WO2010146942A1 - Systems and methods for coordinated multipoint transmission/reception - Google Patents
Systems and methods for coordinated multipoint transmission/reception Download PDFInfo
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- WO2010146942A1 WO2010146942A1 PCT/JP2010/057531 JP2010057531W WO2010146942A1 WO 2010146942 A1 WO2010146942 A1 WO 2010146942A1 JP 2010057531 W JP2010057531 W JP 2010057531W WO 2010146942 A1 WO2010146942 A1 WO 2010146942A1
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- transmitting
- base stations
- cooperating
- weights
- receiving node
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Classifications
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/022—Site diversity; Macro-diversity
- H04B7/024—Co-operative use of antennas of several sites, e.g. in co-ordinated multipoint or co-operative multiple-input multiple-output [MIMO] systems
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/022—Site diversity; Macro-diversity
- H04B7/026—Co-operative diversity, e.g. using fixed or mobile stations as relays
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity 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
- H04B7/0615—Diversity 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
- H04B7/0619—Diversity 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
- H04B7/0636—Feedback format
- H04B7/0639—Using selective indices, e.g. of a codebook, e.g. pre-distortion matrix index [PMI] or for beam selection
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0686—Hybrid systems, i.e. switching and simultaneous transmission
- H04B7/0691—Hybrid systems, i.e. switching and simultaneous transmission using subgroups of transmit antennas
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/08—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the receiving station
- H04B7/0868—Hybrid systems, i.e. switching and combining
- H04B7/0874—Hybrid systems, i.e. switching and combining using subgroups of receive antennas
Definitions
- the present disclosure relates generally to wireless communications. More specifically, the present disclosure relates to a method, a receiving node and a transmitting node for coordinated multipoint transmission/ reception.
- a cellular network is a radio network made up of a number of radio cells (or just cells) each served by a fixed transmitter, known as a cell site or base station. These cells are used to cover different areas in order to provide radio coverage over a wider area than the area of one cell.
- Cellular networks include a set of fixed main transceivers each serving a cell and a set of distributed transceivers (which are generally, but not always, mobile) that provide services to the network' s users.
- 3GPP 3rd Generation Partnership Project
- 3GPP LTE Long Term Evolution
- UMTS Universal Mobile Telecommunications System
- 3GPP LTE Advanced is currently being standardized by 3GPP as an enhancement of 3GPP LTE.
- CoMP Coordinated multiple point transmission/ reception
- MBSFN Multicast Broadcast Single Frequency Network
- the main idea of the MBSFN is to transmit the same data from multiple base stations.
- the received signal appears to be from the sum of the individual channels from the individual base stations to the UE.
- the present disclosure relates to improvements to this MBSFN transmission scheme in the context of coordinated multiple point transmission/ reception.
- the methods disclosed herein may also be utilized in connection with other types of transmission schemes (e. g. , global precoding) .
- a method for coordinated multipoint transmission/ reception comprises steps of transmitting downlink data from cooperating base stations to a user equipment (UE) ; selecting different numbers of transmit antennas for use at different cooperating base stations; and performing coherent weighting at each of the cooperating base stations.
- a receiving node comprises a unit estimating channels from multiple cooperating transmitting nodes to the receiving node; a unit determining a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes; and a unit notifying the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node.
- a transmitting node comprises a unit receiving feedback from a receiving node, wherein the feedback comprises an indication of one or more transmitting antennas and weights; a unit selecting the one or more transmitting antennas and the weights to be used for transmission of data to the receiving node based on the feedback from the receiving node; and a unit transmitting the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights.
- Figure 1 illustrates an MBSFN precoding scheme involving two CoMP cells
- Figure 2 illustrates a system that is configured for antenna selection with coherent combining precoding
- Figure 3 illustrates another system that is configured for antenna selection with coherent combining precoding
- Figure 4 illustrates a method for antenna selection with coherent combining precoding
- Figure 5 illustrates another system that is configured for antenna selection with coherent combining precoding
- Figure 6 illustrates another method for antenna selection with coherent combining precoding
- Figure 7 illustrates another system that is configured for antenna selection with coherent combining precoding
- Figure 8 illustrates another method for antenna selection with coherent combining precoding
- Figure 9 illustrates various components that may be utilized in a communication device.
- a method for coordinated multipoint transmission/ reception is disclosed.
- Downlink data is transmitted from cooperating base stations to a user equipment (UE) .
- UE user equipment
- Coherent weighting is performed at each of the transmission points.
- Uplink data may be transmitted from the UE to the cooperating base stations.
- Different numbers of receive antennas may be selected for use at different cooperating base stations.
- Coherent weighting may be performed at each of the reception points.
- the UE may estimate channels from individual cooperating base stations and combine the individual channels to form an improved combined channel by selecting the transmit antennas and weights to be used at each transmission point. Individual channels at the UE may be combined to form a better combined channel using antenna selection and coherent combining using local weighting.
- the transmit antennas and weights of the cooperating base stations may be selected at the UE by estimating a superimposed channel of the cooperating base stations.
- the UE may estimate channels from individual cooperating base stations and coherently combine them to form an improved combined channel.
- a cooperating base station may estimate channels from the UE to form a better combined channel.
- Individual channels from the UE to a base station via relay nodes may be combined to form a better combined channel by selecting transmit antennas and weights to be used at each of the relay nodes.
- the antenna selection indices from the UE along with the weights to be used for coherent combining may be fed back to the cooperating base stations in order to allow the individual cooperating base stations to select the antennas and weights to be used for transmission.
- the downlink data to be transmitted may be downlink shared data in a 3GPP
- the uplink data to be transmitted may be uplink shared data in a 3GPP LTE-like system that employs relays.
- the UE may use different metrics to estimate a configuration mode to be used at the cooperating base stations in order to improve a combined channel seen at the UE. Antenna selection may also be performed with respect to the UE.
- a receiving node includes a processor, memory in electronic communication with the processor, and instructions stored in the memory.
- the instructions are executable to estimate channels from multiple cooperating transmitting nodes to the receiving node .
- the instructions are also executable to determine a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes.
- the instructions are also executable to notify the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node.
- the receiving node may be a user equipment (UE) and the transmitting nodes may be base stations .
- the receiving node may be a base station, and the transmitting nodes may be relay nodes or UEs. Determining the best combined channel may include optimizing a performance criterion .
- a transmitting node is disclosed.
- the transmitting node includes a processor, memory in electronic communication with the processor, and instructions stored in the memory.
- the instructions are executable to receive feedback from a receiving node.
- the feedback includes an indication of one or more transmitting antennas and weights.
- the instructions are also executable to select the one or more transmitting antennas and the weights to be used for transmission of data to the receiving node based on the feedback from the receiving node .
- the instructions are also executable to transmit the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights.
- the receiving node may be a user equipment (UE) , and the transmitting node and the at least on other cooperating transmitting node may be base stations .
- the receiving node may be a base station, and the transmitting node and the at least one other cooperating transmitting node may be relay nodes or UEs.
