关系; 根据所述第一预设的天线对应的信道矩阵和所述第一预设的 天线与第二预设的天线之间的位置关系进行插值运算,得到第二预 设的天线的信道状态信息。 结合第六方面或第六方面的第一种到第二十种任一种可能的 实现方式,在第二十一种可能的实现方式中,所述发送器具体用于: 将所述第二预设的天线的秩信息、预编矩阵指示和信道质量指 示发送至基站。 结合第六方面或第六方面的第一种到第二十种任一种可能的 实现方式, 在第二十二种可能的实现方式中, 所述将所述第二预设 的天线的信道状态信息发送至所述发送器具体用于: 将所述第二预设的天线的秩信息、预编矩阵指示和信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站。 结合第六方面或第六方面的第一种到第二十种任一种可能的 实现方式, 在第二十三种可能的实现方式中, 所述将所述第二预设 的天线的信道状态信息发送至所述发送器具体用于: 将所述第二预设的天线的秩信息,第一预设的天线和第二预设 的天线的预编矩阵指示的差分码本结构和第二预设的天线的信道 质量指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指 示和信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第二预设的天线的预 编矩阵指示和第一预设的天线和第二预设的天线的差分信道质量 指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和 信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第一预设的天线和第 二预设的天线的预编矩阵指示的差分码本结构和第一预设的天线 和第二预设的天线的差分信道质量指示发送至基站,并将第一预设 的天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。 第七方面,提供一种通信系统, 包括: 相互通信的终端和基站, 所述基站为第三方面任一项所述的基站,所述终端为第四方面任一 项所述的终端; 或者, 所述基站为第五方面任一项所述的基站, 所述终端为第 六方面任一项所述的终端。 通过上述信道信息获取的方案,基站在天线阵列中选取第一预 设的天线映射至导频信号,并将该导频信号和该天线的配置信息发 送至所述终端,该终端根据该导频信号和该天线的配置信息获取第 二预设的天线的信道状态信息,并向基站反馈第二预设的天线的信 道状态信息。 这样, 避免了基站将天线阵列中的全部天线映射至导 频信号, 减少了导频开销。
附图说明 为了更清楚地说明本发明实施例和现有技术中的技术方案,下 面将对实施例和现有技术描述中所需要使用的附图作简单地介绍。 图 1为现有技术提供的天线阵列示意图;
图 2 为本发明的实施例提供的一种信道信息获取的方法的流 程示意图; 图 3 为本发明的实施例提供的一种天线阵列映射方法的示意 图;
图 4 为本发明的另一实施例提供的一种信道信息获取的方法 的流程示意图; 图 5 为本发明的又一实施例提供的一种信道信息获取的方法 的流程示意图;
图 7为本发明的实施例提供的另一种天线选取方法的示意图; 图 8为本发明的实施例提供的又一种天线选取方法的示意图; 图 9为本发明的实施例提供的再一种天线选取方法的示意图; 图 10 为本发明的实施例提供的另一种天线选取方法的示意 图;
图 1 1 为本发明的实施例提供的又一种天线选取方法的示意 图;
图 12 为本发明的实施例提供的再一种天线选取方法的示意 图;
图 13 为本发明的实施例提供的另一种天线选取方法的示意 图;
图 14 为本发明的实施例提供的又一种天线选取方法的示意 图;
图 15 为本发明的实施例提供的再一种天线选取方法的示意 图;
图 16 为本发明的实施例提供的另一种天线选取方法的示意 图;
图 17 为本发明的实施例提供的又一种天线选取方法的示意 图;
图 18 为本发明的实施例提供的再一种天线选取方法的示意 图;
图 19 为本发明的实施例提供的另一种天线选取方法的示意 图;
图 20 为本发明的实施例提供的又一种天线选取方法的示意 图;
图 21 为本发明的实施例提供的一种基站的结构示意图; 图 22为本发明的实施例提供的一种终端的结构示意图; 图 23为本发明的另一实施例提供的一种基站的结构示意图; 图 24为本发明的另一实施例提供的一种终端的结构示意图; 图 25为本发明的实施例提供的一种信道信息获取系统的示意 图。
具体实施方式 下面将结合本发明实施例中的附图,对本发明实施例中的技术 方案进行清楚、 完整地描述, 显然, 所描述的实施例仅仅是本发明 一部分实施例, 而不是全部的实施例。 基于本发明中的实施例, 本 领域普通技术人员在没有作出创造性劳动前提下所获得的所有其 他实施例, 都属于本发明保护的范围。 本发明的实施例提供一种基站的信道信息的获取方法,参照图
2所示, 包括以下步骤:
101、 基站将天线阵列中第一预设的天线映射至导频信号。 其中, 第一预设的天线的可以是基站预先设定好的, 也可以是 终端将第一预设的天线的设置信息反馈至基站,或者是基站将第一 预设的天线的设置信息发送至终端。 其中,第一预设的天线小于天线阵列中全部天线或者第二预设 数量的天线的数量。将预设数量的天线映射至导频信号需要通过物 理资源块 2来进行映射。 参照图 3所示, 图 3 中的天线阵列为双极 化天线阵列, 一共有 32根天线 ( L 1 ,L2 , ... ... , L32 ) ; 图 3 中的物 理资源块 2能够被划分成多个物理资源单元,其中每个天线的信息 可以被映射至相应的物理资源单元, 图 3 中各个物理资源单元上的 标号代表对应的天线; 这些物理资源单元能够实现天线映射, 也能 够实现数据传输。 当基站进行天线映射至导频信号时, 如果选取天 线阵列中的全部天线, 会占用大量的物理资源单元, 这样进行数据 传输的物理资源单元数量变少, 导致基站的数据传输性能降低。 本 发明的实施例通过选取天线阵列中的部分天线进行映射, 占用相对 较少的物理资源单元, 减少了对基站的数据传输性能的影响。 其中,当天线阵列为双极化天线阵列时,第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上, 至 少有两根天线在不同的极化方向上。 其中, 至少有两根天线不在同 一行上,可以反应天线在行之间的之间的发射信号的差别; 同样的, 至少有两根天线不在同一列上,可以反应天线在列之间的发射信号 的差别; 至少有两根天线不同的极化方向上, 可以反映不同极化方 向的天线之间的发射信号的差别。 可选的, 当天线为同极化天线阵列时, 第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上。 其 中, 至少有两根天线不在同一行上, 可以天线在行之间的发射信号 的差别; 同样的, 至少有两根天线不在同一列上, 可以反应天线在 列之间的发射信号的差别。
102、 基站将导频信号和天线的配置信息发送至终端, 所述天 线的配置信息包括所述第一预设的天线的图案信息和第二预设的 天线的图案信息。
其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 终端根据配置信息可以得到第一预设的天线和第二预设的天 线之间的位置关系,根据该位置关系能够进行插值运算得到第二预 设的天线的信道状态信息。 具体的, 当所述第二预设的天线包含所述第一预设的天线时, 所述天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 可选的, 当所述第二预设的天线不包含所述第一预设的天线, 所述天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 进一步的, 所述天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。 其中,配置信息中携带天线间的间距或天线间的相关系数可以 以便终端更精确的得到第二预设的天线的信道状态信息。
103、 基站接收终端反馈的第二预设的天线的信道状态信息。 基站根据接收到的第二预设的天线的信道状态信息,能够给终 端配置相应的发射天线。 上述实施例中,基站在天线阵列中选取第一预设的天线映射至 导频信号, 并将该导频信号和该天线的配置信息发送至所述终端, 该终端根据该导频信号和该天线的配置信息获取第二预设的天线 的信道状态信息, 并向基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天线阵列中的全部天线映射至导频信号, 减少 了导频开销。 本发明的实施例提供一种终端的信道信息的获取方法,参照图
4所示, 包括以下步骤:
201、 终端获取基站发送的导频信号和天线的配置信息, 导频 信号为天线阵列中第一预设的天线映射的导频信号,天线的配置信 息包括第一预设的天线的图案信息和第二预设的天线的图案信息。 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 终端根据配置信息可以得到第一预设的天线和第二预设的天 线之间的位置关系,根据该位置关系能够进行插值运算得到第二预 设的天线的信道状态信息。 具体的, 当所述第二预设的天线包含所述第一预设的天线时, 所述天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 可选的, 当所述第二预设的天线不包含所述第一预设的天线, 所述天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 进一步的, 所述天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。 其中,配置信息中携带天线间的间距或天线间的相关系数可以 以便终端更精确的得到第二预设的天线的信道状态信息。
202、 终端根据导频信号和天线的配置信息计算得到第二预设 的天线的信道状态信息。 具体的,终端从导频信号中获取第一预设的天线对应的信道矩 阵;从天线的配置信息中获取第一预设的天线与第二预设的天线之 间的位置关系;根据第一预设的天线对应的信道矩阵和第一预设的 天线与第二预设的天线之间的位置关系进行插值运算,得到第二预 设的天线的信道状态信息。 其中, 天线的信道状态信息包括天线的秩信息、 预编矩阵指示 和信道质量指示。
203、 终端将第二预设的天线的信道状态信息发送至基站。 其中, 终端将将所述第二预设的天线的秩信息、 预编矩阵指示 和信道质量指示发送至基站。
可选的, 将所述第二预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵 指示和信道质量指示发送至基站。这样可以精确的获取第一预设的 天线的信道状态信息。 可选的, 将所述第二预设的天线的秩信息, 第一预设的天线和 第二预设的天线的预编矩阵指示的差分码本结构和第二预设的天 线的信道质量指示发送至基站, 并将第一预设的天线的秩信息、 预 编矩阵指示和信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第二预设的天线的预 编矩阵指示和第一预设的天线和第二预设的天线的差分信道质量 指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和 信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第一预设的天线和第 二预设的天线的预编矩阵指示的差分码本结构和第一预设的天线 和第二预设的天线的差分信道质量指示发送至基站,并将第一预设 的天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。 其中,基站通过上述第一预设的天线和第二预设的天线的预编 矩阵指示的差分码本结构能够得到第二预设的天线的预编矩阵指 示; 同样的, 基站通过上述第一预设的天线和第二预设的天线的差 分信道质量指示能够得到第二预设的天线的信道质量指示。由于第 一预设的天线和第二预设的天线的预编矩阵指示的差分码本结构 和第一预设的天线和第二预设的天线的差分信道质量指示占用的 资源相对较少, 这样可以减少导频开销。 上述实施例中,终端接收基站在天线阵列中选取第一预设的天 线映射至导频信号, 并同时接收该天线的配置信息, 根据该导频信 号和该天线的配置信息获取第二预设的天线的信道状态信息,并向 基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天 线阵列中的全部天线映射至导频信号, 减少了导频开销。 本发明的实施例提供一种获取信道信息的方法, 参照图 5 所 示, 包括以下步骤:
301、 基站将天线阵列中第一预设的天线映射至导频信号。 其中, 第一预设的天线的可以是基站预先设定好的, 也可以是 终端将第一预设的天线的设置信息反馈至基站,或者是基站将第一 预设的天线的设置信息发送至终端。 其中,当天线阵列为双极化天线阵列时,第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上, 至 少有两根天线在不同的极化方向上。 其中, 至少有两根天线不在同 一行上,可以反应天线在行之间的之间的发射信号的差别; 同样的, 至少有两根天线不在同一列上,可以反应天线在列之间的发射信号 的差别; 至少有两根天线不同的极化方向上, 可以反映不同极化方 向的天线之间的发射信号的差别。 参照图 6所示, 两根实线代表第一预设的天线, 虚线代表非第 一预设的天线。 选取的两根天线, 能够同时反映出天线在行之间、 天线在列之间和天线在不同极化方向上的发射信号的差别。通过这 上述三个方向上的发射信号的差别,并结合天线的配置信息进行插 值运算, 能够得到第二预设天线的信道状态信息。 进一步的, 第一预设的天线还满足: 天线成对, 且成对的天线 都在同一行和同一列, 所有的天线对都在不同的行和不同的列。 参 照图 7 所示, 包括本方法的 2种情况 (这 2种情况编号分别为: P3- l ,P3-2 ); 其中, 实线代表第一预设的天线, 虚线代表非第一预 设的天线,在以后的选取天线的图形中就不再赘述。 图 7 对应的方 法,可以釆样到多个天线在行之间和天线在列之间的发射信号的差 别, 能够提高插值运算的精确度。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,且两个极化方向上的天线的数量之差不能 超过 1, 所有的天线都在不同的行和不同的列。 参照图 8所示, 包 括本方法的 2种情况 (这 2种情况的编号分别为: P3-3,P3-4 ); 图 8对应的方法, 可以釆样到多个天线在行之间和天线在列之间的发 射信号的差别, 可以提高插值运算的精确度, 并且相对于图 7对应 的方法基站映射的天线数量减少, 从而降低了导频开销。
进一步可选的, 第一预设的天线还满足: 天线成对, 且成对的 天线都在同一行和同一列, 在同一列中的天线对间隔相同行, 每两 个相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列 中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在 同一行和同一列, 在同一行中的天线对间隔相同列, 每两个相邻的 包含天线的行间隔相同的行,每两个相邻的包含天线的行中的天线 对都不在同一列上。 参照图 9所示, 包括本方法的 2种情况 (这 2 种情况编号分别为: P3-5,P3-6 ); 图 9对应的方法, 可以釆样到多 个天线在行之间和天线在列之间的发射信号的差别,能够提高插值 运算的精确度。
进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,在同一列中的天线间隔相同行并且是依次 交替极化方向或同一极化方向的,每两个相邻的包含天线的列间隔 相同的列, 每两个相邻的包含天线的列中的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行中的 天线间隔相同列并且是依次交替极化方向或同一极化方向的,每两 个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线的行 中的天线都不在同一列上。 参照图 10所示, 包括本方法的 6种情 况 (这 6种情况的编号分别为: P3-7, P3-8, P3-9, P3-10, P3-11, P3-12 ); 图 10对应的方法, 可以釆样到多个天线在行之间和天线 在列之间的发射信号的差别, 能够提高插值运算的精确度, 并且相 对于图 9对应的方法基站映射的天线数量减少,从而降低了导频开 销。
进一步可选的, 第一预设的天线还满足: 天线在包含所述第一 预设的天线的天线阵列的四个角分别成对。 参照图 11 所示 (其中 一种情况的编号为: P3-13 ), 这种方法第一预设的天线分布在最外 部,第二预设的天线的信道状态信息可以通过插值运算中的内插算 法得到, 内插算法的精确度高。
进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线且两个极化方向上的天 线的数量相同。 参照图 12所示, 包括本方法的 3种情况 (这 3种 情况编号分别为: P3-14, P3-15, P3-16 )„ 图 12 对应的方法, 这 种方法第一预设的天线分布在最外部,第二预设的天线的信道状态 信息可以通过插值运算中的内插算法得到, 内插算法的精确度高, 并且相对于图 11 对应的方法基站映射的天线数量减少, 从而降低 了导频开销。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列, 另一个极化方向的天线在所述列间隔相同的行。 参 照图 13所示(其中一种情况的编号为: P3-17 )„ 图 13对应的方法, 可以釆样到多个天线在行之间和天线在列之间的发射信号的差别, 能够提高插值运算的精确度。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列,在所述一个极化方向的天线中任意一根所在的列等 间隔相同行的包括另一个极化方向的天线; 或者, 只有两根天线成 对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所 述列间隔相同的行,在所述一个极化方向的天线中任意一根所在的 行等间隔相同列的包括另一个极化方向的天线。参照图 14所示(这 2种情况编号分别为: P3-18, P3-19 )„ 图 14对应的方法, 可以釆 样到多个天线在行之间和天线在列之间的发射信号的差别,能够提 高插值运算的精确度。 进一步可选的, 第一预设的天线还满足: 一个极化方向的天线 在同一行间隔相同的列,在所述一个极化方向的天线中任意一根所 在的列等间隔相同行的包括另一个极化方向的天线; 或者, 一个极 化方向的天线在同一列间隔相同的行,在所述一个极化方向的天线 中任意一根所在的行等间隔相同列的包括另一个极化方向的天线。 参照图 15所示 (这 2种情况编号分别为: P3 -20 , P3 -21 )。 这图 1 5 对应的方法,可以釆样到多个天线在行之间和天线在列之间的发射 信号的差别, 能够提高插值运算的精确度, 并且相对于图 14对应 的方法基站映射的天线数量减少, 从而降低了导频开销。 当然,上述双极化天线阵列中预设天线的数量和排列方式也可 能是其它方式, 选取的第一预设的天线中只要具有不同的行, 列和 极化方向这三个方向, 都属于本发明的范围。 可选的, 当天线为同极化天线阵列时, 第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上。 其 中, 至少有两根天线不在同一行上, 可以天线在行之间的发射信号 的差别; 同样的, 至少有两根天线不在同一列上, 可以反应天线在 列之间的发射信号的差别。 参照图 16所示, 能够同时反映出天线在行之间和天线在列之 间的发射信号的差别。 通过这两个方向上的发射信号的差别, 并结 合天线的配置信息进行插值运算,能够得到第二预设天线的信道状 态信息。 进一步的, 第一预设的天线还满足: 每一根天线都在不同的行 和不同的列。 参照图 17所示, 包括本方法的 2种情况 (这 2种情 况编号分别为: P3 -22,P3 -23 ); 图 17对应的方法, 可以釆样到多个 天线在行之间和天线在列之间的发射信号的差别,能够提高插值运 算的精确度。
进一步可选的, 第一预设的天线还满足: 在同一列中的天线间 隔相同行, 每两个相邻的包括天线的列间隔相同的列, 每两个相邻 的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天 线间隔相同列, 每两个相邻的包括天线的行间隔相同的行, 每两个 相邻的包括天线的行中的天线都不在同一列上。 参照图 18所示, 包括本方法的 2种情况 (这 2种情况编号分别为: P3 -24,P3 -25 ) ; 图 18对应的选取方法, 可以釆样到多个天线在行之间和天线在列 之间的发射信号的差别, 能够提高插值运算的精确度。
进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线。 参照图 19所示 (其中 一种情况的编号为: P3 -26 ); 这种方法第一预设的天线分布在最外 部,第二预设的天线的信道状态信息可以通过插值运算中的内插算 法得到, 内插算法的精确度高,
进一步可选的, 第一预设的天线还满足: 第一预设的天线还满 足: 天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。 参照图 20所示 (其中一种情况的编号 为: P3 -27 )。 这种选取方法, 可以釆样到多个天线在行之间和天线 在列之间的发射信号的差别, 能够提高插值运算的精确度。 当然,上述同极化天线阵列中天线的数量和排列方式也可能是 其它方式, 选取的第一预设的天线中只要具有不同的行, 列这两个 方向, 都属于本发明的范围。
302、 基站将导频信号和天线的配置信息发送至终端, 所述天 线的配置信息包括所述第一预设的天线的图案信息和第二预设的 天线的图案信息。 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 具体的, 基站发送的天线的配置信息在步骤 102 已经详细描 述, 这里就不再赘述。
303、 终端获取基站发送的导频信号和天线的配置信息, 导频 信号为天线阵列中第一预设的天线映射的导频信号,天线的配置信 息包括第一预设的天线的图案信息和第二预设的天线的图案信息。
304、终端从导频信号中获取第一预设的天线对应的信道矩阵。
305、 终端从天线的配置信息中获取第一预设的天线与第二预 设的天线之间的位置关系。
306、 终端根据第一预设的天线对应的信道矩阵和第一预设的 天线与第二预设的天线之间的位置关系进行插值运算,得到第二预 设的天线的信道状态信息。
307、 终端将第二预设的天线的信道状态信息发送至基站。 具体的, 第二预设的天线的信道状态信息发送方式在步骤 203 已经详细描述, 这里就不再赘述。
308、 基站接收终端反馈天线阵列的信道状态信息。 基站根据接收到的第二预设的天线的信道状态信息,能够给终 端配置相应的发射天线。 上述实施例中,基站在天线阵列中选取第一预设的天线映射至 导频信号, 并将该导频信号和该天线的配置信息发送至所述终端, 该终端根据该导频信号和该天线的配置信息获取第二预设的天线 的信道状态信息, 并向基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天线阵列中的全部天线映射至导频信号, 减少 了导频开销。 本发明的实施例提供一种基站 400 , 参照图 21 所示, 用于实 现信道状态信息的获取, 包括: 映射单元 401 , 用于将天线阵列中第一预设的天线映射至导频 信号。
其中, 第一预设的天线的可以是基站预先设定好的, 也可以是 终端将第一预设的天线的设置信息反馈至基站,或者是基站将第一 预设的天线的设置信息发送至终端。 其中,当天线阵列为双极化天线阵列时,第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上, 至 少有两根天线在不同的极化方向上。 其中, 至少有两根天线不在同 一行上,可以反应天线在行之间的之间的发射信号的差别; 同样的, 至少有两根天线不在同一列上,可以反应天线在列之间的发射信号 的差别; 至少有两根天线不同的极化方向上, 可以反映不同极化方 向的天线之间的发射信号的差别。通过这上述三个方向上的发射信 号的差别, 并结合天线的配置信息进行插值运算, 能够得到第二预 设天线的信道状态信息。 进一步的, 第一预设的天线还满足: 天线成对, 且成对的天线 都在同一行和同一列, 所有的天线对都在不同的行和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,且两个极化方向上的天线的数量之差不能 超过 1 , 所有的天线都在不同的行和不同的列。
