WO2013063750A1 - Method and apparatus for data beamforming - Google Patents

Method and apparatus for data beamforming Download PDF

Info

Publication number
WO2013063750A1
WO2013063750A1 PCT/CN2011/081594 CN2011081594W WO2013063750A1 WO 2013063750 A1 WO2013063750 A1 WO 2013063750A1 CN 2011081594 W CN2011081594 W CN 2011081594W WO 2013063750 A1 WO2013063750 A1 WO 2013063750A1
Authority
WO
WIPO (PCT)
Prior art keywords
user equipment
vector
transmission channel
covariance matrix
eigen
Prior art date
Application number
PCT/CN2011/081594
Other languages
French (fr)
Inventor
Zhenning Shi
Daqing Gu
Yajuan Luo
Original Assignee
France Telecom Research & Development Beijing Company Limited
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by France Telecom Research & Development Beijing Company Limited filed Critical France Telecom Research & Development Beijing Company Limited
Priority to PCT/CN2011/081594 priority Critical patent/WO2013063750A1/en
Priority to PCT/IB2012/002672 priority patent/WO2013064898A1/en
Publication of WO2013063750A1 publication Critical patent/WO2013063750A1/en

Links

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
    • H04B7/0413MIMO 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
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/0626Channel coefficients, e.g. channel state information [CSI]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0617Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal for beam forming
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0636Feedback format
    • H04B7/0639Using selective indices, e.g. of a codebook, e.g. pre-distortion matrix index [PMI] or for beam selection