- the techniques disclosed herein may be utilized to improve the performance of coordinated multipoint transmission by combining antenna selection with MBSFN transmission along with coherent combining from multiple cooperating base stations.
- additional weights are used to align the signals from each of the individual cooperating base stations. While antenna selection by itself can eliminate some of the destructive superposition of signals in an MBSFN scheme, antenna selection with coherent combining can even constructively superpose the signals and lead to higher gain. This can be very useful in practice, since the precoding codebooks in general are quantized and hence antenna selection with coherent combining allows a method of constructively combining the signals by searching over an effective larger codebook space.
- the techniques disclosed herein may be implemented in a 3GPP LTE-like system.
- 3GPP LTE-like system includes any wireless communication system that operates in accordance with , a 3GPP LTE standard, a 3GPP LTE-Advanced standard, etc .
- Figure 1 illustrates an MBSFN precoding scheme 100 involving two CoMP (coordinated multiple point transmission/ reception) cells. Multiple base stations 102a, 102b are shown transmitting data simultaneously to a UE 104. This is referred to as downlink joint processing CoMP in LTE- Advanced.
- the first base station 102a and the second base station 102b may be referred to as cooperating (or coordinating) base stations 102.
- cooperating (or coordinating) base stations 102 are base stations 102 that transmit the same data (or possibly different data) simultaneously to a UE 104.
- a precoding vector 108 is applied to the data 106.
- the resulting signal is transmitted over a first channel 1 14a to the UE 104.
- the precoding vector 108 is applied to the data 106.
- the resulting signal is transmitted over a second channel 1 14b to the UE 104.
- the total number of CoMP cells (e . g. , base stations 102) is B, each equipped with Nt transmit antennas.
- the receiver e . g. , the UE 104
- N r receive antennas Let the baseband channel matrix between
- Wk(b) be the pre-coding matrix of cell b with size Nt x Lk, where Lk is the number of transmission layers for UEk.
- W ⁇ . is a common pre-coding matrix for all CoMP cells, whose columns are the - ⁇ t right singular vectors corresponding to the ⁇ k largest singular values of the
- Multiple base stations 202a, 202b are shown transmitting data 206 simultaneously to a UE 204.
- a precoding vector 208 is applied to the data 206.
- antenna selection 2 10a is performed.
- weights 2 12a are applied.
- a separate weight 2 12a may be applied for each transmit antenna.
- the resulting signal is transmitted over a first channel 2 14a to the UE 204.
- a precoding vector 208 is applied to the data 206.
- antenna selection 210b is performed.
- weights 2 12b are applied.
- a separate weight 2 12b may be applied for each transmit antenna.
- the resulting signal is transmitted over a second channel 2 14b to the UE 204.
- FIG. 3 illustrates another system 300 that is configured for antenna selection with coherent combining precoding.
- a UE 304 includes a first receiving antenna 316a and a second receiving antenna 316b.
- a first base station
- a second base station 302b includes a first transmitting antenna 320a and a second transmitting antenna 320b.
- the UE 304 receives downlink data 306a from the first base station 302a via a first channel
- the UE 304 receives the downlink data 306b from the second base station 302b via a second channel H2 314b.
- the system 300 may be a 3GPP LTE-like system, and the downlink data 306 may be downlink shared data (i. e. , data that is transmitted on a downlink channel that is shared by multiple UEs) .
- Figure 4 illustrates a method 400 for antenna selection with coherent combining precoding.
- the UE 304 measures S402 the channels H 1 314a, H2 314b from the individual cooperating base stations 302a, 302b (transmission points) .
- the UE 304 computes S404 the best combined channel 322 by using different combinations of precoding matrices 332 , antennas 318 , 320 and weights 312 for the transmitting base stations 302 using different performance metrics 324.
- the UE 304 may calculate the precoding matrices 332 , antennas 318, 320 and weights 3 12 from each transmission point based on optimizing a performance criterion (e. g. , norm, capacity, determinant, eigenvalue, error rate, etc.) , as shown in the following expression: argmax(D l ,D2,W l ,W2)f ⁇ H l ,W l ,D l ,H2 ,W2 ,D2 ⁇ (3)
- a performance criterion e. g. , norm, capacity, determinant, eigenvalue, error rate, etc.
- D 1 and D 2 are chosen to coherently combine the channels and could be of the form diag(eJ ⁇ ) (diagonal matrix with entries eJ ⁇ ) and H 1 and H 2 are obtained by selecting certain columns from H 1 314a and H2 314b, respectively.
- the diagonal weights can also be the beamforming vectors.
- the weights 3 12a for the first base station 302a may include a weight for the first transmit antenna 318a and another weight for the second transmit antenna 3 18b.
- the weights 312b for the second base station 302b may include a weight for the first transmit antenna 320a and another weight for the second transmit antenna 320b.
- Antenna selection may also be performed with respect to the UE 304.
- the UE 304 may include different combinations of receiving antennas 3 16 at the UE 304 in order to compute S404 the best combined channel 322.
- the UE 304 may compute S404 the best combined channel
- the UE 304 feeds back S406 by some form at least containing the information of the mode 326 determining the selection of the antenna(s) 3 18 , 320 and the weights 3 12 to be used at each of the cooperating base stations 302 along with the precoding matrix index 328.
- the precoding matrices 332 to be used at the different base stations 302 may be the same
- the feedback (e. g. , precoding matrices 332) can implicitly include the antenna 3 18, 320 selection indices and/ or the weights 3 12 to be used for combining.
- a restricted search space could be searched (for instance, with constraints on the minimum number of antennas 3 18, 320 to be used and/ or a subset of the entire weight space) .
- the codewords W 1 and W 2 are quantized, and multiplying with D 1 and D 2 , respectively, helps in obtaining a larger codebook space given by all possible combinations of W and D .
- each of the individual cooperating base stations 302 selects S408 its transmitting antennas 318, 320 , weights 3 12 , and precoding matrix 332.
- the cooperating base stations 302 transmit 410 downlink data 306 to the UE 304 using the selected transmitting antennas 3 18, 320, weights 3 12 , and precoding matrix 332.
- downlink data 306 is transmitted from cooperating base stations 302a, 302b to a UE 304.
- Different numbers of transmitting antennas 3 18a, 3 18b, 320a, 320b may be selected for use at different cooperating base stations 302a, 302b.
- coherent weighting may be performed at each of the transmission points (base stations 302a, 302b) .
- the UE 304 may estimate channels H 1 3 14a, H2 3 14b from individual cooperating base stations 302a, 302b and coherently combine the individual channels H 1 3 14a, H2 3 14b to form an improved combined channel 322 by selecting the transmit antennas 3 18a, 3 18b, 320a, 320b and weights 3 12a, 3 12b to be used at each of the transmission points (base stations 302a, 302b) .
- individual channels H 1 may be estimated from individual cooperating base stations 302a, 302b and coherently combine the individual channels H 1 3 14a, H2 3 14b to form an improved combined channel 322 by selecting the transmit antennas 3 18a, 3 18b, 320a, 320b and weights 3 12a, 3 12b to be used at each of the transmission points (base stations 302a, 302b) .
