WO2010050874A1 - Method for transmission of reference signals and determination of precoding matrices for multi-antenna transmission - Google Patents

Method for transmission of reference signals and determination of precoding matrices for multi-antenna transmission Download PDF

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Publication number
WO2010050874A1
WO2010050874A1 PCT/SE2009/050542 SE2009050542W WO2010050874A1 WO 2010050874 A1 WO2010050874 A1 WO 2010050874A1 SE 2009050542 W SE2009050542 W SE 2009050542W WO 2010050874 A1 WO2010050874 A1 WO 2010050874A1
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Prior art keywords
antenna
reference signals
transmit
transmit antennas
base station
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PCT/SE2009/050542
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French (fr)
Inventor
Muhammad Imadur Rahman
George JÖNGREN
David Astely
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Telefonaktiebolaget L M Ericsson (Publ)
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Application filed by Telefonaktiebolaget L M Ericsson (Publ) filed Critical Telefonaktiebolaget L M Ericsson (Publ)
Priority to CN2009801539083A priority Critical patent/CN102273091A/en
Priority to EP09788545.3A priority patent/EP2351246B1/en
Priority to US13/127,176 priority patent/US8737507B2/en
Publication of WO2010050874A1 publication Critical patent/WO2010050874A1/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
    • H04B7/0636Feedback format
    • H04B7/0639Using selective indices, e.g. of a codebook, e.g. pre-distortion matrix index [PMI] or for beam selection
    • 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
    • H04B7/0417Feedback systems
    • 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
    • H04B7/0686Hybrid systems, i.e. switching and simultaneous transmission
    • H04B7/0691Hybrid systems, i.e. switching and simultaneous transmission using subgroups of transmit antennas
    • 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
    • H04L5/005Allocation of pilot signals, i.e. of signals known to the receiver of common pilots, i.e. pilots destined for multiple users or terminals
    • 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
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/03Shaping networks in transmitter or receiver, e.g. adaptive shaping networks
    • H04L25/03006Arrangements for removing intersymbol interference
    • H04L2025/0335Arrangements for removing intersymbol interference characterised by the type of transmission
    • H04L2025/03426Arrangements for removing intersymbol interference characterised by the type of transmission transmission using multiple-input and multiple-output channels
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/03Shaping networks in transmitter or receiver, e.g. adaptive shaping networks
    • H04L25/03006Arrangements for removing intersymbol interference
    • H04L2025/03777Arrangements for removing intersymbol interference characterised by the signalling
    • H04L2025/03802Signalling on the reverse channel
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems
    • H04L25/02Details ; arrangements for supplying electrical power along data transmission lines
    • H04L25/03Shaping networks in transmitter or receiver, e.g. adaptive shaping networks
    • H04L25/03006Arrangements for removing intersymbol interference
    • H04L25/03343Arrangements at the transmitter end

