WO2018082659A1 - System and method for transmitting a sub-space selection - Google Patents

System and method for transmitting a sub-space selection Download PDF

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Publication number
WO2018082659A1
WO2018082659A1 PCT/CN2017/109347 CN2017109347W WO2018082659A1 WO 2018082659 A1 WO2018082659 A1 WO 2018082659A1 CN 2017109347 W CN2017109347 W CN 2017109347W WO 2018082659 A1 WO2018082659 A1 WO 2018082659A1
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WO
WIPO (PCT)
Prior art keywords
beams
group
index
base station
linear combination
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PCT/CN2017/109347
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French (fr)
Inventor
Bin Liu
Pengfei Xia
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Huawei Technologies Co., Ltd.
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Publication date
Application filed by Huawei Technologies Co., Ltd. filed Critical Huawei Technologies Co., Ltd.
Priority to CN201780067812.XA priority Critical patent/CN109906588B/en
Priority to PL17867484T priority patent/PL3504854T3/en
Priority to JP2019514072A priority patent/JP6860152B2/en
Priority to RU2019113492A priority patent/RU2707735C1/en
Priority to AU2017353033A priority patent/AU2017353033B2/en
Priority to ES17867484T priority patent/ES2867923T3/en
Priority to EP17867484.2A priority patent/EP3504854B1/en
Priority to EP22190167.1A priority patent/EP4106224A1/en
Priority to KR1020197009701A priority patent/KR102228745B1/en
Priority to EP21153665.1A priority patent/EP3832901B1/en
Publication of WO2018082659A1 publication Critical patent/WO2018082659A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/24Cell structures
    • H04W16/28Cell structures using beam steering
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • 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
    • H04B7/063Parameters other than those covered in groups H04B7/0623 - H04B7/0634, e.g. channel matrix rank or transmit mode 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
    • H04B7/06Diversity 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
    • H04B7/06Diversity 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
    • H04B7/0658Feedback reduction
    • H04B7/066Combined feedback for a number of channels, e.g. over several subcarriers like in orthogonal frequency division multiplexing [OFDM]
    • 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
    • H04B7/0695Hybrid systems, i.e. switching and simultaneous transmission using beam selection
    • 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
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • 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
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • H04L5/0057Physical resource allocation for CQI
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/046Wireless resource allocation based on the type of the allocated resource the resource being in the space domain, e.g. beams
    • 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
    • H04L25/0202Channel estimation
    • H04L25/0224Channel estimation using sounding signals
    • H04L25/0226Channel estimation using sounding signals sounding signals per se