Definitions

  • the invention relates to wireless communication systems, and more particularly to the pre- coding of data to be transmitted in a multiuser multi-input multi-output (MU-MIMO) wireless communication system.
  • MU-MIMO multi-input multi-output
  • MU-MIMO downlink transmissions multiple user equipments are served at the same time on the same transmission channel.
  • the suppression of co-channel interference can be achieved by using properly configured pre-coders at the transmitter side, in other words by choosing carefully beamforming vectors, or pre-coding weights, before the transmission of the signal to multiple user equipments.
  • the beamforming vectors are chosen optimally in order to maximize the output signal to interference plus noise ratio (SINR) for each user equipment.
  • SINR output signal to interference plus noise ratio
  • a rate-maximizing (RAM) beamforming method iteratively adjusts the beamforming vector associated with a user equipment to maximize the sum data rate of the communication system comprising said user equipment. This is achieved by tuning the user equipment transmission parameters to maximizing the data rate for said user equipment while minimizing the degradation in throughput for the other user equipments of the communication system.
  • the object of the present invention is to propose a sum-throughput maximizing beamforming approach for the pre-coding scheme in MIMO systems.
  • a first object of the invention is a method for transmitting a signal carrying data from a network equipment to a user equipment in a multiple input-multiple output communication system, said method comprising the steps of:
  • a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated to th e vector transmission channel, the beamforming vector maximizing the difference between the sum data rate throughput achieved by the user equipment and at least one other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment,
  • the network equipment receives, for each user equipment belonging to the M IMO system, information related to a covariance matrix associated to a vector transmission channel established between the network equipment and each user equipment of the communication system.
  • a vector transmission channel comprises all the transmission channels established between each radio transceivers of the network equipment and each radio transceivers of the user equipment. For example, if the network equipment has four transmit antennas and the user equipment has two receive antennas, then the vector transmission channel established between the network equipment and the user equipment comprises eight transmission channels.
  • Such a method enables the calculation of the beamforming vectors with limited vector transmission channel feedback information.
  • the performance of such a method is not impacted by the quality of the feedback information obtained, or its availability as it is the case in the prior art.
  • the beamforming vector associated with the vector transmission channel is determined for each other user equipment.
  • the method of the invention is an iterative method to compute a beamforming vector for a given user equipment of the communication system, in which the impact of every user equipment of the communication system on the vector transmission channel is taken into account.
  • An other object of the invention is a method of communication between a user equipment and a network equipment in a multiple input-multiple output communication system, said method comprising the steps of: Determining at least an eigen-vector and an eigen-value representing a covariance matrix associated to a vector transmission channel established between the user equipment and the network equipment, by computing an eigen- decomposition of the covariance matrix associated to the vector transmission channel,
  • the communication method of the invention proposes to use codebook based feedback back scheme to transmit information related to the covariance matrix associated to a vector transmission channel established between a network equipment and a user equipment.
  • Another object of the invention is a network equipment transmitting a signal carrying data to a user equipment in a multiple input-multiple output communication system , said network equipment comprising :
  • Such a network equipment is, for example an eNodeB.
  • Still another object of the invention is a user equipment communicating with a network equipment in a multiple input-multiple output communication system , said user equipment comprising :
  • Such a user equipment is for example a mobile phone.
  • a multiple input-multiple output communication system comprising a network equipment transmitting a signal carrying data to a user equipment, said network equipment comprising :
  • said user equipment comprising:
  • one object of the invention concerns computer programs, in particular computer programs on or in an information medium or memory, suitable for implementing the method transmitting a signal carrying data and the communication method object of the invention.
  • These programs can use any programming language, and be in the form of source code, binary code, or of code intermediate between source code and object code such as in a partially compiled form, or in any other desirable form for implementing the methods according to the invention.
  • the information medium may be any entity or device capable of storing the program.
  • the medium can comprise a storage means, such as a ROM, for example a CD ROM or a microelectronic circuit ROM, or else a magnetic recording means, for example a diskette (floppy disk) or a hard disk.
  • the information medium may be a transmissible medium such as an electrical or optical signal, which may be conveyed via an electrical or optical cable, by radio or by other means.
  • the program according to the invention may in particular be downloaded from a network of Internet type.
  • FIG. 1 represents a simplified wireless communication system which illustrates the principle of the invention
  • Figure 2 represents the vector transmission channel established between a network equipment and a user equipment
  • Figure 3 represents block diagram of the iterative algorithm to determine the beamforming vectors of the invention
  • Figure 4 represents a network equipment capable of running the method of transmission of the invention
  • Figure 5 represents a user equipment capable of running the communication method of the invention.
  • Figure 1 represents a simplified wireless communication system which illustrates the principle of the invention.
  • FIG. 1 shows the cell of a wireless multiuser-multiple input multiple output MU-MIMO communication system with only two co-channel user equipments u-i and u 2 , which achieve individual data rate throughputs r l/k and r 2/ k , respectively.
  • the back slash in the subscript of these data rate throughputs parameters denotes that these data rate are achieved without the presence of any third user equipment u k .
  • the sum data rate throughput for these two user equipments is thus U llk — r llk + r 2lk in such a cell.
  • the first part r k is the individual data rate throughput, or gain realized by the third user equipment u k and the second part, ( — r l/k )+ (r 2 —r 2/ k ) , is the gain caused to co-channel user equipments u-i and u 2 by the introduction of user equipment u k in the cell.
  • the beamforming vector optimization for user equipment u k , consists of maximizing the sum of these two parts such that the total sum data rate throughput is maximized.
  • Such a method of transmitting a signal carrying data is performed in a multiple-input multiple-output (MIMO) communication system involving a plurality of K user equipments u-i , ...,u k , . . . , UK having a plurality of receiving antennas and a network equipment, such as an eNodeB, having a plurality of transmitting antennas.
  • the K user equipments define thus a user equipment set L ⁇ k ⁇ .
  • This method comprises first a beamforming determination stage wherein beamforming vector(s) w k are determined respectively for one or more user equipment(s) belonging to this user equipment set L ⁇ j ⁇ k ⁇ .
  • Such a beamforming vector w k is associated with a vector transmission channel VTC established between the network equipment and the user equipment u k .
  • Said vector transmission channel VTC comprises all the transmission channels C, established between each transmitting antennas N t of the network equipment eNodeB and each receiving antennas N r of the user equipment u k .
  • the vector transmission channel VTC established between the network equipment eNodeB and the user equipment u k comprises eight transmission channels Q.
  • the determination of the beamforming vector w k for a user equipment u k of the set L ⁇ k) comprises the step of computing the beamforming vector w k which maximizes the sum throughput gain S corresponding to the difference between, on the one hand, the sum data rate throughput U achieved by this user equipment u k and one or more other user equipment(s) of the user equipment set L ⁇ k ⁇ , and, on the other hand, the sum data rate throughput achieved by these one or more other user equipments of the user equipment set L vj ⁇ k ⁇ without said user equipment u k .
