Method and device for multi-antenna transmission in user equipment (UE) and base station
11546110 ยท 2023-01-03
Assignee
Inventors
Cpc classification
H04B7/0456
ELECTRICITY
H04L1/1822
ELECTRICITY
H04L1/1819
ELECTRICITY
H04L5/0053
ELECTRICITY
H04L5/005
ELECTRICITY
International classification
H04L1/00
ELECTRICITY
Abstract
The present disclosure discloses a method and device for multi-antenna transmission in UE and base station. The user equipment receives a first radio signal at first, then receives a first signaling. The first radio signal is transmitted by K antenna port groups, and the first signaling is used to determine a first time resource pool; a second antenna virtualization vector is associated with the first antenna port group; the second antenna virtualization vector is an antenna virtualization vector available to the user equipment in the first time resource pool. The invention effectively reduces signaling overhead of wireless resource dynamic scheduling of a massive MIMO system.
Claims
1. A method for multi-antenna transmission in a user equipment, comprising: receiving a first radio signal; and receiving a first signaling; wherein the first radio signal is transmitted by K antenna port groups; the antenna port group includes a positive integer number of antenna port(s); a first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; a second antenna virtualization vector is associated with the first antenna port group; the second antenna virtualization vector is an antenna virtualization vector available to the user equipment in the first time resource pool; and the K is a positive integer greater than 1; the first radio signal includes one or more of PSS (Primary Synchronization Signal), SSS (Secondary Synchronization Signal), MIB (Master Information Block)/SIB (System Information Block) or CSI-RS (Channel State Information Reference signal); the first signaling is a downlink signaling.
2. The method of claim 1, further comprising: receiving a second signaling; and operating a second radio signal in a first time resource sub-pool; wherein the operating is one of receiving or transmitting the second radio signal; the second signaling is used to determine the first time resource sub-pool from the first time resource pool; and the second signaling is used to determine at least one of occupied frequency domain resources, an MCS, a HARQ process number, an RV, an NDI and (a) transmitting antenna port(s) of the second radio signal.
3. The method of claim 1, wherein the first signaling indicates the first antenna port group from the K antenna port group(s); or, comprising: receiving first information, wherein the first information is used to determine the first antenna port group.
4. The method of claim 1, further comprising: transmitting second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; or, transmitting second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information includes a CRI(CRIs) (CSI-RS Resource Indicator), and the CRI(s) indicates(indicate) the CSI-RS resource(s) corresponding to the K1 antenna port group(s) from the CSI-RS resources corresponding to the K antenna port groups; or, transmitting second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information is a RACH preamble, and at least one of the sequence of the RACH preamble or the time-frequency resource occupied by the RACH preamble is used to determine the first antenna port group.
5. The method of claim 1, wherein the first time resource pool is discontinuous in time domain; or the first signaling is a semi-static signaling; or the first signaling is a high layer signaling; or the first signaling is a physical layer signaling; or the first signaling includes one or more RRC IEs; or the first signaling is carried by a PDCCH; or the first signaling is transmitted on a PBCH; or the first signaling is cell-common; or the first signaling is for the UE.
6. A method for multi-antenna transmitting in a base station, comprising: transmitting a first radio signal; and transmitting a first signaling; wherein the first radio signal is transmitted by K antenna port groups; the antenna port group includes a positive integer number of antenna port(s); a first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; a second antenna virtualization vector is associated with the first antenna port group; the second antenna virtualization vector is an antenna virtualization vector available to a target receiver of the first signaling in the first time resource pool; and the K is a positive integer greater than 1; the first radio signal includes one or more of PSS (Primary Synchronization Signal), SSS (Secondary Synchronization Signal), MIB (Master Information Block)/SIB (System Information Block) or CSI-RS (Channel State Information Reference signal); the first signaling is a downlink signaling.
7. The method of claim 6, further comprising: transmitting a second signaling; and performing a second radio signal in a first time resource sub-pool; wherein the performing is one of transmitting or receiving the second radio signal; the second signaling is used to determine the first time resource sub-pool from the first time resource pool; the second signaling is used to determine at least one of occupied frequency domain resources, an MCS, a HARQ process number, an RV, an NDI and (a) transmitting antenna port(s) of the second radio signal.