Definitions

  • the present disclosure relates generally to a system and method for a subspace selection, and, in particular embodiments, to a system and method for transmitting a subspace selection.
  • next-generation telecommunication networks may utilize beamforming at both the base station and the UE to exploit multipath propagation and increase system throughput and/or reliability. Implementing beamforming at both the base station and the UE may significantly increase the complexity of the underlying beam management techniques.
  • a method for subspace selection includes receiving a reference signal (RS) by a user equipment (UE) from a base station in a downlink channel, as well as transmitting a linear combination index from the UE to the base station.
  • the linear combination index identifies a combination of beams selected from a set of beams in accordance with the RS.
  • the linear combination index identifies the selected combination of beams without identifying, or otherwise explicitly indicating, individual beams within the selected combination of beams.
  • the linear combination index belongs to a set of predefined linear combination indices, and each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams.
  • the method further includes transmitting a rotation index by the UE to the base station.
  • the rotation index identifies a selected angle of rotation of a channel space comprising the set of beams.
  • the method further includes transmitting a channel quality index (CQI) corresponding to selected weighted combination of beams from the UE to the base station.
  • CQI channel quality index
  • the method further includes calculating a channel estimation of the downlink channel by the UE in accordance with the RS, selecting a rotation index by the UE in accordance with the calculated channel estimation, and transmitting the selected rotation index by the UE to the base station.
  • the combination of beams being selected in accordance with the calculated channel estimation.
  • the RS is received over different beams in the set of beams in the downlink channel.
  • the RS is received non-precoded in the downlink channel.
  • a method for subspace selection includes transmitting a RS from a base station to a user equipment (UE) and receiving a linear combination index by the base station from the UE.
  • the linear combination index identifies a combination of beams, selected by the UE, from a set of beams in accordance with the RS.
  • the linear combination index identifies the selected combination of beams without identifying individual beams within the selected combination of beams.
  • the linear combination index belongs to a set of predefined linear combination indices, and each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams.
  • the method further includes receiving a rotation index by the base station from the UE, the rotation index identifying a selected angle of rotation of the set of beams.
  • the method further includes receiving a channel quality index (CQI) corresponding to selected weighted combination of beams by the base station.
  • CQI channel quality index
  • the RS is transmitted over different beams in the set of beams.
  • the RS is received non-precoded in the downlink channel.
  • a user equipment includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor.
  • the programming includes instructions for receiving a RS from a base station in a downlink channel and transmitting a linear combination index to the base station, the linear combination index identifying a combination of beams selected from a set of beams in accordance with the RS.
  • the linear combination index identifies the selected combination of beams without identifying, or otherwise explicitly indicating, individual beams within the selected combination of beams.
  • the linear combination index belongs to a set of predefined linear combination indices and each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams.
  • the programming further includes instructions for transmitting a rotation index to the base station.
  • the rotation index identifies a selected angle of rotation of the set of beams.
  • the programming further includes transmitting a channel quality index (CQI) corresponding to the selected combination of beams.
  • CQI channel quality index
  • the programming further includes instructions for calculating a channel estimation of the downlink channel in accordance with the RS, selecting a rotation index in accordance with the calculated channel estimation, and transmitting the selected rotation index to the base station.
  • the combination of beams being selected is in accordance with the calculated channel estimation.
  • the RS is received over different beams in the set of beams in a downlink channel.
  • the RS is received non-precoded in the downlink channel.
  • a base station includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor.
  • the programming includes instructions transmitting a RS to a user equipment (UE) and receiving a linear combination index from the UE.
  • the linear combination index identifies a combination of beams, selected by the UE, from a set of beams in accordance with the RS.
  • the linear combination index identifies the selected combination of beams without identifying, or otherwise indicating, individual beams within the selected combination of beams.
  • the linear combination index belongs to a set of predefined linear combination indices.
  • Each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams.
  • the programming further includes instructions for receiving a rotation index from the UE.
  • the rotation index identifies a selected angle of rotation of the set of beams.
  • the programming further includes instructions for receiving a channel quality index (CQI) corresponding to the selected combination of beams.
  • CQI channel quality index
  • the RS is transmitted over different beams in the set of beams.
  • the RS is received non-precoded in the downlink channel.
  • a method for sending a channel state information includes selecting, by a user equipment (UE) , a first group of beams from a codebook of beams, the first group of beams having a predefined sequence. The method also includes transmitting, by the UE, a first group index to a base station (BS) , the first group index uniquely identifying the first group of beams selected from the codebook of beams, a first number of bits representing the first group of beams being equal to N being a number of codewords in the codebook of beams and M being a number of beams in the first group of beams.
  • each beam in the first group of beams is represented by a vector or a matrix.
  • each beam in the codebook of beams is represented by a vector or a matrix.
  • the first number of bits is a number of bits before potential encoding.
  • a group index is determined by C1 + l, where x 0 , x 1 , ..., x M-1 are M beam indices to be reported, C1 is an arbitrary constant, and l is equal to
  • a group index is determined by C2 -l, where x 0 , x 1 , ..., x M-1 are M beam indices to be reported, C2 is an arbitrary constant, and l is equal to
  • the predefined sequence is specified in a standard text.
  • the method further includes receiving, by the UE, the predefined sequence in a signaling message.
  • the predefined sequence is an increasing sequential list of beam indices.
  • the predefined sequence is a decreasing sequential list of beam indices.
  • the first group of beams being adjacent to a second group of beams in response to the first group index being adjacent to a second group index, the first group of beams being mapped to the first group index, and the second group of beams being mapped to the second group index.
  • the first group of beams being adjacent to the second group of beams in response to a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams and each of the other beam indices of the first group of beams being equal to a corresponding one of the other beam indices of the second group of beams.
  • the first group index being adjacent to the second group index in response to the first group index being in sequentially before or after the second group index.
  • a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams in response to the last beam index of the first group of beams having an index greater or less than one of the last beam index of the second group of beams.
  • the first group of beams being greater than a second group of beams in response to the first group index being greater than a second group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to a second group index.
  • the second group of beams being greater than the first group of beams in response to an N-ary representation of the second group index having M beam indices being greater than the N-ary representation of the first group index, the N-ary representation being equal to x 1 ⁇ N (M-1) + x (2) ⁇ N (M-2) + ... + x (M-1) ⁇ N (1) + x (M) ⁇ N (0) , and x y being a beam index corresponding to a yth beam index.
  • the first group of beams and the second group of beams are one of the group of beams.
  • the first group of beams being less than a second group of beams in response to a second group index being greater than the first group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to the second group index.
  • the second group of beams being less than the first group of beams in response to an N-ary representation of the second group index having M beam indices being less than the N-ary representation of the first group index, the N-ary representation being equal to x 1 ⁇ N (M-1) + x (2) ⁇ N (M-2) + ... + x (M-1) ⁇ N (1) + x (M) ⁇ N (0) and x y being a beam index corresponding to a yth beam index.
  • the first group of beams and the second group of beams are one of the group of beams.
  • the method further includes transmitting, by the UE, a rotation index to the base station, the rotation index identifying a selected angle of rotation of a channel space comprising a set of beams in a group of beams.
  • the method further includes transmitting, by the UE, a channel quality index (CQI) corresponding to selected weighted combination of beams.
  • CQI channel quality index
  • the method further includes calculating, by the UE, a channel estimation of a downlink channel in accordance with a reference signal (RS) , a combination of beams selected in accordance with the channel estimation; selecting, by the UE, a rotation index in accordance with the channel estimation; and transmitting, by the UE, the selected rotation index to the base station.
  • RS reference signal
  • a method for receiving channel state information includes receiving, by an access node, a first group index from a user equipment (UE) , the first group index uniquely identifying a first group of beams selected from a codebook of beams, a first number of bits representing the first group of beams being equal to N being a number of codewords in the codebook of beams and M being a number of beams in the first group of beams; and mapping, by the access node, the received first group index to the first group of beams selected from the codebook of beams, the first group of beams having a predefined sequence.
  • each beam in the first group of beams is represented by a vector or a matrix.
  • each beam in the codebook of beams is represented by a vector or a matrix.
  • the first number of bits is a number of bits before potential encoding.
  • a group index is determined by C1 + l, where x0, x1, ..., xM-1 are M beam indices to be reported, C1 is an arbitrary constant, and l is equal to
  • a group index is determined by C2 -l, where x 0 , x 1 , ..., x M-1 are M beam indices to be reported, C2 is an arbitrary constant, and l is equal to
  • the predefined sequence is specified in a standard text.
  • the method further includes receiving, by the UE, the predefined sequence in a signaling message.
  • the predefined sequence is an increasing sequential list of beam indices.
  • the predefined sequence is a decreasing sequential list of beam indices.
  • the first group of beams being adjacent to a second group of beams in response to the first group index being adjacent to a second group index, the first group of beams being mapped to the first group index, and the second group of beams being mapped to the second group index.
  • the first group of beams being adjacent to the second group of beams in response to a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams and each of the other beam indices of the first group of beams being equal to a corresponding one of the other beam indices of the second group of beams.
  • the first group index being adjacent to the second group index in response to the first group index being in sequentially before or after the second group index.
  • a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams in response to the last beam index of the first group of beams having an index greater or less than one of the last beam index of the second group of beams.
  • the first group of beams being greater than a second group of beams in response to the first group index being greater than a second group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to a second group index.
  • the second group of beams being greater than the first group of beams in response to an N-ary representation of the second group index having M beam indices being greater than the N-ary representation of the first group index, the N-ary representation being equal to x 1 ⁇ N (M-1) + x (2) ⁇ N (M-2) + ... + x (M-1) ⁇ N (1) + x (M) ⁇ N (0) ; and x y being a beam index corresponding to a yth beam index.
  • the first group of beams and the second group of beams are one of the group of beams.
  • the first group of beams being less than a second group of beams in response to a second group index being greater than the first group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to the second group index.
  • the second group of beams being less than the first group of beams in response to an N-ary representation of the second group index having M beam indices being less than the N-ary representation of the first group index, the N-ary representation being equal to x 1 ⁇ N (M-1) + x (2) ⁇ N (M-2) + ... + x (M-1) ⁇ N (1) + x (M) ⁇ N (0) ; and x y being a beam index corresponding to a yth beam index.
  • the first group of beams and the second group of beams are one of the group of beams.
  • the method further includes receiving, by the access node, a rotation index from the UE, the rotation index identifying a selected angle of rotation of a set of beams in the codebook of beams; and receiving, by the access node, a channel quality index (CQI) corresponding to the first group of beams.
  • CQI channel quality index
  • a method for subspace selection includes selecting, by a user equipment (UE) from a number of N different beams that form a basis for a channel space, a first combination of beams that form a basis for a subspace of the channel space.
  • the method also includes transmitting, by the UE to a base station, a descriptor of the first combination.
  • the descriptor includes one of a linear combination index or a bitmap.
  • the bitmap would include N bits each corresponding to a different beam of the N beams, where N is an integer greater than one.
  • a user equipment includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor.
  • the programming includes instructions for selecting, from a number of N different beams that form a basis for a channel space, a first combination of beams that form a basis for a subspace of the channel space.
  • the programming also includes instructions for transmitting, to a base station, a descriptor of the first combination.
  • the descriptor includes one of a linear combination index or a bitmap.
  • the bitmap would include N bits each corresponding to a different beam of the N beams, where N is an integer greater than one.
  • a base station includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor.
  • the programming includes instructions for transmitting a reference signal to a user equipment (UE) over a communications channel corresponding to a channel space formed by a basis comprising N different beams.
  • the programming also includes instructions for receiving, from the UE, a descriptor of a first combination of beams that form a basis for a subspace of the channel space.
  • the descriptor includes one of a linear combination index or a bitmap.
  • the bitmap would include N bits each corresponding to a different beam of the N beams.
  • Figure 1 is a diagram of an embodiment wireless communications network
  • Figure 2 is a flow chart of an embodiment method for operating a user equipment (UE) and transmitting a linear combination index
  • Figure 3 is a flow chart of an embodiment method for operating a base station and receiving a linear combination index
  • Figure 4 is a flow chart of an embodiment method for operating a UE and transmitting CSI feedback
  • Figure 5 is a flow chart of an embodiment method for operating a base station and receiving CSI feedback
  • Figure 6 is a diagram of a an embodiment sub-band bundling for channel weighting
  • Figure 7 is a flow chart of another embodiment method for operating a base station and receiving CSI feedback
  • FIG. 8 is a diagram of an embodiment processing system
  • Figure 9 is a diagram of an embodiment transceiver.
  • the disclosure provides many applicable inventive concepts that can be embodied in a wide variety of specific contexts.
  • the specific embodiments discussed are merely illustrative of specific configurations and do not limit the scope of the disclosure.
  • the disclosure will describe embodiments in the particular context of a downlink channel from a base station to a User Equipment (UE)
  • the embodiments are equally applicable in an uplink from a multi-antenna UE to a base station or in any other over-the-air communications link originating from a device having multiple antennas.
  • the term “beam direction” refers to a radio antenna pattern, or set of beamforming weights, that is used for directional signal transmission and/or reception.
  • the terms “beam directions” and “beams” are used interchangeably herein.
  • Beam scanning is generally performed during, or just prior to, link establishment in order to identify which pair of beam directions are to be used for initial data transmission/reception.
  • Conventional beam scanning schemes generally require the UE to select a subset of beams based on reference signals received from the base station, and to subsequently feedback a corresponding list of beam indices to the base station.
  • the subset of selected beams may then be used to schedule sounding reference signal (SRS) transmissions, which may be evaluated to develop a better estimate of the channel in order to select the appropriate pair of TX and RX beams for the initial data transmission.
  • SRS sounding reference signal
  • Embodiments of this disclosure reduce the signaling overhead associated with beam scanning by feeding back a linear combination index that identifies the subset of select beams, rather than a list of indices identifying individual beams within the subset. Because the linear combination index identifies the selected “combination” of beams, the number of bits used to represent the linear combination index is generally less than the number of bits required to communicate a corresponding list of individual beam indices, thereby reducing signaling overhead.
  • the linear combination index belongs to a set of predefined linear combination indices, with each predefined linear combination index in the set identifying a different combination of available beams.
  • a UE receives a reference signal (RS) from a base station in a downlink channel and calculates a channel estimation in accordance with the RS.
  • the UE selects a combination of beams from a set of available beams in accordance with the calculated channel estimation.
  • the UE transmits a linear combination index to the base station identifying the selected combination of beams.
  • the UE transmits a channel quality index (CQI) corresponding to the selected combination of beams to the base station.
  • CQI channel quality index
  • the UE selects a rotation angle of a rotated channel space comprising the set of available beams.
  • the UE transmits a rotation index identifying the rotated channel space to the base station.
  • the UE selects the rotation angle in accordance with the channel estimation.
  • a base station transmits a RS to a UE in a downlink channel.
  • the base station receives a linear combination index from the UE, for example as CSI feedback.
  • the linear combination index is used by the base station to identify a combination of beams selected by the UE from a set of available beams.
  • the combination of beams that have been identified are used by the base station to communicate with the UE.
  • the linear combination index identifies the selected combination of beams without explicitly indicating or identifying the individual beams in the selected combination of beams.
  • the linear combination index belongs to a set of predefined linear combination indices.
  • each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of available beams.
  • the RS is transmitted over different beams in the set of beams in the downlink channel.
  • the base station receives a rotation index from the UE.
  • the rotation index identifies a rotation angle of a rotated channel space comprising the set of available beams selected by the UE.
  • the base station receives a CQI corresponding to the selected combination of beams from the UE.
  • each beam in a linear combination index is represented by a vector. In some other embodiments, each beam in the linear combination index is represented by a bit matrix.
  • the UE may receive a RS transmitted from 32 ports of a base station in a DFT codebook scenario, resulting in a full-space basis of 16 beams due to polarization.
  • the UE may then feedback beam indices for each of 4 selected beams, where each of these beam indices must include at least 4 bits since there are 16 total beams.
  • the UE may vary the number of selected beams from 1 to 16 based on local conditions without requiring extra signaling.
  • a linear combination index used as the subspace descriptor may reduce overhead relative to feeding back all selected beam indices.
  • the linear combination index may be represented by as few as bits.
  • such a linear combination index could reduce overhead compared to feeding back all 4 selected beam indices, which as previously discussed would require at least 16 bits.
  • the number of bits representing each group of beams in a linear combination index of beam may be calculated using the equation:
  • the least integer of logarithm (base 2) of the binomial coefficient represents the number of bits of a group.
  • the binomial coefficient can be calculated using the formula: In such an embodiment, N represents a number of codewords in a codebook of beams and M is a number of beams in a group of beams.
  • FIG. 1 illustrates a network 100 for communicating data.
  • the network 100 comprises a base station 110 having a coverage area 101, a plurality of UEs 115, and a backhaul network 130.
  • the base station 110 establishes uplink (dashed line) and/or downlink (dotted line) connections with the UEs 115, which serve to carry data from the UEs 115 to the base station 110 and vice-versa.
  • Data carried over the uplink/downlink connections may include data communicated between the UEs 115, as well as data communicated to/from a remote-end (not shown) by way of the backhaul network 130.
  • base station refers to any component (or collection of components) configured to provide wireless access to a network, such as an enhanced base station (eNB) , a macro-cell, a femtocell, a Wi-Fi access point (AP) , or other wirelessly enabled devices.
  • Base stations may provide wireless access in accordance with one or more wireless communication protocols, e.g., long term evolution (LTE) , LTE advanced (LTE-A) , High Speed Packet Access (HSPA) , Wi-Fi 802.11a/b/g/n/ac, etc.
  • LTE long term evolution
  • LTE-A LTE advanced
  • HSPA High Speed Packet Access
  • Wi-Fi 802.11a/b/g/n/ac etc.
  • the term “UE” refers to any component (or collection of components) capable of establishing a wireless connection with a base station, such as a mobile device, a mobile station (STA) , and other wirelessly enabled devices.
  • the network 100 may comprise various other wireless devices, such as relays, low power nodes, etc.
  • FIG. 2 is a flowchart of an embodiment method 200 for receiving a RS and transmitting a selected group of beams to a base station, as may be performed by a UE.
  • the UE receives the RS from the base station in a downlink channel.
  • the RS may be received by the UE over receive beams from the base station.
  • the RS may be received without beamforming, such as in non-precoded channel state information-reference signal (CSI-RS) of an LTE network.
  • CSI-RS channel state information-reference signal
  • the RS may be beamformed in the downlink channel, but the UE may receive the RS without receiving the beamforming, such as in multiple input, multiple output (MIMO) class B of an LTE network.
  • MIMO multiple input, multiple output
  • the UE calculates a channel estimation of the downlink channel in accordance with the RS.
  • the UE selects a combination of beams that form a basis for the subspace.
  • the combination of beams selected by the UE is in accordance with the channel estimation calculated at step 204.
  • the UE determines from a set of predefined linear combination indices, a linear combination index identifying the selected combination of beams. In the set of predefined linear combination indices, each predefined linear combination index identifies a different combination of beams of the set of available beams.
  • the linear combination index identifies the selected combination of beams without identifying, or explicitly indicating each individual beam in the selected combination of beams.
  • the UE transmits the linear combination index to the base station.
  • FIG 3 is a flowchart of an embodiment method 300 for transmitting a RS and receiving a selected group of beams from a UE, as may be performed by a base station.
  • the base station transmits a RS to the UE in a downlink channel.
  • the RS may be transmitted over beams and in other embodiments, the RS may be transmitted to the UE without beamforming.
  • the base station receives a linear combination index from the UE in response to the transmitted RS.
  • the base station identifies a group of beams in a channel space that form a basis for a subspace that the UE has selected.
  • the base station may use a same set of predefined linear combination indices to identify the group of beams. The base station then uses this group of beams to communicate with the UE.
  • Figure 4 is a flowchart of an embodiment method 400 for receiving a RS and transmitting a selected group of beams to a base station as CSI feedback, as may be performed by a UE.
  • the UE receives the RS from the base station in a downlink channel.
  • the RS may be received over beams and in other embodiments, the RS may be received without beamforming.
  • the UE calculates a channel estimation of the downlink channel in accordance with the RS.
  • the UE may also perform a channel estimation over a channel space that the UE models as having, for example, an orthogonal basis of N different beams.
  • this channel space model may also be rotated P number of times when calculating the channel estimation.
  • the channel space model may be rotated P number of times to support P times oversampling in the spatial domain.
  • the rotation is used to better align the channel space model with the optimal channel path.
  • a codebook used for this channel estimation may be, for example, a codebook based on a Discrete Fourier Transform (DFT) such as the DFT-based codebook used by LTE Release 13.
  • DFT Discrete Fourier Transform
  • channel statistics such as channel correlation or channel covariance matrix (CCM) are typically used to determine the channel state information (CSI) .
  • CCM channel correlation or channel covariance matrix
  • the CCM may be utilized to estimate the high-dimensional channels and/or convert the high-dimensional channels into low-dimensional subspaces, which reduces the effective channel dimensions.
  • DCCM downlink channel covariance matrix
  • the UE selects one or more eigenvectors of the covariance matrix.
  • the UE selects a subspace.
  • the combination of beams selected by the UE is in accordance with at least the principal eigenvector of the covariance matrix determined in step 406. Increasing numbers of eigenvectors may be used for the subspace selection as the rank of the channel covariance matrix increases.
  • the UE may also select one of the P rotation angles of the rotated channel space.
  • the channel subspace has a basis of M different beams selected from the N total beams, where M is less than or equal to N.
  • the UE maps the eigenvector (s) onto the selected M-beam subspace to calculate M channel weight (s) .
  • the channel weight (s) may include both quantized phase and amplitude coefficients that are to be used by the base station to precode transmissions over a particular frequency band. When a frequency band is divided into sub-bands, various channel weighting protocols may be used to provide increased or decreased granularity of channel weights over the different sub-bands.
  • the UE feeds back different phase and amplitude coefficient (s) for each respective sub-band.
  • the UE determines from a set of predefined linear combination indices, a linear combination index identifying the subspace.
  • each predefined linear combination index identifies a subspace of the full space basis.
  • the linear combination index identifies the subspace without identifying, or explicitly indicating each individual beam in the subspace.
  • the UE determines a channel quality index (CQI) of the subspace corresponding to each set of channel weights.
  • CQI channel quality index
  • a rotation index is selected that describes the selected rotation angle.
  • the UE determines a rotation index that corresponds to the selected rotation angle of a rotated space comprising the full space basis.
  • a 3 bit rotation index can indicate up to 8 different rotation angles to support 8 times oversampling in the spatial domain.
  • the UE transmits a CSI feedback to the base station comprising the linear combination index, the channel quality index (CQI) , and the rotation angle of the rotated space.
  • CQI channel quality index
  • FIG. 5 is a flowchart of an embodiment method 500 for transmitting a RS and receiving a CSI feedback from a UE, as may be performed by a base station.
  • the base station transmits a RS to the UE in a downlink channel.
  • the RS may be transmitted over beams and in other embodiments, the RS may be transmitted to the UE without beamforming.
  • the base station transmits a reference signal to a UE.
  • the base station receives, from the UE, a CSI feedback.
  • the CSI feedback may comprise a linear combination index, a rotation index, and weighting factors and an associated channel quality index.
  • the base station may use the linear combination index in the CSI feedback to identify a combination of beams that form a basis for a subspace of a channel space.
  • the channel subspace selected from a channel space identified by the UE.
  • the base station uses the channel quality index to identify the channel quality index of the selected combination of beams identified using the linear combination index.
  • the base station may use the rotation index to identify a selected rotation angle in a channel space model rotated to support oversampling in the spatial domain.
  • the base station uses the information from the CSI feedback and at least one of the channel subspace, rotation angle, weighting factors and channel quality index to communicate with the UE.
  • the descriptor of the selected combination of beams may be an N-bit bitmap.
  • each bit corresponds to a selection of a beam; if a particular bit element in the bitmap is set to one, this value indicates that a corresponding beam is selected, while a zero valued bit indicates that the corresponding beam is not selected.
  • the reverse of this logic may be used.
  • a bitmap used as the subspace descriptor may increase system flexibility by allowing the number of selected beams to vary. Allowing the number of selected beams to vary may achieve a better performance-overhead tradeoff.
  • a UE would only need to feedback one selected path from the base station to the UE.
  • a path cluster covering a wider angle spread may be required to effectively represent the communications channel. To cover this wider angle spread, several beams may need to be selected as a basis for the channel subspace. If the indices of all selected beams are fed back, however, the number of feedback bits required increases as the number of selected beams increases.
  • Figure 6 illustrates an embodiment of a band 600 subdivided into sub-bands 604 in which the exemplary channel weighting protocol previously described is modified to allow for sub-band bundling.
  • the sub-bands 604 within a particular frequency range may be grouped together into bundles that may differ in bandwidth.
  • the UE may then calculate different phase and amplitude coefficients for each bundle 604.
  • a frequency range 602 may be, for example, 20 MHz wide.
  • This frequency range 602 is divided into 13 sub-bands 604 which are labeled S1 through S13.
  • S1 and S2 are grouped together as a first sub-band bundle 606, S3 through S12 are grouped together as a second sub-band bundle 608, and S13 is a third sub-band bundle 610.
  • the base station may direct the sub-band bundling based on channel conditions to provide a performance-overhead tradeoff. For example, the base station could bundle sub-bands at a granularity sufficient to provide the minimum number of feedback bits to achieve a predetermined performance level.
  • Figure 7 is a flowchart of an embodiment method 700 for transmitting a RS and a descriptor of a sub-band bundling to a UE and receiving CSI feedback, as may be performed by a base station.
  • the base station selects a sub-band bundling in a frequency band that is divided into sub-bands based on a channel condition. Each sub-band may be bundled as part of a sub-band bundle, as previously described with respect to figure 6.
  • the base station transmits a descriptor of the sub-band bundling along with a RS in a downlink channel to a UE.
  • the RS may be an LTE non-precoded CSI-RS.
  • the RS may be in a MIMO class B LTE network.
  • the sub-band bundling descriptor may be included in a transmission that is different and distinct from the reference signal.
  • the base station receives CSI feedback transmitted from the UE.
  • This CSI feedback indicates both a subspace selected by the UE, and channel weight (s) calculated by the UE in accordance with the selected sub-band bundling.
  • the channel subspace selected by the UE has a basis of M different beams selected from N total beams of the entire channel space, where M is less than or equal to N.
  • the CSI feedback may also include a rotation index that describes which of P rotation angles has been selected.
  • the descriptor of the selected subspace that is included in the CSI may be either an N-bit bitmap or a linear combination index.
  • the base station identifies the selected channel subspace using the CSI feedback.
  • the base station may use the linear combination index in the CSI feedback to identify a combination of beams that form a basis for a subspace of a channel space.
  • the channel subspace is selected from a channel space identified by the UE.
  • the base station identifies channel weight (s) in accordance with the CSI feedback.
  • channel weighting protocols already described, other channel weighting protocols may also be used.
  • the same amplitude coefficient (s) are to be used over the entire frequency band but different phase coefficient (s) are to be used over different sub-bands, which may decrease channel quality while saving overhead.
  • the base station transmits precoded data to the UE in accordance with the M selected beams and the channel weight (s) identified .
  • the UE selects a number of M beams from N available set of beams (M is less than or equal to N) .
  • M is less than or equal to N
  • an M-by-1 index vector x may be formed.
  • This index vector x includes M elements that each include a respective index of a different one of the M selected beams.
  • the N beams are sorted according to certain order and the beam order is commonly known to base station and UE.
  • the beam order of M selected beams in x follows the same order.
  • a linear function may then uniquely map all possible values of index vector x to a unique scalar l in
  • the linear combination index l a 0 x 0 + a 1 x 1 + ... + aM-1xM-1, where a0, a1, ..., aM-1, are scalars with values that provide a unique mapping to
  • the UE can compute the linear combination index by using Equation 1 below:
  • Equation 2 For an arbitrary number of M beams selected from N total beams, a linear combination index can be computed using Equation 2 below:
  • the beam reporting index is indexed as where the combinatorial numbering can be computed using the Equation 3 below:
  • the indices i 1, 2 is reported using a combinatorial coefficient table where for a given L and (N 1 , N 2 ) , rows 0, ..., N 1 N 2 -1, and cols 1, ..., L are used.
  • beam sorting may be identified as (indices i is assigned such that n (i) increases as i increases) .
  • indices i is assigned such that n (i) increases as i increases.
  • n (i) N 1 N 2 -1-x *
  • the beam indices in the predefined linear combination of indices may have a predefined sequence or order.
  • the predefined sequence of beams may have an ascending order.
  • each beam in the linear combination has a sequentially ascending number, with the first beam index being less than the last beam index.
  • the predefined sequence of beams may have a descending order.
  • each beam in the linear combination has a sequentially descending order, with the first beam index being greater than the last beam index.
  • the sequential order may be specified in a standard text.
  • the predefined sequence of the predefined linear combination of indices may be signaled, using a signaling message, to the UE from a base station.
  • a group of beams in the linear combination of index may be said to be adjacent to each other when the corresponding group index is adjacent to each other.
  • the group of beams may also be said to be adjacent to each other when the last beam index of each group of beams is adjacent to each other and all other indices of the groups are matched.
  • the last beam index of adjacent groups are separated by a single index.
  • the index of each group of beams is directly correlated to its corresponding group of beams.
  • a group of beams having an index larger than a second group of beams also has a larger group of beams. The opposite also holds true.
  • a groups size can be determined by the N-ary representation of the group.
  • the N-ary representation being equal to x 1 ⁇ N (M-1) + x (2) ⁇ N (M-2) + ... + x (M-1) ⁇ N (1) + x (M) ⁇ N (0) .
  • x y represents the yth beam index of a group of beams having M beam indices.
  • FIG. 8 illustrates a block diagram of an embodiment processing system 800 for performing methods described herein, which may be installed in a host device.
  • the processing system 800 includes a processor 804, a memory 806, and interfaces 810-814, which may (or may not) be arranged as shown in FIG. 8.
  • the processor 804 may be any component or collection of components adapted to perform computations and/or other processing related tasks
  • the memory 806 may be any component or collection of components adapted to store programming and/or instructions for execution by the processor 804.
  • the memory 806 includes a non-transitory computer readable medium.
  • the interfaces 810, 812, 814 may be any component or collection of components that allow the processing system 800 to communicate with other devices/components and/or a user.
  • one or more of the interfaces 810, 812, 814 may be adapted to communicate data, control, or management messages from the processor 804 to applications installed on the host device and/or a remote device.
  • one or more of the interfaces 810, 812, 814 may be adapted to allow a user or user device (e.g., personal computer (PC) , etc. ) to interact/communicate with the processing system 800.
  • the processing system 800 may include additional components not depicted in FIG. 8, such as long term storage (e.g., non-volatile memory, etc. ) .
  • the processing system 800 is included in a network device that is accessing, or part otherwise of, a telecommunications network.
  • the processing system 800 is in a network-side device in a wireless or wireline telecommunications network, such as a base station, a relay station, a scheduler, a controller, a gateway, a router, an applications server, or any other device in the telecommunications network.
  • the processing system 800 is in a user-side device accessing a wireless or wireline telecommunications network, such as a mobile station, a user equipment (UE) , a personal computer (PC) , a tablet, a wearable communications device (e.g., a smartwatch, etc. ) , or any other device adapted to access a telecommunications network.
  • UE user equipment
  • PC personal computer
  • tablet a wearable communications device
  • FIG. 9 illustrates a block diagram of a transceiver 900 adapted to transmit and receive signaling over a telecommunications network.
  • the transceiver 900 may be installed in a host device. As shown, the transceiver 900 comprises a network-side interface 902, a coupler 904, a transmitter 906, a receiver 908, a signal processor 910, and a device-side interface 912.
  • the network-side interface 902 may include any component or collection of components adapted to transmit or receive signaling over a wireless or wireline telecommunications network.
  • the coupler 904 may include any component or collection of components adapted to facilitate bi-directional communication over the network-side interface 902.
  • the transmitter 906 may include any component or collection of components (e.g., up-converter, power amplifier, etc. ) adapted to convert a baseband signal into a modulated carrier signal suitable for transmission over the network-side interface 902.
  • the receiver 908 may include any component or collection of components (e.g., down-converter, low noise amplifier, etc. ) adapted to convert a carrier signal received over the network-side interface 902 into a baseband signal.
  • the signal processor 910 may include any component or collection of components adapted to convert a baseband signal into a data signal suitable for communication over the device-side interface (s) 912, or vice-versa.
  • the device-side interface (s) 912 may include any component or collection of components adapted to communicate data-signals between the signal processor 910 and components within the host device (e.g., the processing system 800, local area network (LAN)
  • the transceiver 900 may transmit and receive signaling over any type of communications medium.
  • the transceiver 900 transmits and receives signaling over a wireless medium.
  • the transceiver 900 may be a wireless transceiver adapted to communicate in accordance with a wireless telecommunications protocol, such as a cellular protocol (e.g., long-term evolution (LTE) , etc. ) , a wireless local area network (WLAN) protocol (e.g., Wi-Fi, etc. ) , or any other type of wireless protocol (e.g., Bluetooth, near field communication (NFC) , etc. ) .
  • the network-side interface 902 comprises one or more antenna/radiating elements.
  • the network-side interface 902 may include a single antenna, multiple separate antennas, or a multi-antenna array configured for multi-layer communication, e.g., single input multiple output (SIMO) , multiple input single output (MISO) , multiple input multiple output (MIMO) , etc.
  • the transceiver 900 transmits and receives signaling over a wireline medium, e.g., twisted-pair cable, coaxial cable, optical fiber, etc.
  • Specific processing systems and/or transceivers may utilize all of the components shown, or only a subset of the components, and levels of integration may vary from device to device.
  • a signal may be transmitted by a transmitting unit or a transmitting module.
  • a signal may be received by a receiving unit or a receiving module.
  • a signal may be processed by a processing unit or a processing module.
  • a signal may be selected by a selecting unit or a storing module.
  • the respective units/modules may be hardware, software, or a combination thereof.
  • one or more of the units/modules may be an integrated circuit, such as FPGAs or ASICs.
  • Illustrative embodiments have the advantage of using CSI feedback in a communications network to provide increased channel resolution for improved precoding and/or multi-user scheduling.
  • embodiments provide the advantages of reducing overhead and/or improving beam selection flexibility while still maintaining communications performance.