- individual channels H 1 may be estimated from individual cooperating base stations 302a, 302b and coherently combine the individual channels H 1 3 14a, H2 3 14b to form
- H 2 3 14b may be combined at the UE 304 to form a better combined channel 322 using antenna selection and coherent combining using local weighting.
- the transmit antennas 3 18a, 3 18b, 320a, 320b and weights 3 12a, 3 12b of the cooperating base stations 302a may be combined at the UE 304 to form a better combined channel 322 using antenna selection and coherent combining using local weighting.
- 302b may be selected at the UE 304 by estimating a superimposed channel (i. e. , the best combined channel 322) of the cooperating base stations 302a, 302b.
- Antenna selection indices may be fed back S406 from the UE 304 along with the weights 3 12a, 3 12b to be used for coherent combining to the cooperating base stations 302a, 302b in order to allow the individual cooperating base stations 302a, 302b to select the antennas 3 18a, 3 18b, 320a, 320b and weights 3 12a, 3 12b to be used for transmission.
- a specific example will now be described.
- the channel H 1 3 14a from the first base station 302a to the UE 304 is given by: where a is the channel gain from the first transmitting antenna 3 18a to the first receiving antenna 3 16a, b is the gain from the second transmitting antenna 3 18b to the first receiving antenna 3 16a, and so on.
- the channel H2 314b from the second base station 302b to the UE 304 is given by:
- the combined channel at the receiver is given by: a + e b + f
- the combined channel at the UE 304 may be given by: a + e b
- the combined channel at the UE 304 may ⁇ be given by:
- the UE 304 may use different metrics to estimate a configuration mode 326 to be used at the cooperating base stations 302 in order to improve a combined channel seen at the UE 304.
- Figure 5 illustrates another system 500 that is configured for antenna selection with coherent combining precoding.
- a first base station 502a includes a first receiving antenna 536a and a second receiving antenna 536b.
- a second base station 502b includes a first receiving antenna 538a and a second receiving antenna 538b.
- a UE 504 transmits uplink data 506a to the first base station 502a via a first channel 514a.
- the UE 504 transmits uplink data 506b to the second base station 502b via a second channel 514b.
- the signal 534 , best combined channel 522 , performance metrics 524 , and weights 512a, 512b will be discussed below in connection with Figure 6.
- Figure 6 illustrates another method 600 for antenna selection with coherent combining precoding.
- the first base station 502a receives S602 uplink data 506a from the UE 504 via the first channel 514a.
- the first base station 502a receives S604 from the second base station 502b the signal 534 (which includes the uplink data 506b) that the second base station 502b received from the UE 504 via the second channel 514b .
- the first base station 502a estimates S606 the first channel 514a and the second channel 514b.
- the first base station 502a determines S608 the best combined channel 522 by using different combinations of receiving antennas 536a, 536b, 538a, 538b and weights 512a, 5 12b for the receiving base stations 502a, 502b using different performance metrics 524.
- the first base station 502a notifies 610 the second base station 502b about the receiving antenna(s) 538a, 538b and weights 512b to be used.
- uplink data 506 is transmitted from a UE 504 to cooperating base stations 502a, 502b.
- Different numbers of receive antennas 536a, 536b, 538a, 538b may be selected for use at different cooperating base stations 502a, 502b.
- coherent weighting may be performed at each of the reception points (base stations 502a, 502b) .
- a cooperating base station 502a may estimate channels 514a, 514b from the UE 504 to form a better combined channel 522.
- Figure 7 illustrates another system 700 that is configured for antenna selection with coherent combining precoding.
- a UE 704 transmits uplink data 706 to a base station 702 via a first relay node 740a (transmission points or reception points) and a second relay node 740b (transmission points or reception points) . More specifically, the UE 704 transmits the uplink data 706a, 706b to the first relay node 740a and to the second relay node 740b .
- the first relay node 740a transmits the uplink data 706a' to the base station 702 via a first channel 714a.
- the second relay node 740b transmits the uplink data 706b' to the base station 702 via a second channel 714b.
- the system 700 may be a 3GPP LTE- like system, and the uplink data 706 may be uplink shared data (i.e . , data that is transmitted on an uplink channel that is shared by multiple UEs) .
- the first relay node 740a includes a first transmitting antenna 718a and a second transmitting antenna 718b .
- the second relay node 740b includes a first transmitting antenna 720a and a second transmitting antenna 720b.
- the best combined channel 722 , performance metrics 724 , and the weights 712a, 712b will be discussed below in connection with Figure 8.
- Figure 8 illustrates another method 800 for antenna selection with coherent combining precoding.
- the UE 704 transmits S802 uplink data 706 to the relay nodes 740a, 740b .
- the first relay node 740a transmits S804 the uplink data
- the base station 702 estimates S808 the first channel 714a and the second channel 714b .
- the base station 702 determines
- the base station 702 notifies 812 the relay nodes 740a, 740b about the antennas
- individual channels 7 14a, 7 14b from the UE 704 to the base station 702 via relay nodes 740a, 740b may be combined to form a better combined channel 722 by selecting transmit antennas 718a, 718b, 720a, 720b and weights 7 12a, 712b to be used at each of the relay nodes 740a, 740b.
- a receiving node (which may be a UE, a base station, etc. ) may estimate channels from multiple cooperating transmitting nodes (which may be base stations, relay nodes, etc.) .
- a UE 304 may estimate channels 3 14a, 3 14b from multiple cooperating base stations 302a, 302b to the UE 304.
- a base station 702 may estimate channels 714a, 714b from multiple relay nodes 740a, 740b to the base station 702.
- the receiving node may determine a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes.
- a UE 304 may determine a best combined channel 322 by using different combinations of transmit antennas 318a, 318b, 320a, 320b and weights 312a, 3 12b for the multiple cooperating base stations 302a, 302b.
- a base station 702 may determine a best combined channel 722 by using different combinations of transmit antennas 718a, 7 18b, 720a, 720b and weights 712a, 712b for the multiple relay nodes 740a, 740b.
- the receiving node may notify the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node .
- a UE 304 may notify the multiple cooperating base stations 302a, 302b about the transmit antennas 318a, 3 18b, 320a, 320b and the weights 3 12a, 3 12b to be used for transmission of downlink data 306 to the UE 304.
- a base station 702 may notify the multiple relay nodes 740a, 740b about the transmit antennas 718a, 718b, 720a, 720b and the weights 712a, 7 12b to be used for transmission of uplink data 706 to the base station 702.
- a transmitting node may receive feedback from a receiving node.
- the feedback may include an indication of one or more transmitting antennas and weights.
- a cooperating base station 302a may receive from the UE 304 the mode 326a determining the selection of the antenna(s)
- a relay node 740a may receive from a base station 702 the selection of the antenna(s) 718a, 718b, the weights 712a, and the precoding matrix index.
- the transmitting node may select one or more transmitting antennas and the weights to be used for transmission of data to the receiving node based on the feedback from the receiving node .
- a cooperating base station 302a may select transmitting antenna(s) 3 18a, 318b and weights 312a to be used for transmission of downlink data 306a to the UE 304 based on the feedback from the UE 304.