8. The method of claim 6, wherein the first signaling indicates the first antenna port group from the K antenna port group(s); or, comprising: transmitting first information, wherein the first information is used to determine the first antenna port group.
9. The method of claim 6, further comprising: receiving second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; or, receiving second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information includes a CRI(CRIs) (CSI-RS Resource Indicator), and the CRI(s) indicates(indicate) the CSI-RS resource(s) corresponding to the K1 antenna port group(s) from the CSI-RS resources corresponding to the K antenna port groups; or, receiving second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information is a RACH preamble, and at least one of the sequence of the RACH preamble or the time-frequency resource occupied by the RACH preamble is used to determine the first antenna port group.
10. The method of claim 6, wherein the first time resource pool is discontinuous in time domain; or the first signaling is a semi-static signaling; or the first signaling is a high layer signaling; or the first signaling is a physical layer signaling; or the first signaling includes one or more RRC IEs; or the first signaling is carried by a PDCCH; or the first signaling is transmitted on a PBCH; or the first signaling is cell-common; or the first signaling is for the UE.
11. A user equipment (UE) for multi-antenna transmission, comprising: a first transceiver, receiving a first radio signal; and a second receiver, receiving a first signaling; wherein the first radio signal is transmitted by K antenna port groups; the antenna port group includes a positive integer number of antenna port(s); a first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; a second antenna virtualization vector is associated with the first antenna port group; the second antenna virtualization vector is an antenna virtualization vector available to the user equipment in the first time resource pool; and the K is a positive integer greater than 1; the first radio signal includes one or more of PSS (Primary Synchronization Signal), SSS (Secondary Synchronization Signal), MIB (Master Information Block)/SIB (System Information Block) or CSI-RS (Channel State Information Reference signal); the first signaling is a downlink signaling.
12. The UE of claim 11, comprising: a third receiver, receiving a second signaling; and a second transceiver, operating a second radio signal in a first time resource sub-pool; wherein the operating is one of receiving or transmitting the second radio signal; the second signaling is used to determine the first time resource sub-pool from the first time resource pool; and the second signaling is used to determine at least one of occupied frequency domain resources, a MCS, a HARQ process number, a RV, a NDI and (a) transmitting antenna port(s) of the second radio signal.
13. The UE of claim 11, wherein the first signaling indicates the first antenna port group from the K antenna port group(s); or, the second receiver further receives first information, wherein the first information is used to determine the first antenna port group.
14. The UE of claim 11, wherein: the first transceiver further transmits second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; or, the first transceiver further transmits second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information includes a CRI(CRIs) (CSI-RS Resource Indicator), and the CRI(s) indicates(indicate) the CSI-RS resource(s) corresponding to the K1 antenna port group(s) from the CSI-RS resources corresponding to the K antenna port groups; or, the first transceiver further transmits second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information is a RACH preamble, and at least one of the sequence of the RACH preamble or the time-frequency resource occupied by the RACH preamble is used to determine the first antenna port group.
15. The UE of claim 11, wherein the first time resource pool is discontinuous in time domain; or the first signaling is a semi-static signaling; or the first signaling is a high layer signaling; or the first signaling is a physical layer signaling; or the first signaling includes one or more RRC IEs; or the first signaling is carried by a PDCCH; or the first signaling is transmitted on a PBCH; or the first signaling is cell-common; or the first signaling is for the UE.
16. A base station equipment for multi-antenna transmission, comprising: a third transceiver, transmitting a first radio signal; and a second transmitter, transmitting a first signaling; wherein the first radio signal is transmitted by K antenna port groups; the antenna port group includes a positive integer number of antenna port(s); a first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; a second antenna virtualization vector is associated with the first antenna port group; the second antenna virtualization vector is an antenna virtualization vector available to a target receiver of the first signaling in the first time resource pool; and the K is a positive integer greater than 1; the first radio signal includes one or more of PSS (Primary Synchronization Signal), SSS (Secondary Synchronization Signal), MIB (Master Information Block)/SIB (System Information Block) or CSI-RS (Channel State Information Reference signal); the first signaling is a downlink signaling.