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Abstract

Embodiments of this disclosure provide techniques for receiving reference signals by a user equipment (UE) from a base station in a downlink channel, as well as transmitting a linear combination index from the UE to the base station. In particular, the linear combination index identifies a combination of beams selected from a set of beams in accordance with the RS.

Description

SYSTEM AND METHOD FOR TRANSMITTING A SUB-SPACE SELECTION
CROSS-REFERENCE TO RELATED APPLICATIONS
This application claims priority to U.S. non-provisional application Serial No. 15/800/955 filed on November 1, 2017 and entitled “System and Method for Transmitting a Sub-Space Selection” , which in turn claims priority from U.S. Provisional Patent application Serial No. 62/417,832, filed on November 4, 2016 and entitled “System and Method for Transmitting a Sub-Space Selection” , both of which patent applications are incorporated herein by reference as if reproduced in their entireties.
TECHNICAL FIELD
The present disclosure relates generally to a system and method for a subspace selection, and, in particular embodiments, to a system and method for transmitting a subspace selection.
BACKGROUND
Wireless signals communicated at high carrier frequencies, such as millimeter Wave (mmW) signals, tend to exhibit high free-space path loss. To compensate for high path loss rates, next-generation telecommunication networks may utilize beamforming at both the base station and the UE to exploit multipath propagation and increase system throughput and/or reliability. Implementing beamforming at both the base station and the UE may significantly increase the complexity of the underlying beam management techniques.
SUMMARY
Technical advantages are generally achieved by embodiments of this disclosure which describe methods for transmitting a subspace selection.
In accordance with an embodiment, a method for subspace selection is provided. In this embodiment, the method includes receiving a reference signal (RS) by a user equipment (UE) from a base station in a downlink channel, as well as transmitting a linear combination index from the UE to the base station. In this embodiment, the linear combination index identifies a combination of beams selected from a set of beams in accordance with the RS. In one example, the linear combination index identifies the selected combination of beams without identifying, or otherwise explicitly indicating, individual beams within the selected combination of beams. Optionally, in such an example, or in another example, the linear combination index  belongs to a set of predefined linear combination indices, and each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams. Optionally, in any one of the above mentioned examples, or in another example, the method further includes transmitting a rotation index by the UE to the base station. The rotation index identifies a selected angle of rotation of a channel space comprising the set of beams. The method further includes transmitting a channel quality index (CQI) corresponding to selected weighted combination of beams from the UE to the base station. Optionally, in any one of the above mentioned examples, or in another example, the method further includes calculating a channel estimation of the downlink channel by the UE in accordance with the RS, selecting a rotation index by the UE in accordance with the calculated channel estimation, and transmitting the selected rotation index by the UE to the base station. The combination of beams being selected in accordance with the calculated channel estimation. Optionally, in any one of the above mentioned examples, or in another example, the RS is received over different beams in the set of beams in the downlink channel. Optionally, in any one of the above mentioned examples, or in another example, the RS is received non-precoded in the downlink channel.
In accordance with another embodiment, a method for subspace selection is provided. In this embodiment, the method includes transmitting a RS from a base station to a user equipment (UE) and receiving a linear combination index by the base station from the UE. In this embodiment, the linear combination index identifies a combination of beams, selected by the UE, from a set of beams in accordance with the RS. In one example, the linear combination index identifies the selected combination of beams without identifying individual beams within the selected combination of beams. Optionally, in such an example, or in another example, the linear combination index belongs to a set of predefined linear combination indices, and each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams. Optionally, in any one of the above mentioned examples, or in another example, the method further includes receiving a rotation index by the base station from the UE, the rotation index identifying a selected angle of rotation of the set of beams. In this embodiment, the method further includes receiving a channel quality index (CQI) corresponding to selected weighted combination of beams by the base station. Optionally, in any one of the above mentioned examples, or in another example, the RS is transmitted over different beams in the set of beams. Optionally, in any one of the above mentioned examples, or in another example, the RS is received non-precoded in the downlink channel.
In accordance with yet another embodiment, a user equipment is provided that includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor. In this embodiment, the programming includes instructions for receiving a RS from a base station in a downlink channel and transmitting a linear combination index to the base station, the linear combination index identifying a combination of beams selected from a set of beams in accordance with the RS. In one example, the linear combination index identifies the selected combination of beams without identifying, or otherwise explicitly indicating, individual beams within the selected combination of beams. Optionally, in such an example, or in another example, the linear combination index belongs to a set of predefined linear combination indices and each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams. Optionally, in any one of the above mentioned examples, or in another example, the programming further includes instructions for transmitting a rotation index to the base station. The rotation index identifies a selected angle of rotation of the set of beams. The programming further includes transmitting a channel quality index (CQI) corresponding to the selected combination of beams. Optionally, in any one of the above mentioned examples, or in another example, the programming further includes instructions for calculating a channel estimation of the downlink channel in accordance with the RS, selecting a rotation index in accordance with the calculated channel estimation, and transmitting the selected rotation index to the base station. The combination of beams being selected is in accordance with the calculated channel estimation. Optionally, in any one of the above mentioned examples, or in another example, the RS is received over different beams in the set of beams in a downlink channel. Optionally, in any one of the above mentioned examples, or in another example, the RS is received non-precoded in the downlink channel.
In accordance with yet another embodiment, a base station is provided that includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor. In this embodiment, the programming includes instructions transmitting a RS to a user equipment (UE) and receiving a linear combination index from the UE.The linear combination index identifies a combination of beams, selected by the UE, from a set of beams in accordance with the RS. In one example, the linear combination index identifies the selected combination of beams without identifying, or otherwise indicating, individual beams within the selected combination of beams. Optionally, in such an example, or in another example, the linear combination index belongs to a set of predefined linear combination indices. Each predefined linear combination index in the set of predefined linear combination indices  identifies a different combination of beams in the set of beams. Optionally, in any one of the above mentioned examples, or in another example, the programming further includes instructions for receiving a rotation index from the UE. The rotation index identifies a selected angle of rotation of the set of beams. The programming further includes instructions for receiving a channel quality index (CQI) corresponding to the selected combination of beams. Optionally, in any one of the above mentioned examples, or in another example, the RS is transmitted over different beams in the set of beams. Optionally, in any one of the above mentioned examples, or in another example, the RS is received non-precoded in the downlink channel.
In accordance with yet another embodiment, a method for sending a channel state information is provided that includes selecting, by a user equipment (UE) , a first group of beams from a codebook of beams, the first group of beams having a predefined sequence. The method also includes transmitting, by the UE, a first group index to a base station (BS) , the first group index uniquely identifying the first group of beams selected from the codebook of beams, a first number of bits representing the first group of beams being equal to
Figure PCTCN2017109347-appb-000001
N being a number of codewords in the codebook of beams and M being a number of beams in the first group of beams. In one example, each beam in the first group of beams is represented by a vector or a matrix. Optionally, in such an example, or in another example, each beam in the codebook of beams is represented by a vector or a matrix. Optionally, in any one of the above mentioned examples, or in another example, the first number of bits is a number of bits before potential encoding. Optionally, in any one of the above mentioned examples, or in another example, a group index is determined by C1 + l, where x0, x1, …, xM-1 are M beam indices to be reported, C1 is an arbitrary constant, and l is equal to
Figure PCTCN2017109347-appb-000002
Optionally, in any one of the above mentioned examples, or in another example, a group index is determined by C2 -l, where x0, x1, …, xM-1 are M beam indices to be reported, C2 is an arbitrary constant, and l is equal to
Figure PCTCN2017109347-appb-000003
Optionally, in any one of the above mentioned examples, or in another example, the predefined sequence is specified in a standard text. Optionally, in any one of the above mentioned examples, or in another example, the method further includes receiving, by the UE, the predefined sequence in a signaling  message. Optionally, in any one of the above mentioned examples, or in another example, the predefined sequence is an increasing sequential list of beam indices. Optionally, in any one of the above mentioned examples, or in another example, the predefined sequence is a decreasing sequential list of beam indices. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being adjacent to a second group of beams in response to the first group index being adjacent to a second group index, the first group of beams being mapped to the first group index, and the second group of beams being mapped to the second group index. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being adjacent to the second group of beams in response to a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams and each of the other beam indices of the first group of beams being equal to a corresponding one of the other beam indices of the second group of beams. Optionally, in any one of the above mentioned examples, or in another example, the first group index being adjacent to the second group index in response to the first group index being in sequentially before or after the second group index. Optionally, in any one of the above mentioned examples, or in another example, a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams in response to the last beam index of the first group of beams having an index greater or less than one of the last beam index of the second group of beams. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being greater than a second group of beams in response to the first group index being greater than a second group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to a second group index. Optionally, in any one of the above mentioned examples, or in another example, the second group of beams being greater than the first group of beams in response to an N-ary representation of the second group index having M beam indices being greater than the N-ary representation of the first group index, the N-ary representation being equal to x1×N (M-1) + x (2) ×N (M-2) + … + x (M-1) ×N (1) + x (M) ×N (0) , and xy being a beam index corresponding to a yth beam index. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams and the second group of beams are one of the group of beams. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being less than a second group of beams in response to a second group index being greater than the first group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to the second group index. Optionally, in any one of the above mentioned examples, or in another example, the second group of beams being less than the first group of beams in  response to an N-ary representation of the second group index having M beam indices being less than the N-ary representation of the first group index, the N-ary representation being equal to x1×N (M-1) + x (2) ×N (M-2) + … + x (M-1) ×N (1) + x (M) ×N (0) and xy being a beam index corresponding to a yth beam index. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams and the second group of beams are one of the group of beams. Optionally, in any one of the above mentioned examples, or in another example, the method further includes transmitting, by the UE, a rotation index to the base station, the rotation index identifying a selected angle of rotation of a channel space comprising a set of beams in a group of beams. In this embodiment, the method further includes transmitting, by the UE, a channel quality index (CQI) corresponding to selected weighted combination of beams. Optionally, in any one of the above mentioned examples, or in another example, the method further includes calculating, by the UE, a channel estimation of a downlink channel in accordance with a reference signal (RS) , a combination of beams selected in accordance with the channel estimation; selecting, by the UE, a rotation index in accordance with the channel estimation; and transmitting, by the UE, the selected rotation index to the base station.
In accordance with yet another embodiment, a method for receiving channel state information is provided that includes receiving, by an access node, a first group index from a user equipment (UE) , the first group index uniquely identifying a first group of beams selected from a codebook of beams, a first number of bits representing the first group of beams being equal to
Figure PCTCN2017109347-appb-000004
N being a number of codewords in the codebook of beams and M being a number of beams in the first group of beams; and mapping, by the access node, the received first group index to the first group of beams selected from the codebook of beams, the first group of beams having a predefined sequence. In one example, each beam in the first group of beams is represented by a vector or a matrix. Optionally, in such an example, or in another example, each beam in the codebook of beams is represented by a vector or a matrix. Optionally, in any one of the above mentioned examples, or in another example, the first number of bits is a number of bits before potential encoding. Optionally, in any one of the above mentioned examples, or in another example, a group index is determined by C1 + l, where x0, x1, …, xM-1 are M beam indices to be reported, C1 is an arbitrary constant, and l is equal to
Figure PCTCN2017109347-appb-000005
Optionally, in any one of the above mentioned examples, or in another example, a group index is determined by C2  -l, where x0, x1, …, xM-1 are M beam indices to be reported, C2 is an arbitrary constant, and l is equal to
Figure PCTCN2017109347-appb-000006
Optionally, in any one of the above mentioned examples, or in another example, the predefined sequence is specified in a standard text. Optionally, in any one of the above mentioned examples, or in another example, the method further includes receiving, by the UE, the predefined sequence in a signaling message. Optionally, in any one of the above mentioned examples, or in another example, the predefined sequence is an increasing sequential list of beam indices. Optionally, in any one of the above mentioned examples, or in another example, the predefined sequence is a decreasing sequential list of beam indices. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being adjacent to a second group of beams in response to the first group index being adjacent to a second group index, the first group of beams being mapped to the first group index, and the second group of beams being mapped to the second group index. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being adjacent to the second group of beams in response to a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams and each of the other beam indices of the first group of beams being equal to a corresponding one of the other beam indices of the second group of beams. Optionally, in any one of the above mentioned examples, or in another example, the first group index being adjacent to the second group index in response to the first group index being in sequentially before or after the second group index. Optionally, in any one of the above mentioned examples, or in another example, a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams in response to the last beam index of the first group of beams having an index greater or less than one of the last beam index of the second group of beams. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being greater than a second group of beams in response to the first group index being greater than a second group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to a second group index. Optionally, in any one of the above mentioned examples, or in another example, the second group of beams being greater than the first group of beams in response to an N-ary representation of the second group index having M beam indices being greater than the N-ary representation of the first group index, the N-ary representation being equal to x1×N (M-1) + x (2) ×N (M-2) + … + x (M-1) × N (1) + x (M) ×N (0) ; and xy being a beam index corresponding to a yth beam index. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams and the second group of beams are one of the group of beams. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams being less than a second group of beams in response to a second group index being greater than the first group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to the second group index. Optionally, in any one of the above mentioned examples, or in another example, the second group of beams being less than the first group of beams in response to an N-ary representation of the second group index having M beam indices being less than the N-ary representation of the first group index, the N-ary representation being equal to x1×N (M-1) + x (2) ×N (M-2) + … + x (M-1) ×N (1) + x (M) ×N (0) ; and xy being a beam index corresponding to a yth beam index. Optionally, in any one of the above mentioned examples, or in another example, the first group of beams and the second group of beams are one of the group of beams. Optionally, in any one of the above mentioned examples, or in another example, the method further includes receiving, by the access node, a rotation index from the UE, the rotation index identifying a selected angle of rotation of a set of beams in the codebook of beams; and receiving, by the access node, a channel quality index (CQI) corresponding to the first group of beams.