- a relay node 740a may select transmitting antenna(s) 718a, 718b and weights 712a to be used for transmission of uplink data 706a' to the base station 702 based on the feedback from the base station 702.
- the transmitting node may transmit the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights.
- a cooperating base station 302a may transmit the downlink data 306a to the UE 304 simultaneously with at least one other cooperating base station 302b using the selected transmitting antenna(s) 3 18a, 3 18b and the selected weights 312a.
- a relay node 740a may transmit uplink data 706a' to the base station 702 simultaneously with at least one other relay node 740b using the selected transmitting antenna(s) 7 18a, 718b and the selected weights 712a.
- Figure 9 illustrates various components that may be utilized in a communication device 902.
- the communication device 902 may be a UE or a base station.
- the communication device 902 includes a processor 906 that controls operation of the communication device 902.
- the processor 906 may also be referred to as a CPU.
- Memory 908 which may include both read-only memory (ROM) , random access memory (RAM) or any type of device that may store information, provides instructions 907a and data 909a to the processor 906.
- a portion of the memory 908 may also include non-volatile random access memory (NVRAM) . Instructions
- Instructions 907b loaded into the processor 906 may also include instructions 907a from memory 908 that were loaded for execution by the processor 906. The instructions 907 may be executed by the processor 906 to implement the methods disclosed herein.
- the communication device 902 may also include a housing that contains a transmitter 9 10 and a receiver 9 12 to allow transmission and reception of data.
- the transmitter 9 10 and receiver 9 12 may be combined into a transceiver 920.
- An antenna 9 18 is attached to the housing and electrically coupled to the transceiver 920. Additional antennas may also be used .
- the various components of the communication device 902 are coupled together by a bus system 926 which may- include a power bus, a control signal bus, and a status signal bus, in addition to a data bus. However, for the sake of clarity, the various buses are illustrated in Figure 9 as the bus system 926.
- the communication device 902 may also include a digital signal processor (DSP) 9 14 for use in processing signals.
- DSP digital signal processor
- the communication device 902 may also include a communications interface 924 that provides user access to the functions of the communication device 902.
- the communication device 902 illustrated in Figure 9 is a functional block diagram rather than a listing of specific components.
- the present invention may further provide a receiving node (UE or base station) .
- the receiving node comprises a unit (e. g. processor 906) estimating channels from multiple cooperating transmitting nodes to the receiving node; a unit (e . g. processor 906) determining a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes; and a unit (e. g. transmitter 9 10) notifying the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node.
- a unit e. g. processor 906
- the present invention may further provide a transmitting node (UE or base station) .
- the transmitting node comprises a unit (e. g. receiver 9 12) receiving feedback from a receiving node, wherein the feedback comprises an indication of one or more transmitting antennas and weights; a unit (e . g. processor 906) selecting the one or more transmitting antennas and the weights to be used for transmission of data to the receiving node based on the feedback from the receiving node; and a unit (e. g. transmitter 9 10) transmitting the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights .
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Abstract
Downlink data may be transmitted from cooperating base stations to a user equipment (UE). Different numbers of transmit antennas may be selected for use at different cooperating base stations. Coherent weighting may be performed at each of the transmission points. The UE may estimate channels from individual cooperating base stations and combine the individual channels to form an improved combined channel by selecting the transmit antennas and weights to be used at each transmission point.
Description
DESCRIPTION
TITLE OF INVENTION
SYSTEMS AND METHODS FOR COORDINATED MULTIPOINT TRANSMISSION / RECEPTION
TECHNICAL FIELD
The present disclosure relates generally to wireless communications. More specifically, the present disclosure relates to a method, a receiving node and a transmitting node for coordinated multipoint transmission/ reception.
BACKGROUND ART
A cellular network is a radio network made up of a number of radio cells (or just cells) each served by a fixed transmitter, known as a cell site or base station. These cells are used to cover different areas in order to provide radio coverage over a wider area than the area of one cell. Cellular networks include a set of fixed main transceivers each serving a cell and a set of distributed transceivers (which are generally, but not always, mobile) that provide services to the network' s users.
There are a number of standards organizations that attempt to develop standards for cellular networks. One example of such a standards organization is the 3rd
Generation Partnership Project (3GPP) . 3GPP LTE (Long Term Evolution) is the name given to a project within 3GPP to improve the Universal Mobile Telecommunications System (UMTS) standard to cope with future technology evolutions. 3GPP LTE Advanced is currently being standardized by 3GPP as an enhancement of 3GPP LTE.
Coordinated multiple point transmission/ reception (CoMP) is considered one of the promising technologies to improve the performance of 3GPP LTE Advanced. The main idea of CoMP is to transmit the information from multiple base stations to a user equipment (UE) resulting in better signal quality at the UE due to the combining capability of the multiple transmissions at the UE.
One form of combining proposed was MBSFN (Multicast Broadcast Single Frequency Network) like transmission where multiple base stations transmit the same signal to the UE. The main idea of the MBSFN is to transmit the same data from multiple base stations. At the receiving UE, the received signal appears to be from the sum of the individual channels from the individual base stations to the UE. The present disclosure relates to improvements to this MBSFN transmission scheme in the context of coordinated multiple point transmission/ reception. The methods disclosed herein may also be utilized in connection with other types of transmission schemes (e. g. , global precoding) .
SUMMARY OF INVENTION
According to the present invention, there is provided a method for coordinated multipoint transmission/ reception. The method comprises steps of transmitting downlink data from cooperating base stations to a user equipment (UE) ; selecting different numbers of transmit antennas for use at different cooperating base stations; and performing coherent weighting at each of the cooperating base stations. According to the present invention, there is provided a receiving node. The receiving node comprises a unit estimating channels from multiple cooperating transmitting nodes to the receiving node; a unit determining a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes; and a unit notifying the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node. According to the present invention, there is provided a transmitting node. The transmitting node comprises a unit receiving feedback from a receiving node, wherein the feedback comprises an indication of one or more transmitting antennas and weights; a unit selecting the one or more transmitting antennas and the weights to be used for
transmission of data to the receiving node based on the feedback from the receiving node; and a unit transmitting the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights.
The foregoing and other objectives, features, and advantages of the invention will be more readily understood upon consideration of the following detailed description of the invention, taken in conjunction with the accompanying drawings.
BRIEF DESCRIPTION OF DRAWINGS
Figure 1 illustrates an MBSFN precoding scheme involving two CoMP cells; Figure 2 illustrates a system that is configured for antenna selection with coherent combining precoding;
Figure 3 illustrates another system that is configured for antenna selection with coherent combining precoding;
Figure 4 illustrates a method for antenna selection with coherent combining precoding;
Figure 5 illustrates another system that is configured for antenna selection with coherent combining precoding;
Figure 6 illustrates another method for antenna selection with coherent combining precoding; Figure 7 illustrates another system that is configured for
antenna selection with coherent combining precoding;
Figure 8 illustrates another method for antenna selection with coherent combining precoding; and
Figure 9 illustrates various components that may be utilized in a communication device.