  • the beamforming vector w k for user equipment u k is thus the beamforming vector which maximizes the equation:
  • the data to be transmitted by the network equipment are pre-coded in accordance with the beamforming vector(s) which have been determined.
  • a signal carrying on the pre-coded data is transmitted from the plurality of transmitting antennas of the network equipment towards the user equipments u-
  • the maximization of the sum throughput gain S can be reformulated as follows using a covariance matrix associated with a vector transmission channel.
  • the received signal for user u k can be expressed by the following receiving vector y k :
  • H k is the ( N r x N f ) vector transmission channel matrix, with N r being the number of receive antennas. Assuming that transmit power is uniformly distributed among the user equipments, the transmitted waveform can be expressed as:
  • the Covariance Matrix R k of the interferences -plus-noise affecting user equipment u k can be then defined as follows:
  • a beamforming user equipment set L of user equipments which comprises user equipments of L u ⁇ k ⁇ which are properly configured, i.e. which are already associated with a beamforming vector.
  • - r 1/ k is the data rate throughput (i.e. the achievable capacity) of user equipment U
  • ⁇ ) is the data rate for user equipment U
  • the beamforming vector w k for user equipment u k is obtained by computing the beamforming vector W opt which maximizes the sum data rate throughput gain introduced by the user equipment u k , in other words which solves the following equation:
  • r k log(l + SINR k ) (8)
  • SNIR k is the signal plus interference to noise ration for user equipment u k .
  • the signal plus interference to noise ration for user equipment u k is given by SINRt (9)
  • the value of the signal plus interference to noise ration for user equipment u k is approximated with pre-processing values, such as the signal plus interference to noise ratio SINR of received signals at user equipment prior to any pre-processing, i.e. calculation of a beamforming vector.
  • pre-processing values such as the signal plus interference to noise ratio SINR of received signals at user equipment prior to any pre-processing, i.e. calculation of a beamforming vector.
  • Beamforming vector for new user equipment u k is then determined to maximize the net gain in sum throughput NGST introduced by user equipment k as follows :
  • the beamforming vector w ⁇ that maximize the net gain in sum throughput NGST introduced by user equipment k is shown to be the generalized eigenvector corresponding to the maximum eigen-value of matrixes I k I Nt + ⁇ / / R / A and I k Ni + R 3 ⁇ 4 ⁇ Since the matrix l ⁇ k
  • the invention also concerns a codebook-based channel feedback method allowing the transmission of information related to the covariance matrix of the vector transmission channel from the user equipment u k to the network equipment.
  • a crucial enabler of the proposed MU-MIMO beamforming is the codebook-based feedback scheme to provide accurate channel state information CSI, which, in the invention, is the vector transmission channel covariance.
  • CSI channel state information
  • ⁇ [ e C Nr xNr is a diagonal matrix containing non-zero eigen-values of the covariance matrix R* .
  • a codeword ⁇ ⁇ ⁇ ⁇ , ⁇ ⁇ e C N ' xNr is selected from a codebook in order to approximate the subspace spanned by the vector ..
  • the codeword selected to approximate the subspace spanned by the vector is :
  • the codeword choosen is the codeword the codework having the minimum chordal distance to the subspace spanned by .
  • the codeword selected to approximate the subspace spanned by the vector is
  • the network equipment receives all channel feedback information, it conducts the iterative algorithm to determine the beamforming vectors of user equipments object of the invention.
  • Figure 3 represents a block diagram of the iterative algorithm to determine the beamforming vectors of the invention.
  • the network equipment receives least an eigen-vector and an eigen-value representing the covariance matrix associated to the vector transmission channel established between the user equipment and the network equipment and resulting from the eigen- decomposition of the covariance matrix.
  • the network e uipment initializes a user equipment beamforming vector :
  • step E4 the network equipment computes the interference-plus-noise for user equipments u k :
  • a first iteration index n is set to 1 .
  • This first iteration index n is an integer comprise between 1 , 2, , N. The greater the total number of iterations N the more optimized the beamforming vector.
  • a second iteration index A- is set to 1 .
  • This first iteration index k is an integer comprise between 1 , 2, , K, K being the total number of user equipments of the cell.
  • the network equipment determines if the index k of the current user equipment is higher or lower than the index / of the already processed user equipments.
  • the network equipment computes, in a step E8, the signal plus interference ratio of user U
  • the network equipment computes, in a step E9, the signal plus interference ratio excluding the interference caused by user equipment u k on the other user equipments of the cell using a second formula :
  • the network equipment computes the beamforming vector for user equipment u k as expressed in equation (15) in a step E1 1 : oc max eigenvector! I k l Ni +2 R?
  • step E12 the network equipment updates user equipment interference value using the beamforming vector in step E1 1 :
  • This updated value of the user equipment interference is destined to be used in the following iteration.
  • the second iteration index k ⁇ s set to k+1.
  • the first iteration index n is set to n +1 in a step E14. Steps E5 to E14 are executed until the first iteration index n is equal to N.
  • Figure 4 represents a network equipment capable of running the method of transmission of the invention.
  • the network equipment comprises means for receiving 10 information related to a covariance matrix associated with a vector transmission channel established between the user equi pment and the network equipment.
  • the information received comprises at least an eigen-vector and an eigen-value representing the covariance matrix associated to the vector transmission channel established between a user equipment and the network equipment and resulting from the eigen- decomposition of the covariance matrix.
  • the means for re-constructing 1 1 the vector transmission channel are connected to the means for receiving information 10.
  • the network equipment comprises means 14 for incrementing a first iteration index n.
  • This first iteration index n is an integer comprise between 1 , 2, , N. The greater the total number of iterations N the more optimized the beamforming vector.
  • the network equipment comprises means 15 for incrementing a second iteration index k.
  • This first iteration index k is an integer comprise between 1 , 2, , K, K being the total number of user equipments of the cell.
  • the network equipment comprises means for determining 16 if the index k of the current user equipment is higher or lower than the index / of the already processed user equipments.
  • the means for determining 16 are connected to the means for incrementing an iteration index 14 and 15.
  • the network equipment comprises, connected to the means for determining 16, means for computing 17 the signal plus interference ratio excluding the interference caused by user equipment u k on the other user equipments of the cell.
  • the user equipment comprises, connected to the means for computing 17, means for computing 18 ⁇ ! :
  • the network equipment comprises, connected to the means for computing 18, means for computing 19 the beamforming vector for user equipment u k as expressed in equation (15) : oc max eigenvector! I k l Ni +2 R?
  • the network equipment comprises, connected to the means for computing 19, means for updating 20 user equipment interference value using the beamforming vector : A ( ⁇ ) > h M ⁇ ( ⁇ - ⁇ ) ⁇ ⁇ (n- ⁇ ) ' ⁇ k
  • This updated value of the user equipment interference is destined to be used in the following iteration.
  • the user equipment comprises, connected the means for updating 20, means for computing 21 the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel .
  • Figure 5 represents a user equipment capable of running the communication method of the invention.
  • the user equipment comprises means for running an eigen-decomposition 100 of vector transmission channel covariance. Assuming that N t > N r this eigen-decomposition is be expressed as : where ⁇ e C Nr xNr is a diagonal matrix containing non-zero eigen-values of the covariance matrix .
  • a codebook is store in a data base DB connected to the means for selecting a codeword 1 10.
  • the user equipment comprises, connected to the means for selecting a codeword 1 10, means for transmitting 120 the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.