In accordance with a first example embodiment of the present disclosure, a method for subspace selection is provided. The method includes selecting, by a user equipment (UE) from a number of N different beams that form a basis for a channel space, a first combination of beams that form a basis for a subspace of the channel space. The method also includes transmitting, by the UE to a base station, a descriptor of the first combination. The descriptor includes one of a linear combination index or a bitmap. The bitmap would include N bits each corresponding to a different beam of the N beams, where N is an integer greater than one.
In accordance with a second example embodiment of the present disclosure, a user equipment is provided. The user equipment includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor. The programming includes instructions for selecting, from a number of N different beams that form a basis for a channel space, a first combination of beams that form a basis for a subspace of the channel space. The programming also includes instructions for transmitting, to a base station, a descriptor of the first combination. The descriptor includes one of a linear combination index or  a bitmap. The bitmap would include N bits each corresponding to a different beam of the N beams, where N is an integer greater than one.
In accordance with a third example embodiment of the present disclosure, a base station is provided. The base station includes a processor and a non-transitory computer-readable medium storing programming for execution by the processor. The programming includes instructions for transmitting a reference signal to a user equipment (UE) over a communications channel corresponding to a channel space formed by a basis comprising N different beams. The programming also includes instructions for receiving, from the UE, a descriptor of a first combination of beams that form a basis for a subspace of the channel space. The descriptor includes one of a linear combination index or a bitmap. The bitmap would include N bits each corresponding to a different beam of the N beams.
BRIEF DESCRIPTION OF THE DRAWINGS
For a more complete understanding of the present disclosure, and the advantages thereof, reference is now made to the following descriptions taken in conjunction with the accompanying drawings, in which:
Figure 1 is a diagram of an embodiment wireless communications network;
Figure 2 is a flow chart of an embodiment method for operating a user equipment (UE) and transmitting a linear combination index;
Figure 3 is a flow chart of an embodiment method for operating a base station and receiving a linear combination index;
Figure 4 is a flow chart of an embodiment method for operating a UE and transmitting CSI feedback;
Figure 5 is a flow chart of an embodiment method for operating a base station and receiving CSI feedback;
Figure 6 is a diagram of a an embodiment sub-band bundling for channel weighting;
Figure 7 is a flow chart of another embodiment method for operating a base station and receiving CSI feedback;
Figure 8 is a diagram of an embodiment processing system; and
Figure 9 is a diagram of an embodiment transceiver.
DETAILED DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
This disclosure provides many applicable inventive concepts that can be embodied in a wide variety of specific contexts. The specific embodiments discussed are merely illustrative of specific configurations and do not limit the scope of the disclosure. For example, although the disclosure will describe embodiments in the particular context of a downlink channel from a base station to a User Equipment (UE) , the embodiments are equally applicable in an uplink from a multi-antenna UE to a base station or in any other over-the-air communications link originating from a device having multiple antennas. As used herein, the term “beam direction” refers to a radio antenna pattern, or set of beamforming weights, that is used for directional signal transmission and/or reception. The terms “beam directions” and “beams” are used interchangeably herein.
As mentioned above, implementing beamforming at both the UE and the base station may increase the complexity of beam management techniques, such as beam scanning and/or beam tracking. Beam scanning is generally performed during, or just prior to, link establishment in order to identify which pair of beam directions are to be used for initial data transmission/reception. Conventional beam scanning schemes generally require the UE to select a subset of beams based on reference signals received from the base station, and to subsequently feedback a corresponding list of beam indices to the base station. The subset of selected beams may then be used to schedule sounding reference signal (SRS) transmissions, which may be evaluated to develop a better estimate of the channel in order to select the appropriate pair of TX and RX beams for the initial data transmission.
Embodiments of this disclosure reduce the signaling overhead associated with beam scanning by feeding back a linear combination index that identifies the subset of select beams, rather than a list of indices identifying individual beams within the subset. Because the linear combination index identifies the selected “combination” of beams, the number of bits used to represent the linear combination index is generally less than the number of bits required to communicate a corresponding list of individual beam indices, thereby reducing signaling overhead. In some embodiments, the linear combination index belongs to a set of predefined linear combination indices, with each predefined linear combination index in the set identifying a different combination of available beams.
In an embodiment, a UE receives a reference signal (RS) from a base station in a downlink channel and calculates a channel estimation in accordance with the RS. The UE selects a combination of beams from a set of available beams in accordance with the calculated channel  estimation. The UE transmits a linear combination index to the base station identifying the selected combination of beams. In an embodiment, the UE transmits a channel quality index (CQI) corresponding to the selected combination of beams to the base station. In this embodiment, the UE selects a rotation angle of a rotated channel space comprising the set of available beams. The UE then transmits a rotation index identifying the rotated channel space to the base station. The UE selects the rotation angle in accordance with the channel estimation.
In an embodiment, a base station transmits a RS to a UE in a downlink channel. In this embodiment, the base station receives a linear combination index from the UE, for example as CSI feedback. The linear combination index is used by the base station to identify a combination of beams selected by the UE from a set of available beams. The combination of beams that have been identified are used by the base station to communicate with the UE. In one embodiment, the linear combination index identifies the selected combination of beams without explicitly indicating or identifying the individual beams in the selected combination of beams. In another example, the linear combination index belongs to a set of predefined linear combination indices. In this example, each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of available beams. In yet another example, the RS is transmitted over different beams in the set of beams in the downlink channel. In yet another embodiment, the base station receives a rotation index from the UE. In this embodiment, the rotation index identifies a rotation angle of a rotated channel space comprising the set of available beams selected by the UE. In an embodiment, the base station receives a CQI corresponding to the selected combination of beams from the UE. In some embodiments, each beam in a linear combination index is represented by a vector. In some other embodiments, each beam in the linear combination index is represented by a bit matrix.
In an embodiment, the UE may receive a RS transmitted from 32 ports of a base station in a DFT codebook scenario, resulting in a full-space basis of 16 beams due to polarization. The UE may then feedback beam indices for each of 4 selected beams, where each of these beam indices must include at least 4 bits since there are 16 total beams. The total bits required to feed back the subspace descriptor would be 4 x 4=16 bits. If such a system is only designed for no more than 16-bit feedback of the subspace descriptor, then no more than 4 beams may ever be selected by the UE when using an individual beam index feedback scheme. Alternatively, if a 16-bit bitmap is used as the subspace descriptor, the UE may vary the number of selected beams from 1 to 16 based on local conditions without requiring extra signaling.
Advantageously, a linear combination index used as the subspace descriptor may reduce overhead relative to feeding back all selected beam indices. As an example, when the UE is to select 4 beams out of a channel space fully represented by 16 beams, then
Figure PCTCN2017109347-appb-000007
Figure PCTCN2017109347-appb-000008
different combinations are possible. Accordingly, the linear combination index may be represented by as few as
Figure PCTCN2017109347-appb-000009
bits. Thus, such a linear combination index could reduce overhead compared to feeding back all 4 selected beam indices, which as previously discussed would require at least 16 bits.
The number of bits representing each group of beams in a linear combination index of beam may be calculated using the equation: 
Figure PCTCN2017109347-appb-000010
In this equation, the least integer of logarithm (base 2) of the binomial coefficient
Figure PCTCN2017109347-appb-000011
represents the number of bits of a group. The binomial coefficient
Figure PCTCN2017109347-appb-000012
can be calculated using the formula: 
Figure PCTCN2017109347-appb-000013
In such an embodiment, N represents a number of codewords in a codebook of beams and M is a number of beams in a group of beams.
FIG. 1 illustrates a network 100 for communicating data. The network 100 comprises a base station 110 having a coverage area 101, a plurality of UEs 115, and a backhaul network 130. As shown, the base station 110 establishes uplink (dashed line) and/or downlink (dotted line) connections with the UEs 115, which serve to carry data from the UEs 115 to the base station 110 and vice-versa. Data carried over the uplink/downlink connections may include data communicated between the UEs 115, as well as data communicated to/from a remote-end (not shown) by way of the backhaul network 130. As used herein, the term “base station” refers to any component (or collection of components) configured to provide wireless access to a network, such as an enhanced base station (eNB) , a macro-cell, a femtocell, a Wi-Fi access point (AP) , or other wirelessly enabled devices. Base stations may provide wireless access in accordance with one or more wireless communication protocols, e.g., long term evolution (LTE) , LTE advanced (LTE-A) , High Speed Packet Access (HSPA) , Wi-Fi 802.11a/b/g/n/ac, etc. As used herein, the term “UE” refers to any component (or collection of components) capable of establishing a wireless connection with a base station, such as a mobile device, a mobile station (STA) , and other wirelessly enabled devices. In some embodiments, the network 100 may comprise various other wireless devices, such as relays, low power nodes, etc.
Figure 2 is a flowchart of an embodiment method 200 for receiving a RS and transmitting a selected group of beams to a base station, as may be performed by a UE. At step 202, the UE receives the RS from the base station in a downlink channel. In one embodiment,  the RS may be received by the UE over receive beams from the base station. In another embodiment, the RS may be received without beamforming, such as in non-precoded channel state information-reference signal (CSI-RS) of an LTE network. In yet another embodiment, the RS may be beamformed in the downlink channel, but the UE may receive the RS without receiving the beamforming, such as in multiple input, multiple output (MIMO) class B of an LTE network.
At step 204, the UE calculates a channel estimation of the downlink channel in accordance with the RS. At step 206, in a subspace of a channel space between the UE and the base station, where the channel space has a basis formed by a set of available beams, the UE selects a combination of beams that form a basis for the subspace. The combination of beams selected by the UE is in accordance with the channel estimation calculated at step 204. At step 208, the UE determines from a set of predefined linear combination indices, a linear combination index identifying the selected combination of beams. In the set of predefined linear combination indices, each predefined linear combination index identifies a different combination of beams of the set of available beams. The linear combination index identifies the selected combination of beams without identifying, or explicitly indicating each individual beam in the selected combination of beams. At step 210, the UE transmits the linear combination index to the base station.
Figure 3 is a flowchart of an embodiment method 300 for transmitting a RS and receiving a selected group of beams from a UE, as may be performed by a base station. At step 302, the base station transmits a RS to the UE in a downlink channel. As previously stated, with respect to figure 2, in some embodiments, the RS may be transmitted over beams and in other embodiments, the RS may be transmitted to the UE without beamforming. At step 304, the base station receives a linear combination index from the UE in response to the transmitted RS. At step 306, the base station identifies a group of beams in a channel space that form a basis for a subspace that the UE has selected. At step 308, the base station may use a same set of predefined linear combination indices to identify the group of beams. The base station then uses this group of beams to communicate with the UE.
Figure 4 is a flowchart of an embodiment method 400 for receiving a RS and transmitting a selected group of beams to a base station as CSI feedback, as may be performed by a UE. At step 402, the UE receives the RS from the base station in a downlink channel. As previously stated, with respect to figure 2, in some embodiments, the RS may be received over beams and in other embodiments, the RS may be received without beamforming.
At step 404, the UE calculates a channel estimation of the downlink channel in accordance with the RS. In some embodiments, the UE may also perform a channel estimation over a channel space that the UE models as having, for example, an orthogonal basis of N different beams. In an embodiment, this channel space model may also be rotated P number of times when calculating the channel estimation.
In an embodiment, the channel space model may be rotated P number of times to support P times oversampling in the spatial domain. The rotation is used to better align the channel space model with the optimal channel path. A codebook used for this channel estimation may be, for example, a codebook based on a Discrete Fourier Transform (DFT) such as the DFT-based codebook used by LTE Release 13.
In large scale MIMO environments, where a large number of base stations and UEs utilize MIMO techniques, channel statistics such as channel correlation or channel covariance matrix (CCM) are typically used to determine the channel state information (CSI) . The CCM may be utilized to estimate the high-dimensional channels and/or convert the high-dimensional channels into low-dimensional subspaces, which reduces the effective channel dimensions. At step 406, the UE derives a downlink channel covariance matrix (DCCM) based on the channel space model of the full space basis. At step 408, the UE selects one or more eigenvectors of the covariance matrix. At step 410, in a subspace of the channel space, where the channel space has a basis formed by a set of available beams, the UE selects a subspace. The combination of beams selected by the UE is in accordance with at least the principal eigenvector of the covariance matrix determined in step 406. Increasing numbers of eigenvectors may be used for the subspace selection as the rank of the channel covariance matrix increases.
In an embodiment with oversampling where the basis of the channel subspace may have a non-orthogonal basis, the UE may also select one of the P rotation angles of the rotated channel space. The channel subspace has a basis of M different beams selected from the N total beams, where M is less than or equal to N. The UE maps the eigenvector (s) onto the selected M-beam subspace to calculate M channel weight (s) . The channel weight (s) may include both quantized phase and amplitude coefficients that are to be used by the base station to precode transmissions over a particular frequency band. When a frequency band is divided into sub-bands, various channel weighting protocols may be used to provide increased or decreased granularity of channel weights over the different sub-bands. In an exemplary channel weighting protocol, the UE feeds back different phase and amplitude coefficient (s) for each respective sub-band. This protocol may result in improved channel quality at the expense of high feedback  overhead. For example, when a 20 MHz band is divided into 13 sub-bands, and 3 bit phase coefficients and 3 bit amplitude coefficients are used for each sub-band, then 13 x (3 + 3) = 78 bits are used for the channel weight feedback.
At step 412, the UE determines from a set of predefined linear combination indices, a linear combination index identifying the subspace. In the set of predefined linear combination indices, each predefined linear combination index identifies a subspace of the full space basis. The linear combination index identifies the subspace without identifying, or explicitly indicating each individual beam in the subspace. At step 414, the UE determines a channel quality index (CQI) of the subspace corresponding to each set of channel weights.