进一步可选的, 第一预设的天线还满足: 天线成对, 且成对的 天线都在同一行和同一列, 在同一列中的天线对间隔相同行, 每两 个相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列 中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在 同一行和同一列, 在同一行中的天线对间隔相同列, 每两个相邻的 包含天线的行间隔相同的行,每两个相邻的包含天线的行中的天线 对都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,在同一列中的天线间隔相同行并且是依次 交替极化方向或同一极化方向的,每两个相邻的包含天线的列间隔 相同的列, 每两个相邻的包含天线的列中的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行中的 天线间隔相同列并且是依次交替极化方向或同一极化方向的,每两 个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线的行 中的天线都不在同一列上。 进一步可选的, 第一预设的天线还满足: 天线在包含所述第一 预设的天线的天线阵列的四个角分别成对。
进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线且两个极化方向上的天 线的数量相同。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列, 另一个极化方向的天线在所述列间隔相同的行。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列,在所述一个极化方向的天线中任意一根所在的列等 间隔相同行的包括另一个极化方向的天线; 或者, 只有两根天线成 对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所 述列间隔相同的行,在所述一个极化方向的天线中任意一根所在的 行等间隔相同列的包括另一个极化方向的天线。
进一步可选的, 第一预设的天线还满足: 一个极化方向的天线 在同一行间隔相同的列,在所述一个极化方向的天线中任意一根所 在的列等间隔相同行的包括另一个极化方向的天线; 或者, 一个极 化方向的天线在同一列间隔相同的行,在所述一个极化方向的天线 中任意一根所在的行等间隔相同列的包括另一个极化方向的天线。
当然,上述双极化天线阵列中预设天线的数量和排列方式也可 能是其它方式, 选取的第一预设的天线中只要具有不同的行, 列和 极化方向这三个方向, 都属于本发明的范围。 可选的, 当天线为同极化天线阵列时, 第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上。 其 中, 至少有两根天线不在同一行上, 可以天线在行之间的发射信号 的差别; 同样的, 至少有两根天线不在同一列上, 可以反应天线在 列之间的发射信号的差别。 通过这两个方向上的发射信号的差别, 并结合天线的配置信息进行插值运算,能够得到第二预设天线的信 道状态信息。 进一步的, 第一预设的天线还满足: 每一根天线都在不同的行 和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一列中的天线间 隔相同行, 每两个相邻的包括天线的列间隔相同的列, 每两个相邻 的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天 线间隔相同列, 每两个相邻的包括天线的行间隔相同的行, 每两个 相邻的包括天线的行中的天线都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线。
进一步可选的, 第一预设的天线还满足: 第一预设的天线还满 足: 天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。 当然,上述同极化天线阵列中天线的数量和排列方式也可能是 其它方式, 选取的第一预设的天线中只要具有不同的行, 列这两个 方向, 都属于本发明的范围。
发送单元 402 , 用于将所述映射单元 401 映射的导频信号和所 述天线的配置信息发送至终端, 所述天线的配置信息包括所述第 一预设的天线的图案信息和第二预设的天线的图案信息。 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 具体的, 当所述第二预设的天线包含所述第一预设的天线时, 所述发送单元 402发送的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 可选的, 当所述第二预设的天线不包含所述第一预设的天线, 所述发送单元 402发送的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 进一步的, 所述发送单元 402发送的天线的配置信息, 还包括 至少以下一项: 天线间的间距、 天线间的相关系数。 其中,配置信息中携带天线间的间距或天线间的相关系数可以 以便终端更精确的得到第二预设的天线的信道状态信息。 接收单元 403 , 用于接收终端反馈的第二预设的天线的信道状 态信息。
基站根据接收到的第二预设的天线的信道状态信息,能够给终 端配置相应的发射天线。 上述实施例中,基站在天线阵列中选取第一预设的天线映射至 导频信号, 并将该导频信号和该天线的配置信息发送至所述终端, 该终端根据该导频信号和该天线的配置信息获取第二预设的天线 的信道状态信息, 并向基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天线阵列中的全部天线映射至导频信号, 减少 了导频开销。 本发明的实施例提供一种终端 500 , 参照图 22 所示, 用于实 现信道状态信息的获取, 包括: 接收单元 501 , 用于接收基站发送的导频信号和天线的配置信 息, 导频信号为天线阵列中第一预设的天线映射的导频信号, 天线 的配置信息包括第一预设的天线的图案信息和第二预设的天线的 图案信息。 其中, 第一预设的天线的可以是基站预先设定好的, 也可以是 终端将第一预设的天线的设置信息反馈至基站,或者是基站将第一 预设的天线的设置信息发送至终端。 其中,当天线阵列为双极化天线阵列时,第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上, 至 少有两根天线在不同的极化方向上。 其中, 至少有两根天线不在同 一行上,可以反应天线在行之间的之间的发射信号的差别; 同样的, 至少有两根天线不在同一列上,可以反应天线在列之间的发射信号 的差别; 至少有两根天线不同的极化方向上, 可以反映不同极化方 向的天线之间的发射信号的差别。通过这上述三个方向上的发射信 号的差别, 并结合天线的配置信息进行插值运算, 能够得到第二预 设天线的信道状态信息。 进一步的, 第一预设的天线还满足: 天线成对, 且成对的天线 都在同一行和同一列, 所有的天线对都在不同的行和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,且两个极化方向上的天线的数量之差不能 超过 1 , 所有的天线都在不同的行和不同的列。 进一步可选的, 第一预设的天线还满足: 天线成对, 且成对的 天线都在同一行和同一列, 在同一列中的天线对间隔相同行, 每两 个相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列 中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在 同一行和同一列, 在同一行中的天线对间隔相同列, 每两个相邻的 包含天线的行间隔相同的行,每两个相邻的包含天线的行中的天线 对都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,在同一列中的天线间隔相同行并且是依次 交替极化方向或同一极化方向的,每两个相邻的包含天线的列间隔 相同的列, 每两个相邻的包含天线的列中的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行中的 天线间隔相同列并且是依次交替极化方向或同一极化方向的,每两 个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线的行 中的天线都不在同一列上。
进一步可选的, 第一预设的天线还满足: 天线在包含所述第一 预设的天线的天线阵列的四个角分别成对。
进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线且两个极化方向上的天 线的数量相同。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列, 另一个极化方向的天线在所述列间隔相同的行。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列,在所述一个极化方向的天线中任意一根所在的列等 间隔相同行的包括另一个极化方向的天线; 或者, 只有两根天线成 对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所 述列间隔相同的行,在所述一个极化方向的天线中任意一根所在的 行等间隔相同列的包括另一个极化方向的天线。
进一步可选的, 第一预设的天线还满足: 一个极化方向的天线 在同一行间隔相同的列,在所述一个极化方向的天线中任意一根所 在的列等间隔相同行的包括另一个极化方向的天线; 或者, 一个极 化方向的天线在同一列间隔相同的行,在所述一个极化方向的天线 中任意一根所在的行等间隔相同列的包括另一个极化方向的天线。 当然,上述双极化天线阵列中预设天线的数量和排列方式也可 能是其它方式, 选取的第一预设的天线中只要具有不同的行, 列和 极化方向这三个方向, 都属于本发明的范围。 可选的, 当天线为同极化天线阵列时, 第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上。 其 中, 至少有两根天线不在同一行上, 可以天线在行之间的发射信号 的差别; 同样的, 至少有两根天线不在同一列上, 可以反应天线在 列之间的发射信号的差别。 通过这两个方向上的发射信号的差别, 并结合天线的配置信息进行插值运算,能够得到第二预设天线的信 道状态信息。 进一步的, 第一预设的天线还满足: 每一根天线都在不同的行 和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一列中的天线间 隔相同行, 每两个相邻的包括天线的列间隔相同的列, 每两个相邻 的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天 线间隔相同列, 每两个相邻的包括天线的行间隔相同的行, 每两个 相邻的包括天线的行中的天线都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线。 进一步可选的, 第一预设的天线还满足: 第一预设的天线还满 足: 天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。 当然,上述同极化天线阵列中天线的数量和排列方式也可能是 其它方式, 选取的第一预设的天线中只要具有不同的行, 列这两个 方向, 都属于本发明的范围。 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 终端根据配置信息可以得到第一预设的天线和第二预设的天 线之间的位置关系,根据该位置关系能够进行插值运算得到第二预 设的天线的信道状态信息。
具体的, 当所述第二预设的天线包含所述第一预设的天线时, 所述接收单元 501接收的天线的配置信息包括:
所述第一预设的天线在所述第二预设的天线中的图案信息。 可选的, 当所述第二预设的天线不包含所述第一预设的天线, 所述接收单元 501接收的天线的配置信息包括:
所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 进一步的, 所述接收单元 501接收的天线的配置信息, 还包括 至少以下一项:
天线间的间距、 天线间的相关系数。 其中,配置信息中携带天线间的间距或天线间的相关系数可以 以便终端更精确的得到第二预设的天线的信道状态信息。
获取单元 502 , 根据所述接收单元 501接收的导频信号和天线 的配置信息计算得到第二预设的天线的信道状态信息。
可选的, 获取单元 502包括:
第一获取子单元 502- 1 , 用于从导频信号中获取第一预设的天 线对应的信道矩阵;
第二获取子单元 502-2 , 用于从天线的配置信息中获取第一预 设的天线与第二预设的天线之间的位置关系;
运算子单元 502-3 , 用于根据第一获取子单元获取的第一预设 的天线对应的信道矩阵和第二获取子单元获取的第一预设的天线 与第二预设的天线之间的位置关系进行插值运算,得到第二预设的 天线的信道状态信息。