DESCRIPTION OF EMBODIMENTS
A method for coordinated multipoint transmission/ reception is disclosed. Downlink data is transmitted from cooperating base stations to a user equipment (UE) . Different numbers of transmit antennas are selected for use at different cooperating base stations. Coherent weighting is performed at each of the transmission points. Uplink data may be transmitted from the UE to the cooperating base stations. Different numbers of receive antennas may be selected for use at different cooperating base stations. Coherent weighting may be performed at each of the reception points. The UE may estimate channels from individual cooperating base stations and combine the individual channels to form an improved combined channel by selecting the transmit antennas and weights to be used at each transmission point. Individual channels at the UE may be combined to form a better combined channel using antenna selection and coherent combining using local
weighting.
The transmit antennas and weights of the cooperating base stations may be selected at the UE by estimating a superimposed channel of the cooperating base stations. The UE may estimate channels from individual cooperating base stations and coherently combine them to form an improved combined channel. A cooperating base station may estimate channels from the UE to form a better combined channel. Individual channels from the UE to a base station via relay nodes may be combined to form a better combined channel by selecting transmit antennas and weights to be used at each of the relay nodes.
The antenna selection indices from the UE along with the weights to be used for coherent combining may be fed back to the cooperating base stations in order to allow the individual cooperating base stations to select the antennas and weights to be used for transmission. The downlink data to be transmitted may be downlink shared data in a 3GPP
LTE-like system. The uplink data to be transmitted may be uplink shared data in a 3GPP LTE-like system that employs relays.
The UE may use different metrics to estimate a configuration mode to be used at the cooperating base stations in order to improve a combined channel seen at the UE. Antenna selection may also be performed with respect to
the UE.
A receiving node is disclosed. The receiving node includes a processor, memory in electronic communication with the processor, and instructions stored in the memory. The instructions are executable to estimate channels from multiple cooperating transmitting nodes to the receiving node . The instructions are also executable to determine a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes. The instructions are also executable to notify the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node.
The receiving node may be a user equipment (UE) and the transmitting nodes may be base stations . Alternatively, the receiving node may be a base station, and the transmitting nodes may be relay nodes or UEs. Determining the best combined channel may include optimizing a performance criterion . A transmitting node is disclosed. The transmitting node includes a processor, memory in electronic communication with the processor, and instructions stored in the memory. The instructions are executable to receive feedback from a receiving node. The feedback includes an indication of one or more transmitting antennas and weights. The instructions
are also executable to select the one or more transmitting antennas and the weights to be used for transmission of data to the receiving node based on the feedback from the receiving node . The instructions are also executable to transmit the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights.
The receiving node may be a user equipment (UE) , and the transmitting node and the at least on other cooperating transmitting node may be base stations . Alternatively, the receiving node may be a base station, and the transmitting node and the at least one other cooperating transmitting node may be relay nodes or UEs.
The techniques disclosed herein may be utilized to improve the performance of coordinated multipoint transmission by combining antenna selection with MBSFN transmission along with coherent combining from multiple cooperating base stations. To improve upon the performance of antenna selection with MBSFN, additional weights are used to align the signals from each of the individual cooperating base stations. While antenna selection by itself can eliminate some of the destructive superposition of signals in an MBSFN scheme, antenna selection with coherent combining can even constructively superpose the signals and lead to higher gain. This can be very useful in practice, since the precoding
codebooks in general are quantized and hence antenna selection with coherent combining allows a method of constructively combining the signals by searching over an effective larger codebook space. The techniques disclosed herein may be implemented in a 3GPP LTE-like system. The term "3GPP LTE-like system" includes any wireless communication system that operates in accordance with , a 3GPP LTE standard, a 3GPP LTE-Advanced standard, etc . Figure 1 illustrates an MBSFN precoding scheme 100 involving two CoMP (coordinated multiple point transmission/ reception) cells. Multiple base stations 102a, 102b are shown transmitting data simultaneously to a UE 104. This is referred to as downlink joint processing CoMP in LTE- Advanced. The first base station 102a and the second base station 102b may be referred to as cooperating (or coordinating) base stations 102. In this context, cooperating (or coordinating) base stations 102 are base stations 102 that transmit the same data (or possibly different data) simultaneously to a UE 104.
At the first base station 102a, a precoding vector 108 is applied to the data 106. The resulting signal is transmitted over a first channel 1 14a to the UE 104. Similarly, at the second base station 102b, the precoding vector 108 is applied to the data 106. The resulting signal is transmitted over a
second channel 1 14b to the UE 104.
Suppose the total number of CoMP cells (e . g. , base stations 102) is B, each equipped with Nt transmit antennas. Let us assume that the receiver (e . g. , the UE 104) has Nr receive antennas. Let the baseband channel matrix between
CoMP cell b (b = 1 ,2 ... B) and UEi be denoted by Hi(b) (Nr x Nt) . Let Wk(b) be the pre-coding matrix of cell b with size Nt x Lk, where Lk is the number of transmission layers for UEk. In MBSFN pre-coding:
where W^. is a common pre-coding matrix for all CoMP cells, whose columns are the -^t right singular vectors corresponding to the ^k largest singular values of the
is the power on each
layer from CoMP cell b . One of the problems with MBSFN pre-coding is that (with two cooperating base stations 102a, 102b) even if the individual channels (H l and H2) from the base stations 102a, 102b to the receiver are good, the combined channel (H l + H2) might not be good. Therefore, we propose the use of antenna selection at each of the cooperating points in order to select the best combined channel H l ' + H2 ' , where H l ' and H2' are chosen by selecting subsets of antennas at the
individual cooperating base stations 102a, 102b.
In the present disclosure, we propose a precoding technique using weighted precoding along with antenna selection. We further improve upon the performance by using local weights at each of the transmission points (e . g. , a weight for each antenna) along with antenna selection. The effective received signal with antenna selection and coherent combining is given by:
where Dk(b) is a cell (or transmission point, antenna port, etc .) specific diagonal matrix consisting of l*>k elements selected from a pre-defined codebook in order to coherently combine the signals from the multiple transmission points and H'k(b) is the effective channel (by selecting one or many antennas) from each cooperating point. Figure 2 illustrates a system 200 that is configured for antenna selection with coherent combining precoding. Multiple base stations 202a, 202b are shown transmitting data 206 simultaneously to a UE 204. At the first base station 202a, a precoding vector 208 is applied to the data 206. Then, antenna selection 2 10a is performed. Then, weights 2 12a are applied. A separate weight 2 12a may be applied for each transmit antenna. The resulting signal is transmitted over a first channel 2 14a to the UE 204.
Similarly, at the second base station 202b, a precoding vector 208 is applied to the data 206. Then, antenna selection 210b is performed. Then, weights 2 12b are applied. A separate weight 2 12b may be applied for each transmit antenna. The resulting signal is transmitted over a second channel 2 14b to the UE 204.