In embodiments with oversampling, a rotation index is selected that describes the selected rotation angle. At step 416, the UE determines a rotation index that corresponds to the selected rotation angle of a rotated space comprising the full space basis. As an example, a 3 bit rotation index can indicate up to 8 different rotation angles to support 8 times oversampling in the spatial domain.
At step 418, the UE transmits a CSI feedback to the base station comprising the linear combination index, the channel quality index (CQI) , and the rotation angle of the rotated space.
Figure 5 is a flowchart of an embodiment method 500 for transmitting a RS and receiving a CSI feedback from a UE, as may be performed by a base station. At step 502, the base station transmits a RS to the UE in a downlink channel. As previously stated, with respect to figure 2, in some embodiments, the RS may be transmitted over beams and in other embodiments, the RS may be transmitted to the UE without beamforming. the base station transmits a reference signal to a UE. At step 504, the base station receives, from the UE, a CSI feedback. The CSI feedback may comprise a linear combination index, a rotation index, and weighting factors and an associated channel quality index. At step 506, the base station may use the linear combination index in the CSI feedback to identify a combination of beams that form a basis for a subspace of a channel space. The channel subspace selected from a channel space identified by the UE. At step 508, the base station uses the channel quality index to identify the channel quality index of the selected combination of beams identified using the linear combination index. At step 510, the base station may use the rotation index to identify a selected rotation angle in a channel space model rotated to support oversampling in the spatial domain. The base station uses the information from the CSI feedback and at least one of the channel  subspace, rotation angle, weighting factors and channel quality index to communicate with the UE.
In some embodiments, the descriptor of the selected combination of beams may be an N-bit bitmap. In this bitmap, each bit corresponds to a selection of a beam; if a particular bit element in the bitmap is set to one, this value indicates that a corresponding beam is selected, while a zero valued bit indicates that the corresponding beam is not selected. In other embodiments, the reverse of this logic may be used.
Relative to feeding back the individual indices of all selected beams, a bitmap used as the subspace descriptor may increase system flexibility by allowing the number of selected beams to vary. Allowing the number of selected beams to vary may achieve a better performance-overhead tradeoff. In some deployment scenarios. For example, under line-of-sight conditions a UE would only need to feedback one selected path from the base station to the UE. In other deployments, however, a path cluster covering a wider angle spread may be required to effectively represent the communications channel. To cover this wider angle spread, several beams may need to be selected as a basis for the channel subspace. If the indices of all selected beams are fed back, however, the number of feedback bits required increases as the number of selected beams increases.
Figure 6 illustrates an embodiment of a band 600 subdivided into sub-bands 604 in which the exemplary channel weighting protocol previously described is modified to allow for sub-band bundling. The sub-bands 604 within a particular frequency range may be grouped together into bundles that may differ in bandwidth. The UE may then calculate different phase and amplitude coefficients for each bundle 604. In the embodiment of figure 6, a frequency range 602 may be, for example, 20 MHz wide. This frequency range 602 is divided into 13 sub-bands 604 which are labeled S1 through S13. S1 and S2 are grouped together as a first sub-band bundle 606, S3 through S12 are grouped together as a second sub-band bundle 608, and S13 is a third sub-band bundle 610. The CSI feedback may then include 3 amplitude bits and 3 phase bits for each of these three bundles, resulting in (3 + 3) x 3 = 18 channel weight bits. In an embodiment, the base station may direct the sub-band bundling based on channel conditions to provide a performance-overhead tradeoff. For example, the base station could bundle sub-bands at a granularity sufficient to provide the minimum number of feedback bits to achieve a predetermined performance level.
Figure 7 is a flowchart of an embodiment method 700 for transmitting a RS and a descriptor of a sub-band bundling to a UE and receiving CSI feedback, as may be performed by a  base station. At step 702, the base station selects a sub-band bundling in a frequency band that is divided into sub-bands based on a channel condition. Each sub-band may be bundled as part of a sub-band bundle, as previously described with respect to figure 6. At step 704, the base station transmits a descriptor of the sub-band bundling along with a RS in a downlink channel to a UE. In an embodiment, the RS may be an LTE non-precoded CSI-RS. In another embodiment, the RS may be in a MIMO class B LTE network. In some embodiments, the sub-band bundling descriptor may be included in a transmission that is different and distinct from the reference signal. At step 706, the base station receives CSI feedback transmitted from the UE. This CSI feedback indicates both a subspace selected by the UE, and channel weight (s) calculated by the UE in accordance with the selected sub-band bundling. The channel subspace selected by the UE has a basis of M different beams selected from N total beams of the entire channel space, where M is less than or equal to N. In embodiments where spatial oversampling is used by the UE, the CSI feedback may also include a rotation index that describes which of P rotation angles has been selected. The descriptor of the selected subspace that is included in the CSI may be either an N-bit bitmap or a linear combination index.
At step 708, the base station identifies the selected channel subspace using the CSI feedback. The base station may use the linear combination index in the CSI feedback to identify a combination of beams that form a basis for a subspace of a channel space. The channel subspace is selected from a channel space identified by the UE. At step 710, the base station identifies channel weight (s) in accordance with the CSI feedback. In addition to the channel weighting protocols already described, other channel weighting protocols may also be used. In another exemplary protocol, the same amplitude coefficient (s) are to be used over the entire frequency band but different phase coefficient (s) are to be used over different sub-bands, which may decrease channel quality while saving overhead. For example, a 20 MHz band may have a 3 bit amplitude coefficient and may be divided into 13 sub-bands each having 3 bit phase coefficients, resulting in (13 x 3) + 3 = 42 channel weight bits and an approximate 6%performance loss relative to using all 78 channel weight bits. In yet another exemplary protocol, a differential amplitude for each respective sub-band may be used in conjunction with an amplitude for the entire frequency range, while different phase coefficients are still used for each respective sub-band. For example, 2 wideband amplitude bits, 1 differential amplitude bits per sub-band, and 3 phase bits per sub-band may be used. Over 13 sub-bands, this example would result in feedback of 13 x (1 + 3) + 2 = 54 channel weight bits.
At step 712, the base station transmits precoded data to the UE in accordance with the M selected beams and the channel weight (s) identified .
In an embodiment where the descriptor of the combination of beams is a linear combination index, the UE selects a number of M beams from N available set of beams (M is less than or equal to N) . In this embodiment, an M-by-1 index vector x may be formed. This index vector x includes M elements that each include a respective index of a different one of the M selected beams. The N beams are sorted according to certain order and the beam order is commonly known to base station and UE. The beam order of M selected beams in x follows the same order. A linear function may then uniquely map all possible values of index vector x to a unique scalar l in
Figure PCTCN2017109347-appb-000014
In other words, the linear combination index l = a0x0 + a1x1 + … + aM-1xM-1, where a0, a1, ..., aM-1, are scalars with values that provide a unique mapping to
Figure PCTCN2017109347-appb-000015
For example, when N is equal to 16 and M is equal to 4, the UE can compute the linear combination index by using Equation 1 below:
Figure PCTCN2017109347-appb-000016
More generally, for an arbitrary number of M beams selected from N total beams, a linear combination index can be computed using Equation 2 below:
Figure PCTCN2017109347-appb-000017
In another embodiment, where the beam reporting index is indexed as
Figure PCTCN2017109347-appb-000018
Figure PCTCN2017109347-appb-000019
where
Figure PCTCN2017109347-appb-000020
Figure PCTCN2017109347-appb-000021
the combinatorial numbering can be computed using the Equation 3 below:
Figure PCTCN2017109347-appb-000022
The indices i1, 2is reported using a combinatorial coefficient table where for a given L and (N1, N2) , rows 0, ..., N1N2-1, and cols 1, …, L are used.
In the [n1, n2] to i1, 2 mapping, beam sorting may be identified as
Figure PCTCN2017109347-appb-000023
 (indices i is assigned such that n (i) increases as i increases) . As a result the indices
Figure PCTCN2017109347-appb-000024
Figure PCTCN2017109347-appb-000025
where C (x, y) is a the set of combinatorial coefficients.
In the i1, 2 to [n1, n2] mapping, for i = 0, .., L-1, ei = C (x*, L-i) is obtained using i1, 2 and the combinatorial coefficient table.
(i) = N1N2-1-x*
Figure PCTCN2017109347-appb-000026
While iterating over i = 0, 1, .., L-1, where s1 = 0, the largest x*∈ {L-1-i, ..., N1N2-1-i} s. t. i1, 2-si-1≥C (x*, L-i) is used to calculate ei = C (x*, L-i) , si = si-1+ei.
It is worth noting that Eq. 2 is equivalent to Eq. 3. Assuming N = N1N2 and n = n (i) , Eq. 2 = C (N, M) -Eq. 3.
The beam indices in the predefined linear combination of indices may have a predefined sequence or order. In an embodiment, the predefined sequence of beams may have an ascending order. In this embodiment, each beam in the linear combination has a sequentially ascending number, with the first beam index being less than the last beam index. In an alternative embodiment, the predefined sequence of beams may have a descending order. In such an embodiment, each beam in the linear combination has a sequentially descending order, with the first beam index being greater than the last beam index. In an embodiment, the sequential order may be specified in a standard text. In another embodiment, the predefined sequence of the predefined linear combination of indices may be signaled, using a signaling message, to the UE from a base station.
A group of beams in the linear combination of index may be said to be adjacent to each other when the corresponding group index is adjacent to each other. The group of beams may also be said to be adjacent to each other when the last beam index of each group of beams is adjacent to each other and all other indices of the groups are matched. In such an embodiment, the last beam index of adjacent groups are separated by a single index.
In an embodiment, the index of each group of beams is directly correlated to its corresponding group of beams. As an example, a group of beams having an index larger than a second group of beams also has a larger group of beams. The opposite also holds true.
A groups size can be determined by the N-ary representation of the group. The N-ary representation being equal to x1×N (M-1) + x (2) ×N (M-2) + … + x (M-1) ×N (1) + x (M) ×N (0) . In this equation, xy represents the yth beam index of a group of beams having M beam indices.
Figure 8 illustrates a block diagram of an embodiment processing system 800 for performing methods described herein, which may be installed in a host device. As shown, the processing system 800 includes a processor 804, a memory 806, and interfaces 810-814, which may (or may not) be arranged as shown in FIG. 8. The processor 804 may be any component or collection of components adapted to perform computations and/or other processing related tasks, and the memory 806 may be any component or collection of components adapted to store programming and/or instructions for execution by the processor 804. In an embodiment, the memory 806 includes a non-transitory computer readable medium. The interfaces 810, 812, 814 may be any component or collection of components that allow the processing system 800 to communicate with other devices/components and/or a user. For example, one or more of the interfaces 810, 812, 814 may be adapted to communicate data, control, or management messages from the processor 804 to applications installed on the host device and/or a remote device. As another example, one or more of the interfaces 810, 812, 814 may be adapted to allow a user or user device (e.g., personal computer (PC) , etc. ) to interact/communicate with the processing system 800. The processing system 800 may include additional components not depicted in FIG. 8, such as long term storage (e.g., non-volatile memory, etc. ) .
In some embodiments, the processing system 800 is included in a network device that is accessing, or part otherwise of, a telecommunications network. In one example, the processing system 800 is in a network-side device in a wireless or wireline telecommunications network, such as a base station, a relay station, a scheduler, a controller, a gateway, a router, an applications server, or any other device in the telecommunications network. In other embodiments, the processing system 800 is in a user-side device accessing a wireless or wireline telecommunications network, such as a mobile station, a user equipment (UE) , a personal computer (PC) , a tablet, a wearable communications device (e.g., a smartwatch, etc. ) , or any other device adapted to access a telecommunications network.
In some embodiments, one or more of the interfaces 810, 812, 814 connects the processing system 800 to a transceiver adapted to transmit and receive signaling over the telecommunications network. FIG. 9 illustrates a block diagram of a transceiver 900 adapted to transmit and receive signaling over a telecommunications network. The transceiver 900 may be installed in a host device. As shown, the transceiver 900 comprises a network-side interface 902, a coupler 904, a transmitter 906, a receiver 908, a signal processor 910, and a device-side interface 912. The network-side interface 902 may include any component or collection of components adapted to transmit or receive signaling over a wireless or wireline telecommunications network. The coupler 904 may include any component or collection of  components adapted to facilitate bi-directional communication over the network-side interface 902. The transmitter 906 may include any component or collection of components (e.g., up-converter, power amplifier, etc. ) adapted to convert a baseband signal into a modulated carrier signal suitable for transmission over the network-side interface 902. The receiver 908 may include any component or collection of components (e.g., down-converter, low noise amplifier, etc. ) adapted to convert a carrier signal received over the network-side interface 902 into a baseband signal. The signal processor 910 may include any component or collection of components adapted to convert a baseband signal into a data signal suitable for communication over the device-side interface (s) 912, or vice-versa. The device-side interface (s) 912 may include any component or collection of components adapted to communicate data-signals between the signal processor 910 and components within the host device (e.g., the processing system 800, local area network (LAN) ports, etc. ) .
The transceiver 900 may transmit and receive signaling over any type of communications medium. In some embodiments, the transceiver 900 transmits and receives signaling over a wireless medium. For example, the transceiver 900 may be a wireless transceiver adapted to communicate in accordance with a wireless telecommunications protocol, such as a cellular protocol (e.g., long-term evolution (LTE) , etc. ) , a wireless local area network (WLAN) protocol (e.g., Wi-Fi, etc. ) , or any other type of wireless protocol (e.g., Bluetooth, near field communication (NFC) , etc. ) . In such embodiments, the network-side interface 902 comprises one or more antenna/radiating elements. For example, the network-side interface 902 may include a single antenna, multiple separate antennas, or a multi-antenna array configured for multi-layer communication, e.g., single input multiple output (SIMO) , multiple input single output (MISO) , multiple input multiple output (MIMO) , etc. In other embodiments, the transceiver 900 transmits and receives signaling over a wireline medium, e.g., twisted-pair cable, coaxial cable, optical fiber, etc. Specific processing systems and/or transceivers may utilize all of the components shown, or only a subset of the components, and levels of integration may vary from device to device.
It should be appreciated that one or more steps of the embodiment methods provided herein may be performed by corresponding units or modules. For example, a signal may be transmitted by a transmitting unit or a transmitting module. A signal may be received by a receiving unit or a receiving module. A signal may be processed by a processing unit or a processing module. A signal may be selected by a selecting unit or a storing module. The respective units/modules may be hardware, software, or a combination thereof. For instance, one or more of the units/modules may be an integrated circuit, such as FPGAs or ASICs.
Although the description has been described in detail, it should be understood that various changes, substitutions and alterations can be made without departing from the spirit and scope of this disclosure as defined by the appended claims. Moreover, the scope of the disclosure is not intended to be limited to the particular embodiments described herein, as one of ordinary skill in the art will readily appreciate from this disclosure that processes, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed, may perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, or steps.
Illustrative embodiments have the advantage of using CSI feedback in a communications network to provide increased channel resolution for improved precoding and/or multi-user scheduling. Relative to codebook feedback or beam index feedback, embodiments provide the advantages of reducing overhead and/or improving beam selection flexibility while still maintaining communications performance.
While this disclosure has been described with reference to illustrative embodiments, this description is not intended to be construed in a limiting sense. Various modifications and combinations of the illustrative embodiments, as well as other embodiments of the disclosure, will be apparent to persons skilled in the art upon reference to the description. It is therefore intended that the appended claims encompass any such modifications or embodiments.