Abstract

The invention relates to a method for transmitting a signal carrying data from a network equipment to a user equipment in a multiple input-multiple output communication system, said method comprising the steps of: Receiving from the user equipment information related to a covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment; Re-constructing the covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment, using said information; Determining a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated to the vector transmission channel, the beamforming vector maximizing the difference between the sum data rate throughput achieved by the user equipment and at least one other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment; Computing the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel.

Description

METHOD AND APPARATUS FOR DATA BEAMFORMING
The invention relates to wireless communication systems, and more particularly to the pre- coding of data to be transmitted in a multiuser multi-input multi-output (MU-MIMO) wireless communication system.
In MU-MIMO downlink transmissions, multiple user equipments are served at the same time on the same transmission channel. The suppression of co-channel interference can be achieved by using properly configured pre-coders at the transmitter side, in other words by choosing carefully beamforming vectors, or pre-coding weights, before the transmission of the signal to multiple user equipments.
Several methods exist currently for choosing such beamforming vectors. For instance, the beamforming vectors are chosen optimally in order to maximize the output signal to interference plus noise ratio (SINR) for each user equipment.
It is known from PCT patent application PCT/CN 2011/071707, filed in the name of the assignee, a rate-maximizing (RAM) beamforming method. Such a method iteratively adjusts the beamforming vector associated with a user equipment to maximize the sum data rate of the communication system comprising said user equipment. This is achieved by tuning the user equipment transmission parameters to maximizing the data rate for said user equipment while minimizing the degradation in throughput for the other user equipments of the communication system.
One drawback of this method is that it needs perfect channel state information to compute the beamforming vectors. Hence, the performance of said method deteriorates if limited channel feedback is used and perfect channel state information is , therefore, not available.
Therefore, there is a need for an alternative pre-coding scheme which overcomes the drawbacks of the above-mentioned method and can offer improved performances in terms of data rate sum throughput without increasing excessively the complexity of the system.
The object of the present invention is to propose a sum-throughput maximizing beamforming approach for the pre-coding scheme in MIMO systems.
A first object of the invention is a method for transmitting a signal carrying data from a network equipment to a user equipment in a multiple input-multiple output communication system, said method comprising the steps of:
Receiving from the user equipment information related to a covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment, Re-constructing the covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment , using said information
Determining a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated to th e vector transmission channel, the beamforming vector maximizing the difference between the sum data rate throughput achieved by the user equipment and at least one other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment,
- Computing the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel.
In such a transmitting method, the network equipment receives, for each user equipment belonging to the M IMO system, information related to a covariance matrix associated to a vector transmission channel established between the network equipment and each user equipment of the communication system.
A vector transmission channel comprises all the transmission channels established between each radio transceivers of the network equipment and each radio transceivers of the user equipment. For example, if the network equipment has four transmit antennas and the user equipment has two receive antennas, then the vector transmission channel established between the network equipment and the user equipment comprises eight transmission channels.
Such a method enables the calculation of the beamforming vectors with limited vector transmission channel feedback information. The performance of such a method is not impacted by the quality of the feedback information obtained, or its availability as it is the case in the prior art.
According to one characteristic of the transmission method of the invention, the beamforming vector associated with the vector transmission channel is determined for each other user equipment.
The method of the invention is an iterative method to compute a beamforming vector for a given user equipment of the communication system, in which the impact of every user equipment of the communication system on the vector transmission channel is taken into account.
An other object of the invention is a method of communication between a user equipment and a network equipment in a multiple input-multiple output communication system, said method comprising the steps of: Determining at least an eigen-vector and an eigen-value representing a covariance matrix associated to a vector transmission channel established between the user equipment and the network equipment, by computing an eigen- decomposition of the covariance matrix associated to the vector transmission channel,
Selecting from a predetermined codebook, a codeword approximating a subspace spanned by the eigen-vector,
Transmitting the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.
The communication method of the invention proposes to use codebook based feedback back scheme to transmit information related to the covariance matrix associated to a vector transmission channel established between a network equipment and a user equipment.
Another object of the invention is a network equipment transmitting a signal carrying data to a user equipment in a multiple input-multiple output communication system , said network equipment comprising :
Means for receiving from the user equipment information related to a covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment,
Means for re-constructing the covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment, using said information ,
Means for determining a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated with the vector transmission channel, the beamforming vector maximizing the difference between the sum data rate throughput achieved by the user equipment and at least an other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment,
Means for computing the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel.
Such a network equipment is, for example an eNodeB.
Still another object of the invention is a user equipment communicating with a network equipment in a multiple input-multiple output communication system , said user equipment comprising :
- Means for determining at least an eigen-vector and an eigen-value representing a covariance matrix associated to a vector transmission channel established between the user equipment and the network equipment, by computing an eigen- decomposition of the covariance matrix associated to the vector transmission channel,
Means for selecting from a predetermined codebook, a codeword approximating a subspace spanned by the eigen-vector,
Means for transmitting the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.
Such a user equipment is for example a mobile phone.
A multiple input-multiple output communication system comprising a network equipment transmitting a signal carrying data to a user equipment, said network equipment comprising :
Means for receiving from the user equipment information related to a covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment,
- Means for re-constructing the covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment, using said information,
Means for determining a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated with the vector transmission channel, the beamforming vector maximizing the difference between the sum data rate throughput achieved by the user equipment and at least an other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment,
Means for computing the signal carrying data to be transmitted by p re-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel ,
and at least a user equipment communicating with the network equipment, said user equipment comprising :
Means for determining at least an eigen-vector and an eigen-value representing the covariance matrix associated with the vector transmission channel, by computing an eigen-decomposition of the covariance matrix associated to the vector transmission channel,
Means for selecting from a predetermined codebook, a codeword approximating a subspace spanned by the eigen-vector, Means for transmitting the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.
Finally, one object of the invention concerns computer programs, in particular computer programs on or in an information medium or memory, suitable for implementing the method transmitting a signal carrying data and the communication method object of the invention. These programs can use any programming language, and be in the form of source code, binary code, or of code intermediate between source code and object code such as in a partially compiled form, or in any other desirable form for implementing the methods according to the invention.