Figure 3 illustrates another system 300 that is configured for antenna selection with coherent combining precoding. A UE 304 includes a first receiving antenna 316a and a second receiving antenna 316b. A first base station
302a includes a first transmitting antenna 3 18a and a second transmitting antenna 3 18b . A second base station 302b includes a first transmitting antenna 320a and a second transmitting antenna 320b. The UE 304 receives downlink data 306a from the first base station 302a via a first channel
H 1 3 14a. The UE 304 receives the downlink data 306b from the second base station 302b via a second channel H2 314b. The system 300 may be a 3GPP LTE-like system, and the downlink data 306 may be downlink shared data (i. e. , data that is transmitted on a downlink channel that is shared by multiple UEs) .
The best combined channel 322 , performance metrics 324 , modes 326a, 326b, precoding matrix indices 328a, 328b, weights 3 12a, 3 12b, and precoding matrices 332a, 332b will be discussed below in connection with Figure 4.
Figure 4 illustrates a method 400 for antenna selection with coherent combining precoding. The UE 304 measures S402 the channels H 1 314a, H2 314b from the individual cooperating base stations 302a, 302b (transmission points) . The UE 304 computes S404 the best combined channel 322 by using different combinations of precoding matrices 332 , antennas 318 , 320 and weights 312 for the transmitting base stations 302 using different performance metrics 324. For example, the UE 304 may calculate the precoding matrices 332 , antennas 318, 320 and weights 3 12 from each transmission point based on optimizing a performance criterion (e. g. , norm, capacity, determinant, eigenvalue, error rate, etc.) , as shown in the following expression: argmax(D l ,D2,W l ,W2)f{H l ,W l ,D l ,H2 ,W2 ,D2} (3)
One example of a possible function and optimization problem is given by the following expression: argmax || H1W1D1 +H2W2D2 1|2 (3A)
D 1 and D2 are chosen to coherently combine the channels and could be of the form diag(eJθ) (diagonal matrix with entries eJθ) and H 1 and H2 are obtained by selecting certain columns from H 1 314a and H2 314b, respectively. The diagonal weights can also be the beamforming vectors.
Although expressions (3) and (3A) (and other examples described herein) consider two cooperating base stations, the methods disclosed herein may be extended to more than two
base stations.
The weights 3 12a for the first base station 302a may include a weight for the first transmit antenna 318a and another weight for the second transmit antenna 3 18b. Similarly, the weights 312b for the second base station 302b may include a weight for the first transmit antenna 320a and another weight for the second transmit antenna 320b.
Antenna selection may also be performed with respect to the UE 304. In other words, the UE 304 may include different combinations of receiving antennas 3 16 at the UE 304 in order to compute S404 the best combined channel 322. Thus, the UE 304 may compute S404 the best combined channel
322 by using different combinations of precoding matrices
332 , transmitting antennas 3 18, 320 for the base stations 302 , receiving antennas 3 16 at the UE 304 , and weights 3 12.
The UE 304 feeds back S406 by some form at least containing the information of the mode 326 determining the selection of the antenna(s) 3 18 , 320 and the weights 3 12 to be used at each of the cooperating base stations 302 along with the precoding matrix index 328. The precoding matrices 332 to be used at the different base stations 302 may be the same
(i.e. , a common precoding matrix 332 may be used) , or they may be different. The feedback (e. g. , precoding matrices 332) can implicitly include the antenna 3 18, 320 selection indices and/ or the weights 3 12 to be used for combining.
In order to restrict the possible combinations of antennas 318, 320 and weights 312, a restricted search space could be searched (for instance, with constraints on the minimum number of antennas 3 18, 320 to be used and/ or a subset of the entire weight space) . The codewords W1 and W2 are quantized, and multiplying with D 1 and D2, respectively, helps in obtaining a larger codebook space given by all possible combinations of W and D . (Note if D = I (i. e. , the identity matrix) , we search over the original codeword space. ) Based on the feedback from the UE 304 , each of the individual cooperating base stations 302 selects S408 its transmitting antennas 318, 320 , weights 3 12 , and precoding matrix 332. The cooperating base stations 302 transmit 410 downlink data 306 to the UE 304 using the selected transmitting antennas 3 18, 320, weights 3 12 , and precoding matrix 332.
Thus, in accordance with the method 400 of Figure 4 , downlink data 306 is transmitted from cooperating base stations 302a, 302b to a UE 304. Different numbers of transmitting antennas 3 18a, 3 18b, 320a, 320b may be selected for use at different cooperating base stations 302a, 302b. In addition, coherent weighting may be performed at each of the transmission points (base stations 302a, 302b) .
The UE 304 may estimate channels H 1 3 14a, H2 3 14b from individual cooperating base stations 302a, 302b and
coherently combine the individual channels H 1 3 14a, H2 3 14b to form an improved combined channel 322 by selecting the transmit antennas 3 18a, 3 18b, 320a, 320b and weights 3 12a, 3 12b to be used at each of the transmission points (base stations 302a, 302b) . In other words, individual channels H 1
3 14a, H2 3 14b may be combined at the UE 304 to form a better combined channel 322 using antenna selection and coherent combining using local weighting. Stated another way, the transmit antennas 3 18a, 3 18b, 320a, 320b and weights 3 12a, 3 12b of the cooperating base stations 302a,
302b may be selected at the UE 304 by estimating a superimposed channel (i. e. , the best combined channel 322) of the cooperating base stations 302a, 302b. Antenna selection indices may be fed back S406 from the UE 304 along with the weights 3 12a, 3 12b to be used for coherent combining to the cooperating base stations 302a, 302b in order to allow the individual cooperating base stations 302a, 302b to select the antennas 3 18a, 3 18b, 320a, 320b and weights 3 12a, 3 12b to be used for transmission. A specific example will now be described. Let us assume that the channel H 1 3 14a from the first base station 302a to the UE 304 is given by:
where a is the channel gain from the first transmitting antenna 3 18a to the first receiving antenna 3 16a, b is the
gain from the second transmitting antenna 3 18b to the first receiving antenna 3 16a, and so on.
Let us assume that the channel H2 314b from the second base station 302b to the UE 304 is given by:
Hence, with a normal MBSFN transmission scheme, the combined channel at the receiver (the UE 304) is given by: a + e b + f
H = H l + H2 = (6) c + g d + h
However, such a combined channel could be possibly worse than the individual channels H l or H2 or other combinations of H l and H2. By using different numbers of antennas 3 18, 320 and different weights 3 12 at the individual cooperating base stations 302 , a different combined channel will be seen at the receiver and the receiver can choose the optimal combination of antennas 3 18, 320 and weights 312 at the cooperating base stations 320. Some examples of possible combinations are given below.
Suppose that we choose both transmitting antennas 3 18a, 3 18b from the first base station 302a, one transmitting antenna 320a from the second base station 302b, and both receiving antennas 316a, 3 16b at the UE 304. The combined channel at the UE 304 may be given by: a + e b
(Mode 1 ) H' = c + g d\ (7)
With coherent combining, H' = H l + H2*D where D =
diag(- l ,+ l ) , and hence: a — e b c + g d (8)
Alternatively, the combined channel at the UE 304 may¬ be given by:
\aa bb ++ ffl
(Mode 2) H' = c d + h (9)
With coherent combining and with D = diag(+ l ,- l ) , we get: a b + f
H' = ( 10) c d - h] Hence, by using the additional weights 312 in addition to antenna 318, 320 selection, there are more possible ways to superpose the signals from the multiple transmission points than there are by simply using antenna 318, 320 selection alone. Different metrics could be used for the antenna 318, 320 mode selection and weights 312, including but not limited to: the capacity of the combined channel, error rate, the determinant of the combined channel, the norm of the combined channel, the condition number of the combined channel, etc. Thus, the UE 304 may use different metrics to estimate a configuration mode 326 to be used at the cooperating base stations 302 in order to improve a combined channel seen at the UE 304.