17. The base station equipment of claim 16, further comprising: a third transmitter, transmitting a second signaling; and a fourth transceiver, performing a second radio signal in a first time resource sub-pool; wherein the performing is one of transmitting or receiving the second radio signal; the second signaling is used to determine the first time resource sub-pool from the first time resource pool; the second signaling is used to determine at least one of occupied frequency domain resources, a MCS, a HARQ process number, a RV, a NDI and (a) transmitting antenna port(s) of the second radio signal.
18. The base station equipment of claim 16, wherein the first signaling indicates the first antenna port group from the K antenna port group(s); or, the second transmitter further transmits first information, wherein the first information is used to determine the first antenna port group.
19. The base station equipment of claim 16, wherein: the third transceiver further receives second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; or, the third transceiver further receives second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information includes a CRI(CRIs) (CSI-RS Resource Indicator), and the CRI(s) indicates(indicate) the CSI-RS resource(s) corresponding to the K1 antenna port group(s) from the CSI-RS resources corresponding to the K antenna port groups; or, the third transceiver further receives second information, wherein the second information is used to determine K1 antenna port group(s); the K1 antenna port group(s) belong(s) to the K antenna port groups; the first antenna port group is one of the K1 antenna port group(s); the K1 is a positive integer; the second information is a RACH preamble, and at least one of the sequence of the RACH preamble or the time-frequency resource occupied by the RACH preamble is used to determine the first antenna port group.
20. The base station equipment of claim 16, wherein the first time resource pool is discontinuous in time domain; or the first signaling is a semi-static signaling; or the first signaling is a high layer signaling; or the first signaling is a physical layer signaling; or the first signaling includes one or more RRC IEs; or the first signaling is carried by a PDCCH; or the first signaling is transmitted on a PBCH; or the first signaling is cell-common; or the first signaling is for the UE.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Other features, objects, and advantages of the present disclosure will become more apparent from the detailed description of the accompanying drawings.
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DESCRIPTION OF THE EMBODIMENTS
Embodiment 1
(17) Embodiment 1 illustrates a flow chart of wireless transmission according to one embodiment of the present disclosure, as shown in
(18) The base station N1 transmits the first radio signal in step S11; receives the second information in step S12; transmits the first information in step S13; and transmits the first signaling in step S14.
(19) The UE U2 receives the first radio signal in step S21; transmits the second information in step S22; receives the first information in step S23; and receives the first signaling in step S24.
(20) In Embodiment 1, the first radio signal is transmitted by K antenna port groups, the antenna port group(s) includes a positive integer number of the antenna port(s); a first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; at least one first antenna virtualization vector, and second antenna virtualization vector is associated with the first antenna port group; the first antenna virtualization vector is an antenna virtualization vector available to a transmitter of the first signaling in the first time resource pool; the second antenna virtualization vector is an antenna virtualization vector available to the user equipment in the first time resource pool; the K is a positive integer greater than 1. The first information is used to determine the first antenna port group. The second information is used to determine K1 antenna port group(s), the K1 antenna port group(s) belong to the K antenna port groups. The first antenna port group is one of the K1 antenna port group(s). The K1 is a positive integer.
(21) In n a sub-embodiment 1 of Embodiment 1, the first antenna virtualization vector and the second antenna virtualization vector are both associated with the first antenna port group.
(22) In a sub-embodiment 2 of embodiment 1, the second information includes a CRI.
(23) In a sub-embodiment 3 of Embodiment 1, the first information is carried by RRC signaling.
(24) In a sub-embodiment 4 of Embodiment 1, the first information is DCI.
(25) In a sub-embodiment 5 of Embodiment 1, the K antenna port groups respectively correspond to K reference signal group(s).
(26) In a sub-embodiment 6 of Embodiment 1, the first radio signal includes the K reference signal groups.