Definitions

  • the present invention relates in general to the use of multi-antenna transmission techniques in cellular telecommunications system, and more particularly relates to techniques for transmitting reference signals and determining transmitter precoding matrices based on channel feedback data derived from the reference signals.
  • BACKGROUND Multi-antenna techniques are currently being applied to several wireless systems to increase system reliability and/or system throughput.
  • Those skilled in the art will appreciate that the highest performance gains from multi-antenna processing are obtained when multiple antennas are deployed at both ends of the wireless communication link.
  • two or more data streams can be transmitted simultaneously, at the same frequency, separated only in the spatial dimension.
  • MIMO Multiple-Input Multiple-Output
  • E-UTRAN Evolved UMTS Terrestrial Radio Access Network
  • LTE Long- Term Evolution
  • E-UTRA Evolved UMTS Terrestrial Radio Access
  • Multi-antenna techniques are central to the 3GPP LTE standards; LTE supports several different multi-antenna techniques in order to enable high spectral efficiencies in a wide range of scenarios. In particular, a number of precoding formats are specified in the 3GPP Release 8 specifications.
  • Precoding is a technique for mapping modulated symbols onto multiple antennas for transmission either for spatial multiplexing or diversity or beamforming purposes. Precoding is used in multi-antenna systems to adapt the transmission to the short-term and/or long term properties of the channel.
  • E-UTRA Evolved Universal Terrestrial Radio Access
  • Physical channels and modulation v8.4.0, available at http://www.3gpp.org/ftp/specs/html-info/3621 1. htm.
  • the basic idea is to adjust the phases and/or the amplitudes of the information carrying signals transmitted from the multiple antennas so that the transmitted signals better suit the channel conditions between the multiple transmitter antennas and multiple receiver antennas.
  • Classical beamforming is a special case of precoding in which the phase of a single information-carrying signal is adjusted on each transmit antenna so that all the transmitted signals add constructively at the receiver.
  • precoding for MIMO systems can more generally be described as multiplying a vector-valued information-carrying signal with a precoder matrix.
  • the precoder matrix is chosen based on information about the channel properties. These channel properties, in turn, are measured by observing received reference signals, and comparing the received reference signals with known or expected values for these references. Of course, these measurements reflect channel characteristics corresponding to the particular MIMO channel over which the reference signal was sent. Thus, association of reference signals together with multi-antenna layers is very important. Based on this association, reference signals are used for measurement of various channel-related parameters; these parameters are crucial for selection of the best precoding matrix.
  • cell-specific reference signals (also referred to as common reference signals), are transmitted during the first and fifth OFDM symbols of each slot when normal cyclic prefix and two antenna ports are configured.
  • the cell-specific reference signals are transmitted during the first and fourth OFDM symbols when extended cyclic prefix is used.
  • LTE Release 8 at most four cell-specific reference signals are supported.
  • one, two or four common reference signals may be transmitted in a cell. Terminals use these reference signals to perform measurements for mobility as well as for channel estimation, so that the transmitted data and control signals can be demodulated and decoded.
  • the common reference signals are also used by each terminal in the cell to determine the number of supportable downlink signals or streams that best suit the current channel conditions, and may be used as well as to determine recommended precoding weights for the base station to use for downlink transmission.
  • the terminals also measure and feedback channel quality indicators to the base station; these channel quality indicators may be used for scheduling and link adaptation.
  • Various embodiments of the present invention provide a way to make effective use of more transmit antennas at a base station (such as an LTE eNodeB) than the available number of reference signals, while still effectively exploiting instantaneous channel information at the base station.
  • a base station such as an LTE eNodeB
  • the techniques described herein may be used even when channel reciprocity does not hold, i.e., when uplink and downlink channels are uncorrelated relative to each other such that it is not possible to estimate certain parameters for downlink transmission from an uplink transmission.
  • a particular, but non-limiting, application of the inventive techniques disclosed herein is to support antenna configurations in LTE with more than four antennas, where the correlation of the corresponding channel coefficients is low between at least some of the antennas. This may be achieved while keeping the overhead associated with control signaling and cell-specific reference signals low.
  • An exemplary method of transmitting data to a mobile terminal from a plurality of transmit antennas thus includes transmitting a plurality of reference signals and receiving channel feedback data derived by the mobile terminal from the reference signals.
  • the reference signals are each assigned to a corresponding one of two or more antenna groupings, wherein at least a first one of the antenna groupings comprises two or more transmit antennas, and transmitting each of the reference signals using at least one transmit antenna from the corresponding antenna grouping.
  • the method further includes determining a first beam-forming vector for the first one of the antenna grouping and mapping the one or more data streams to the transmit antennas according to a final precoding matrix that depends on the channel feedback data and the first beam-forming vector, to obtain a weighted transmit signal for each of the transmit antennas.
  • the transmit antennas are grouped so that propagation channel coefficients corresponding to each transmit antenna are more highly correlated within an antenna grouping than between any two transmit antennas from different antenna groupings.
  • the received channel feedback data includes an indicator corresponding to a recommended precoder matrix selected by the mobile terminal.
  • the final precoding matrix may be computed by calculating the Kronecker product of the recommended precoder matrix and the beam-forming vector.
  • the beam-forming vector for the first one of the antenna groupings is determined by estimating a direction of arrival for uplink signals received from the mobile terminal. This may comprise, in some embodiments, determining a beam-forming vector for the first one of the antenna groupings by estimating a dominant eigenvector based on a long-term average of uplink channel statistics (i.e. second-order statistics of uplink channel).
  • antenna groups other than the first group may also include two or more antennas.
  • some embodiments of the invention may further include determining a second beam-forming vector for a second one of the antenna groupings and calculating the final precoding matrix based on the channel feedback data and both the first and second beam- forming vectors.
  • determining the second beam-forming vector may simply comprise re-using the first beam-forming vector for the second one of the antenna groupings.
  • the final precoding matrix may be calculated based on the channel feedback data and the average of the first and second beam-forming vectors.
  • a particular application of the inventive techniques described herein is to a base station comprising eight transmit antennas, where the transmit antennas comprise a dual-polarized four-column array and wherein first and second antenna groupings each comprise four co- polarized antenna elements.
  • Various apparatus configured to carry out the inventive techniques disclosed herein are also described in the detailed description that follows. Accordingly, embodiments of the present invention include a base station configured to transmit data to a mobile terminal from a plurality of transmit antennas, where the base station comprises a transmitter configured to transmit a plurality of reference signals, a receiver configured to receive channel feedback data derived by the mobile terminal from the reference signals, and a precoding processor.
  • the transmitter is configured to assign each of the reference signals to a corresponding one of two or more antenna groupings, wherein at least a first one of the antenna groupings comprises two or more transmit antennas, and to transmit each of the reference signals using at least one transmit antenna from the corresponding antenna grouping.
  • the precoding processor is configured to determine a first beam-forming vector for the first one of the antenna groupings and to map the one or more data streams to the transmit antennas according to a final precoding matrix that depends on the channel feedback data and the first beam-forming vector, to obtain a weighted transmit signal for each of the transmit antennas.
  • Embodiments of the invention further include variants of this base station corresponding to the various methods noted above and discussed in further detail below.
  • Figure 1 is a block diagram of a wireless communications system.
  • Figure 2 is a block diagram of an exemplary transmitter circuit according to some embodiments of the present invention.
  • Figure 3 illustrates the mapping of common reference signals to multiple antennas for an
  • Figure 4 illustrates a precoder and the mapping of common reference signals to groups of antennas.
  • Figure 5 is a process flow diagram illustrating an exemplary method for transmitting data from a plurality of transmit antennas, according to some embodiments of the invention.
  • UE-specific reference signal is used in 3GPP specifications and elsewhere to refer to "user equipment.”
  • UE-specific reference signals may be used with fewer than eight transmit antennas.
  • the UE-specific reference signal is precoded with the same precoding weights as the data transmission and is used by only the mobile terminal receiving the accompanying traffic data.
  • the mobile terminal measures channels and recommends precoding weights, when the system is configured using UE-specific reference signals.
  • the eNodeB is expected to process received uplink signals and process them appropriately to obtain suitable precoding weights (also known as beamforming weights) for downlink transmission.
  • suitable precoding weights also known as beamforming weights
  • FIG. 1 is a simplified diagram of a wireless communications system employing multiple transmit antennas for transmitting one or more data streams to a mobile terminal.
  • wireless communications system 10 includes a base station node (eNode-B, in LTE parlance) 12, which includes a base station transceiver subsystem 100 and several antennas 150 (e.g., more than four).
  • Base station transceiver 100 includes radio- frequency (RF) transmitter circuitry 102, RF receiver circuitry 104, and baseband signal processing circuitry 106.
  • Baseband signal processing circuitry 106 which may be implemented using one or more appropriately programmed microprocessors, signal processors, specially designed digital and analog hardware, memory devices, and the like, includes a precoding processing unit 110 and a beamforming processor 112.
  • processing unit and “processor,” as used herein, generally refer to functional elements that may in fact be implemented using one or more microprocessors, one or several application-specific integrated circuits, or the like.
  • precoding processing unit 110 and beamforming processor 112 may be implemented using one device or several, and may be configured with appropriate program code, as necessary, to carry out the precoding and beamforming techniques described herein.
  • Signals transmitted from base station 12 travel through a propagation channel 16 to mobile terminal 14, which includes a mobile transceiver 200 and a plurality of receive antennas 250.
  • Mobile transceiver 200 includes a controller 202 and receiver signal processing unit 204.
  • controller 202 and receiver signal processing unit 204 may be implemented using one or more appropriately programmed microprocessors, signal processors, specially designed digital and analog hardware, memory devices, and the like, configured with appropriate program code to carry out communications with the base station 12 and to carry out the specific techniques described herein.
  • the detailed construction and operation of mobile terminals and base station apparatus depends on the precise system or standards for which they are designed, and is generally well known to those skilled in the art. Accordingly, while details necessary to a full understanding of the present invention are disclosed herein, many other details are omitted.
  • an information signal l(n) in the form of a binary data stream is input to the transceiver subsystem 100 at base station 12.
  • the baseband signal processing circuit 106 performs error coding, maps the input bits to complex modulation symbols, and generates transmit signals for each transmit antenna 150. This processing includes precoding and beamforming processing, which will be described in further detail below.
  • transceiver 100 After upward frequency conversion, filtering, and amplification by RF transmit circuit 102, transceiver 100 transmits the transmit signals from respective transmit antennas 150 through the communication channel 16 to the mobile terminal 14.
  • Transceiver 200 at mobile terminal 14 includes a controller 202 to control operation of the transceiver 200 and a receive (RX) signal processing circuit 204.
  • the RX signal processing circuit 204 demodulates and decodes the signal transmitted from the first station 12.
  • the output signal from the receiver 200 comprises an estimate l ⁇ n) of the original information signal. In the absence of errors, the estimate l ⁇ n) will be the same as the original information signal input /( «) provided to the transceiver 100 for transmission.
  • FIG. 2 illustrates exemplary details for a base station baseband processing circuit 106, according to some embodiments of the invention.
  • Baseband processing circuit 106 comprises a demultiplexer 206, a plurality of channel coding circuits 207, and a precoding processor 110, which provides a plurality of precoded transmit data streams to transmitter circuit 102.
  • An information bitstream l(n) is divided by demultiplexer 206 into N substreams
  • Encoder 208 comprises an error correction encoder, such as a Turbo encoder or convolutional encoder.