其中, 天线的信道状态信息包括天线的秩信息、 预编矩阵指示 和信道质量指示。 进一步的, 所述终端 500 , 还包括: 发送单元 503 , 将获取单元 502获取的第二预设的天线的信道 状态信息发送至基站。 其中, 发送单元 503 : 具体用于将所述第二预设的天线的秩信 息、 预编矩阵指示和信道质量指示发送至基站。 可选的, 发送单元 503 : 具体用于将所述第二预设的天线的秩 信息、 预编矩阵指示和信道质量指示发送至基站, 并将第一预设的 天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。 这样可 以精确的获取第一预设的天线的信道状态信息。 可选的, 发送单元 503 : 具体用于将所述第二预设的天线的秩 信息,第一预设的天线和第二预设的天线的预编矩阵指示的差分码 本结构和第二预设的天线的信道质量指示发送至基站,并将第一预 设的天线的秩信息、 预编矩阵指示和信道质量指示发送至基站; 或者, 发送单元 503 : 具体用于将所述第二预设的天线的秩信 息,第二预设的天线的预编矩阵指示和第一预设的天线和第二预设 的天线的差分信道质量指示发送至基站,并将第一预设的天线的秩 信息、 预编矩阵指示和信道质量指示发送至基站; 或者, 发送单元 503 : 具体用于将所述第二预设的天线的秩信 息,第一预设的天线和第二预设的天线的预编矩阵指示的差分码本 结构和第一预设的天线和第二预设的天线的差分信道质量指示发 送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信道质 量指示发送至基站。 其中,基站通过上述第一预设的天线和第二预设的天线的预编 矩阵指示的差分码本结构能够得到第二预设的天线的预编矩阵指 示; 同样的, 基站通过上述第一预设的天线和第二预设的天线的差 分信道质量指示能够得到第二预设的天线的信道质量指示。由于第 一预设的天线和第二预设的天线的预编矩阵指示的差分码本结构 和第一预设的天线和第二预设的天线的差分信道质量指示占用的 资源相对较少, 这样可以减少导频开销。 上述实施例中,终端接收基站在天线阵列中选取第一预设的天 线映射至导频信号, 并同时接收该天线的配置信息, 根据该导频信 号和该天线的配置信息获取第二预设的天线的信道状态信息,并向 基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天 线阵列中的全部天线映射至导频信号, 减少了导频开销。 本发明的实施例提供一种基站 600 , 参照图 23 所示, 包括: 处理器 601、 接收器 602、 发送器 603、 存储器 604和总线 605 , 其 中处理器 601、 接收器 602、 发送器 603通过总线 605连接, 存储 器 604用于存储处理器 601处理的数据; 总线 605可以是 ISA ( Industry Standard Architecture , 工业标 准体系结构 ) 总线、 PCI ( Peripheral Component , 外部设备互连) 总线或 EISA ( Extended Industry Standard Architecture , 扩展工业 标准体系结构)总线等。 该总线 605可以分为地址总线、数据总线、 控制总线等。 为便于表示, 图 23 中仅用一条粗线表示, 但并不表 示仅有一根总线或一种类型的总线。 其中:
存储器 604用于存储可执行程序代码,该程序代码包括计算机 操作指令。 存储器 604可能包含高速 RAM存储器, 也可能还包括 非易失性存储器( non-volatile memory ),例如至少一个磁盘存储器。 处理器 601可能是一个中央处理器 ( Central Processing Unit , 简称为 CPU ),或者是特定集成电路( Application Specific Integrated Circuit , 简称为 ASIC ) , 或者是被配置成实施本发明实施例的一个 或多个集成电路。 处理器, 用于将天线阵列中第一预设的天线映射至导频信号。 其中, 第一预设的天线的可以是基站预先设定好的, 也可以是 终端将第一预设的天线的设置信息反馈至基站,或者是基站将第一 预设的天线的设置信息发送至终端。
其中,当天线阵列为双极化天线阵列时,第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上, 至 少有两根天线在不同的极化方向上。 其中, 至少有两根天线不在同 一行上,可以反应天线在行之间的之间的发射信号的差别; 同样的, 至少有两根天线不在同一列上,可以反应天线在列之间的发射信号 的差别; 至少有两根天线不同的极化方向上, 可以反映不同极化方 向的天线之间的发射信号的差别。通过这上述三个方向上的发射信 号的差别, 并结合天线的配置信息进行插值运算, 能够得到第二预 设天线的信道状态信息。 进一步的, 第一预设的天线还满足: 天线成对, 且成对的天线 都在同一行和同一列, 所有的天线对都在不同的行和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,且两个极化方向上的天线的数量之差不能 超过 1 , 所有的天线都在不同的行和不同的列。
进一步可选的, 第一预设的天线还满足: 天线成对, 且成对的 天线都在同一行和同一列, 在同一列中的天线对间隔相同行, 每两 个相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列 中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在 同一行和同一列, 在同一行中的天线对间隔相同列, 每两个相邻的 包含天线的行间隔相同的行,每两个相邻的包含天线的行中的天线 对都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,在同一列中的天线间隔相同行并且是依次 交替极化方向或同一极化方向的,每两个相邻的包含天线的列间隔 相同的列, 每两个相邻的包含天线的列中的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行中的 天线间隔相同列并且是依次交替极化方向或同一极化方向的,每两 个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线的行 中的天线都不在同一列上。 进一步可选的, 第一预设的天线还满足: 天线在包含所述第一 预设的天线的天线阵列的四个角分别成对。
进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线且两个极化方向上的天 线的数量相同。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列, 另一个极化方向的天线在所述列间隔相同的行。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列,在所述一个极化方向的天线中任意一根所在的列等 间隔相同行的包括另一个极化方向的天线; 或者, 只有两根天线成 对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所 述列间隔相同的行,在所述一个极化方向的天线中任意一根所在的 行等间隔相同列的包括另一个极化方向的天线。
进一步可选的, 第一预设的天线还满足: 一个极化方向的天线 在同一行间隔相同的列,在所述一个极化方向的天线中任意一根所 在的列等间隔相同行的包括另一个极化方向的天线; 或者, 一个极 化方向的天线在同一列间隔相同的行,在所述一个极化方向的天线 中任意一根所在的行等间隔相同列的包括另一个极化方向的天线。 当然,上述双极化天线阵列中预设天线的数量和排列方式也可 能是其它方式, 选取的第一预设的天线中只要具有不同的行, 列和 极化方向这三个方向, 都属于本发明的范围。 可选的, 当天线为同极化天线阵列时, 第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上。 其 中, 至少有两根天线不在同一行上, 可以天线在行之间的发射信号 的差别; 同样的, 至少有两根天线不在同一列上, 可以反应天线在 列之间的发射信号的差别。 通过这两个方向上的发射信号的差别, 并结合天线的配置信息进行插值运算,能够得到第二预设天线的信 道状态信息。 进一步的, 第一预设的天线还满足: 每一根天线都在不同的行 和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一列中的天线间 隔相同行, 每两个相邻的包括天线的列间隔相同的列, 每两个相邻 的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天 线间隔相同列, 每两个相邻的包括天线的行间隔相同的行, 每两个 相邻的包括天线的行中的天线都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线。 进一步可选的, 第一预设的天线还满足: 第一预设的天线还满 足: 天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。 当然,上述同极化天线阵列中天线的数量和排列方式也可能是 其它方式, 选取的第一预设的天线中只要具有不同的行, 列这两个 方向, 都属于本发明的范围。 发送器 603 , 用于将导频信号和所述天线的配置信息发送至终 端, 所述天线的配置信息包括所述第一预设的天线的图案信息和 第二预设的天线的图案信息。 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 具体的, 当所述第二预设的天线包含所述第一预设的天线时, 所述发送器 603发送的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 可选的, 当所述第二预设的天线不包含所述第一预设的天线, 所述发送器 603发送的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 进一步的, 所述发送器 603发送的天线的配置信息, 还包括至 少以下一项: 天线间的间距、 天线间的相关系数。 其中,配置信息中携带天线间的间距或天线间的相关系数可以 以便终端更精确的得到第二预设的天线的信道状态信息。 接收器 602 , 用于接收终端反馈的第二预设的天线的信道状态 信息。 基站根据接收到的第二预设的天线的信道状态信息,能够给终 端配置相应的发射天线。 上述实施例中,基站在天线阵列中选取第一预设的天线映射至 导频信号, 并将该导频信号和该天线的配置信息发送至所述终端, 该终端根据该导频信号和该天线的配置信息获取第二预设的天线 的信道状态信息, 并向基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天线阵列中的全部天线映射至导频信号, 减少 了导频开销。 本发明的实施例提供一种终端 700 , 参照图 24 所示, 包括: 处理器 701、 接收器 702、 发送器 703、 存储器 704和总线 705 , 其 中处理器 701、 接收器 702、 发送器 703通过总线 705连接, 存储 器 704用于存储处理器 701处理的数据; 总线 705可以是 ISA ( Industry Standard Architecture , 工业标 准体系结构 ) 总线、 PCI ( Peripheral Component , 外部设备互连) 总线或 EISA ( Extended Industry Standard Architecture , 扩展工业 标准体系结构)总线等。 该总线 705可以分为地址总线、数据总线、 控制总线等。 为便于表示, 图 24 中仅用一条粗线表示, 但并不表 示仅有一根总线或一种类型的总线。 其中:
存储器 704用于存储可执行程序代码,该程序代码包括计算机 操作指令。 存储器 704可能包含高速 RAM存储器, 也可能还包括 非易失性存储器( non-volatile memory ),例如至少一个磁盘存储器。 处理器 701可能是一个中央处理器 ( Central Processing Unit , 简称为 CPU ),或者是特定集成电路( Application Specific Integrated Circuit , 简称为 ASIC ) , 或者是被配置成实施本发明实施例的一个 或多个集成电路。
接收器 702 , 用于接收基站发送的导频信号和天线的配置信 息, 导频信号为天线阵列中第一预设的天线映射的导频信号, 天线 的配置信息包括第一预设的天线的图案信息和第二预设的天线的 图案信息。