The information medium may be any entity or device capable of storing the program. For example, the medium can comprise a storage means, such as a ROM, for example a CD ROM or a microelectronic circuit ROM, or else a magnetic recording means, for example a diskette (floppy disk) or a hard disk.
Moreover, the information medium may be a transmissible medium such as an electrical or optical signal, which may be conveyed via an electrical or optical cable, by radio or by other means. The program according to the invention may in particular be downloaded from a network of Internet type.
The present system and method are explained in further detail, and by way of example, with reference to the accompanying drawings wherein:
Figure 1 represents a simplified wireless communication system which illustrates the principle of the invention,
Figure 2 represents the vector transmission channel established between a network equipment and a user equipment,
Figure 3 represents block diagram of the iterative algorithm to determine the beamforming vectors of the invention,
Figure 4 represents a network equipment capable of running the method of transmission of the invention,
Figure 5 represents a user equipment capable of running the communication method of the invention.
Figure 1 represents a simplified wireless communication system which illustrates the principle of the invention.
The upper part of figure 1 shows the cell of a wireless multiuser-multiple input multiple output MU-MIMO communication system with only two co-channel user equipments u-i and u2, which achieve individual data rate throughputs rl/k and r2/ k , respectively. Here, the back slash in the subscript of these data rate throughputs parameters denotes that these data rate are achieved without the presence of any third user equipment uk. The sum data rate throughput for these two user equipments is thus Ullk— rllk + r2lk in such a cell. When a new user equipment uk comes into consideration for this cell, as shown in the lower part of figure 1 , the data rate throughputs of the different users equipments within the cell are modified. The new data rate throughputs for user equipments u1 and u2 are respectively designated by rx and r2 , and user equipment uk achieves itself a data rate throughput rk . The sum data rate throughput of the user equipments in this situation becomes U— rk + rx + r2 in this cell.
The present invention seeks to maximize the sum throughput gain of all three user equipments, when compared to the previous situation with only two user equipments, which is given by the following equation: (1 ) S = U-Ulk = rk + (rl -rllk )+ (r2 -r2lk )
In other words, in this equation (1 ), the first part rk is the individual data rate throughput, or gain realized by the third user equipment uk and the second part, ( — rl/k )+ (r2—r2/ k ) , is the gain caused to co-channel user equipments u-i and u2 by the introduction of user equipment uk in the cell.
Thus, the beamforming vector optimization, for user equipment uk, consists of maximizing the sum of these two parts such that the total sum data rate throughput is maximized.
Such a method of transmitting a signal carrying data is performed in a multiple-input multiple-output (MIMO) communication system involving a plurality of K user equipments u-i , ...,uk, . . . , UK having a plurality of receiving antennas and a network equipment, such as an eNodeB, having a plurality of transmitting antennas. The K user equipments define thus a user equipment set L {k} .
This method comprises first a beamforming determination stage wherein beamforming vector(s) wk are determined respectively for one or more user equipment(s) belonging to this user equipment set L ^j {k} . Such a beamforming vector wk is associated with a vector transmission channel VTC established between the network equipment and the user equipment uk. Said vector transmission channel VTC comprises all the transmission channels C, established between each transmitting antennas Nt of the network equipment eNodeB and each receiving antennas Nr of the user equipment uk. For example, if the network equipment eNodeB has four transmit antennas Nt and the user equipment uk has two receive antennas Nr, as represented on figure 2, then the vector transmission channel VTC established between the network equipment eNodeB and the user equipment uk comprises eight transmission channels Q.
In particular, the determination of the beamforming vector wk for a user equipment uk of the set L {k) comprises the step of computing the beamforming vector wk which maximizes the sum throughput gain S corresponding to the difference between, on the one hand, the sum data rate throughput U achieved by this user equipment uk and one or more other user equipment(s) of the user equipment set L {k} , and, on the other hand, the sum data rate throughput achieved by these one or more other user equipments of the user equipment set L vj {k} without said user equipment uk.
Hence, to come back to the example of the figure 1 , the beamforming vector wk for user equipment uk is thus the beamforming vector which maximizes the equation:
S = U-Ulk = rk + (rl -rVk )+ (r2 -r2lk) .
Once the beamforming vector(s) have been determined, the data to be transmitted by the network equipment are pre-coded in accordance with the beamforming vector(s) which have been determined.
Finally, once the data have been pre-coded, a signal carrying on the pre-coded data is transmitted from the plurality of transmitting antennas of the network equipment towards the user equipments u-|-uK.
The maximization of the sum throughput gain S can be reformulated as follows using a covariance matrix associated with a vector transmission channel.
In such a multi-user MIMO system involving a user equipment comprising a plurality of transmitting antennas and user equipments u-i ,...,uk each having a a plurality of receiving antennas, the received signal for user uk can be expressed by the following receiving vector yk:
(2) y* = ΗΛ + Η,∑Χ/ + ιι,
l≠k
where : - n^. ~ CN(0, σ2Ι) is the Gaussian noise vector with white covariance matrix, with σ2 being the noise variance normalized with respect to the transmit power; xk =
Figure imgf000008_0001
, χ2 , · · · , χΝ ]r is the transmitted waveform vector with Nt being the number of transmit antennas; and
Hk is the ( Nr x Nf ) vector transmission channel matrix, with Nr being the number of receive antennas. Assuming that transmit power is uniformly distributed among the user equipments, the transmitted waveform can be expressed as:
(3) ¾ = wt¾ where wt is the normalized beamforming vector for the k-th user equipment, i.e., fw I2 = 1 , and
I 1 2
s k is the transmitted data symbol associated with this k-th user such that E s^. = 1 . The Covariance Matrix Rk of the interferences -plus-noise affecting user equipment uk can be then defined as follows:
Figure imgf000009_0001
Here, a beamforming user equipment set L of user equipments is defined which comprises user equipments of L u {k} which are properly configured, i.e. which are already associated with a beamforming vector.
When a new user equipment uk of L {k) , which does not belong to such a beamforming user equipments set ( uk <£ L ), is taken into consideration, as mentioned before, the sum data rate throughput achieved, on one hand, by the user equipments of the beamforming user set L {k) and the user equipment uk (in other words the sum data rate throughput for L {k} ), and the sum data rate throughput achieved, on the other hand, by the user equipments of the beamforming user equipment set L without the user equipment uk (i.e. the sum data rate throughput for L), are respectively defined as follows:
(5) U = rk +ri
leL (6) U/ k =∑i k
leL
Where: - r1/ k is the data rate throughput (i.e. the achievable capacity) of user equipment U| without the presence of user equipment uk; and
Γ) is the data rate for user equipment U| .
Considering equations (5) and (6), the beamforming vector wk for user equipment uk is obtained by computing the beamforming vector Wopt which maximizes the sum data rate throughput gain introduced by the user equipment uk, in other words which solves the following equation:
(7) y pt = arg
Figure imgf000009_0002
An expression of the data rate for user equipment uk is readily obtained by employing the Shannon capacity for the vector transmission channel of user equipment uk as :
rk = log(l + SINRk) (8) where SNIRk is the signal plus interference to noise ration for user equipment uk. The signal plus interference to noise ration for user equipment uk is given by SINRt (9)
l≠k l≠k where R .
In equation (9), the value of the signal plus interference to noise ration for user equipment uk is approximated with pre-processing values, such as the signal plus interference to noise ratio SINR of received signals at user equipment prior to any pre-processing, i.e. calculation of a beamforming vector. The degradation in the transmission channel capacity of user equipment / caused by user equipment k is given by :
SINR, - SINRl
1 - I l k
'/ 'I l k dog
l + SlNRI/k j dog SlNRl/k wi R/ wi (10)
l + SlNRl/k
SINR U, k (1 1 )
(l + SINR,,, )!,
In equation (10), the expression 7; = Nra2 + y,w^R m presents the interference-plus-
Figure imgf000010_0001
noise caused to user equipment /.