  • the modulator 210 may comprise, for example a
  • the modulation symbol streams Is 1 ( «),K s N ( «) ⁇ output by the respective modulators 210 are input to IFFT circuit 212, which includes a serial-to-parallel converter to divide the stream of modulation symbols S 1 (n) from the modulator 210 into N c substreams (where N c equals the number of subcarriers in the transmitted OFDM signal), an IFFT filter to apply an Inverse Fast Fourier transform as is known in the art, and a parallel-to- serial converter to generate an OFDM signal d t (n) .
  • IFFT circuit 212 which includes a serial-to-parallel converter to divide the stream of modulation symbols S 1 (n) from the modulator 210 into N c substreams (where N c equals the number of subcarriers in the transmitted OFDM signal), an IFFT filter to apply an Inverse Fast Fourier transform as is known in the art, and a parallel-to- serial converter to generate an OFDM signal d t (n) .
  • the OFDM signals Id 1 ( «),K d N ⁇ n) ⁇ output from the channel coding circuits 207 are input to the precoding processor 110, which maps the transmit signals to the M precoded transmit signals for upconversion and amplification by TX circuit 102 and transmission by antennas 150.
  • the precoding circuit 110 maps the OFDM signals to the antennas using a final precoding matrix W p , which has dimensions of
  • N x M which is determined based on channel feedback information received from the targeted mobile terminal via receiver circuit 104.
  • Figures 3A and 3B illustrate the placement of cell-specific reference signals in a downlink LTE resource block for a two-antenna configuration and a four-antenna configuration, respectively.
  • the downlink resource block 310A is mapped to a first antenna, and includes two cell-specific reference signals, corresponding to the solid time-frequency elements (resource elements) on each of the first and fifth OFDM symbols of the slot.
  • an actual OFDM signal may include many resource blocks, with cell- specific reference signals in each. This allows frequency-selective channel measurements to be made.
  • Downlink resource block 310B, mapped to a second antenna has the same number of cell-specific reference signals, but mapped to different resource elements.
  • the resource elements in resource block 310B that correspond to cell-specific reference signals in resource block 310A are left vacant, and vice-versa.
  • Figure 3B illustrates the mapping of cell-specific reference signals to downlink resource blocks 310A, 310B, 310C, and 310D, which are mapped to first, second, third, and fourth antennas respectively.
  • the placement of cell-specific reference signals for the first and second antennas is identical to that pictured in Figure 3A.
  • the cell-specific reference signals for the third and fourth antennas are placed in other non-overlapping resource elements in the first OFDM symbol of the slot. In any given resource block, the resource elements dedicated to cell- specific reference signals in other resource blocks are left vacant.
  • the techniques disclosed herein permit the use of more transmit antennas at a base station than can be uniquely assigned to cell-specific reference signals, while still permitting the exploitation of instantaneous channel information in the mapping of transmit signals to the antennas.
  • these techniques may be used to support antenna configurations in LTE systems using more than four antennas. As discussed in more detail below, this may be done even when the channel coefficients for some of the antennas are uncorrelated to those of others. As will be seen, these techniques do not require significant increases in control signaling compared to conventional systems.
  • the available transmit antennas at base station 12 are grouped into K groups, as shown in Figure 4, with a corresponding cell-specific antenna port assigned to each of the groups.
  • the M antennas 150 are grouped into groups 1 to K.
  • the antenna groups are formed based on the degree of statistical dependence between the corresponding channel coefficients.
  • One form of strong statistical dependency is high spatial correlation.
  • two or more closely spaced antennas 150 having highly correlated channel coefficients, may be grouped into one of the K groups, while other antennas 150, perhaps spaced at further distances from the first two, are assigned to one or more other groups.
  • cell-specific reference signals are transmitted on a subset of antennas in the group, thereby providing information on relative phase differences between the groups to the mobile terminal.
  • the cell-specific reference signals are associated with only a subset of antenna elements in the group, information about the channel coefficients of the other antenna elements in the same group may be derived by exploiting the above-mentioned in-group statistical dependency.
  • the mobile terminal uses the cell-specific reference signals per antenna group for measuring the relative phase differences between the groups and for assessing the channel characteristics in the downlink.
  • this information regarding the relative phase differences between the transmit antenna groups is used by the mobile terminal to determine a preferred precoder matrix W j7 from a set of available precoder matrices, and to recommend the preferred precoder matrix to the base station by sending one or several precoder matrix indicators (PMIs) to the base station.
  • PMIs precoder matrix indicators
  • CQI channel quality indicators
  • channel coefficient data and/or CQIs may be sent to the base station and used by the base station to select a preferred precoder matrix W 11 . In either case, this information may be collectively regarded as channel feedback data.
  • the base station 12 determines a beamforming vector W BF> , for each antenna group, and then combines these beamforming vectors with the recommended precoding matrix W j7 , e.g., as signaled by the mobile terminal, to find the final precoding matrix Wp for the whole multi-antenna transmit array.
  • the final precoding matrix W 7 is then used by the base station 12 to map the OFDM signals d r ..d N to the M transmit antennas 150.
  • Various embodiments of the invention are thus applicable to antenna arrangements having two or more groups of antennas, with at least one of the groups having two or more antennas.
  • the antennas may be intentionally placed in such a way that the fading is correlated.
  • a particular group may consist of antennas with the same polarization, placed relatively closely together (e.g., within one-half of a transmit signal wavelength).
  • Uplink measurements may then be used to obtain transmission weights, i.e., beamforming weights, for downlink transmission within each group. This can be done, for example, by estimating a direction of arrival or dominant eigenvectors from a relatively long-term average of the channel statistics. Those skilled in the art will recognize this approach as eigen beamforming based on second order statistics.
  • At least one common reference signal is transmitted (e.g., from a single one of the antennas in the group) and the mobile terminal determines preferred precoding weights and possibly a channel quality estimate (CQI).
  • the base station can then use the preferred precoding weights to co-phase the signals from different groups.
  • the corresponding CQI may also be used to capture the gain of the beamforming within each group.
  • the formulation of the final precoding matrix may in particular use the Kronecker-based precoder structure, as detailed further in the following examples. Those skilled in the art will appreciate that the Kronecker structure can take on many alternative and equivalent forms obtained by, for example, permuting the rows and columns of the resulting precoder matrix.
  • the base station may be configured to transmit two cell-specific reference signals, e.g., one on antenna 1 (in group 1) and one on antenna 3 (in group 2).
  • the two antenna groups may be installed with a large physical separation between them to ensure that these two groups of antennas experience different (relatively uncorrelated) instantaneous channel responses. The same can also be ensured by using orthogonal polarizations across these two groups, in which case a large physical separation will not be required.
  • the mobile terminal need not be aware of the total number of antennas at the eNodeB. So, for the above example of two groups of two antennas, the mobile terminal can only recognize that two antennas are transmitting cell-specific reference signals. Based on these cell-specific reference signals, the mobile terminal determines a preferred precoder matrix W j7 . Given current 3GPP LTE standards, W j7 will consist of any of the following for rank-1 transmission:
  • rank-1 cases are primarily discussed herein, to simply the notation, those skilled in the art will appreciate that the inventive techniques disclosed herein are readily extended to operations with higher ranks than rank 1.
  • the base station can utilize W j7 to find the pre-coding weight vectors for each of the two antenna groups. These may be denoted as W 1 and W 2 , respectively.
  • the base station can determine beamforming weights for the concerned antenna group, e.g., it can determine W ⁇ F 1 for antenna group 1 and W ⁇ F 2 for antenna group
  • the beamforming weights can be measured from any of the groups, or can be measured at both groups and then averaged to increase the beamforming reliability.
  • the final precoding matrix may be written as: where ® is the Kronecker product, and [W j7 ] is the second element of W 17 . (Note that
  • [W ⁇ ] 2 is always equal to 1 in the example codebook given above.
  • Wr 7 may be any of the following:
  • the final pre-coding matrix may be written as:
  • the final precoding matrix can be writ ttteenn aass::
  • the extension for rank 2 in this scenario can be done in a similar manner to that shown for above for the four antenna example. So, if the mobile terminal determines that the preferred precoding matrix is and the base station determines W 5F 1 and W ⁇ F 2 as shown above, we can write that: a a b b
  • an exemplary implementation can be four pairs of 45-degree dual- polarized antennas, where the antennas spaced very closely together, e.g., at one-half of the transmit signal wavelength. If the antenna pairs are very closely spaced to one another, then the eight antennas may be divided into two groups of four, based on their antenna polarization criterion.
  • the individual weights for the antennas in one of the groups can be determined from observing an average channel correlation from uplink measurements, including a direction of arrival as a special case.
  • the instantaneous relation between the two groups varies with the speed of the fast fading and can be difficult to obtain from uplink measurements (e.g., if FDD is used, or if TDD is used but the number of mobile terminal transmit antennas is lower than the number of receiver antennas).
  • two cell-specific reference signals can be used, and by transmitting them from antennas with different polarization, such as the same column, the channel feedback data from the terminal will tell how to co-phase the signal(s) transmitted from all the two groups of co- polarized antennas.
  • W 6 is selected by the mobile terminal from the two-antenna code- book, based on the transmitted cell-specific reference signals, and W ⁇ F is found in the base station for the four antenna elements of one group.
  • V/ f [W lt W 2t W 3i W 4t -jW lt -jW 2t -jW 3 t -jWj
  • the final precoding matrix is:
  • Figure 5 illustrates an exemplary method for determining a final precoding matrix according to some embodiments of the present invention.
  • the process illustrated in Figure 5 may be implemented, for example, at a base station (e.g., an LTE node-B), such as the base station 12 pictured in Figure 1 and discussed above.
  • a base station e.g., an LTE node-B
  • the process "begins”, as shown at block 510, with the grouping of the available transmitter antennas based on their statistical cross-dependencies, e.g., their fading correlations.
  • this grouping may be a onetime step, performed when the base station is built and/or configured.
  • the exact groupings may be changed from time to time.
  • a reference signal e.g., an LTE cell-specific reference signal
  • the reference signal for each group is transmitted via at least one antenna per group, as shown in block 530.
  • the reference signal for a given group may be transmitted on more than one antenna, particularly if an appropriate beamforming vector is already known, but the more general approach of transmitting the reference signals on a single antenna per group allows the system to determine a final precoding matrix without any initial knowledge of the targeted mobile terminal's direction.
  • the mobile terminal responds with channel feedback data, such as a pre-coding matrix indicator.
  • channel feedback data such as a pre-coding matrix indicator.
  • the base station determines beamforming vectors for each group of antennas that includes more than one antenna.
  • this process may use direction-of-arrival (DOA) -based beamforming techniques, where the transmission weights are determined assuming one dominant direction.
  • DOA direction-of-arrival
  • the dominant direction can be estimated according to:
  • the illustrated process continues with the calculation of the final precoding matrix from the initial precoding matrix and the beam-forming vectors, as shown at block 560. As discussed earlier, this calculation may comprise the computation of the Kronecker product of the recommended precoder matrix and the beam-forming vector(s).
  • the final precoding matrix is used to map data streams to the transmit antennas for transmission to the mobile terminal.
  • embodiments of the present invention include methods and apparatus for obtaining and effectively using channel statistics for precoding data transmissions in a situation where the number of available transmitter antennas is larger than the available cell-specific reference signals.
  • the techniques disclosed herein pave the way to use any number of available antennas from legacy system installations under the LTE reference signals framework, without requiring modification of the LTE standard. This is clearly beneficial when the need to use more than four antennas arises for LTE base stations, as it is generally desirable to reuse as much as possible of the existing LTE functionalities, such as transmission formats, control channels, CQI feedback, precoder structures, etc.
  • embodiments of the invention provide a novel way to re-use the off-the-shelf preferred multi- antenna schemes as described in LTE standard, while all reference signals are transmitted through cell-specific beamforming network, i.e., with no user-specific reference signals required.