Embodiment 2
(27) Embodiment 2 illustrates a flowchart of wireless transmission according to another one embodiment of the present disclosure, as shown in
(28) The base station N3 transmits a first signaling in step S31; transmits a second signaling in step S32; receives second radio signal in the first time resource sub-pool in step S33.
(29) The UE U4 monitors a first signaling in the third time resource pool in step S41; receives the first signaling in step S42; monitors a second signaling in the second time resource pool in step S43; receives the second signaling in step S44; transmits the second radio signal in the first time resource sub-pool in step S45.
(30) In a sub-embodiment 1 of Embodiment 2, the first signaling is a semi-static RRC signaling, including one or more RRC IEs (Information Element).
(31) In a sub-embodiment 2 of Embodiment 2, the first signaling is a DCI carried by a PDCCH.
(32) In a sub-embodiment 3 of Embodiment 2, the first signaling is for a terminal group, the terminal group includes a plurality of terminals, and the UE is one terminal in the terminal group.
(33) In a sub-embodiment 4 of Embodiment 2, the first signaling is transmitted by the first antenna port group.
(34) n a sub-embodiment 5 of Embodiment 2, the second signaling is a DCI carried by a PDCCH. The second signaling is for a terminal group, the terminal group includes a plurality of terminals, and the UE is one terminal in the terminal group. The second signaling is transmitted by the first antenna port group.
(35) In a sub-embodiment 6 of Embodiment 2, the transmission period of the first signaling is greater than the transmission period of the second signaling.
Embodiment 3
(36) Embodiment 3 illustrates a flowchart of wireless transmission in accordance with yet another embodiment of the present disclosure, as shown in
(37) The base station N5 transmits the second radio signal in the first time resource sub-pool in step S51.
(38) The UE U6 receives the second radio signal in the first time resource sup-pool in step S61.
Embodiment 4
(39) Embodiment 4 illustrates a schematic diagram of a first time resource pool and a first time resource sub-pool, as shown in
(40) In Embodiment 4, the first time resource pool includes N1 time resources; the first signaling indicates the distribution of the first time resource pool in the time domain. The second radio signal is transmitted on the first time resource sub-pool. The first time resource sub-pool includes N2 time resources #k1-#km in the N1 time resources. The second signaling indicates the number #k1-#km of the N2 time resources in the N1 time resources.
(41) In a sub-embodiment 1 of Embodiment 4, the time resource is a subframe.
(42) In a sub-embodiment 2 of Embodiment 4, the time resource is an OFDM symbol.
Embodiment5
(43) Embodiment 5 illustrates a schematic diagram of a time-frequency resources occupied by second radio signal, as shown in
(44) In Embodiment 5, the second radio signal is transmitted on the time resource #k1-#km of the first time resource sub-pool. By the second signaling, the UE determines a first time resource sub-pool from the first time resource pool and determines the frequency domain resources occupied by the second radio signal, thereby determining the second time-frequency resource occupied by the second radio signal.
(45) In a sub-embodiment 1 of Embodiment 5, the time resource is a subframe.
(46) In a sub-embodiment 2 of embodiment 5, the time resource is an OFDM symbol.
(47) In a sub-embodiment 3 of the embodiment 5, the time-frequency resource is a wireless resource block(s).
Embodiment 6
(48) Embodiment 6 illustrates a schematic diagram of the first time resource sub-pool jointly determined by the first signaling and the second signaling, as shown in
(49) In Embodiment 6, subframes #1-#8 are candidate subframes for transmitting a second radio signal, and the first signaling, by the form of bitmap, uses 10101010 to indicate that the first time resource pool is consisted of subframes # 1, # 3, # 5 and # 7, the second signaling, by the form of bitmap, uses 0101 to indicate that the subframe # 3 and # 7 in the first time resource pool {#1, #3, #5, #7} consists of the first time sub-pool , which means the UE receives the second radio signal on the subframes #3 and #7.
(50) In a sub-embodiment 1 of Embodiment 6, the first signaling is high layer signaling, and the second signaling is UE-specific DCI.
(51) In a sub-embodiment 2 of Embodiment 6, the first signaling is a terminal group specific DCI, and the second signaling is UE-specific DCI.