Upon combining equations (8) and (10), the following expression of the net gain in sum throughput NGST introduced by user equipment k in the cell is obtained :
Figure imgf000010_0002
where μι = κιΙ SINR„k - (13)
(l + SINRl/k)l, In equation (12), the two approximations are satisfied by assuming that Κ/wf R w* « 1 .
Beamforming vector for new user equipment uk is then determined to maximize the net gain in sum throughput NGST introduced by user equipment k as follows :
(14)
Figure imgf000011_0001
Hence, the beamforming vector w^ that maximize the net gain in sum throughput NGST introduced by user equipment k is shown to be the generalized eigenvector corresponding to the maximum eigen-value of matrixes IkINt + ^ //R/ A and Ik Ni + R¾ ■ Since the matrix l≠k
Ik\Nt + ^/u/R/ A is invertible, the generalized eigen-value problem is reduced down to a standard l≠k
eigen-value problem.
As a result, the optimal beamforming vector for user equipment k obtained in solving this eigen-value problem is given by: wVFl oc max eigenvector! (¾ + R* ) (15)
l≠k where max eigenvecto r (τ) denotes the eigenvector corresponding to the largest eigen-value of Z > where Z refers to a generic Hermitian matrix. It is observed from equation (15) that user equipment beamforming weights depend on user equipment vector transmission channel covariance matrixes, rather than on explicit channel state information CSI as it is the case in prior art. This makes employment of codebook-based channel feedback feasible.
Thus the invention also concerns a codebook-based channel feedback method allowing the transmission of information related to the covariance matrix of the vector transmission channel from the user equipment uk to the network equipment.
A crucial enabler of the proposed MU-MIMO beamforming is the codebook-based feedback scheme to provide accurate channel state information CSI, which, in the invention, is the vector transmission channel covariance. Assuming that Nt > Nr eigen-decomposition of vector transmission channel covariance is be expressed as : R* = VttV = fvi V,0 ] (16)
Figure imgf000012_0001
where ∑[ e CNr xNr is a diagonal matrix containing non-zero eigen-values of the covariance matrix R* .
Then, a codeword Ψ = {ψί}, ψί e CN'xNr is selected from a codebook in order to approximate the subspace spanned by the vector ..
In a first embodiment of the invention, the codeword selected to approximate the subspace spanned by the vector is :
Figure imgf000012_0002
In this first embodiment, the codeword choosen is the codeword the codework having the minimum chordal distance to the subspace spanned by .
In a second embodiment of the invention, the codeword selected to approximate the subspace spanned by the vector is
Figure imgf000012_0003
Once the network equipment receives all channel feedback information, it conducts the iterative algorithm to determine the beamforming vectors of user equipments object of the invention.
Figure 3 represents a block diagram of the iterative algorithm to determine the beamforming vectors of the invention.
In a step E1 , the network equipment receives least an eigen-vector and an eigen-value representing the covariance matrix associated to the vector transmission channel established between the user equipment and the network equipment and resulting from the eigen- decomposition of the covariance matrix.
In a step E2, the network equipment re-constructs the vector transmission channel covariance as =
Figure imgf000012_0004
- -K using the eigen-vector and an eigen-value resulting from the eigen-decomposition, where K = L {k)
In a step E3, the network e uipment initializes a user equipment beamforming vector :
Figure imgf000012_0005
In step E4, the network equipment computes the interference-plus-noise for user equipments uk :
Figure imgf000013_0001
In a step E5 a first iteration index n is set to 1 . This first iteration index n is an integer comprise between 1 , 2, , N. The greater the total number of iterations N the more optimized the beamforming vector.
In a step E6 a second iteration index A- is set to 1 . This first iteration index k is an integer comprise between 1 , 2, , K, K being the total number of user equipments of the cell.
During a step E7, the network equipment determines if the index k of the current user equipment is higher or lower than the index / of the already processed user equipments.
If k>\, the network equipment computes, in a step E8, the signal plus interference ratio of user U| excluding the interference caused by user equipment u^ on the other user equipments of the cell using a first formula :
SINRl/k =
Figure imgf000013_0002
If l>k, the network equipment computes, in a step E9, the signal plus interference ratio excluding the interference caused by user equipment uk on the other user equipments of the cell using a second formula :
Figure imgf000013_0003
SINR
During a step E10, the network equipment computes μ, = -< —— f— for /≠k
(l + SINRi/k )Ii
Knowing the value μ, from step E10, the network equipment computes the beamforming vector for user equipment uk as expressed in equation (15) in a step E1 1 : oc max eigenvector! IklNi +2 R?
l≠k
In a step E12, the network equipment updates user equipment interference value using the beamforming vector in step E1 1 :
Figure imgf000013_0004
This updated value of the user equipment interference is destined to be used in the following iteration. In a step E13, the second iteration index k \s set to k+1. When the second iteration index k is equal to K, the first iteration index n is set to n +1 in a step E14. Steps E5 to E14 are executed until the first iteration index n is equal to N.
Figure 4 represents a network equipment capable of running the method of transmission of the invention.
The network equipment comprises means for receiving 10 information related to a covariance matrix associated with a vector transmission channel established between the user equi pment and the network equipment.
The information received comprises at least an eigen-vector and an eigen-value representing the covariance matrix associated to the vector transmission channel established between a user equipment and the network equipment and resulting from the eigen- decomposition of the covariance matrix.
The network equipment comprises means for re-constructing 1 1 the vector transmission channel covariance as =
Figure imgf000014_0001
- -K using the eigen-vector and an eigen-value resulting from the eigen-decomposition, where K = L vj {k}
The means for re-constructing 1 1 the vector transmission channel are connected to the means for receiving information 10.
The network equipment comprises, connected to the means of re-constructing 1 1 , means for initializing 12 a user equipment beamforming vector : w^0-* oc max eigenvector (R^ \ k = 1,2, - K
The network equipment comprises, connected to the means for initializing 12, means for computing 13 the interference-plus-noise for user equipments uk : = Nra2 +∑(wL0)f wL0), * = 1,2,-*
m≠k
The network equipment comprises means 14 for incrementing a first iteration index n. This first iteration index n is an integer comprise between 1 , 2, , N. The greater the total number of iterations N the more optimized the beamforming vector.
The network equipment comprises means 15 for incrementing a second iteration index k.
This first iteration index k is an integer comprise between 1 , 2, , K, K being the total number of user equipments of the cell.
The network equipment comprises means for determining 16 if the index k of the current user equipment is higher or lower than the index / of the already processed user equipments. The means for determining 16 are connected to the means for incrementing an iteration index 14 and 15. The network equipment comprises, connected to the means for determining 16, means for computing 17 the signal plus interference ratio excluding the interference caused by user equipment uk on the other user equipments of the cell.
The user equipment comprises, connected to the means for computing 17, means for computing 18 μ!:
Figure imgf000015_0001
The network equipment comprises, connected to the means for computing 18, means for computing 19 the beamforming vector for user equipment uk as expressed in equation (15) : oc max eigenvector! IklNi +2 R?
l≠k
The network equipment comprises, connected to the means for computing 19, means for updating 20 user equipment interference value using the beamforming vector : A (η) > h M ί (η-\) Ώ ίι (n-\) '≠k
This updated value of the user equipment interference is destined to be used in the following iteration.
The user equipment comprises, connected the means for updating 20, means for computing 21 the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel .
Figure 5 represents a user equipment capable of running the communication method of the invention.
The user equipment comprises means for running an eigen-decomposition 100 of vector transmission channel covariance. Assuming that Nt > Nr this eigen-decomposition is be expressed as :
Figure imgf000015_0002
where ∑{ e CNr xNr is a diagonal matrix containing non-zero eigen-values of the covariance matrix .
The user equipment comprises, connected to the means running an eigen-decomposition 100, means for selecting 1 10 a codeword Ψ = {ψι ,}, ψι : e CN' Nr from a codebook in order to approximate the subspace spanned by the vector . Such a codebook is store in a data base DB connected to the means for selecting a codeword 1 10. The user equipment comprises, connected to the means for selecting a codeword 1 10, means for transmitting 120 the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.