Claims (56)

  1. A method for subspace selection, comprising:
    receiving, by a user equipment (UE) , a reference signal (RS) from a base station in a downlink channel; and
    transmitting, by the UE, a linear combination index to the base station, the linear combination index identifying a combination of beams selected from a set of beams in accordance with the RS.
  2. The method of claim 1, wherein the linear combination index identifies the selected combination of beams without identifying, or otherwise explicitly indicating, individual beams within the selected combination of beams.
  3. The method of claim 1, wherein the linear combination index belongs to a set of predefined linear combination indices, and wherein each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams.
  4. The method of claim 1, further comprising:
    transmitting, by the UE, a rotation index to the base station, the rotation index identifying a selected angle of rotation of a channel space comprising the set of beams; and
    transmitting, by the UE, a channel quality index (CQI) corresponding to selected weighted combination of beams.
  5. The method of claim 1, further comprising:
    calculating, by the UE, a channel estimation of the downlink channel in accordance with the RS, the combination of beams selected in accordance with the channel estimation;
    selecting, by the UE, a rotation index in accordance with the channel estimation; and
    transmitting, by the UE, the selected rotation index to the base station.
  6. The method of claim 1, wherein the RS is received over different beams in the set of beams in the downlink channel.
  7. A method for subspace selection, comprising:
    transmitting, by a base station, a reference signal (RS) to a user equipment (UE) in a downlink channel; and
    receiving, by the base station, a linear combination index from the UE, the linear  combination index identifying a combination of beams, selected by the UE, from a set of beams in accordance with the RS.
  8. The method of claim 7, wherein the linear combination index identifies the selected combination of beams without identifying individual beams within the selected combination of beams.
  9. The method of claim 7, wherein the linear combination index belongs to a set of predefined linear combination indices, and wherein each predefined linear combination index in the set of predefined linear combination indices identifies a different combination of beams in the set of beams.
  10. The method of claim 7, further comprising:
    receiving, by the base station, a rotation index from the UE, the rotation index identifying a selected angle of rotation of the set of beams; and
    receiving, by the base station, a channel quality index (CQI) corresponding to selected weighted combination of beams.
  11. The method of claim 7, wherein the RS is transmitted over different beams in the set of beams.
  12. A user equipment (UE) comprising:
    a processor; and
    a non-transitory computer-readable medium storing programming for execution by the processor, the programming comprising instructions for:
    receiving a reference signal (RS) from a base station in a downlink channel; and
    transmitting a linear combination index to the base station, the linear combination index identifying a combination of beams selected from a set of beams in accordance with the RS.
  13. A base station comprising:
    a processor; and
    a non-transitory computer-readable medium storing programming for execution by the processor, the programming comprising instructions for:
    transmitting a reference signal (RS) to a user equipment (UE) in a downlink channel; and
    receiving a linear combination index from the UE, the linear combination index identifying a combination of beams, selected by the UE, from a set of beams in accordance with the RS.
  14. A method for sending a channel state information, comprising:
    selecting, by a user equipment (UE) , a first group of beams from a codebook of beams, the first group of beams having a predefined sequence, ; and
    transmitting, by the UE, a first group index to a base station (BS) , the first group index uniquely identifying the first group of beams selected from the codebook of beams, a first number of bits representing the first group of beams being equal to
    Figure PCTCN2017109347-appb-100001
    N being a number of codewords in the codebook of beams and M being a number of beams in the first group of beams.
  15. The method of claim 14, wherein each beam in the first group of beams is represented by a vector or a matrix.
  16. The method of claim 14, wherein each beam in the codebook of beams is represented by a vector or a matrix.
  17. The method of claim 14, wherein the first number of bits is a number of bits before potential encoding.
  18. The method of claim 14, wherein a group index is determined by C1 + l, where x0, x1, …, xM-1 are M beam indices to be reported, C1 is an arbitrary constant, and l is equal to
    Figure PCTCN2017109347-appb-100002
  19. The method of claim 14, wherein a group index is determined by C2 -l, where x0, x1, …, xM-1 are M beam indices to be reported, C2 is an arbitrary constant, and l is equal to
    Figure PCTCN2017109347-appb-100003
    .
  20. The method of claim 14, wherein the predefined sequence is specified in a standard text.
  21. The method of claim 14, wherein the method further comprises receiving, by the UE, the predefined sequence in a signaling message.
  22. The method of claim 14, wherein the predefined sequence is an increasing sequential list of beam indices.
  23. The method of claim 14, wherein the predefined sequence is a decreasing sequential list of beam indices.
  24. The method of claim 14, wherein the first group of beams being adjacent to a second group of beams in response to the first group index being adjacent to a second group index, the first group of beams being mapped to the first group index, and the second group of beams being mapped to the second group index.
  25. The method of claim 24, wherein the first group of beams being adjacent to the second group of beams in response to a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams and each of the other beam indices of the first group of beams being equal to a corresponding one of the other beam indices of the second group of beams.
  26. The method of claim 24, wherein the first group index being adjacent to the second group index in response to the first group index being in sequentially before or after the second group index.
  27. The method of claim 26, wherein a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams in response to the last beam index of the first group of beams having an index greater or less than one of the last beam index of the second group of beams.
  28. The method of claim 14, wherein the first group of beams being greater than a second group of beams in response to the first group index being greater than a second group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to a second group index.
  29. The method of claim 28, wherein the second group of beams being greater than the first group of beams in response to an N-ary representation of the second group index having M beam indices being greater than the N-ary representation of the first group index, the N-ary representation being equal to
    x1×N(M-1)+x(2)×N(M-2)+…+x(M-1)×N(1)+x(M)×N(0) ; and
    xy being a beam index corresponding to a yth beam index.
  30. The method of claim 28, wherein the first group of beams and the second group of beams are one of the group of beams.
  31. The method of claim 14, wherein the first group of beams being less than a second group of beams in response to a second group index being greater than the first group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to the second group index.
  32. The method of claim 31, wherein the second group of beams being less than the first group of beams in response to an N-ary representation of the second group index having M beam indices being less than the N-ary representation of the first group index, the N-ary representation being equal to
    x1×N(M-1)+x(2)×N(M-2)+…+x(M-1)×N(1)+x(M)×N(0) ; and
    xy being a beam index corresponding to a yth beam index.
  33. The method of claim 31, wherein the first group of beams and the second group of beams are one of the group of beams.
  34. The method of claim 14, further comprising:
    transmitting, by the UE, a rotation index to the base station, the rotation index identifying a selected angle of rotation of a channel space comprising a set of beams in a group of beams; and
    transmitting, by the UE, a channel quality index (CQI) corresponding to selected weighted combination of beams.
  35. The method of claim 14, further comprising:
    calculating, by the UE, a channel estimation of a downlink channel in accordance with a reference signal (RS) , a combination of beams selected in accordance with the channel estimation;
    selecting, by the UE, a rotation index in accordance with the channel estimation; and
    transmitting, by the UE, the selected rotation index to the base station.
  36. A method for receiving channel state information, comprising:
    receiving, by an access node, a first group index from a user equipment (UE) , the first group index uniquely identifying a first group of beams selected from a codebook of beams, a first number of bits representing the first group of beams being equal to
    Figure PCTCN2017109347-appb-100004
    N being a number of codewords in the codebook of beams and M being a number of beams in the first group of beams; and
    mapping, by the access node, the received first group index to the first group of beams selected from the codebook of beams, the first group of beams having a predefined sequence.
  37. The method of claim 36, wherein each beam in the first group of beams is represented by a vector or a matrix.
  38. The method of claim 36, wherein each beam in the codebook of beams is represented by a vector or a matrix.
  39. The method of claim 36, wherein the first number of bits is a number of bits before potential encoding.
  40. The method of claim 36, wherein a group index is determined by C1 + l, where x0, x1, …, xM-1 are M beam indices to be reported, C1 is an arbitrary constant, and l is equal to
    Figure PCTCN2017109347-appb-100005
  41. The method of claim 36, wherein a group index is determined by C2 -l, where x0, x1, …, xM-1 are M beam indices to be reported, C2 is an arbitrary constant, and l is equal to
    Figure PCTCN2017109347-appb-100006
  42. The method of claim 36, wherein the predefined sequence is specified in a standard text.
  43. The method of claim 36, wherein the method further comprises receiving, by the UE, the predefined sequence in a signaling message.
  44. The method of claim 36, wherein the predefined sequence is an increasing sequential list of beam indices.
  45. The method of claim 36, wherein the predefined sequence is a decreasing sequential list of beam indices.
  46. The method of claim 36, wherein the first group of beams being adjacent to a second group of beams in response to the first group index being adjacent to a second group index, the first group of beams being mapped to the first group index, and the second group of beams being mapped to the second group index.
  47. The method of claim 46, wherein the first group of beams being adjacent to the second group of beams in response to a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams and each of the other beam indices of the first group of beams being equal to a corresponding one of the other beam indices of the second group of beams.
  48. The method of claim 46, wherein the first group index being adjacent to the second group index in response to the first group index being in sequentially before or after the second group index.
  49. The method of claim 48, wherein a last beam index of the first group of beams being adjacent to a last beam index of the second group of beams in response to the last beam index of the first group of beams having an index greater or less than one of the last beam index of the second group of beams.
  50. The method of claim 36, wherein the first group of beams being greater than a second group of beams in response to the first group index being greater than a second group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to a second group index.
  51. The method of claim 50, wherein the second group of beams being greater than the first group of beams in response to an N-ary representation of the second group index having M beam indices being greater than the N-ary representation of the first group index, the N-ary representation being equal to
    x1×N(M-1)+x(2)×N(M-2)+…+x(M-1)×N(1)+x(M)×N(0) ; and
    xy being a beam index corresponding to a yth beam index.
  52. The method of claim 50, wherein the first group of beams and the second group of beams are one of the group of beams.
  53. The method of claim 36, wherein the first group of beams being less than a second group of beams in response to a second group index being greater than the first group index, the first group of beams being mapped to a first group index, and the second group of beams being mapped to the second group index.
  54. The method of claim 53, wherein the second group of beams being less than the first group of beams in response to an N-ary representation of the second group index having M beam indices being less than the N-ary representation of the first group index, the N-ary representation being equal to
    x1×N(M-1)+x(2)×N(M-2)+…+x(M-1)×N(1)+x(M)×N(0) ; and
    xy being a beam index corresponding to a yth beam index.
  55. The method of claim 53, wherein the first group of beams and the second group of beams are one of the group of beams.
  56. The method of claim 36, further comprising:
    receiving, by the access node, a rotation index from the UE, the rotation index identifying a selected angle of rotation of a set of beams in the codebook of beams; and
    receiving, by the access node, a channel quality index (CQI) corresponding to the first group of beams.
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112204897A (en) * 2018-06-01 2021-01-08 瑞典爱立信有限公司 Method for beam selection