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Abstract

Techniques are disclosed for determining transmitter antenna weights at a base station (12) having more available transmit antennas (150) than the available number of reference signals. An exemplary method includes transmitting (530) a plurality of reference signals and receiving (540) channel feedback data derived by a mobile terminal (14) from the reference signals. The reference signals are each assigned to a corresponding one of two or more antenna groupings, wherein at least a first one of the antenna groupings comprises two or more transmit antennas (150), and transmitted using at least one transmit antenna (150) from the corresponding antenna grouping. The method further includes determining (550) a first beam-forming vector for the first one of the antenna grouping and mapping (570) the one or more data streams to the transmit antennas (150) according to a final precoding matrix that depends on the channel feedback data and the first beam-forming vector, to obtain a weighted transmit signal for each of the antennas (150).

Description

METHOD FOR TRANSMISSION OF REFERENCE SIGNALS AND DETERMINATION OF PRECODING MATRICES FOR MULTI-ANTENNA TRANSMISSION
TECHNICAL FIELD
The present invention relates in general to the use of multi-antenna transmission techniques in cellular telecommunications system, and more particularly relates to techniques for transmitting reference signals and determining transmitter precoding matrices based on channel feedback data derived from the reference signals.
BACKGROUND Multi-antenna techniques are currently being applied to several wireless systems to increase system reliability and/or system throughput. Those skilled in the art will appreciate that the highest performance gains from multi-antenna processing are obtained when multiple antennas are deployed at both ends of the wireless communication link. In best case scenarios, i.e., when channel conditions are separable between transmit and receive antennas and high signal-to-noise ratios are observed at the mobile terminal end of the communications link, two or more data streams can be transmitted simultaneously, at the same frequency, separated only in the spatial dimension. In less favorable scenarios (such as inseparable spatial channels or lower signal-to-noise ratios at the mobile terminals, etc), multi-antenna techniques can still be used to increase the link reliability via so-called spatial diversity and beamforming methods. In general, these systems with multiple antennas at both sides are referred to as Multiple-Input Multiple-Output (MIMO) systems.
The 3rd-Generation Partnership Project (3GPP) is currently developing specifications for a so-called Evolved UMTS Terrestrial Radio Access Network (E-UTRAN) as part of their Long- Term Evolution (LTE) initiative to improve radio access technology. The air interface described by these specifications, commonly referred to simply as LTE or E-UTRA (Evolved UMTS Terrestrial Radio Access), is intended to assure competitiveness of 3GPP-based access technology. Multi-antenna techniques are central to the 3GPP LTE standards; LTE supports several different multi-antenna techniques in order to enable high spectral efficiencies in a wide range of scenarios. In particular, a number of precoding formats are specified in the 3GPP Release 8 specifications.
Precoding is a technique for mapping modulated symbols onto multiple antennas for transmission either for spatial multiplexing or diversity or beamforming purposes. Precoding is used in multi-antenna systems to adapt the transmission to the short-term and/or long term properties of the channel. (See, for example, 3GPP TS 36.211 , "Evolved Universal Terrestrial Radio Access (E-UTRA); Physical channels and modulation," v8.4.0, available at http://www.3gpp.org/ftp/specs/html-info/3621 1. htm.) The basic idea is to adjust the phases and/or the amplitudes of the information carrying signals transmitted from the multiple antennas so that the transmitted signals better suit the channel conditions between the multiple transmitter antennas and multiple receiver antennas. Classical beamforming is a special case of precoding in which the phase of a single information-carrying signal is adjusted on each transmit antenna so that all the transmitted signals add constructively at the receiver. However, precoding for MIMO systems can more generally be described as multiplying a vector-valued information-carrying signal with a precoder matrix.
The precoder matrix is chosen based on information about the channel properties. These channel properties, in turn, are measured by observing received reference signals, and comparing the received reference signals with known or expected values for these references. Of course, these measurements reflect channel characteristics corresponding to the particular MIMO channel over which the reference signal was sent. Thus, association of reference signals together with multi-antenna layers is very important. Based on this association, reference signals are used for measurement of various channel-related parameters; these parameters are crucial for selection of the best precoding matrix.
In LTE systems, cell-specific reference signals (also referred to as common reference signals), are transmitted during the first and fifth OFDM symbols of each slot when normal cyclic prefix and two antenna ports are configured. The cell-specific reference signals are transmitted during the first and fourth OFDM symbols when extended cyclic prefix is used. In LTE Release 8, at most four cell-specific reference signals are supported. Essentially, one, two or four common reference signals may be transmitted in a cell. Terminals use these reference signals to perform measurements for mobility as well as for channel estimation, so that the transmitted data and control signals can be demodulated and decoded. The common reference signals are also used by each terminal in the cell to determine the number of supportable downlink signals or streams that best suit the current channel conditions, and may be used as well as to determine recommended precoding weights for the base station to use for downlink transmission. The terminals also measure and feedback channel quality indicators to the base station; these channel quality indicators may be used for scheduling and link adaptation.
SUMMARY
Various embodiments of the present invention provide a way to make effective use of more transmit antennas at a base station (such as an LTE eNodeB) than the available number of reference signals, while still effectively exploiting instantaneous channel information at the base station. The techniques described herein may be used even when channel reciprocity does not hold, i.e., when uplink and downlink channels are uncorrelated relative to each other such that it is not possible to estimate certain parameters for downlink transmission from an uplink transmission.
A particular, but non-limiting, application of the inventive techniques disclosed herein is to support antenna configurations in LTE with more than four antennas, where the correlation of the corresponding channel coefficients is low between at least some of the antennas. This may be achieved while keeping the overhead associated with control signaling and cell-specific reference signals low.
An exemplary method of transmitting data to a mobile terminal from a plurality of transmit antennas thus includes transmitting a plurality of reference signals and receiving channel feedback data derived by the mobile terminal from the reference signals. The reference signals are each assigned to a corresponding one of two or more antenna groupings, wherein at least a first one of the antenna groupings comprises two or more transmit antennas, and transmitting each of the reference signals using at least one transmit antenna from the corresponding antenna grouping. The method further includes determining a first beam-forming vector for the first one of the antenna grouping and mapping the one or more data streams to the transmit antennas according to a final precoding matrix that depends on the channel feedback data and the first beam-forming vector, to obtain a weighted transmit signal for each of the transmit antennas.
In some embodiments, the transmit antennas are grouped so that propagation channel coefficients corresponding to each transmit antenna are more highly correlated within an antenna grouping than between any two transmit antennas from different antenna groupings. In these and other embodiments, the received channel feedback data includes an indicator corresponding to a recommended precoder matrix selected by the mobile terminal. In any of these embodiments, the final precoding matrix may be computed by calculating the Kronecker product of the recommended precoder matrix and the beam-forming vector.
In some embodiments, the beam-forming vector for the first one of the antenna groupings is determined by estimating a direction of arrival for uplink signals received from the mobile terminal. This may comprise, in some embodiments, determining a beam-forming vector for the first one of the antenna groupings by estimating a dominant eigenvector based on a long-term average of uplink channel statistics (i.e. second-order statistics of uplink channel).
In some embodiments, antenna groups other than the first group may also include two or more antennas. Thus, some embodiments of the invention may further include determining a second beam-forming vector for a second one of the antenna groupings and calculating the final precoding matrix based on the channel feedback data and both the first and second beam- forming vectors. In some embodiments, determining the second beam-forming vector may simply comprise re-using the first beam-forming vector for the second one of the antenna groupings. In others, the final precoding matrix may be calculated based on the channel feedback data and the average of the first and second beam-forming vectors.
A particular application of the inventive techniques described herein is to a base station comprising eight transmit antennas, where the transmit antennas comprise a dual-polarized four-column array and wherein first and second antenna groupings each comprise four co- polarized antenna elements. Various apparatus configured to carry out the inventive techniques disclosed herein are also described in the detailed description that follows. Accordingly, embodiments of the present invention include a base station configured to transmit data to a mobile terminal from a plurality of transmit antennas, where the base station comprises a transmitter configured to transmit a plurality of reference signals, a receiver configured to receive channel feedback data derived by the mobile terminal from the reference signals, and a precoding processor. The transmitter is configured to assign each of the reference signals to a corresponding one of two or more antenna groupings, wherein at least a first one of the antenna groupings comprises two or more transmit antennas, and to transmit each of the reference signals using at least one transmit antenna from the corresponding antenna grouping. The precoding processor is configured to determine a first beam-forming vector for the first one of the antenna groupings and to map the one or more data streams to the transmit antennas according to a final precoding matrix that depends on the channel feedback data and the first beam-forming vector, to obtain a weighted transmit signal for each of the transmit antennas. Embodiments of the invention further include variants of this base station corresponding to the various methods noted above and discussed in further detail below.
Other features and advantages of the invention will become apparent from the following detailed description of the invention when considered in conjunction with the accompanying drawings and claims.
BRIEF DESCRIPTION OF THE DRAWINGS Figure 1 is a block diagram of a wireless communications system. Figure 2 is a block diagram of an exemplary transmitter circuit according to some embodiments of the present invention. Figure 3 illustrates the mapping of common reference signals to multiple antennas for an
LTE system.
Figure 4 illustrates a precoder and the mapping of common reference signals to groups of antennas.
Figure 5 is a process flow diagram illustrating an exemplary method for transmitting data from a plurality of transmit antennas, according to some embodiments of the invention.
DETAILED DESCRIPTION
In certain system installations, the use of more than four transmitter antennas at a base station is desirable. For instance, if antenna configurations developed for Time Division- Synchronous Code Division Multiple Access (TD-SCDMA) are re-used, then eight transmit antennas may be available. To support more than four transmit antennas, a so-called UE- specific reference signal has also been defined. ("UE" is used in 3GPP specifications and elsewhere to refer to "user equipment." As used herein, the terms "mobile terminal" and "mobile station", are generally used instead, and are intended to be interchangeable with the term "UE", although no limitation to 3GPP-related devices is intended.) Of course, UE-specific reference signals may be used with fewer than eight transmit antennas. In any event, in contrast to the cell-specific reference signals, the UE-specific reference signal is precoded with the same precoding weights as the data transmission and is used by only the mobile terminal receiving the accompanying traffic data.
In the current LTE specifications, there is no feedback reporting mechanism, in the sense that the mobile terminal measures channels and recommends precoding weights, when the system is configured using UE-specific reference signals. Instead, the eNodeB is expected to process received uplink signals and process them appropriately to obtain suitable precoding weights (also known as beamforming weights) for downlink transmission. Furthermore, in the case with UE-specific reference signals, only a single stream, or signal, can be transmitted in LTE Release 8 and hence there is currently no possibility to perform spatial multiplexing.
Current specifications for precoding signals in LTE systems are limited to a four-antenna codebook. The cell-specific (common) reference signals are also designed for a maximum of four-antenna case. Thus, the current specifications are unclear as to how to obtain and exploit instantaneous channel information in conjunction with UE-specific reference signals for the case of more than four antennas. In systems using frequency-division duplexing (FDD), the uplink and downlink channels are typically uncorrelated, and it is therefore not possible to estimate precoding weights for downlink transmissions based on channel conditions observed from uplink transmissions, unless the arrangement is such that the channels are correlated, in which case the correlation may be estimated and used to at least slowly adapt the downlink transmission.
For time-division duplexing (TDD) systems, on the other hand, there is a possibility to exploit the channel reciprocity and in this way obtain estimates of precoding weights that match the instantaneous channel. However, this is still problematic in the event that the terminal does not perform transmissions from all of the antennas that are used for reception. Furthermore, this approach does not account for interference properties at the terminal or the actual receiver strategy employed by the terminal. Finally, several existing standards and systems, such as the TD-SCDMA systems mentioned above, use base station configurations with more than four (e.g., eight) transmitter antennas. In order to provide a clean migration path from these systems to LTE technology, strategies for fully exploiting these available transmitter antennas for beamforming are needed. In summary, the current LTE Release 8 standard does not enable the use of instantaneous channel knowledge with more than four transmit antennas with UE-specific reference signals.
Figure 1 is a simplified diagram of a wireless communications system employing multiple transmit antennas for transmitting one or more data streams to a mobile terminal. In one exemplary embodiment, wireless communications system 10 includes a base station node (eNode-B, in LTE parlance) 12, which includes a base station transceiver subsystem 100 and several antennas 150 (e.g., more than four). Base station transceiver 100 includes radio- frequency (RF) transmitter circuitry 102, RF receiver circuitry 104, and baseband signal processing circuitry 106. Baseband signal processing circuitry 106, which may be implemented using one or more appropriately programmed microprocessors, signal processors, specially designed digital and analog hardware, memory devices, and the like, includes a precoding processing unit 110 and a beamforming processor 112. Those skilled in the art will appreciate that the terms "processing unit" and "processor," as used herein, generally refer to functional elements that may in fact be implemented using one or more microprocessors, one or several application-specific integrated circuits, or the like. Thus, precoding processing unit 110 and beamforming processor 112 may be implemented using one device or several, and may be configured with appropriate program code, as necessary, to carry out the precoding and beamforming techniques described herein. Signals transmitted from base station 12 travel through a propagation channel 16 to mobile terminal 14, which includes a mobile transceiver 200 and a plurality of receive antennas 250. Mobile transceiver 200 includes a controller 202 and receiver signal processing unit 204. Like baseband signal processing circuitry 106, controller 202 and receiver signal processing unit 204 may be implemented using one or more appropriately programmed microprocessors, signal processors, specially designed digital and analog hardware, memory devices, and the like, configured with appropriate program code to carry out communications with the base station 12 and to carry out the specific techniques described herein. The detailed construction and operation of mobile terminals and base station apparatus depends on the precise system or standards for which they are designed, and is generally well known to those skilled in the art. Accordingly, while details necessary to a full understanding of the present invention are disclosed herein, many other details are omitted.
Generally speaking, an information signal l(n) in the form of a binary data stream is input to the transceiver subsystem 100 at base station 12. The baseband signal processing circuit 106 performs error coding, maps the input bits to complex modulation symbols, and generates transmit signals for each transmit antenna 150. This processing includes precoding and beamforming processing, which will be described in further detail below. After upward frequency conversion, filtering, and amplification by RF transmit circuit 102, transceiver 100 transmits the transmit signals from respective transmit antennas 150 through the communication channel 16 to the mobile terminal 14. Transceiver 200 at mobile terminal 14 includes a controller 202 to control operation of the transceiver 200 and a receive (RX) signal processing circuit 204. The RX signal processing circuit 204 demodulates and decodes the signal transmitted from the first station 12. The output signal from the receiver 200 comprises an estimate l{n) of the original information signal. In the absence of errors, the estimate l{n) will be the same as the original information signal input /(«) provided to the transceiver 100 for transmission.
Figure 2 illustrates exemplary details for a base station baseband processing circuit 106, according to some embodiments of the invention. Baseband processing circuit 106 comprises a demultiplexer 206, a plurality of channel coding circuits 207, and a precoding processor 110, which provides a plurality of precoded transmit data streams to transmitter circuit 102. An information bitstream l(n) is divided by demultiplexer 206 into N substreams
|/j («),K IN («)} . Each substream /, («) for / = 1,L N is input to a corresponding channel coding circuit 207, which includes an encoder 208, a modulator 210, and an Inverse Fast
Fourier Transform (IFFT) circuit 212. Encoder 208 comprises an error correction encoder, such as a Turbo encoder or convolutional encoder. The modulator 210 may comprise, for example a
QPSK or QAM modulator, or both. The modulation symbol streams Is1 («),K sN («)} output by the respective modulators 210 are input to IFFT circuit 212, which includes a serial-to-parallel converter to divide the stream of modulation symbols S1 (n) from the modulator 210 into Nc substreams (where Nc equals the number of subcarriers in the transmitted OFDM signal), an IFFT filter to apply an Inverse Fast Fourier transform as is known in the art, and a parallel-to- serial converter to generate an OFDM signal dt (n) .