其中, 第一预设的天线的可以是基站预先设定好的, 也可以是 终端将第一预设的天线的设置信息反馈至基站,或者是基站将第一 预设的天线的设置信息发送至终端。 其中,当天线阵列为双极化天线阵列时,第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上, 至 少有两根天线在不同的极化方向上。 其中, 至少有两根天线不在同 一行上,可以反应天线在行之间的之间的发射信号的差别; 同样的, 至少有两根天线不在同一列上,可以反应天线在列之间的发射信号 的差别; 至少有两根天线不同的极化方向上, 可以反映不同极化方 向的天线之间的发射信号的差别。通过这上述三个方向上的发射信 号的差别, 并结合天线的配置信息进行插值运算, 能够得到第二预 设天线的信道状态信息。 进一步的, 第一预设的天线还满足: 天线成对, 且成对的天线 都在同一行和同一列, 所有的天线对都在不同的行和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,且两个极化方向上的天线的数量之差不能 超过 1 , 所有的天线都在不同的行和不同的列。 进一步可选的, 第一预设的天线还满足: 天线成对, 且成对的 天线都在同一行和同一列, 在同一列中的天线对间隔相同行, 每两 个相邻的包含天线的列间隔相同的列,每两个相邻的包含天线的列 中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在 同一行和同一列, 在同一行中的天线对间隔相同列, 每两个相邻的 包含天线的行间隔相同的行,每两个相邻的包含天线的行中的天线 对都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在同一行和同一列只 有一个极化方向的天线,在同一列中的天线间隔相同行并且是依次 交替极化方向或同一极化方向的,每两个相邻的包含天线的列间隔 相同的列, 每两个相邻的包含天线的列中的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行中的 天线间隔相同列并且是依次交替极化方向或同一极化方向的,每两 个相邻的包含天线的行间隔相同的行,每两个相邻的包含天线的行 中的天线都不在同一列上。 进一步可选的, 第一预设的天线还满足: 天线在包含所述第一 预设的天线的天线阵列的四个角分别成对。 进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线且两个极化方向上的天 线的数量相同。
进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列, 另一个极化方向的天线在所述列间隔相同的行。 进一步可选的, 第一预设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列,一个极化方向的天线在所述行 间隔相同的列,在所述一个极化方向的天线中任意一根所在的列等 间隔相同行的包括另一个极化方向的天线; 或者, 只有两根天线成 对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所 述列间隔相同的行,在所述一个极化方向的天线中任意一根所在的 行等间隔相同列的包括另一个极化方向的天线。
进一步可选的, 第一预设的天线还满足: 一个极化方向的天线 在同一行间隔相同的列,在所述一个极化方向的天线中任意一根所 在的列等间隔相同行的包括另一个极化方向的天线; 或者, 一个极 化方向的天线在同一列间隔相同的行,在所述一个极化方向的天线 中任意一根所在的行等间隔相同列的包括另一个极化方向的天线。
当然,上述双极化天线阵列中预设天线的数量和排列方式也可 能是其它方式, 选取的第一预设的天线中只要具有不同的行, 列和 极化方向这三个方向, 都属于本发明的范围。 可选的, 当天线为同极化天线阵列时, 第一预设的天线满足: 至少有两根天线不在同一行上, 至少有两根天线不在同一列上。 其 中, 至少有两根天线不在同一行上, 可以天线在行之间的发射信号 的差别; 同样的, 至少有两根天线不在同一列上, 可以反应天线在 列之间的发射信号的差别。 通过这两个方向上的发射信号的差别, 并结合天线的配置信息进行插值运算,能够得到第二预设天线的信 道状态信息。 进一步的, 第一预设的天线还满足: 每一根天线都在不同的行 和不同的列。 进一步可选的, 第一预设的天线还满足: 在同一列中的天线间 隔相同行, 每两个相邻的包括天线的列间隔相同的列, 每两个相邻 的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天 线间隔相同列, 每两个相邻的包括天线的行间隔相同的行, 每两个 相邻的包括天线的行中的天线都不在同一列上。 进一步可选的, 第一预设的天线还满足: 在包含所述第一预设 的天线的天线阵列的四个角各有一根天线。 进一步可选的, 第一预设的天线还满足: 第一预设的天线还满 足: 天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。 当然,上述同极化天线阵列中天线的数量和排列方式也可能是 其它方式, 选取的第一预设的天线中只要具有不同的行, 列这两个 方向, 都属于本发明的范围。 其中,所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。 终端根据配置信息可以得到第一预设的天线和第二预设的天 线之间的位置关系,根据该位置关系能够进行插值运算得到第二预 设的天线的信道状态信息。 具体的, 当所述第二预设的天线包含所述第一预设的天线时, 所述接收器 702接收的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。 可选的, 当所述第二预设的天线不包含所述第一预设的天线, 所述接收器 702接收的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。 进一步的, 所述接收器 702接收的天线的配置信息, 还包括至 少以下一项: 天线间的间距、 天线间的相关系数。 其中,配置信息中携带天线间的间距或天线间的相关系数可以 以便终端更精确的得到第二预设的天线的信道状态信息。 处理器 701 , 用于根据接收器 702接收的导频信号和天线的配 置信息计算得到第二预设的天线的信道状态信息。
可选的, 处理器 701用于: 从导频信号中获取第一预设的天线对应的信道矩阵; 从天线的配置信息中获取第一预设的天线与第二预设的天线 之间的位置关系; 用于根据第一预设的天线对应的信道矩阵和第一预设的天线 与第二预设的天线之间的位置关系进行插值运算,得到第二预设的 天线的信道状态信息。 其中, 天线的信道状态信息包括天线的秩信息、 预编矩阵指示 和信道质量指示。 发送器 703 , 用于将第二预设的天线的信道状态信息发送至基 站。 其中,发送器 703 : 具体用于将所述第二预设的天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。 可选的, 发送器 703 : 具体用于将所述第二预设的天线的秩信 息、 预编矩阵指示和信道质量指示发送至基站, 并将第一预设的天 线的秩信息、 预编矩阵指示和信道质量指示发送至基站。 这样可以 精确的获取第一预设的天线的信道状态信息。 可选的, 发送器 703 : 具体用于将所述第二预设的天线的秩信 息,第一预设的天线和第二预设的天线的预编矩阵指示的差分码本 结构和第二预设的天线的信道质量指示发送至基站,并将第一预设 的天线的秩信息、 预编矩阵指示和信道质量指示发送至基站; 或者,发送器 703 : 具体用于将所述第二预设的天线的秩信息, 第二预设的天线的预编矩阵指示和第一预设的天线和第二预设的 天线的差分信道质量指示发送至基站,并将第一预设的天线的秩信 息、 预编矩阵指示和信道质量指示发送至基站; 或者,发送器 703 : 具体用于将所述第二预设的天线的秩信息, 第一预设的天线和第二预设的天线的预编矩阵指示的差分码本结 构和第一预设的天线和第二预设的天线的差分信道质量指示发送 至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信道质量 指示发送至基站。 其中,基站通过上述第一预设的天线和第二预设的天线的预编 矩阵指示的差分码本结构能够得到第二预设的天线的预编矩阵指 示; 同样的, 基站通过上述第一预设的天线和第二预设的天线的差 分信道质量指示能够得到第二预设的天线的信道质量指示。由于第 一预设的天线和第二预设的天线的预编矩阵指示的差分码本结构 和第一预设的天线和第二预设的天线的差分信道质量指示占用的 资源相对较少, 这样可以减少导频开销。 上述实施例中,终端接收基站在天线阵列中选取第一预设的天 线映射至导频信号, 并同时接收该天线的配置信息, 根据该导频信 号和该天线的配置信息获取第二预设的天线的信道状态信息,并向 基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天 线阵列中的全部天线映射至导频信号, 减少了导频开销。 本发明的实施例提供一种通信系统 800 , 用于实现信道信息的 获取, 参照图 25所示, 包括: 能够进行相互通信的基站 801 和终 端 802 , 基站 801 为图 21或图 23对应的实施例描述的任一基站, 终端 802为图 22或图 24对应的实施例描述的任一终端, 因此基站 801和终端 802的结构在这里就不再赘述。 在上述系统的实施例中,基站在天线阵列中选取一部分天线映 射至导频信号,并通过终端接收该天线的配置信息和天线阵列的图 案信息, 终端从接收到的信息中获取天线阵列的信道状态信息。 这 样, 避免了基站将天线阵列中的全部天线映射至导频信号, 减少了 导频开销。
上述实施例中,基站在天线阵列中选取第一预设的天线映射至 导频信号, 并将该导频信号和该天线的配置信息发送至所述终端, 该终端根据该导频信号和该天线的配置信息获取第二预设的天线 的信道状态信息, 并向基站反馈第二预设的天线的信道状态信息。 这样, 避免了基站将天线阵列中的全部天线映射至导频信号, 减少 了导频开销。
以上, 仅为本发明的具体实施方式, 但本发明的保护范围并不局限于 此, 任何熟悉本技术领域的技术人员在本发明揭露的技术范围内, 可轻易 想到变化或替换, 都应涵盖在本发明的保护范围之内。 因此, 本发明的保 护范围应以权利要求的保护范围为准。

Claims

权 利 要 求 书
1、 一种信道信息获取的方法, 其特征在于, 包括: 基站将天线阵列中第一预设的天线映射至导频信号; 将所述导频信号和所述天线的配置信息发送至终端, 所述天线 的配置信息包括所述第一预设的天线的图案信息和第二预设的天线 的图案信息;
接收所述终端反馈的所述第二预设的天线的信道状态信息; 其中, 所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。
2、 根据权利要求 1所述的方法, 其特征在于, 当所述天线阵列 为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上, 至少有两根天线在不同的极化方向上。
3、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设的 天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。
4、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设的 天线还满足: 在同一行和同一列只有一个极化方向的天线, 且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
5、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设的 天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列, 每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。
6、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设的 天线还满足: 在同一行和同一列只有一个极化方向的天线, 在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的, 每两个 相邻的包含天线的列间隔相同的列, 每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行, 每两个相邻的包含天线 的行中的天线都不在同一列上。