Embodiment 7
(52) Embodiment 7 illustrates a schematic diagram of a time resource pool and a time resource block, as shown in
(53) In Embodiment 7, one target time resource pool includes N time resource block(s), and the N time resource block(s) are discontinuous in the time domain. The time resource block #k is one of the N time resource block(s). The time resource block(s) #k includes M symbols in the target time resource pool. The M symbols in the target time resource pool are discontinuous in the time domain. The time interval between two time resource blocks is the time interval between the first symbols of the respective two time resource blocks.
(54) In a sub-embodiment 1 of Embodiment 7, the target time resource pool is a second time resource pool, and the second signaling occupies one time resource block in the second time resource pool at most.
(55) In a sub-embodiment 2 of Embodiment 7, the target time resource pool is a third time resource pool, and the first signaling occupies one time resource block in the third time resource pool at most.
(56) In a sub-embodiment 3 of embodiment 7, the symbol is an OFDM symbol.
Embodiment 8
(57) Embodiment 8 illustrates a schematic diagram of the distribution of the second time resource pool and the third time resource in the time domain, as shown in
(58) In Embodiment 8, the second signaling is transmitted on one time resource block in the second time resource pool, and the first signaling is transmitted on one time resource block in the third time resource pool. Between two time resource blocks of the third time resource pool may exist a plurality of time resource blocks of the second time resource pool.
(59) In a sub-embodiment 1 in Embodiment 8, the second time resource pool and the third time resource pool are discontinuous in the time domain.
Embodiment 9
(60) Embodiment 9 illustrates a schematic diagram of an antenna port group(s) corresponding to a time resource pool; as shown in
(61) In Embodiment 9, the first antenna port group is one of the K antenna port groups. The K antenna port groups respectively correspond to K different beam groups. The K antenna port groups respectively correspond to K time resource pools, and the first time resource pool is a time resource pool corresponding to the first antenna port group.
Embodiment 10
(62) Embodiment 10 illustrates a structural block diagram of a processing device in a UE, as shown in
(63) In
(64) The first transceiver 1001 receives the first radio signal; the second receiver 1002 receives the first signaling; the third receiver 1003 receives the second signaling; and the second transceiver 1004 operates the second radio signal in the first time resource pool.
(65) In the embodiment 10, the first radio signal is transmitted by K antenna port groups, and the antenna port group(s) includes a positive integer number of the antenna port(s). The K is a positive integer greater than 1. The first antenna port group is one of the K antenna port groups. The first signaling is used by the UE to determine the first time the resource pool. At least one of a first antenna virtualization vector and a second antenna virtualization vector is associated with the first antenna port group. The first antenna virtualization vector is an available antenna virtualization vector of the base station in the first time resource pool. The second antenna virtualization vector is an available antenna virtualization vector of the UE in the first time resource pool. The operation is receiving; or the operation is transmitting. The second signaling is used by the UE to determine the first time resource sub-pool from the first time resource pool, and the second signaling is further used by the UE to determine at least one of the occupied frequency domain resources, an MCS, a HARQ process number, an RV, an NDI, (a) transmit antenna port of the second radio signal.
(66) In a sub-embodiment 1 of the embodiment 10, the second receiver 1002 is further used by the UE to receive the first information. The first information is used to determine the first antenna port group.
(67) In a sub-embodiment 2 of the embodiment 10, the first transceiver 1001 is further used by the UE to transmit the second information. The second information is used by the base station to determine K1 antenna port group(s), the K1 antenna port group(s) belong to the K antenna port groups, and the first antenna port group is one of the K1 antenna port group(s). The K1 is a positive integer.
(68) In a sub-embodiment 3 of embodiment 10, the third receiver 1003 is further used by the UE to monitor the second signaling in a second time resource pool.
(69) In a sub-embodiment 4 of embodiment 10, the first signaling is a dynamic signaling, and the second receiver 1002 is further used by the UE to monitor the first signaling in a third time resource pool. The minimum time interval between time resource blocks in the third time resource pool is greater than the minimum time interval between time resource blocks in the second time resource pool.