The OFDM signals Id1 («),K dN {n)\ output from the channel coding circuits 207 are input to the precoding processor 110, which maps the transmit signals to the M precoded transmit signals for upconversion and amplification by TX circuit 102 and transmission by antennas 150. As will be described in further detail below, the precoding circuit 110 maps the OFDM signals to the antennas using a final precoding matrix Wp , which has dimensions of
N x M , and which is determined based on channel feedback information received from the targeted mobile terminal via receiver circuit 104.
Figures 3A and 3B illustrate the placement of cell-specific reference signals in a downlink LTE resource block for a two-antenna configuration and a four-antenna configuration, respectively. In Figure 3A, the downlink resource block 310A is mapped to a first antenna, and includes two cell-specific reference signals, corresponding to the solid time-frequency elements (resource elements) on each of the first and fifth OFDM symbols of the slot. (Those skilled in the art will appreciate that an actual OFDM signal may include many resource blocks, with cell- specific reference signals in each. This allows frequency-selective channel measurements to be made.) Downlink resource block 310B, mapped to a second antenna, has the same number of cell-specific reference signals, but mapped to different resource elements. Importantly, the resource elements in resource block 310B that correspond to cell-specific reference signals in resource block 310A are left vacant, and vice-versa.
Figure 3B illustrates the mapping of cell-specific reference signals to downlink resource blocks 310A, 310B, 310C, and 310D, which are mapped to first, second, third, and fourth antennas respectively. The placement of cell-specific reference signals for the first and second antennas is identical to that pictured in Figure 3A. The cell-specific reference signals for the third and fourth antennas are placed in other non-overlapping resource elements in the first OFDM symbol of the slot. In any given resource block, the resource elements dedicated to cell- specific reference signals in other resource blocks are left vacant.
Generally speaking, the techniques disclosed herein permit the use of more transmit antennas at a base station than can be uniquely assigned to cell-specific reference signals, while still permitting the exploitation of instantaneous channel information in the mapping of transmit signals to the antennas. In particular, these techniques may be used to support antenna configurations in LTE systems using more than four antennas. As discussed in more detail below, this may be done even when the channel coefficients for some of the antennas are uncorrelated to those of others. As will be seen, these techniques do not require significant increases in control signaling compared to conventional systems.
One embodiment of the invention may be summarized briefly according to the following. First, the available transmit antennas at base station 12 are grouped into K groups, as shown in Figure 4, with a corresponding cell-specific antenna port assigned to each of the groups. Thus, the M antennas 150 are grouped into groups 1 to K. As seen in Figure 4, there is a one-to- one mapping between the antenna groups 1 to K and the cell-specific reference signals CRS1 to CRSK- . More generally, it is possible that there be more than one cell-specific reference signal assigned to some groups.
The antenna groups are formed based on the degree of statistical dependence between the corresponding channel coefficients. One form of strong statistical dependency is high spatial correlation. Thus, two or more closely spaced antennas 150, having highly correlated channel coefficients, may be grouped into one of the K groups, while other antennas 150, perhaps spaced at further distances from the first two, are assigned to one or more other groups.
Within a particular antenna group, cell-specific reference signals are transmitted on a subset of antennas in the group, thereby providing information on relative phase differences between the groups to the mobile terminal. Although the cell-specific reference signals are associated with only a subset of antenna elements in the group, information about the channel coefficients of the other antenna elements in the same group may be derived by exploiting the above-mentioned in-group statistical dependency. The mobile terminal uses the cell-specific reference signals per antenna group for measuring the relative phase differences between the groups and for assessing the channel characteristics in the downlink. In some embodiments, this information regarding the relative phase differences between the transmit antenna groups is used by the mobile terminal to determine a preferred precoder matrix Wj7 from a set of available precoder matrices, and to recommend the preferred precoder matrix to the base station by sending one or several precoder matrix indicators (PMIs) to the base station. In these embodiments, channel quality indicators (CQI) may also be sent to the base station. In other embodiments, channel coefficient data and/or CQIs may be sent to the base station and used by the base station to select a preferred precoder matrix W11 . In either case, this information may be collectively regarded as channel feedback data.
The base station 12 (e.g., LTE eNode-B) determines a beamforming vector WBF>, for each antenna group, and then combines these beamforming vectors with the recommended precoding matrix Wj7 , e.g., as signaled by the mobile terminal, to find the final precoding matrix Wp for the whole multi-antenna transmit array. The final precoding matrix W7, is then used by the base station 12 to map the OFDM signals dr..dN to the M transmit antennas 150.
Various embodiments of the invention are thus applicable to antenna arrangements having two or more groups of antennas, with at least one of the groups having two or more antennas. Within a group having more than one antenna, the antennas may be intentionally placed in such a way that the fading is correlated. For example, a particular group may consist of antennas with the same polarization, placed relatively closely together (e.g., within one-half of a transmit signal wavelength). Uplink measurements may then be used to obtain transmission weights, i.e., beamforming weights, for downlink transmission within each group. This can be done, for example, by estimating a direction of arrival or dominant eigenvectors from a relatively long-term average of the channel statistics. Those skilled in the art will recognize this approach as eigen beamforming based on second order statistics.
From each group of antennas, at least one common reference signal is transmitted (e.g., from a single one of the antennas in the group) and the mobile terminal determines preferred precoding weights and possibly a channel quality estimate (CQI). The base station can then use the preferred precoding weights to co-phase the signals from different groups. The corresponding CQI may also be used to capture the gain of the beamforming within each group. The formulation of the final precoding matrix may in particular use the Kronecker-based precoder structure, as detailed further in the following examples. Those skilled in the art will appreciate that the Kronecker structure can take on many alternative and equivalent forms obtained by, for example, permuting the rows and columns of the resulting precoder matrix.
Those skilled in the art will appreciate that different beamforming vectors may be used for each of the different antenna groups, implying a generalized version of the mentioned kronecker structure.
Without loss of generality, details of the technique described generally above may be illustrated with the several antenna configurations discussed in the following examples. In a first example, two groups of antennas with two elements each are considered. Accordingly, M = A , and K = 2 . In this case, the base station may be configured to transmit two cell-specific reference signals, e.g., one on antenna 1 (in group 1) and one on antenna 3 (in group 2). The two antenna groups may be installed with a large physical separation between them to ensure that these two groups of antennas experience different (relatively uncorrelated) instantaneous channel responses. The same can also be ensured by using orthogonal polarizations across these two groups, in which case a large physical separation will not be required.
In general, the mobile terminal need not be aware of the total number of antennas at the eNodeB. So, for the above example of two groups of two antennas, the mobile terminal can only recognize that two antennas are transmitting cell-specific reference signals. Based on these cell-specific reference signals, the mobile terminal determines a preferred precoder matrix Wj7 . Given current 3GPP LTE standards, Wj7 will consist of any of the following for rank-1 transmission:
W
Figure imgf000011_0001
Of course, other "codebooks" for precoder matrices are possible. Although rank-1 cases are primarily discussed herein, to simply the notation, those skilled in the art will appreciate that the inventive techniques disclosed herein are readily extended to operations with higher ranks than rank 1.
After the mobile terminal signals the preferred precoder matrix to the base station, e.g., using a PMI, the base station can utilize Wj7 to find the pre-coding weight vectors for each of the two antenna groups. These may be denoted as W1 and W2 , respectively.
As a first step, the base station can determine beamforming weights for the concerned antenna group, e.g., it can determine WβF 1 for antenna group 1 and WβF 2 for antenna group
2. If some form of reciprocity is used for the beamforming vector determination, e.g., if direction-of-arrival (DOA) -based beamforming is used, then it may be assumed that Wβ/r J = WBF 2 = Ws/r . It is thus understood that the beamforming weights can be measured from any of the groups, or can be measured at both groups and then averaged to increase the beamforming reliability.
In this case, then, the final precoding matrix may be written as:
Figure imgf000012_0001
where ® is the Kronecker product, and [Wj7] is the second element of W17 . (Note that
[W^]2 is always equal to 1 in the example codebook given above.) To illustrate in more detail, if the mobile terminal suggests that
Figure imgf000012_0002
and the base station determines that
Figure imgf000012_0003
then the final precoding matrix may be writttteenn aass:
Figure imgf000012_0004
For the rank-2 case (again, using the 3GPP LTE codebook, and assuming that K=2 and
M=A), Wr7 may be any of the following:
1 1 1 1
W F 1 -1 j -j
So, if the mobile terminal suggests
1 1
W - j -j and the base station again determines
Figure imgf000012_0005
then the final pre-coding matrix may be written as:
Figure imgf000012_0006
The number of antennas in each group need not be identical. For example, consider the case where there are two antenna groups (K=2), but there are two statistically dependent antennas in the first group and three statistically dependent antennas in the second group. In this scenario, clearly, W5^ 1 ≠ WβF 2 . Those skilled in the art will note however, that the mobile terminal may be completely unaware that this scenario is different than the four antenna scenario discussed earlier, as only a single cell-specific reference signal need be transmitted for each group. In this case, if the base station determines the beamforming vectors a
W " BF, \ - ~ and
C
W yyBF,2 ~ -- d e and if the mobile terminal suggests that
Figure imgf000013_0001
then the final precoding matrix can be writ ttteenn aass::
Figure imgf000013_0002
The extension for rank 2 in this scenario can be done in a similar manner to that shown for above for the four antenna example. So, if the mobile terminal determines that the preferred precoding matrix is
Figure imgf000013_0003
and the base station determines W5F 1 and WβF 2 as shown above, we can write that: a a b b
W - Jc -Jc
Jd -Jd
Je -je
Another possibility for a base station antenna configuration is that the antennas are organized into four antenna groups with two antennas in each group (i.e., K=A and M=8). This case is very similar to the example given above for two groups of two antennas; a similar procedure can be applied for finding the final precoding matrix Wp . In this scenario, four cell- specific reference signals need to be transmitted, one for each group.
Given eight antennas, an exemplary implementation can be four pairs of 45-degree dual- polarized antennas, where the antennas spaced very closely together, e.g., at one-half of the transmit signal wavelength. If the antenna pairs are very closely spaced to one another, then the eight antennas may be divided into two groups of four, based on their antenna polarization criterion. According to a specific embodiment according to this exemplary implementation, a dual polarized four column array is used, as is used currently for TD-SCDMA. With this configuration, beamforming is performed within each polarization and co-phasing is established between the two polarizations to match the instantaneous channel to benefit from the full array gain. In such a case, there are K=2 groups, each group containing four co-polarized antenna elements.
Because the dual-polarized pairs are spaced very closely, the individual weights for the antennas in one of the groups (Wl, W2, W3, W4 ) can be determined from observing an average channel correlation from uplink measurements, including a direction of arrival as a special case. However, the instantaneous relation between the two groups varies with the speed of the fast fading and can be difficult to obtain from uplink measurements (e.g., if FDD is used, or if TDD is used but the number of mobile terminal transmit antennas is lower than the number of receiver antennas). Thus, two cell-specific reference signals can be used, and by transmitting them from antennas with different polarization, such as the same column, the channel feedback data from the terminal will tell how to co-phase the signal(s) transmitted from all the two groups of co- polarized antennas.
Thus, for example, W6, is selected by the mobile terminal from the two-antenna code- book, based on the transmitted cell-specific reference signals, and WβF is found in the base station for the four antenna elements of one group. Then, W7, is simply designed as: Wp = Wj7 ® Wβ/r . Thus, for rank-1 transmission, if
and the base station determines
Figure imgf000014_0001
then we can write that:
V/f = [WltW2t W3i W4t-jWlt-jW2t-jW3 t-jWj For rank-2 transmission, if the mobile terminal selects a recommended precoding matrix
Figure imgf000015_0001
and the beamforming vector Wβπ. is the same as above, then the final precoding matrix is:
Wx Wx
W2 W2
W, W,
W4 W4
W - Wx -Wx
W1 -W2 W3 -W3 W4 -W4 If the polarized pairs in the scenario described are instead largely separated in space, then we essentially have eight different antennas with uncorrelated channel responses in the system. Thus, we cannot support the transmission based on existing cell-specific reference signals based precoding techniques in LTE. However, it is understood that other antenna arrangements can be made based on this kind of dual-polarized antenna architecture for the eight transmitter antenna case.
With the above examples in mind, those skilled in the art will appreciate that Figure 5 illustrates an exemplary method for determining a final precoding matrix according to some embodiments of the present invention. The process illustrated in Figure 5 may be implemented, for example, at a base station (e.g., an LTE node-B), such as the base station 12 pictured in Figure 1 and discussed above.
The process "begins", as shown at block 510, with the grouping of the available transmitter antennas based on their statistical cross-dependencies, e.g., their fading correlations. Of course, those skilled in the art will recognize that this grouping may be a onetime step, performed when the base station is built and/or configured. However, those skilled in the art will recognize that the exact groupings may be changed from time to time.
Given the groups, a reference signal, e.g., an LTE cell-specific reference signal, is assigned to each antenna group, as shown at block 520. The reference signal for each group is transmitted via at least one antenna per group, as shown in block 530. Of course, the reference signal for a given group may be transmitted on more than one antenna, particularly if an appropriate beamforming vector is already known, but the more general approach of transmitting the reference signals on a single antenna per group allows the system to determine a final precoding matrix without any initial knowledge of the targeted mobile terminal's direction. As shown at block 540, the mobile terminal responds with channel feedback data, such as a pre-coding matrix indicator. Thus, the base station is now able to select an "initial" precoding matrix corresponding to the preferred matrix from the precoder matrix codebook.
As shown at block 550, the base station determines beamforming vectors for each group of antennas that includes more than one antenna. As suggested above, this process may use direction-of-arrival (DOA) -based beamforming techniques, where the transmission weights are determined assuming one dominant direction. The dominant direction can be estimated according to:
(9 = arg maxaH(6>)Ra(#) ,
W where the beamforming weights w are given by w = a(θ) , and where a(6>) is the steering vector for a given direction θ . R is a covariance matrix, which can be determined with exponential averaging of the channel covariance matrix. The advantages of DOA-based beamforming are that the technique is relatively robust to mobility, and that only a single parameter needs to be estimated. However, there is some performance degradation when angle spread increases. Of course, those skilled in the art will appreciate that other techniques for determining an appropriate beamforming vector for a group of statistically related antennas may be used. Furthermore, those skilled in the art will appreciate that different beamforming vectors may be determined for each group of antennas. Alternatively, particularly if the relative configuration within a group is the same from one group to another, the same beamforming vector may be used for two or more groups.
Referring once more to Figure 5, the illustrated process continues with the calculation of the final precoding matrix from the initial precoding matrix and the beam-forming vectors, as shown at block 560. As discussed earlier, this calculation may comprise the computation of the Kronecker product of the recommended precoder matrix and the beam-forming vector(s). At block 570, the final precoding matrix is used to map data streams to the transmit antennas for transmission to the mobile terminal.
As demonstrated above, embodiments of the present invention include methods and apparatus for obtaining and effectively using channel statistics for precoding data transmissions in a situation where the number of available transmitter antennas is larger than the available cell-specific reference signals. Thus, the techniques disclosed herein pave the way to use any number of available antennas from legacy system installations under the LTE reference signals framework, without requiring modification of the LTE standard. This is clearly beneficial when the need to use more than four antennas arises for LTE base stations, as it is generally desirable to reuse as much as possible of the existing LTE functionalities, such as transmission formats, control channels, CQI feedback, precoder structures, etc.
Along with this, regardless of the number of antennas present at the base station, embodiments of the invention provide a novel way to re-use the off-the-shelf preferred multi- antenna schemes as described in LTE standard, while all reference signals are transmitted through cell-specific beamforming network, i.e., with no user-specific reference signals required.
Of course, those skilled in the art will appreciate that although terminology from 3GPP LTE specifications has been used in this disclosure to exemplify the invention, this should not be seen as limiting the scope of the invention to only the aforementioned system. Other wireless systems, including WCDMA, WiMAX, UMB and GSM, may also benefit from exploiting the techniques described herein. Furthermore, it should also be noted that terminology such as eNodeB and UE, and the detailed discussions of transmission between a base station and a mobile terminal should be considering non-limiting, and in particular does not imply a certain hierarchical relation between the node that performs the precoding techniques described herein and the receiving node. Thus, for example, the inventive techniques may be applied to peer-to- peer transmission scenarios.
Accordingly, those skilled in the art will recognize that the present invention may be carried out in other ways than those specifically set forth herein without departing from essential characteristics of the invention. The present embodiments are to be considered in all respects as illustrative and not restrictive, and the present invention is limited only by the attached claims.