7、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设的 天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
8、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设的 天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天线 且两个极化方向上的天线的数量相同。
9、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设的 天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 另一个极化方向的天线在 所述列间隔相同的行。
10、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设 的天线还满足:
只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者, 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行, 在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向的 天线。
1 1、 根据权利要求 2所述的方法, 其特征在于, 所述第一预设 的天线还满足: 一个极化方向的天线在同一行间隔相同的列, 在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化方 向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一个 极化方向的天线。
12、 根据权利要求 1 所述的方法, 其特征在于, 当所述第一天 线阵列为同极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上。
13、 根据权利要求 12所述的方法, 其特征在于, 所述第一预设 的天线还满足: 每一根天线都在不同的行和不同的列。
14、 根据权利要求 12所述的方法, 其特征在于, 所述第一预设 的天线还满足: 在同一列中的天线间隔相同行, 每两个相邻的包括天线的列间 隔相同的列,每两个相邻的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行, 每两个相邻的包括天线的行中的天线都不在同 一列上。
15、 根据权利要求 12所述的方法, 其特征在于, 所述第一预设 的天线还满足:
在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
16、 根据权利要求 12所述的方法, 其特征在于, 所述第一预设 的天线还满足:
天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。
17、 根据权利要求 1 - 16任一项所述的方法, 其特征在于, 当所 述第二预设的天线包含所述第一预设的天线时, 所述天线的配置信 息包括:
所述第一预设的天线在所述第二预设的天线中的图案信息。
18、 根据权利要求 1 - 16任一项所述的方法, 其特征在于, 当所 述第二预设的天线不包含所述第一预设的天线, 所述天线的配置信 息包括:
所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。
19、 根据权利要求 1 - 18任一项所述的方法, 其特征在于, 所述 天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。
20、 一种获取信道信息获取的方法, 其特征在于, 包括: 终端获取基站发送的导频信号和所述天线的配置信息, 所述导 频信号为天线阵列中第一预设的天线映射的导频信号, 所述天线的 配置信息包括所述第一预设的天线的图案信息和第二预设的天线的 图案信息;
所述终端根据所述导频信号和所述天线的配置信息计算得到所 述第二预设的天线的信道状态信息;
所述终端将所述第二预设的天线的信道状态信息发送至所述基 站; 其中, 所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。
21、 根据权利要求 20所述的方法, 其特征在于, 当所述天线阵 列为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上, 至少有两根天线在不同的极化方向上。
22、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。
23、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
24、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列, 每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。
25、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的, 每两个 相邻的包含天线的列间隔相同的列, 每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行, 每两个相邻的包含天线 的行中的天线都不在同一列上。
26、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
27、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天线 且两个极化方向上的天线的数量相同。
28、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足:
只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 另一个极化方向的天线在 所述列间隔相同的行。
29、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足:
只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者, 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行, 在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向的 天线。
30、 根据权利要求 21所述的方法, 其特征在于, 所述第一预设 的天线还满足: 一个极化方向的天线在同一行间隔相同的列, 在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化方 向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一个 极化方向的天线。
3 1、 根据权利要求 20任一项所述的方法, 其特征在于, 当所述 第一天线阵列为同极化天线阵列时, 其中, 所述预设数量的天线满 足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上。
32、 根据权利要求 3 1所述的方法, 其特征在于, 所述第一预设 的天线还满足: 每一根天线都在不同的行和不同的列。
33、 根据权利要求 3 1所述的方法, 其特征在于, 所述第一预设 的天线还满足: 在同一列中的天线间隔相同行, 每两个相邻的包括天线的列间 隔相同的列,每两个相邻的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行, 每两个相邻的包括天线的行中的天线都不在同 一列上。
34、 根据权利要求 3 1所述的方法, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
35、 根据权利要求 3 1所述的方法, 其特征在于, 所述第一预设 的天线还满足:
天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。
36、 根据权利要求 20-35 任一项所述的方法, 其特征在于, 当 所述第二预设的天线包含所述第一预设的天线时, 所述天线的配置 信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。
37、 根据权利要求 20-35 任一项所述的方法, 其特征在于, 当 所述第二预设的天线不包含所述第一预设的天线, 所述天线的配置 信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。
38、 根据权利要求 20-37 任一项所述的方法, 其特征在于, 所 述天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。
39、 根据权利要求 20-38 任一项所述的方法, 其特征在于, 所 述终端根据所述导频信号和所述天线的配置信息计算所述天线阵列 的信道状态信息包括:
从所述导频信号中获取第一预设的天线对应的信道矩阵; 从所述天线的配置信息中获取第一预设的天线与第二预设的天 线之间的位置关系; 根据所述第一预设的天线对应的信道矩阵和所述第一预设的天 线与第二预设的天线之间的位置关系进行插值运算, 得到第二预设 的天线的信道状态信息。
40、 根据权利要求 20-39任一项所述的方法, 其特征在于, 所 述将所述第二预设的天线的信道状态信息发送至所述基站具体包 括: 将所述第二预设的天线的秩信息、 预编矩阵指示和信道质量指 示发送至基站。
41、 根据权利要求 20-39任一项所述的方法, 其特征在于, 所 述将所述第二预设的天线的信道状态信息发送至所述基站具体包 括: 将所述第二预设的天线的秩信息、 预编矩阵指示和信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站。
42、 根据权利要求 20-39任一项所述的方法, 其特征在于, 所 述将所述第二预设的天线的信道状态信息发送至所述基站具体包 括: 将所述第二预设的天线的秩信息, 第一预设的天线和第二预设 的天线的预编矩阵指示的差分码本结构和第二预设的天线的信道质 量指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示 和信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第二预设的天线的预 编矩阵指示和第一预设的天线和第二预设的天线的差分信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第一预设的天线和第 二预设的天线的预编矩阵指示的差分码本结构和第一预设的天线和 第二预设的天线的差分信道质量指示发送至基站, 并将第一预设的 天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。
43、 一种基站, 其特征在于, 包括: 映射单元,用于将天线阵列中第一预设的天线映射至导频信号; 发送单元, 用于将所述映射单元映射的导频信号和所述天线的 配置信息发送至终端, 所述天线的配置信息包括所述第一预设的天 线的图案信息和第二预设的天线的图案信息; 接收单元, 用于接收所述终端反馈的所述第二预设的天线的信 道状态信息; 其中, 所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。
44、 根据权利要求 43所述的基站, 其特征在于, 当所述天线阵 列为双极化天线阵列时, 所述映射单元第一预设的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上, 至少有两根天线在不同的极化方向上。
45、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。
46、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
47、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列, 每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。