(70) In a sub-embodiment 5 of embodiment 10, the first time resource pool is discontinuous in the time domain.
(71) In a sub-embodiment 6 of embodiment 10, the first signaling is a semi-static signaling.
(72) In one embodiment, the second transceiver 1001 includes a transmitter/receiver 460, a MIMO detector 472, a receiving processor 452, an antenna 460, a controller/processor 490, and a memory 480 in Embodiment 15.
(73) In one embodiment, the first transceiver 1001 includes a transmitting processor 455, a MIMO transmitting processor 471, a transmitter/receiver 460, and an antenna 460 in Embodiment 15.
(74) In one embodiment, the second receiver 1002 includes a transmitter/receiver 460, a MIMO detector 472, a receiving processor 452, and an antenna 460 in Embodiment XV.
(75) In one embodiment, the second receiver 1002 includes the controller/processor 490 in Embodiment 15.
(76) In one embodiment, the third receiver 1003 includes the transmitter/receiver 460, the MIMO detector 472, the receiving processor 452, and the antenna 460 in Embodiment 15.
(77) In one embodiment, the second transceiver 1004 includes the transmitter/receiver 460, the MIMO detector 472, the receiving processor 452, the antenna 460, the controller/processor 490, and the memory 480 in Embodiment 15.
(78) In one embodiment, the second transceiver 1004 includes a transmitting processor 455, a MIMO transmitting processor 471, a transmitter/receiver 460, a controller/processor 490, a data source 467, and an antenna 460 in Embodiment 15.
Embodiment 11
(79) Embodiment 11 illustrates a structural block diagram of a processing device in the base station equipment; as shown in
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(81) The third transceiver 1101 transmits first radio signal; the second transmitter 1102 transmits a first signaling; the third transmitter 1103 transmits a second signaling; and the fourth transceiver 1104 performs second radio signal in a first time resource sub-pool.
(82) In Embodiment 11, the first radio signal is transmitted by K antenna port groups, and the antenna port group(s) includes a positive integer number of the antenna port(s). The K is a positive integer greater than 1. The first antenna port group is one of the K antenna port groups. The first signaling is used by the UE to determine the first time the resource pool. At least one first antenna virtualization vector, and the second antenna virtualization vector is associated with the first antenna port group. The first antenna virtualization vector is an available antenna virtualization vector of the base station in the first time resource pool. The second antenna virtualization vector is an available antenna virtualization vector of a target receiver of the first signaling in the first time resource pool. The K is a positive integer greater than 1. The performing is receiving; or the performing is transmitting. The second signaling is used by the UE to determine the first time resource sub-pool from the first time resource pool, and the second signaling is further used by the UE to determine at least one of the occupied frequency domain resources, a MCS, a HARQ process number, a RV, a NDI, (a) transmit antenna port of the second radio signal.
(83) In a sub-embodiment 1 of Embodiment 11, the second transmitter 1102 is further used by the base station to transmit first information. Herein, the first information is used by the UE to determine the first antenna port group.
(84) In a sub-embodiment 2 of the embodiment 11, the third transceiver 1101 is further used by the base station to receive the second information. Herein, the second information is used by the base station to determine K1 antenna port group(s), the K1 antenna port group(s) belong to the K antenna port groups, and the first antenna port group is one of the K1 antenna port group(s). The K1 is a positive integer.
(85) In a sub-embodiment 3 of Embodiment 11, the third transmitter 1103 is further used by the base station to transmit the second signaling in a second time resource pool.
(86) In a sub-embodiment 4 of Embodiment 11, the first signaling is a dynamic signaling, and the second transmitter 1102 is further used by the base station to transmit the first signaling in a third time resource pool. The minimum time interval between time resource blocks in the third time resource pool is greater than the minimum time interval between time resource blocks in the second time resource pool.
(87) In a sub-embodiment 5 of embodiment 11, the first time resource pool is discontinuous in the time domain.
(88) In a sub-embodiment 6 of Embodiment 11, the first signaling is a semi-static signaling.
(89) In one embodiment, the third transceiver 1101 includes a transmitting processor 415, a MIMO transmitting processor 441, a transmitter/receiver 416, and an antenna 420 in Embodiment 15.