Claims

CLAIMSWhat is claimed is:
1. A method of transmitting data to a mobile terminal (14) from a plurality of transmit antennas (150), the method comprising transmitting a plurality of reference signals and receiving channel feedback data derived by the mobile terminal (14) from the reference signals, characterized in that the method further comprises: assigning (520) each of the reference signals to a corresponding one of two or more antenna groupings, wherein at least a first one of the antenna groupings comprises two or more transmit antennas (150); transmitting (530) each of the reference signals using at least one transmit antenna
(150) from the corresponding antenna grouping; determining (550) a first beam-forming vector for the first one of the antenna groupings; and mapping (570) the one or more data streams to the transmit antennas (150) according to a final precoding matrix that depends on the channel feedback data and the first beam-forming vector, to obtain a weighted transmit signal for each of the transmit antennas (150).
2. The method of claim 1 , further characterized in that the transmit antennas are grouped so that propagation channel coefficients corresponding to each transmit antenna (150) are more highly correlated within an antenna grouping than between any two transmit antennas (150) from different antenna groupings.
3. The method of claim 1 or 2, further characterized in that the received channel feedback data includes an indicator corresponding to a recommended precoder matrix selected by the mobile terminal and in that mapping (570) the one or more data streams to the transmit antennas (150) comprises computing the final precoding matrix by calculating the Kronecker product of the recommended precoder matrix and the beam-forming vector.
4. The method of any of claims 1-3, further characterized in that determining (550) a beam- forming vector for the first one of the antenna groupings comprises estimating a direction of arrival for uplink signals received from the mobile terminal (14).
5. The method of any of claims 1-3, further characterized in that determining (550) a beam- forming vector for the first one of the antenna groupings comprises estimating a dominant eigenvector based on an average of uplink channel statistics.
6. The method of any of claims 1-5, further characterized in that the method comprises determining a second beam-forming vector for a second one of the antenna groupings and calculating the final precoding matrix based on the channel feedback data and the first and second beam-forming vectors.
7. The method of claim 6, further characterized in that determining the second beam- forming vector comprises re-using the first beam-forming vector for the second one of the antenna groupings.
8. The method of claim 6, further characterized by calculating the final precoding matrix based on the channel feedback data and the average of the first and second beam-forming vectors.
9. The method of any of claims 1 -8, wherein the transmit antennas (150) comprise a dual- polarized four-column array and wherein first and second antenna groupings each comprise four co-polarized antenna elements.
10. A base station (12) configured to transmit data to a mobile terminal (14) from a plurality of transmit antennas (150), comprising a transmitter (102) configured to transmit a plurality of reference signals, a receiver (104) configured to receive channel feedback data derived by the mobile terminal (14) from the reference signals, and a precoding processor (110), characterized in that: the transmitter (102) is configured to assign each of the reference signals to a corresponding one of two or more antenna groupings, wherein at least a first one of the antenna groupings comprises two or more transmit antennas (150), and to transmit each of the reference signals using at least one transmit antenna (150) from the corresponding antenna grouping; and the precoding processor (110) is configured to determine a first beam-forming vector for the first one of the antenna groupings and to map the one or more data streams to the transmit antennas (150) according to a final precoding matrix that depends on the channel feedback data and the first beam-forming vector, to obtain a weighted transmit signal for each of the transmit antennas (150).
1 1. The base station (12) of claim 10, further characterized in that the transmit antennas (150) are grouped so that propagation channel coefficients corresponding to each transmit antenna (150) are more highly correlated within an antenna grouping than between any two transmit antennas (150) from different antenna groupings.
12. The base station (12) of claim 10 or 11 , further characterized in that the received channel feedback data includes an indicator corresponding to a recommended precoder matrix selected by the mobile terminal (14) and in that the precoding processor (110) is configured to compute the final precoding matrix by calculating the Kronecker product of the recommended precoder matrix and the beam-forming vector.
13. The base station (12) of any of claims 10-12, further characterized in that the precoding processor (110) is configured to determine a beam-forming vector for the first one of the antenna groupings by estimating a direction of arrival for uplink signals from the mobile terminal (14).
14. The base station (12) of any of claims 10-12, further characterized in that the precoding processor (1 10) is configured to determine a beam-forming vector for the first one of the antenna groupings by estimating a dominant eigenvector based on an average of uplink channel statistics.
15. The base station (12) of any of claims 10-14, further characterized in that the precoding processor (110) is configured to determine a second beam-forming vector for a second one of the antenna groupings and to calculate the final precoding matrix based on the channel feedback data and the first and second beam-forming vectors.
16. The base station (12) of claim 15, further characterized in that the precoding processor (110) is configured to determine the second beam-forming vector by re-using the first beam- forming vector for the second one of the antenna groupings.
17. The base station (12) of claim 15, further characterized in that the precoding processor (110) is configured to calculate the final precoding matrix based on the channel feedback data and the average of the first and second beam-forming vectors.
18. The base station (12) of any of claims 10-17, wherein the transmit antennas (150) comprise a dual-polarized four-column array and wherein first and second antenna groupings each comprise four co-polarized antenna elements.
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Cited By (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012153204A1 (en) * 2011-05-09 2012-11-15 Telefonaktiebolaget L M Ericsson (Publ) Channel estimation for avery large-scale mimo system using pilot reference signals transmitted on selected sets of transmit antennas
CN102904625A (en) * 2011-07-26 2013-01-30 株式会社日立制作所 Reference signal design for distributed antenna systems
CN102918781A (en) * 2011-06-03 2013-02-06 华为技术有限公司 Pre-coding method and transmitter used in distributed multiple input multiple output system
WO2012123257A3 (en) * 2011-03-11 2013-02-28 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Method for determining beamforming parameters in a wireless communication system and to a wireless communication system
WO2013129984A1 (en) * 2012-03-02 2013-09-06 Telefonaktiebolaget L M Ericsson (Publ) Radio base station and method therein for transmitting a data signal to a user equipment in a radio communications network
WO2014074894A1 (en) * 2012-11-09 2014-05-15 Interdigital Patent Holdings, Inc. Beamforming methods and methods for using beams
WO2014169418A1 (en) * 2013-04-15 2014-10-23 Qualcomm Incorporated Flexible elevation beamforming
US9008677B2 (en) 2011-06-08 2015-04-14 Qualcomm Incorporated Communication devices for multiple group communications
EP2830232A4 (en) * 2012-03-20 2015-05-06 China Academy Of Telecomm Tech Double-stream beamforming method and device
US20150195020A1 (en) * 2014-01-06 2015-07-09 Intel IP Corporation Systems, methods, and devices for hybrid full-dimensional multiple-input multiple-output
KR20160010443A (en) * 2013-05-01 2016-01-27 엘지전자 주식회사 Method for transmitting feedback information through terminal to for split beamforming in wireless communication system and apparatus therefor
EP3024155A4 (en) * 2013-07-14 2017-02-22 LG Electronics Inc. Method for transceiving data symbol using antenna correlation in wireless access system which supports massive antenna
EP2642670A4 (en) * 2010-12-17 2017-04-12 Huawei Technologies Co., Ltd. Communication method, device and system for a distributed antenna system
WO2018031422A1 (en) * 2016-08-12 2018-02-15 Qualcomm Incorporated Dynamic uplink antenna port management
CN110275132A (en) * 2019-06-18 2019-09-24 西京学院 A kind of indoor orientation method based on two dimensional code mapping
WO2022047631A1 (en) * 2020-09-01 2022-03-10 Nokia Shanghai Bell Co., Ltd. Beamforming scheme in higher rank transmission
WO2022213347A1 (en) * 2021-04-09 2022-10-13 Qualcomm Incorporated Channel state reporting for the updating of precoders
CN115379470A (en) * 2021-05-21 2022-11-22 华为技术有限公司 Beam forming method and related device