Families Citing this family (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11082176B2 (en) * 2016-11-04 2021-08-03 Futurewei Technologies, Inc. System and method for transmitting a sub-space selection
EP3382904B1 (en) * 2017-03-31 2019-12-11 Intel IP Corporation Efficient beam search methods for three-dimensional beamforming with non-precoded reference signals
CN108111200A (en) 2017-06-16 2018-06-01 中兴通讯股份有限公司 A kind of method and apparatus of information feedback
US11012126B2 (en) * 2017-08-04 2021-05-18 Samsung Electronics Co., Ltd. Method and apparatus for beam selection for CSI reporting in advanced wireless communication systems
US10820323B2 (en) * 2017-08-04 2020-10-27 Industrial Technology Research Institute Beam indication method for multibeam wireless communication system and electronic device using the same
CN109392089B (en) * 2017-08-11 2021-10-22 华为技术有限公司 Method and device for positioning
US11201662B2 (en) * 2018-11-02 2021-12-14 Apple Inc. Uplink transmit beam sweep
WO2020108777A1 (en) 2018-11-30 2020-06-04 Telefonaktiebolaget Lm Ericsson (Publ) Approaches for beam selection
CN109978372A (en) * 2019-03-26 2019-07-05 中国铁塔股份有限公司 A kind of steel tower base station evaluation method and device, electronic equipment
EP3751753A1 (en) * 2019-06-13 2020-12-16 Mitsubishi Electric R&D Centre Europe B.V. Method and system of massive mimo communciation
US11503611B2 (en) * 2019-10-29 2022-11-15 Hon Lin Technology Co., Ltd. Method and apparatus for allocation of resources in a wireless communication system
CN110896383A (en) * 2019-12-17 2020-03-20 中南大学 Channel estimation method of orthogonal frequency division multiplexing technology
CN113271133B (en) * 2020-02-14 2023-09-08 大唐移动通信设备有限公司 Antenna port indication method, terminal and network side equipment
EP4009564B1 (en) * 2020-12-03 2023-12-06 Hon Lin Technology Co., Ltd. Method for allocating wireless resources based on sensitivity to inter-cell interference and apparatus thereof
US20220271852A1 (en) * 2021-02-22 2022-08-25 Samsung Electronics Co., Ltd. Multiple antenna channel tracking under practical impairment
WO2023122401A1 (en) * 2021-12-22 2023-06-29 Qualcomm Incorporated Synthesized synchronization system block beams
CN114557013B (en) * 2022-01-11 2024-02-13 北京小米移动软件有限公司 Information reporting and receiving method, device, equipment and storage medium
CN114884776B (en) * 2022-04-18 2023-09-22 北京邮电大学 Channel estimation method, device, electronic equipment and storage medium

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8254487B2 (en) * 2007-08-09 2012-08-28 Samsung Electronics Co., Ltd. Method and apparatus of codebook-based single-user closed-loop transmit beamforming (SU-CLTB) for OFDM wireless systems
CN102801455A (en) * 2012-07-31 2012-11-28 华为技术有限公司 Beam codebook generating method, beam searching method and relevant device
US8743985B2 (en) * 2009-01-05 2014-06-03 Intel Corporation Method and apparatus using a base codebook structure for beamforming
EP2775563A1 (en) * 2013-03-07 2014-09-10 Alcatel Lucent Network node and method
CN104396152A (en) * 2012-06-22 2015-03-04 三星电子株式会社 Communication method and apparatus using beamforming in a wireless communication system

Family Cites Families (41)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5490165A (en) 1993-10-28 1996-02-06 Qualcomm Incorporated Demodulation element assignment in a system capable of receiving multiple signals
US7372400B2 (en) 2005-11-07 2008-05-13 The Boeing Company Methods and apparatus for a navigation system with reduced susceptibility to interference and jamming
US7680927B2 (en) 2005-11-17 2010-03-16 Bea Systems, Inc. System and method for providing testing for a communities framework
US8036669B2 (en) 2006-04-20 2011-10-11 Qualcomm Incorporated Orthogonal resource reuse with SDMA beams
US7903615B2 (en) 2006-10-10 2011-03-08 Qualcomm Incorporated Space division multiple access channelization in wireless communication systems
US20110080964A1 (en) 2007-12-12 2011-04-07 Nokia Corporation Adaptive codebook for beamforming in limited feedback mimo systems
US9184511B2 (en) * 2009-07-10 2015-11-10 Futurewei Technologies, Inc. System and method for downlink channel sounding in wireless communications systems
US20110087888A1 (en) 2009-10-13 2011-04-14 Google Inc. Authentication using a weak hash of user credentials
US9407409B2 (en) 2010-02-23 2016-08-02 Qualcomm Incorporated Channel state information reference signals
WO2012044088A2 (en) 2010-09-29 2012-04-05 엘지전자 주식회사 Method and apparatus for efficient feedback in a wireless communication system that supports multiple antennas
KR102171272B1 (en) 2011-09-14 2020-10-29 리어덴 엘엘씨 Systems and methods to exploit areas of coherence in wireless systems
CN103220080B (en) * 2012-01-18 2016-01-20 上海贝尔股份有限公司 For the method and apparatus of quantization of channel state information
US9237475B2 (en) * 2012-03-09 2016-01-12 Samsung Electronics Co., Ltd. Channel quality information and beam index reporting
US9204317B2 (en) 2012-05-11 2015-12-01 Telefonaktiebolaget L M Ericsson (Publ) Methods and arrangements for CSI reporting
EP2877100B1 (en) 2012-07-24 2021-01-20 Richard Wolf GmbH Shaft for medical instruments, comprising movable sections
US9544801B2 (en) 2012-08-03 2017-01-10 Intel Corporation Periodic channel state information reporting for coordinated multipoint (coMP) systems
KR20140067780A (en) * 2012-11-27 2014-06-05 삼성전자주식회사 Method and apparatus for interference cancellation of mimo transmission in wireless communication system
US9392639B2 (en) 2013-02-27 2016-07-12 Samsung Electronics Co., Ltd. Methods and apparatus for channel sounding in beamformed massive MIMO systems
PL2965481T3 (en) * 2013-03-08 2018-10-31 Nokia Technologies Oy Multiple transmitter codebook methods and devices
WO2014163397A1 (en) * 2013-04-04 2014-10-09 엘지전자 주식회사 Method and apparatus for reporting channel status information in wireless communication system
KR20140126555A (en) 2013-04-23 2014-10-31 삼성전자주식회사 Apparatus and method for providing feedback information in a beamforming communication system
US9136995B2 (en) * 2013-06-03 2015-09-15 Nokia Solutions And Networks Oy Codebook partitioning for enabling elevation-eICIC
KR101835245B1 (en) 2013-11-29 2018-03-06 후아웨이 디바이스 컴퍼니 리미티드 Beam precoding manner reporting method, and scheduling method and device
CN104734761A (en) 2013-12-20 2015-06-24 中兴通讯股份有限公司 Uplink and downlink wave beam mixture indicating method, base station, terminal and system
CN104917559B (en) 2014-03-14 2018-01-23 华为技术有限公司 Pre-coding matrix index measurement apparatus and method
US9986573B2 (en) 2014-06-24 2018-05-29 Telefonaktiebolaget L M Ericsson (Publ) Wireless device, a network node and methods therein for reporting channel state information (CSI) in a radio communications network
CN105530075B (en) 2014-10-04 2019-05-17 上海朗帛通信技术有限公司 A kind of CSI feedback method and apparatus in FD-MIMO communication
US10567060B2 (en) * 2014-10-24 2020-02-18 Samsung Electronics Co., Ltd. Efficient vector quantizer for FD-MIMO systems
US9654195B2 (en) 2014-11-17 2017-05-16 Samsung Electronics Co., Ltd. Methods to calculate linear combination pre-coders for MIMO wireless communication systems
WO2016084182A1 (en) * 2014-11-27 2016-06-02 富士通株式会社 Base station, communication system, and reference signal transmission method
WO2016164048A1 (en) 2015-04-10 2016-10-13 Nokia Solutions And Networks Oy Multidimensional codebook optimization
US9806781B2 (en) * 2015-04-29 2017-10-31 Samsung Electronics Co., Ltd. Codebook design and structure for advanced wireless communication systems
CN106452538B (en) * 2015-08-07 2020-03-06 上海诺基亚贝尔股份有限公司 Method and apparatus for short-term feedback for multiple-input multiple-output communications
EP3349368A1 (en) * 2015-08-14 2018-07-18 Industrial Technology Research Institute Dynamic beamforming method and related apparatuses using the same
EP3340505B1 (en) * 2015-09-11 2021-09-01 Huawei Technologies Co., Ltd. Control information sending method and user equipment
WO2017179951A1 (en) * 2016-04-14 2017-10-19 Samsung Electronics Co., Ltd. Method and apparatus for transmitting and receiving signal through beamforming in communication system
CN118215144A (en) * 2016-08-11 2024-06-18 华为技术有限公司 System information transmission method and device
CN115664484A (en) * 2016-08-11 2023-01-31 中兴通讯股份有限公司 Method, device and medium for acquiring and informing packet indication information
US11082176B2 (en) 2016-11-04 2021-08-03 Futurewei Technologies, Inc. System and method for transmitting a sub-space selection
WO2018089884A1 (en) * 2016-11-11 2018-05-17 Docomo Innovations, Inc. Method of constructing codebook and user equipment
US10820323B2 (en) * 2017-08-04 2020-10-27 Industrial Technology Research Institute Beam indication method for multibeam wireless communication system and electronic device using the same

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8254487B2 (en) * 2007-08-09 2012-08-28 Samsung Electronics Co., Ltd. Method and apparatus of codebook-based single-user closed-loop transmit beamforming (SU-CLTB) for OFDM wireless systems
US8743985B2 (en) * 2009-01-05 2014-06-03 Intel Corporation Method and apparatus using a base codebook structure for beamforming
CN104396152A (en) * 2012-06-22 2015-03-04 三星电子株式会社 Communication method and apparatus using beamforming in a wireless communication system
CN102801455A (en) * 2012-07-31 2012-11-28 华为技术有限公司 Beam codebook generating method, beam searching method and relevant device
EP2775563A1 (en) * 2013-03-07 2014-09-10 Alcatel Lucent Network node and method

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP3504854A4 *

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112204897A (en) * 2018-06-01 2021-01-08 瑞典爱立信有限公司 Method for beam selection

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