Claims

1. A method for transmitting a signal carrying data from a network equipment to a user equipment in a multiple input-multiple output communication system, said method comprising the steps of:
Receiving from the user equipment information related to a covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment,
Re-constructing the covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment, using said information
Determining a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated to the vector transmission channel, the beamforming vector maximizing the difference between the sum data rate throughput achieved by the user equipment and at least one other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment,
Computing the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel .
2. The method according to claim 1 , wherein the beamforming vector associated with the vector transmission channel is determined for each other user equipment.
3. A method of communication between a user equipment and a network equipment in a multiple input-multiple output communication system, said method comprising the steps of:
- Determining at least an eigen-vector and an eigen-value representing a covariance matrix associated to a vector transmission channel established between the user equipment and the network equipment, by computing an eigen- decomposition of the covariance matrix associated to the vector transmission channel,
- Selecting from a predetermined codebook, a codeword approximating a subspace spanned by the eigen-vector,
Transmitting the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.
4. Network equipment transmitting a signal carrying data to a user equipment in a multiple input-multiple output communication system, said network equipment comprising : Means for receiving from the user equipment information related to a covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment,
Means for re-constructing the covariance matrix associated with a vector transmission channel established between the user equipment and the netwo rk equipment, using said information ,
Means for determining a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated to the vector transmission channel, the beamforming vector maximizing the diffe rence between the sum data rate throughput achieved by the user equipment and at least one other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment,
Means for computing the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel.
5. User equipment communicating with a network equipment in a multiple input-multiple output communication system, said user equipment comprising :
Means for determining at least an eigen-vector and an eigen-value representing a covariance matrix associated to a vector transmission channel established between the user equipment and the network equipment, by computing a n eigen- decomposition of the covariance matrix associated to the vector transmission channel,
Means for selecting from a predetermined codebook, a codeword approximating a subspace spanned by the eigen-vector,
- Means for transmitting the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.
6. A multiple input-multiple output communication system comprising a network equipment transmitting a signal carrying data to a user equipment, said n etwork equipment comprising :
Means for receiving from the user equipment information related to a covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment,
Means for re-constructing the covariance matrix associated with a vector transmission channel established between the user equipment and the network equipment, using said information
- Means for determining a beamforming vector associated with the vector transmission channel using at least the covariance matrix associated to the vector transmission channel, the beamforming vector maximizing the difference between the sum data rate throughput achieved by the user equipment and at least one other user equipment and the sum data rate throughput achieved by the other user equipment without the user equipment,
Means for computing the signal carrying data to be transmitted by pre-coding the data in accordance with the determined beamforming vector associated with the vector transmission channel,
and at least a user equipment communicating with the network equipment, said user equipment comprising :
Means for determining at least an eigen-vector and an eigen-value representing the covariance matrix associated with the vector transmission channel, by computing an eigen-decomposition of the covariance matrix associated to the vector transmission channel,
Means for selecting from a predetermined codebook, a codeword approximating a subspace spanned by the eigen-vector,
Means for transmitting the codewords and eigen-values associated to the covariance matrix for the vector transmission channel to the network equipment.
7. Computer program characterized in that it comprises program code instructions for the implementation of the steps of the method transmitting a signal carrying data as claimed in claim 1 when the program is executed by a processor.
8. Computer program characterized in that it comprises program code instructions for the implementation of the steps of the communication method as claimed in claim 3 when the program is executed by a processor.
PCT/CN2011/081594 2011-10-31 2011-10-31 Method and apparatus for data beamforming WO2013063750A1 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
PCT/CN2011/081594 WO2013063750A1 (en) 2011-10-31 2011-10-31 Method and apparatus for data beamforming
PCT/IB2012/002672 WO2013064898A1 (en) 2011-10-31 2012-10-26 Method and apparatus for data beamforming