Families Citing this family (97)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20100019948A (en) * 2008-08-11 2010-02-19 엘지전자 주식회사 Method of transmitting data using spatial multiplexing
JP5322327B2 (en) 2009-01-05 2013-10-23 マーベル ワールド トレード リミテッド Precoding of codebook for MIMO communication system
US8385441B2 (en) 2009-01-06 2013-02-26 Marvell World Trade Ltd. Efficient MIMO transmission schemes
US8238483B2 (en) 2009-02-27 2012-08-07 Marvell World Trade Ltd. Signaling of dedicated reference signal (DRS) precoding granularity
US9112575B2 (en) * 2009-03-12 2015-08-18 Futurewei Technologies, Inc. System and method for smart relay operation in a wireless communications system
WO2010116273A1 (en) * 2009-04-06 2010-10-14 Marvell World Trade Ltd Improved feedback strategies for multi-user mimo communication systems
JP5607143B2 (en) 2009-04-21 2014-10-15 マーベル ワールド トレード リミテッド COMMUNICATION METHOD, COMMUNICATION DEVICE, MOBILE COMMUNICATION TERMINAL, CHIPSET, AND COMMUNICATION SYSTEM
KR101647377B1 (en) * 2009-05-22 2016-08-10 엘지전자 주식회사 A method for adaptive multi-antenna transmission based on antenna transmission power in wireless communication system and apparatus thereof
WO2010137925A2 (en) * 2009-05-29 2010-12-02 엘지전자 주식회사 Method and device for efficiently transmitting precoded reference signal in radio communication system
US8831523B2 (en) 2009-06-18 2014-09-09 Qualcomm Incorporated Methods and apparatus for beamforming for femtocells
KR101678435B1 (en) * 2009-07-17 2016-12-06 엘지전자 주식회사 Method for receiving downlink signal in mimo communication system and apparatus therefor
US9667378B2 (en) * 2009-10-01 2017-05-30 Telefonaktiebolaget Lm Ericsson (Publ) Multi-granular feedback reporting and feedback processing for precoding in telecommunications
JP5149257B2 (en) * 2009-10-02 2013-02-20 シャープ株式会社 Wireless communication system, communication apparatus, and wireless communication method
US8675794B1 (en) 2009-10-13 2014-03-18 Marvell International Ltd. Efficient estimation of feedback for modulation and coding scheme (MCS) selection
US9432164B2 (en) * 2009-10-15 2016-08-30 Qualcomm Incorporated Method and apparatus for reference signal sequence mapping in wireless communication
US8917796B1 (en) 2009-10-19 2014-12-23 Marvell International Ltd. Transmission-mode-aware rate matching in MIMO signal generation
US8325860B2 (en) 2009-11-09 2012-12-04 Marvell World Trade Ltd. Asymmetrical feedback for coordinated transmission systems
CN102783120B (en) * 2009-12-17 2015-07-01 马维尔国际贸易有限公司 MIMO feedback schemes for cross-polarized antennas
WO2011083417A2 (en) 2010-01-07 2011-07-14 Marvell World Trade Ltd Signaling of dedicated reference signal (drs) precoding granularity
JP5258002B2 (en) 2010-02-10 2013-08-07 マーベル ワールド トレード リミテッド Device, mobile communication terminal, chipset, and method in MIMO communication system
KR101650955B1 (en) * 2010-03-25 2016-09-06 엘지전자 주식회사 Method and apparatus for transmitting feedback information of user equipment in distributed antenna system
US8687741B1 (en) 2010-03-29 2014-04-01 Marvell International Ltd. Scoring hypotheses in LTE cell search
US8989240B2 (en) * 2010-06-23 2015-03-24 Koninklijke Philips N.V. Method for operating a secondary station
CN102377466B (en) * 2010-08-13 2014-04-30 华为技术有限公司 Multi-antenna diversity scheduling method and multi-antenna diversity scheduling device
US8615052B2 (en) 2010-10-06 2013-12-24 Marvell World Trade Ltd. Enhanced channel feedback for multi-user MIMO
JP2012100254A (en) 2010-10-06 2012-05-24 Marvell World Trade Ltd Codebook subsampling for pucch feedback
KR101869357B1 (en) 2010-12-10 2018-06-21 선 페이턴트 트러스트 Signal generation method and signal generation device
US9048970B1 (en) 2011-01-14 2015-06-02 Marvell International Ltd. Feedback for cooperative multipoint transmission systems
US8861391B1 (en) 2011-03-02 2014-10-14 Marvell International Ltd. Channel feedback for TDM scheduling in heterogeneous networks having multiple cell classes
WO2012131612A1 (en) 2011-03-31 2012-10-04 Marvell World Trade Ltd. Channel feedback for cooperative multipoint transmission
KR20130017572A (en) * 2011-08-11 2013-02-20 삼성전자주식회사 Method and apparatus for determining analog beam in hybrid beamforming system
US9680537B2 (en) * 2011-08-15 2017-06-13 Ntt Docomo , Inc. Radio base station, user terminal, radio communication system and radio communication method
KR101878211B1 (en) * 2011-09-19 2018-07-16 삼성전자주식회사 Apparatus and method for operating multiple beamforming transceiver in wireless communication system
WO2013068916A1 (en) 2011-11-07 2013-05-16 Marvell World Trade Ltd. Codebook sub-sampling for frequency-selective precoding feedback
WO2013068915A2 (en) 2011-11-07 2013-05-16 Marvell World Trade Ltd. Precoding feedback for cross-polarized antennas with magnitude information
WO2013068974A1 (en) 2011-11-10 2013-05-16 Marvell World Trade Ltd. Differential cqi encoding for cooperative multipoint feedback
US9220087B1 (en) 2011-12-08 2015-12-22 Marvell International Ltd. Dynamic point selection with combined PUCCH/PUSCH feedback
CN103563265B (en) * 2011-12-23 2016-08-24 华为技术有限公司 Signal sending, receiving method, equipment and signal receiving and transmitting system
KR101922597B1 (en) * 2011-12-27 2019-02-21 삼성전자주식회사 Method and apparatus for transmitting and receiving channel state information reference signal for massive multi input multi output system based wireless communication systems
US8902842B1 (en) 2012-01-11 2014-12-02 Marvell International Ltd Control signaling and resource mapping for coordinated transmission
KR101890419B1 (en) 2012-01-16 2018-08-21 삼성전자주식회사 Method and apparatus for transmitting and receiving reference signal
JPWO2013129146A1 (en) * 2012-03-02 2015-07-30 日本電気株式会社 Channel estimation method and receiver
US9331386B2 (en) * 2012-03-06 2016-05-03 Telefonaktiebolaget Lm Ericsson (Publ) Beamformed downlink communications for a multiple antenna system
CN103378882B (en) * 2012-04-16 2018-04-27 中兴通讯股份有限公司 A kind of extensive antenna system control signal sending method and device
KR20150018792A (en) * 2012-04-20 2015-02-24 엘지전자 주식회사 Method for downlink beamforming in wireless access system and device therefor
US9143951B2 (en) 2012-04-27 2015-09-22 Marvell World Trade Ltd. Method and system for coordinated multipoint (CoMP) communication between base-stations and mobile communication terminals
ES2429416B1 (en) * 2012-05-10 2014-11-21 Vodafone España, S.A.U. ACTIVE ANTENNA CONTROLLER AND SAME CONTROL PROCEDURE
CN104272622B (en) 2012-05-22 2018-04-06 太阳专利托管公司 Sending method, method of reseptance, dispensing device and reception device
WO2013185320A1 (en) 2012-06-14 2013-12-19 华为技术有限公司 Method, user equipment, and base station evolved node for determining precoding matrix indicator
US9369193B2 (en) 2012-09-05 2016-06-14 Lg Electronics Inc. Efficient feedback transmission method in multi-antenna wireless communication system and device for same
US9312934B2 (en) * 2012-09-18 2016-04-12 Lg Electronics Inc. Method for transmitting efficient feedback in multi-antenna wireless communication system and apparatus therefor
CN103812546B (en) * 2012-11-07 2017-08-25 华为技术有限公司 A kind of reference signal mapping method based on aerial array, apparatus and system
KR101772040B1 (en) * 2013-01-02 2017-08-29 삼성전자주식회사 Method and apparatus for fast beam-link construction scheme in the mobile communication system
US9503171B2 (en) * 2013-01-04 2016-11-22 Electronics And Telecommunications Research Institute Method for transmitting signal using multiple antennas
CN105009626B (en) * 2013-02-24 2018-09-25 Lg电子株式会社 Method of the report for the channel state information of 3 dimension Wave beam formings in a wireless communication system
KR101978776B1 (en) 2013-02-28 2019-05-16 삼성전자주식회사 Method and apparatus for transmitting and receivintg feedback information in mobile communication system based on full dimension mimo
CN104303442B (en) * 2013-03-08 2018-04-20 华为技术有限公司 Feedback method, receiving terminal and the transmitting terminal of pre-coding matrix instruction
EP3484075A1 (en) 2013-03-08 2019-05-15 Huawei Technologies Co. Ltd. Method for feeding back precoding matrix indicator, receive end and transmit end
WO2014161166A1 (en) 2013-04-03 2014-10-09 华为技术有限公司 Methods and devices for reporting and receiving channel state information
JP6396422B2 (en) * 2013-04-08 2018-09-26 エルジー エレクトロニクス インコーポレイティド Control information providing method and apparatus for split beamforming in a wireless communication system
KR20150143422A (en) 2013-04-08 2015-12-23 엘지전자 주식회사 Method and apparatus for reporting channel state information for fractional beamforming in a wireless communication system
US9712222B2 (en) 2013-04-10 2017-07-18 Lg Electronics Inc. Layer alignment method and apparatus for multilayer three-dimensional beamforming in wireless communication system
KR102071440B1 (en) * 2013-05-10 2020-01-30 후아웨이 테크놀러지 컴퍼니 리미티드 Method for determining precoding matrix indicator, user equipment and base station
ES2764386T3 (en) 2013-08-08 2020-06-03 Huawei Tech Co Ltd Method for determining a precoding matrix indicator, receiving device and transmitting device
WO2015033661A1 (en) * 2013-09-03 2015-03-12 ソニー株式会社 Communication control apparatus, communication control method and terminal apparatus
JP6351129B2 (en) * 2013-12-31 2018-07-04 ホアウェイ・テクノロジーズ・カンパニー・リミテッド Method for acquiring channel information, base station and terminal
US10020920B2 (en) * 2014-03-04 2018-07-10 Lg Electronics Inc. Method for transmitting enhanced reference signal in multi-antenna wireless communication system and apparatus therefor
WO2015131382A1 (en) * 2014-03-06 2015-09-11 华为技术有限公司 Method and apparatus for determining pre-coding matrix
WO2015154283A1 (en) * 2014-04-10 2015-10-15 华为技术有限公司 Channel status information reporting method, user equipment and base station
CN105706373B (en) * 2014-05-30 2020-04-03 华为技术有限公司 Method and device for reporting Channel State Information (CSI) and base station antenna
EP3142261B1 (en) 2014-06-09 2019-04-17 Huawei Technologies Co. Ltd. Antenna port mapping method and device
CN105356924B (en) * 2014-08-21 2019-05-10 中兴通讯股份有限公司 Dual polarized antenna system DOA-BF weights estimation method and apparatus
ES2898201T3 (en) 2014-09-25 2022-03-04 Ericsson Telefon Ab L M Network node, user equipment, and methods therein for allowing the UE to determine a precoder codebook
US9825742B2 (en) * 2014-10-03 2017-11-21 Samsung Electronics Co., Ltd. Codebook design and structure for advanced wireless communication systems
US10567060B2 (en) * 2014-10-24 2020-02-18 Samsung Electronics Co., Ltd. Efficient vector quantizer for FD-MIMO systems
WO2016064246A1 (en) * 2014-10-24 2016-04-28 Samsung Electronics Co., Ltd. Efficient vector quantizer for fd-mimo systems
US9867175B2 (en) * 2014-12-03 2018-01-09 Qualcomm Incorporated Transmit antenna diversity scheme
US9680535B2 (en) * 2015-01-16 2017-06-13 Samsung Electronics Co., Ltd. Method and apparatus for reduced feedback FD-MIMO
EP3242434B1 (en) 2015-01-30 2021-08-25 Huawei Technologies Co., Ltd. Method and device for transmitting feedback information in communication system
ES2927380T3 (en) * 2015-05-12 2022-11-04 Nec Corp Method and apparatus for signal detection and transmission pattern configuration
JP7002185B2 (en) * 2015-07-30 2022-01-20 パナソニック インテレクチュアル プロパティ コーポレーション オブ アメリカ Transmission method, transmitter, receiver, receiver
WO2017088925A1 (en) * 2015-11-26 2017-06-01 Nokia Solutions And Networks Oy Channel estimation in communications
WO2017161575A1 (en) * 2016-03-25 2017-09-28 Qualcomm Incorporated Channel state information reference signal transmission
US11191061B2 (en) 2016-04-19 2021-11-30 Qualcomm Incorporated Beam reference signal based narrowband channel measurement and CQI reporting
CN109450505B (en) * 2016-05-13 2019-11-15 华为技术有限公司 A kind of channel information sending method, data transmission method for uplink and equipment
EP3461301A1 (en) 2016-05-20 2019-04-03 Telefonaktiebolaget LM Ericsson (PUBL) Method for utilizing full antenna array power to estimate beam from subarray
KR102240171B1 (en) * 2016-11-04 2021-04-14 텔레호낙티에볼라게트 엘엠 에릭슨(피유비엘) Cell identification information
PL3596780T3 (en) 2017-03-13 2022-01-31 Telefonaktiebolaget Lm Ericsson (Publ) Self-calibration of antenna array system
CN107979878B (en) * 2017-10-11 2019-08-23 捷开通讯(深圳)有限公司 A kind of communication means and base station
WO2019095182A1 (en) * 2017-11-16 2019-05-23 Lenovo (Beijing) Limited Method and apparatus for mimo transmission
EP3857732A1 (en) * 2018-09-28 2021-08-04 Telefonaktiebolaget Lm Ericsson (Publ) Systems and methods for correction of beam direction due to self-coupling
US10778298B1 (en) 2019-03-29 2020-09-15 At&T Intellectual Property I, L.P. Context-based precoding matrix computations for radio access network for 5G or other next generation network
CN113315555B (en) * 2020-02-27 2022-05-13 华为技术有限公司 Beam forming method and related device
US11303333B2 (en) * 2020-07-17 2022-04-12 Nokia Technologies Oy Method and an apparatus for a transmission scheme
CN113556162B (en) * 2020-08-18 2022-06-21 中兴通讯股份有限公司 Beam forming method, network equipment, terminal and storage medium
WO2022198471A1 (en) * 2021-03-24 2022-09-29 华为技术有限公司 Information feedback method and related device
US11438044B1 (en) * 2021-07-15 2022-09-06 Nokia Solutions And Networks Oy Interference aware eigen-beamforming based on second order statistics