Figure 5 illustrates another system 500 that is configured for antenna selection with coherent combining precoding. A first base station 502a includes a first receiving
antenna 536a and a second receiving antenna 536b. A second base station 502b includes a first receiving antenna 538a and a second receiving antenna 538b. A UE 504 transmits uplink data 506a to the first base station 502a via a first channel 514a. The UE 504 transmits uplink data 506b to the second base station 502b via a second channel 514b. The signal 534 , best combined channel 522 , performance metrics 524 , and weights 512a, 512b will be discussed below in connection with Figure 6. Figure 6 illustrates another method 600 for antenna selection with coherent combining precoding. The first base station 502a receives S602 uplink data 506a from the UE 504 via the first channel 514a. The first base station 502a receives S604 from the second base station 502b the signal 534 (which includes the uplink data 506b) that the second base station 502b received from the UE 504 via the second channel 514b . The first base station 502a estimates S606 the first channel 514a and the second channel 514b. The first base station 502a determines S608 the best combined channel 522 by using different combinations of receiving antennas 536a, 536b, 538a, 538b and weights 512a, 5 12b for the receiving base stations 502a, 502b using different performance metrics 524. The first base station 502a notifies 610 the second base station 502b about the receiving antenna(s) 538a, 538b and weights 512b to be used.
Thus, in accordance with the method 600 of Figure 6, uplink data 506 is transmitted from a UE 504 to cooperating base stations 502a, 502b. Different numbers of receive antennas 536a, 536b, 538a, 538b may be selected for use at different cooperating base stations 502a, 502b. In addition, coherent weighting may be performed at each of the reception points (base stations 502a, 502b) . A cooperating base station 502a may estimate channels 514a, 514b from the UE 504 to form a better combined channel 522. Figure 7 illustrates another system 700 that is configured for antenna selection with coherent combining precoding. A UE 704 transmits uplink data 706 to a base station 702 via a first relay node 740a (transmission points or reception points) and a second relay node 740b (transmission points or reception points) . More specifically, the UE 704 transmits the uplink data 706a, 706b to the first relay node 740a and to the second relay node 740b . The first relay node 740a transmits the uplink data 706a' to the base station 702 via a first channel 714a. The second relay node 740b transmits the uplink data 706b' to the base station 702 via a second channel 714b. The system 700 may be a 3GPP LTE- like system, and the uplink data 706 may be uplink shared data (i.e . , data that is transmitted on an uplink channel that is shared by multiple UEs) . The first relay node 740a includes a first transmitting
antenna 718a and a second transmitting antenna 718b . The second relay node 740b includes a first transmitting antenna 720a and a second transmitting antenna 720b. The best combined channel 722 , performance metrics 724 , and the weights 712a, 712b will be discussed below in connection with Figure 8.
Figure 8 illustrates another method 800 for antenna selection with coherent combining precoding. The UE 704 transmits S802 uplink data 706 to the relay nodes 740a, 740b . The first relay node 740a transmits S804 the uplink data
706a' to the base station 702 via the first channel 714a. The second relay node 740b transmits S806 the uplink data 706b' to the base station 702 via the second channel 7 14b. The base station 702 estimates S808 the first channel 714a and the second channel 714b . The base station 702 determines
810 the best combined channel 722 by using different combinations of antennas 718a, 718b, 720a, 720b and weights 712a, 712b for the relay nodes 740a, 740b using different performance metrics 724. The base station 702 notifies 812 the relay nodes 740a, 740b about the antennas
718a, 718b, 720a, 720b and weights 712a, 712b to be used.
Thus, in accordance with the method 800 of Figure 8 , individual channels 7 14a, 7 14b from the UE 704 to the base station 702 via relay nodes 740a, 740b may be combined to form a better combined channel 722 by selecting transmit
antennas 718a, 718b, 720a, 720b and weights 7 12a, 712b to be used at each of the relay nodes 740a, 740b.
In accordance with the present disclosure, a receiving node (which may be a UE, a base station, etc. ) may estimate channels from multiple cooperating transmitting nodes (which may be base stations, relay nodes, etc.) . For example , a UE 304 may estimate channels 3 14a, 3 14b from multiple cooperating base stations 302a, 302b to the UE 304. As another example, a base station 702 may estimate channels 714a, 714b from multiple relay nodes 740a, 740b to the base station 702.
The receiving node may determine a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes. For example, a UE 304 may determine a best combined channel 322 by using different combinations of transmit antennas 318a, 318b, 320a, 320b and weights 312a, 3 12b for the multiple cooperating base stations 302a, 302b. As another example, a base station 702 may determine a best combined channel 722 by using different combinations of transmit antennas 718a, 7 18b, 720a, 720b and weights 712a, 712b for the multiple relay nodes 740a, 740b.
The receiving node may notify the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving
node . For example, a UE 304 may notify the multiple cooperating base stations 302a, 302b about the transmit antennas 318a, 3 18b, 320a, 320b and the weights 3 12a, 3 12b to be used for transmission of downlink data 306 to the UE 304. As another example, a base station 702 may notify the multiple relay nodes 740a, 740b about the transmit antennas 718a, 718b, 720a, 720b and the weights 712a, 7 12b to be used for transmission of uplink data 706 to the base station 702. Also, in accordance with the present disclosure, a transmitting node may receive feedback from a receiving node. The feedback may include an indication of one or more transmitting antennas and weights. For example, a cooperating base station 302a may receive from the UE 304 the mode 326a determining the selection of the antenna(s)
3 18a, 318b and the weights 3 12a, along with the precoding matrix index 328a. As another example, a relay node 740a may receive from a base station 702 the selection of the antenna(s) 718a, 718b, the weights 712a, and the precoding matrix index.
The transmitting node may select one or more transmitting antennas and the weights to be used for transmission of data to the receiving node based on the feedback from the receiving node . For example, a cooperating base station 302a may select transmitting antenna(s) 3 18a,
318b and weights 312a to be used for transmission of downlink data 306a to the UE 304 based on the feedback from the UE 304. As another example, a relay node 740a may select transmitting antenna(s) 718a, 718b and weights 712a to be used for transmission of uplink data 706a' to the base station 702 based on the feedback from the base station 702.