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2011/081594 WO2013063750A1 (en) 2011-10-31 2011-10-31 Method and apparatus for data beamforming

Publications (1)

Publication Number Publication Date
WO2013063750A1 true WO2013063750A1 (en) 2013-05-10

Family

ID=47605597

Family Applications (2)

Application Number Title Priority Date Filing Date
PCT/CN2011/081594 WO2013063750A1 (en) 2011-10-31 2011-10-31 Method and apparatus for data beamforming
PCT/IB2012/002672 WO2013064898A1 (en) 2011-10-31 2012-10-26 Method and apparatus for data beamforming

Family Applications After (1)

Application Number Title Priority Date Filing Date
PCT/IB2012/002672 WO2013064898A1 (en) 2011-10-31 2012-10-26 Method and apparatus for data beamforming

Country Status (1)

Country Link
WO (2) WO2013063750A1 (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016007757A1 (en) * 2014-07-11 2016-01-14 Huawei Technologies Co., Ltd. Systems and methods for optimized beamforming and compression for uplink mimo cloud radio access networks
US9537556B2 (en) 2014-07-11 2017-01-03 Huawei Technologies Canada Co., Ltd. Systems and methods for optimized beamforming and compression for uplink MIMO cloud radio access networks
CN114982140A (en) * 2020-01-14 2022-08-30 上海诺基亚贝尔股份有限公司 Downlink beamforming in MU-MIMO systems

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109450499B (en) * 2018-12-13 2021-03-16 电子科技大学 Robust beam forming method based on guide vector and space power estimation

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090015472A1 (en) * 2007-07-11 2009-01-15 Angel Lozano Method of transmit beamforming for multicasting in a wireless communication system
US20100104032A1 (en) * 2008-10-20 2010-04-29 Bruno Clerckx Codebook design method for multiple input multiple output system and method for using the codebook

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2134003B1 (en) * 2008-06-06 2011-12-28 NTT DoCoMo, Inc. A user selection apparatus and method for a mobile communication system
US8260209B2 (en) * 2009-11-18 2012-09-04 Futurewei Technologies, Inc. System and method for coordinated spatial multiplexing using second order statistical information
US9148205B2 (en) * 2010-01-25 2015-09-29 Qualcomm Incorporated Feedback for supporting SU-MIMO and MU-MIMO operation in wireless communication

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20090015472A1 (en) * 2007-07-11 2009-01-15 Angel Lozano Method of transmit beamforming for multicasting in a wireless communication system
US20100104032A1 (en) * 2008-10-20 2010-04-29 Bruno Clerckx Codebook design method for multiple input multiple output system and method for using the codebook

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016007757A1 (en) * 2014-07-11 2016-01-14 Huawei Technologies Co., Ltd. Systems and methods for optimized beamforming and compression for uplink mimo cloud radio access networks
US9537556B2 (en) 2014-07-11 2017-01-03 Huawei Technologies Canada Co., Ltd. Systems and methods for optimized beamforming and compression for uplink MIMO cloud radio access networks
CN114982140A (en) * 2020-01-14 2022-08-30 上海诺基亚贝尔股份有限公司 Downlink beamforming in MU-MIMO systems

Also Published As

Publication number Publication date
WO2013064898A1 (en) 2013-05-10

Similar Documents

Publication Publication Date Title
US8934565B2 (en) Reference signaling scheme using compressed feedforward codebooks for multi-user, multiple-input multiple-output (MU-MIMO) systems
KR101005876B1 (en) A method and system for beamforming in a multiple user multiple input multiple output mimo communication system using a codebook
EP2474104B1 (en) Tomlinson harashima precoding with additional receiver processing in a multi-user multiple-input multiple-output wireless transmission system
JP5127394B2 (en) MIMO system precoding method and apparatus using the method
KR101320915B1 (en) Method and apparatus for pre-processing data to be transmitted in multiple-input communication system
KR101752184B1 (en) Method and arrangement in a wireless communication system
EP2340621B1 (en) Channel-assisted iterative precoder selection
KR101231487B1 (en) Method for Differential Precoding and Base Station for Supporting That Method
US8503291B1 (en) Systems and methods for directing a beam towards a device in the presence of interference based on reciprocity
JP5173573B2 (en) Wireless communication apparatus and wireless communication method
US8718172B2 (en) Two stage precoding for multi-user MIMO systems
US20130148755A1 (en) Precoding codebooks for mimo communication systems
JP5277361B2 (en) Method and apparatus for determining a precoding matrix for precoding symbols to be transmitted to a plurality of wireless devices
EP2380300B1 (en) Methods and arrangements for feeding back channel state information
JP4950311B2 (en) Method and apparatus for determining a quantized channel vector
US8855577B2 (en) System and method for assisted open loop multiple input, multiple output communications
JP5900707B2 (en) Method for improving transmission capability in DLMU-MIMO communication system
WO2013063750A1 (en) Method and apparatus for data beamforming
Chae et al. Coordinated beamforming for multiuser MIMO systems with limited feedforward
Huang et al. Hybrid genetic algorithm for joint precoding and transmit antenna selection in multiuser MIMO systems with limited feedback
Song et al. Effects of imperfect channel state information on achievable rates of precoded multi-user MIMO broadcast channels with limited feedback
Fang et al. Genetic algorithm-assisted joint quantised precoding and transmit antenna selection in multi-user multi-input multi-output systems
KR101742503B1 (en) Codebook for multiple-user multiple input multiple output communication and communication device of using the codebook
Benmimoune et al. PCA-Aided precoding for correlated MIMO broadcast channels
KR20140110643A (en) Apparatus and method for transmitting and receiving multiple-antenna networks

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 11874913

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

32PN Ep: public notification in the ep bulletin as address of the adressee cannot be established

Free format text: NOTING OF LOSS OF RIGHTS PURSUANT TO RULE 112(1) EPC DATED 18.08.14

122 Ep: pct application non-entry in european phase

Ref document number: 11874913

Country of ref document: EP

Kind code of ref document: A1