48、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的, 每两个 相邻的包含天线的列间隔相同的列, 每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行, 每两个相邻的包含天线 的行中的天线都不在同一列上。
49、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
50、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天线 且两个极化方向上的天线的数量相同。
51、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足:
只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 另一个极化方向的天线在 所述列间隔相同的行。
52、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者, 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行, 在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向的 天线。
53、 根据权利要求 44所述的基站, 其特征在于, 所述第一预设 的天线还满足: 一个极化方向的天线在同一行间隔相同的列, 在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化方 向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一个 极化方向的天线。
54、 根据权利要求 43所述的基站, 其特征在于, 当所述第一天 线阵列为同极化天线阵列时, 其中, 所述预设数量的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上。
55、 根据权利要求 54所述的基站, 其特征在于, 所述第一预设 的天线还满足: 每一根天线都在不同的行和不同的列。
56、 根据权利要求 54所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在同一列中的天线间隔相同行, 每两个相邻的包括天线的列间 隔相同的列,每两个相邻的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行, 每两个相邻的包括天线的行中的天线都不在同 一列上。
57、 根据权利要求 54所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
58、 根据权利要求 54所述的基站, 其特征在于, 所述第一预设 的天线还满足: 天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。
59、 根据权利要求 43 -54任一项所述的基站, 其特征在于, 当 所述第二预设的天线包含所述第一预设的天线时, 所述发送单元发 送的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。
60、 根据权利要求 43 -54任一项所述的基站, 其特征在于, 当 所述第二预设的天线不包含所述第一预设的天线, 所述发送单元发 送的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。
61、 根据权利要求 43 -60任一项所述的基站, 其特征在于, 所 述发送单元发送的天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。
62、 一种终端, 其特征在于, 包括: 接收单元, 用于接收基站发送的导频信号和所述天线的配置信 息, 所述导频信号为天线阵列中第一预设的天线映射的导频信号, 所述天线的配置信息包括所述第一预设的天线的图案信息和第二预 设的天线的图案信息; 获取单元, 用于根据所述接收单元接收的导频信号和所述天线 的配置信息计算得到所述第二预设的天线的信道状态信息; 发送单元, 用于将所述获取单元获取的第二预设的天线的信道 状态信息发送至所述基站;
其中, 所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。
63、 根据权利要求 62所述的终端, 其特征在于, 当所述天线阵 列为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上, 至少有两根天线在不同的极化方向上。
64、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足:
天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。
65、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
66、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列, 每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。
67、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的, 每两个 相邻的包含天线的列间隔相同的列, 每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行, 每两个相邻的包含天线 的行中的天线都不在同一列上。
68、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
69、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天线 且两个极化方向上的天线的数量相同。
70、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 另一个极化方向的天线在 所述列间隔相同的行。
71、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足:
只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者, 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行, 在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向的 天线。
72、 根据权利要求 63所述的终端, 其特征在于, 所述第一预设 的天线还满足:
一个极化方向的天线在同一行间隔相同的列, 在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化方 向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一个 极化方向的天线。
73、 根据权利要求 62任一项所述的终端, 其特征在于, 当所述 第一天线阵列为同极化天线阵列时, 其中, 所述预设数量的天线满 足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上。
74、 根据权利要求 73所述的终端, 其特征在于, 所述第一预设 的天线还满足: 每一根天线都在不同的行和不同的列。
75、 根据权利要求 73所述的终端, 其特征在于, 所述第一预设 的天线还满足: 在同一列中的天线间隔相同行, 每两个相邻的包括天线的列间 隔相同的列,每两个相邻的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行, 每两个相邻的包括天线的行中的天线都不在同 一列上。
76、 根据权利要求 73所述的终端, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
77、 根据权利要求 73所述的终端, 其特征在于, 所述第一预设 的天线还满足: 天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。
78、 根据权利要求 63 -77 任一项所述的终端, 其特征在于, 当 所述第二预设的天线包含所述第一预设的天线时, 所述接收单元接 收的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。
79、 根据权利要求 63 -77 任一项所述的终端, 其特征在于, 当 所述第二预设的天线不包含所述第一预设的天线, 所述接收单元接 收的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。
80、 根据权利要求 63 -79任一项所述的终端, 其特征在于, 所 述接收单元接收的天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。
8 1、 根据权利要求 63 -80任一项所述的终端, 其特征在于, 所 述获取单元, 包括: 第一获取子单元, 用于从所述导频信号中获取第一预设的天线 对应的信道矩阵; 第二获取子单元, 用于从所述天线的配置信息中获取第一预设 的天线与第二预设的天线之间的位置关系; 运算子单元, 用于根据所述第一获取子单元获取的第一预设的 天线对应的信道矩阵和所述第二获取子单元获取的第一预设的天线 与第二预设的天线之间的位置关系进行插值运算, 得到第二预设的 天线的信道状态信息。
82、 根据权利要求 63 -8 1 任一项所述的终端, 其特征在于, 所 述发送单元具体用于: 将所述第二预设的天线的秩信息、 预编矩阵指示和信道质量指 示发送至基站。
83、 根据权利要求 63 -8 1 任一项所述的终端, 其特征在于, 所 述发送单元具体用于: 将所述第二预设的天线的秩信息、 预编矩阵指示和信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站。
84、 根据权利要求 63 -8 1 任一项所述的终端, 其特征在于, 所 述发送单元具体用于: 将所述第二预设的天线的秩信息, 第一预设的天线和第二预设 的天线的预编矩阵指示的差分码本结构和第二预设的天线的信道质 量指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示 和信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第二预设的天线的预 编矩阵指示和第一预设的天线和第二预设的天线的差分信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第一预设的天线和第 二预设的天线的预编矩阵指示的差分码本结构和第一预设的天线和 第二预设的天线的差分信道质量指示发送至基站, 并将第一预设的 天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。
85、 一种基站, 其特征在于, 包括: 处理器、 接收器、 发送器、 存 储器和总线, 其中所述处理器、 接收器、 发送器、 存储器通过所述总线 连接, 所述存储器用于存储所述处理器处理的数据; 所述处理器, 用于将天线阵列中第一预设的天线映射至导频信 号;
所述发送器, 用于将所述导频信号和所述天线的配置信息发送 至终端, 所述天线的配置信息包括所述第一预设的天线的图案信息 和第二预设的天线的图案信息; 所述接收器, 用于接收所述终端反馈的所述第二预设的天线的 信道状态信息; 其中, 所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。
86、 根据权利要求 85所述的基站, 其特征在于, 当所述天线阵 列为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上, 至少有两根天线在不同的极化方向上。
87、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。
88、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
89、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足:
天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列, 每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。