The transmitting node may transmit the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights. For example, a cooperating base station 302a may transmit the downlink data 306a to the UE 304 simultaneously with at least one other cooperating base station 302b using the selected transmitting antenna(s) 3 18a, 3 18b and the selected weights 312a. As another example, a relay node 740a may transmit uplink data 706a' to the base station 702 simultaneously with at least one other relay node 740b using the selected transmitting antenna(s) 7 18a, 718b and the selected weights 712a. Figure 9 illustrates various components that may be utilized in a communication device 902. The communication device 902 may be a UE or a base station. The communication device 902 includes a processor 906 that controls operation of the communication device 902. The processor 906 may also be referred to as a CPU. Memory 908 ,
which may include both read-only memory (ROM) , random access memory (RAM) or any type of device that may store information, provides instructions 907a and data 909a to the processor 906. A portion of the memory 908 may also include non-volatile random access memory (NVRAM) . Instructions
907b and data 909b may also reside in the processor 906. Instructions 907b loaded into the processor 906 may also include instructions 907a from memory 908 that were loaded for execution by the processor 906. The instructions 907 may be executed by the processor 906 to implement the methods disclosed herein.
The communication device 902 may also include a housing that contains a transmitter 9 10 and a receiver 9 12 to allow transmission and reception of data. The transmitter 9 10 and receiver 9 12 may be combined into a transceiver 920.
An antenna 9 18 is attached to the housing and electrically coupled to the transceiver 920. Additional antennas may also be used .
The various components of the communication device 902 are coupled together by a bus system 926 which may- include a power bus, a control signal bus, and a status signal bus, in addition to a data bus. However, for the sake of clarity, the various buses are illustrated in Figure 9 as the bus system 926. The communication device 902 may also include a digital signal processor (DSP) 9 14 for use in
processing signals. The communication device 902 may also include a communications interface 924 that provides user access to the functions of the communication device 902. The communication device 902 illustrated in Figure 9 is a functional block diagram rather than a listing of specific components.
In accordance with the present disclosure, the present invention may further provide a receiving node (UE or base station) . The receiving node comprises a unit (e. g. processor 906) estimating channels from multiple cooperating transmitting nodes to the receiving node; a unit (e . g. processor 906) determining a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes; and a unit (e. g. transmitter 9 10) notifying the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node.
In accordance with the present disclosure, the present invention may further provide a transmitting node (UE or base station) . The transmitting node comprises a unit (e. g. receiver 9 12) receiving feedback from a receiving node, wherein the feedback comprises an indication of one or more transmitting antennas and weights; a unit (e . g. processor 906) selecting the one or more transmitting antennas and the weights to be
used for transmission of data to the receiving node based on the feedback from the receiving node; and a unit (e. g. transmitter 9 10) transmitting the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights .
The methods disclosed herein comprise one or more steps or actions for achieving the described method. The method steps and/ or actions may be interchanged with one another without departing from the scope of the claims. In other words, unless a specific order of steps or actions is required for proper operation of the method that is being described, the order and/ or use of specific steps and/ or actions may be modified without departing from the scope of the claims.
It is to be understood that the claims are not limited to the precise configuration and components illustrated above. Various modifications, changes and variations may be made in the arrangement, operation and details of the systems, methods, and apparatus described herein without departing from the scope of the claims.
Claims
1. A method for coordinated multipoint transmission/ reception, comprising: transmitting downlink data from cooperating base stations or relay nodes to a user equipment (UE) ; selecting different numbers of transmit antennas for use at different cooperating base stations or relay nodes; and performing coherent weighting at each of the cooperating base stations or relay nodes.
2. The method of claim 1 , further comprising: transmitting uplink data from the UE to the cooperating base stations or relay nodes; selecting different numbers of receive antennas for use at different cooperating base stations or relay nodes; and performing coherent weighting at each of the cooperating base stations or relay nodes.
3. The method of claim 1 , further comprising the UE estimating channels from individual cooperating base stations or relay nodes and combining the individual channels to form an improved combined channel by selecting the transmit antennas and weights to be used at each cooperating base station or relay nodes.
4. The method of claim 1 , further comprising combining individual channels at the UE to form a better combined channel using antenna selection and coherent combining using local weighting.
5. The method of claim 1 , further comprising selecting the transmit antennas and weights of the cooperating base stations or relay nodes at the UE by estimating a superimposed channel of the cooperating base stations or relay nodes.
6. The method of claim 1 , further comprising the UE estimating channels from individual cooperating base stations or relay nodes and coherently combining them to form an improved combined channel.
7. The method of claim 1 , further comprising a cooperating base station estimating channels from the UE to form a better combined channel.
8. The method of claim 1 , further comprising combining individual channels from the UE to a base station via the relay nodes to form a better combined channel by selecting transmit antennas and weights to be used at each of the relay nodes.
9. The method of claim 1 , further comprising feeding back antenna selection indices from the UE along with the weights to be used for coherent combining to the cooperating base stations in order to allow the individual cooperating base stations to select the antennas and weights to be used for transmission.
10. The method of claim 1 , further comprising feeding back a precoding matrix indicator from the UE that implicitly takes into account antenna selection indices and the weights to be used for coherent combining.
1 1 . The method of claim 1 or 2 , wherein the downlink data to be transmitted is downlink shared data in a 3GPP LTE-like system.
12. The method of claim 1 , further comprising the UE using different metrics to estimate a configuration mode to be used at the cooperating base stations in order to improve a combined channel seen at the UE.
13. The method of claim 1 or 2 , further comprising performing antenna selection with respect to the UE.
14. A receiving node, comprising: a unit estimating channels from multiple cooperating transmitting nodes to the receiving node; a unit determining a best combined channel by using different combinations of transmit antennas and weights for the multiple cooperating transmitting nodes; and a unit notifying the multiple cooperating transmitting nodes about the transmit antennas and the weights to be used for transmission of data to the receiving node .
15. The receiving node of claim 14, wherein the receiving node is a user equipment (UE) , and the transmitting nodes are base stations, or the receiving node is a base station, and the transmitting nodes are relay nodes or UEs.
16. The receiving node of claim 14 , wherein determining the best combined channel comprises optimizing a performance criterion.
17. A transmitting node, comprising: a unit receiving feedback from a receiving node , wherein the feedback comprises an indication of one or more transmitting antennas and weights; a unit selecting the one or more transmitting antennas and the weights to be used for transmission of data to the receiving node based on the feedback from the receiving node; and a unit transmitting the data to the receiving node simultaneously with at least one other cooperating transmitting node using the selected transmitting antennas and the selected weights.
18. The transmitting node of claim 17 , wherein the receiving node is a user equipment (UE) , and the transmitting node and the at least one other cooperating transmitting node are base stations, or the receiving node is a base station, and the transmitting node and the at least one other cooperating transmitting node are relay nodes or UEs.
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| JP2011549786A JP2012531065A (en) | 2009-06-19 | 2010-04-21 | System and method for coordinated multipoint transmission and reception |
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| US12/488,445 US20100323611A1 (en) | 2009-06-19 | 2009-06-19 | Systems and methods for coherent precoding with antenna selection for coordinated multipoint transmission |
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| US (1) | US20100323611A1 (en) |
| JP (1) | JP2012531065A (en) |
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| US20100323611A1 (en) | 2010-12-23 |
| JP2012531065A (en) | 2012-12-06 |
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