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060098754A1 (en) * 2004-10-21 2006-05-11 Samsung Electronics Co., Ltd. Beam and power allocation method for MIMO communication system
US20060268623A1 (en) * 2005-03-09 2006-11-30 Samsung Electronics Co., Ltd. Transmitting/receiving apparatus and method in a closed-loop MIMO system
EP1909407A1 (en) * 2006-10-02 2008-04-09 Samsung Electronics Co., Ltd. System and method for performing precoding in a wireless communication system

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7538740B2 (en) * 2006-03-06 2009-05-26 Alcatel-Lucent Usa Inc. Multiple-element antenna array for communication network
US7702029B2 (en) * 2006-10-02 2010-04-20 Freescale Semiconductor, Inc. MIMO precoding enabling spatial multiplexing, power allocation and adaptive modulation and coding
US8068552B2 (en) 2007-02-22 2011-11-29 Cisco Technology, Inc. Method and system for achieving spatial diversity of a wireless communications network
US8046022B2 (en) * 2008-07-08 2011-10-25 Wi-Lan, Inc. Signal transmission parameter control using channel sounding

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20060098754A1 (en) * 2004-10-21 2006-05-11 Samsung Electronics Co., Ltd. Beam and power allocation method for MIMO communication system
US20060268623A1 (en) * 2005-03-09 2006-11-30 Samsung Electronics Co., Ltd. Transmitting/receiving apparatus and method in a closed-loop MIMO system
EP1909407A1 (en) * 2006-10-02 2008-04-09 Samsung Electronics Co., Ltd. System and method for performing precoding in a wireless communication system

Cited By (38)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2642670A4 (en) * 2010-12-17 2017-04-12 Huawei Technologies Co., Ltd. Communication method, device and system for a distributed antenna system
WO2012123257A3 (en) * 2011-03-11 2013-02-28 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Method for determining beamforming parameters in a wireless communication system and to a wireless communication system
US9219535B2 (en) 2011-03-11 2015-12-22 Fraunhofer-Gesellschaft Foerderung Der Angewandten Forschung E.V. Method for determining beamforming parameters in a wireless communication system and to a wireless communication system
US8837621B2 (en) 2011-05-09 2014-09-16 Telefonaktiebolaget L M Ericsson (Publ) Channel estimation for a very large-scale multiple-input multiple output (MIMO) system
WO2012153204A1 (en) * 2011-05-09 2012-11-15 Telefonaktiebolaget L M Ericsson (Publ) Channel estimation for avery large-scale mimo system using pilot reference signals transmitted on selected sets of transmit antennas
US9130615B2 (en) 2011-05-09 2015-09-08 Telefonaktiebolaget L M Ericsson (Publ) Channel estimation for a very large-scale multiple-input multiple-output (MIMO) system
CN102918781B (en) * 2011-06-03 2015-03-25 华为技术有限公司 Pre-coding method and transmitter used in distributed multiple input multiple output system
CN102918781A (en) * 2011-06-03 2013-02-06 华为技术有限公司 Pre-coding method and transmitter used in distributed multiple input multiple output system
KR101560609B1 (en) * 2011-06-08 2015-10-16 퀄컴 인코포레이티드 Communication devices for multiple group communications
US9008677B2 (en) 2011-06-08 2015-04-14 Qualcomm Incorporated Communication devices for multiple group communications
US9735846B2 (en) 2011-06-08 2017-08-15 Qualcomm Incorporated Communication devices for multiple group communications
CN102904625B (en) * 2011-07-26 2016-04-20 株式会社日立制作所 For the reference signal design of distributing antenna system
CN102904625A (en) * 2011-07-26 2013-01-30 株式会社日立制作所 Reference signal design for distributed antenna systems
WO2013129984A1 (en) * 2012-03-02 2013-09-06 Telefonaktiebolaget L M Ericsson (Publ) Radio base station and method therein for transmitting a data signal to a user equipment in a radio communications network
US9031148B2 (en) 2012-03-02 2015-05-12 Telefonaktiebolaget L M Ericsson (Publ) Radio base station and method for limiting the upward tilt of beamformed signals
EP2830232A4 (en) * 2012-03-20 2015-05-06 China Academy Of Telecomm Tech Double-stream beamforming method and device
US9197295B2 (en) 2012-03-20 2015-11-24 China Academy Of Telecommunications Technology Double-stream beamforming method and device
US11122444B2 (en) 2012-11-09 2021-09-14 Interdigital Patent Holdings, Inc. Beamforming methods and methods for using beams
JP2016504804A (en) * 2012-11-09 2016-02-12 インターデイジタル パテント ホールディングス インコーポレイテッド Beam forming method and method for using the beam
WO2014074894A1 (en) * 2012-11-09 2014-05-15 Interdigital Patent Holdings, Inc. Beamforming methods and methods for using beams
WO2014169418A1 (en) * 2013-04-15 2014-10-23 Qualcomm Incorporated Flexible elevation beamforming
KR20160010443A (en) * 2013-05-01 2016-01-27 엘지전자 주식회사 Method for transmitting feedback information through terminal to for split beamforming in wireless communication system and apparatus therefor
EP2993804A4 (en) * 2013-05-01 2016-12-28 Lg Electronics Inc Method for transmitting feedback information through terminal to for split beamforming in wireless communication system and apparatus therefor
US9831932B2 (en) 2013-05-01 2017-11-28 Lg Electronics Inc. Method for transmitting feedback information through terminal to for split beamforming in wireless communication system and apparatus therefor
KR102194928B1 (en) * 2013-05-01 2020-12-24 엘지전자 주식회사 Method for transmitting feedback information through terminal to for split beamforming in wireless communication system and apparatus therefor
US9866307B2 (en) 2013-07-14 2018-01-09 Lg Electronics Inc. Method for transceiving data symbol using antenna correlation in wireless access system which supports massive antenna
EP3024155A4 (en) * 2013-07-14 2017-02-22 LG Electronics Inc. Method for transceiving data symbol using antenna correlation in wireless access system which supports massive antenna
US20150195020A1 (en) * 2014-01-06 2015-07-09 Intel IP Corporation Systems, methods, and devices for hybrid full-dimensional multiple-input multiple-output
WO2015103612A1 (en) 2014-01-06 2015-07-09 Intel IP Corporation Systems, methods, and devices for hybrid full-dimensional multiple-input multiple-output
EP3092724A4 (en) * 2014-01-06 2017-09-06 Intel IP Corporation Systems, methods, and devices for hybrid full-dimensional multiple-input multiple-output
US9787376B2 (en) 2014-01-06 2017-10-10 Intel IP Corporation Systems, methods, and devices for hybrid full-dimensional multiple-input multiple-output
WO2018031422A1 (en) * 2016-08-12 2018-02-15 Qualcomm Incorporated Dynamic uplink antenna port management
US10454541B2 (en) 2016-08-12 2019-10-22 Qualcomm Incorporated Dynamic uplink antenna port management
CN110275132A (en) * 2019-06-18 2019-09-24 西京学院 A kind of indoor orientation method based on two dimensional code mapping
CN110275132B (en) * 2019-06-18 2023-03-28 西京学院 Indoor positioning method based on two-dimensional code mapping
WO2022047631A1 (en) * 2020-09-01 2022-03-10 Nokia Shanghai Bell Co., Ltd. Beamforming scheme in higher rank transmission
WO2022213347A1 (en) * 2021-04-09 2022-10-13 Qualcomm Incorporated Channel state reporting for the updating of precoders
CN115379470A (en) * 2021-05-21 2022-11-22 华为技术有限公司 Beam forming method and related device

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