90、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在同一行和同一列只有一个极化方向的天线, 在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的, 每两个 相邻的包含天线的列间隔相同的列, 每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行, 每两个相邻的包含天线 的行中的天线都不在同一列上。
91、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
92、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天线 且两个极化方向上的天线的数量相同。
93、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足:
只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 另一个极化方向的天线在 所述列间隔相同的行。
94、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者, 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行, 在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向的 天线。
95、 根据权利要求 86所述的基站, 其特征在于, 所述第一预设 的天线还满足: 一个极化方向的天线在同一行间隔相同的列, 在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化方 向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一个 极化方向的天线。
96、 根据权利要求 85所述的基站, 其特征在于, 当所述第一天 线阵列为同极化天线阵列时, 其中, 所述预设数量的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上。
97、 根据权利要求 96所述的基站, 其特征在于, 所述第一预设 的天线还满足:
每一根天线都在不同的行和不同的列。
98、 根据权利要求 96所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在同一列中的天线间隔相同行, 每两个相邻的包括天线的列间 隔相同的列,每两个相邻的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行, 每两个相邻的包括天线的行中的天线都不在同 一列上。
99、 根据权利要求 96所述的基站, 其特征在于, 所述第一预设 的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
100、 根据权利要求 96所述的基站, 其特征在于, 所述第一预 设的天线还满足:
天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。
101、 根据权利要求 85- 100任一项所述的基站, 其特征在于, 当所述第二预设的天线包含所述第一预设的天线时, 所述发送器发 送的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。
102、 根据权利要求 85- 100任一项所述的基站, 其特征在于, 当所述第二预设的天线不包含所述第一预设的天线, 所述发送器发 送的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。
103、 根据权利要求 85- 102任一项所述的基站, 其特征在于, 所述发送器发送的天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。
104、 一种终端, 其特征在于, 包括: 处理器、 接收器、 发送器、 存储器和总线, 其中所述处理器、 接收器、 发送器、 存储器通过所述总 线连接, 所述存储器用于存储所述处理器处理的数据; 所述接收器, 用于接收基站发送的导频信号和所述天线的配置 信息,所述导频信号为天线阵列中第一预设的天线映射的导频信号, 所述天线的配置信息包括所述第一预设的天线的图案信息和第二预 设的天线的图案信息; 所述处理器, 用于根据所述导频信号和所述天线的配置信息计 算得到所述第二预设的天线的信道状态信息; 所述发送器, 用于将所述第二预设的天线的信道状态信息发送 至所述基站; 其中, 所述第一预设的天线与所述第二预设的天线在同一天线 阵列中, 且第一预设的天线与第二预设的天线不相同。
105、 根据权利要求 104所述的终端, 其特征在于, 当所述天线 阵列为双极化天线阵列时, 所述第一预设的天线满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上, 至少有两根天线在不同的极化方向上。
106、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 所有的天线对 都在不同的行和不同的列。
107、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 在同一行和同一列只有一个极化方向的天线, 且两个极化方向 上的天线的数量之差不能超过 1 , 所有的天线都在不同的行和不同 的列。
108、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 天线成对, 且成对的天线都在同一行和同一列, 在同一列中的 天线对间隔相同行, 每两个相邻的包含天线的列间隔相同的列, 每 两个相邻的包含天线的列中的天线对都不在同一行上; 或者, 天线成对, 且成对的天线都在同一行和同一列, 在同一 行中的天线对间隔相同列, 每两个相邻的包含天线的行间隔相同的 行, 每两个相邻的包含天线的行中的天线对都不在同一列上。
109、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 在同一行和同一列只有一个极化方向的天线, 在同一列中的天 线间隔相同行并且是依次交替极化方向或同一极化方向的, 每两个 相邻的包含天线的列间隔相同的列, 每两个相邻的包含天线的列中 的天线都不在同一行上; 或者, 在同一行和同一列只有一个极化方向的天线, 在同一行 中的天线间隔相同列并且是依次交替极化方向或同一极化方向的, 每两个相邻的包含天线的行间隔相同的行, 每两个相邻的包含天线 的行中的天线都不在同一列上。
1 10、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 天线在包含所述第一预设的天线的天线阵列的四个角分别成 对。
1 1 1、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天线 且两个极化方向上的天线的数量相同。
1 12、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 另一个极化方向的天线在 所述列间隔相同的行。
1 13、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个 极化方向的天线在所述行间隔相同的列, 在所述一个极化方向的天 线中任意一根所在的列等间隔相同行的包括另一个极化方向的天 线;
或者, 只有两根天线成对, 且成对的天线都在同一行和同一列, 一个极化方向的天线在所述列间隔相同的行, 在所述一个极化方向 的天线中任意一根所在的行等间隔相同列的包括另一个极化方向的 天线。
1 14、 根据权利要求 105所述的终端, 其特征在于, 所述第一预 设的天线还满足: 一个极化方向的天线在同一行间隔相同的列, 在所述一个极化 方向的天线中任意一根所在的列等间隔相同行的包括另一个极化方 向的天线; 或者, 一个极化方向的天线在同一列间隔相同的行, 在所述一 个极化方向的天线中任意一根所在的行等间隔相同列的包括另一个 极化方向的天线。
1 15、 根据权利要求 104任一项所述的终端, 其特征在于, 当所 述第一天线阵列为同极化天线阵列时, 其中, 所述预设数量的天线 满足: 至少有两根天线不在同一行上,至少有两根天线不在同一列上。
1 16、 根据权利要求 1 15所述的终端, 其特征在于, 所述第一预 设的天线还满足: 每一根天线都在不同的行和不同的列。
1 17、 根据权利要求 1 15所述的终端, 其特征在于, 所述第一预 设的天线还满足: 在同一列中的天线间隔相同行, 每两个相邻的包括天线的列间 隔相同的列,每两个相邻的包括天线的列中的天线都不在同一行上; 或者, 在同一行中的天线间隔相同列, 每两个相邻的包括天线 的行间隔相同的行, 每两个相邻的包括天线的行中的天线都不在同 一列上。
1 18、 根据权利要求 1 15所述的终端, 其特征在于, 所述第一预 设的天线还满足: 在包含所述第一预设的天线的天线阵列的四个角各有一根天 线。
1 19、 根据权利要求 1 15所述的终端, 其特征在于, 所述第一预 设的天线还满足:
天线在一个行上间隔相同的列, 在所述行的任意一根天线所在 的列等间隔行的包括天线。
120、 根据权利要求 104- 1 19任一项所述的终端, 其特征在于, 当所述第二预设的天线包含所述第一预设的天线时, 所述接收器接 收的天线的配置信息包括: 所述第一预设的天线在所述第二预设的天线中的图案信息。
121、 根据权利要求 104- 1 19任一项所述的终端, 其特征在于, 当所述第二预设的天线不包含所述第一预设的天线, 所述接收器接 收的天线的配置信息包括: 所述第一预设的天线在所述天线阵列中的图案信息;
所述第二预设的天线在所述天线阵列中的图案信息。
122、 根据权利要求 104- 120任一项所述的终端, 其特征在于, 所述接收器接收的天线的配置信息, 还包括至少以下一项: 天线间的间距、 天线间的相关系数。
123、 根据权利要求 104- 121任一项所述的终端, 其特征在于, 所述处理器具体用于: 从所述导频信号中获取第一预设的天线对应的信道矩阵; 从所述天线的配置信息中获取第一预设的天线与第二预设的天 线之间的位置关系; 根据所述第一预设的天线对应的信道矩阵和所述第一预设的天 线与第二预设的天线之间的位置关系进行插值运算, 得到第二预设 的天线的信道状态信息。
124、 根据权利要求 104- 123任一项所述的终端, 其特征在于, 所述发送器具体用于: 将所述第二预设的天线的秩信息、 预编矩阵指示和信道质量指 示发送至基站。
125、 根据权利要求 104- 123任一项所述的终端, 其特征在于, 所述将所述第二预设的天线的信道状态信息发送至所述发送器具体 用于:
将所述第二预设的天线的秩信息、 预编矩阵指示和信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站。
126、 根据权利要求 105- 123任一项所述的终端, 其特征在于, 所述将所述第二预设的天线的信道状态信息发送至所述发送器具体 用于: 将所述第二预设的天线的秩信息, 第一预设的天线和第二预设 的天线的预编矩阵指示的差分码本结构和第二预设的天线的信道质 量指示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示 和信道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第二预设的天线的预 编矩阵指示和第一预设的天线和第二预设的天线的差分信道质量指 示发送至基站, 并将第一预设的天线的秩信息、 预编矩阵指示和信 道质量指示发送至基站; 或者, 将所述第二预设的天线的秩信息, 第一预设的天线和第 二预设的天线的预编矩阵指示的差分码本结构和第一预设的天线和 第二预设的天线的差分信道质量指示发送至基站, 并将第一预设的 天线的秩信息、 预编矩阵指示和信道质量指示发送至基站。
127、 一种通信系统, 其特征在于, 包括: 相互通信的终端和基 站, 所述基站为权利要求 43-61 任一项所述的基站, 所述终端为权 利要求 62-84任一项所述的终端;
或者, 所述基站为权利要求 85-103任一项所述的基站, 所述终 端为权利要求 104-126任一项所述的终端。
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