(90) In one embodiment, the third transceiver 1101 includes an antenna 420, a transmitter/receiver 416, a MIMO detector 442, and a receiving processor 412 in Embodiment 15.
(91) In one embodiment, the second transmitter 1102 includes a transmitting processor 415, a MIMO transmitting processor 441, a transmitter/receiver 416, and an antenna 420 in Embodiment 15.
(92) In one embodiment, the second transmitter 1102 includes the controller/processor 440 of Embodiment 15.
(93) In one embodiment, the third transmitter 1103 includes a transmitting processor 415, a MIMO transmitting processor 441, a transmitter/receiver 416, and an antenna 420 in Embodiment 15.
(94) In one embodiment, the fourth transceiver 1104 includes the controller/processor 440, the transmitting processor 415, the MIMO transmitting processor 441, the transmitter/receiver 416, and the antenna 420 in Embodiment 15.
(95) In one embodiment, the fourth transceiver 1104 includes an antenna 420, a transmitter/receiver 416, a MIMO detector 442, a receiving processor 412, a controller/processor 440, and a memory 430 in Embodiment 15.
Embodiment 12
(96) Embodiment 12 illustrates a flow chart of the first radio signal and the first signaling, as shown in
(97) In one embodiment, the first radio signal is K reference signal(s) groups respectively transmitted by the K antenna port groups. The first reference signal group(s) is(are) reference signal group(s) transmitted by the first antenna port group in the K reference signal group(s). The first antenna virtualization vector is used to form an analog transmitting beam for transmitting the first reference signal group, and the second antenna virtualization vector is used to form an analog receiving beam for receiving the first reference signal group(s).
(98) In one embodiment, the first signaling is a semi-static signaling.
(99) In one embodiment, the first time resource pool is used to transmit physical layer control signaling.
(100) In one embodiment, the first signaling is a dynamic signaling.
(101) In one embodiment, the first time resource pool is used to transmit high layer signaling or data.
(102) In one embodiment, the first antenna virtualization vector is used to form a wireless channel corresponding to the first antenna port group.
(103) In one embodiment, the second antenna virtualization vector is used to form a wireless channel corresponding to the first antenna port group.
(104) In one embodiment, the second antenna virtualization vector is a spatial Receive(Rx) parameter used by the UE to receive a radio signal in the first time resource pool.
Embodiment 13
(105) Embodiment 13 illustrates a schematic diagram of network architecture, as shown in
(106)
(107) In one embodiment, the UE 201 corresponds to the UE in this disclosure.
(108) In one embodiment, the gNB203 corresponds to the base station in this disclosure.
(109) In one embodiment, the UE 201 supports multi-antenna transmission.
(110) In one embodiment, the gNB 203 supports multi-antenna transmission.
Embodiment 14
(111) Embodiment 14 illustrates a schematic diagram of a radio protocol architecture of a user plane and a control plane, as shown in
(112)
(113) In one embodiment, the radio protocol architecture of
(114) In one embodiment, the radio protocol architecture of
(115) In one embodiment, the first radio signal in the present disclosure is generated by the PHY 301.
(116) In one embodiment, the first control signal in the present disclosure is generated by the PHY 301.
(117) In one embodiment, the second radio signal in the present disclosure is generated by the PHY 301.
(118) In one embodiment, the first reference signal in the present disclosure is generated by the PHY 301.
(119) In one embodiment, the second reference signal in the present disclosure is generated by the PHY 301.
(120) In one embodiment, the first signaling in the present disclosure is generated by the PHY 301.
Embodiment 15
(121) Embodiment 15 illustrates a base station device and a given UE, as shown in
(122) A base station device (410) comprises a controller/processor 440, a scheduler 443, a memory 430, a receiving processor 412, a transmitting processor 415, a MIMO transmitting processor 441, a MIMO detector 442, and a transmitter/receiver 416, and an antenna 420.
(123) A user equipment (UE 450) comprises a controller/processor 490, a memory 480, a data source 467, a transmitting processor 455, a receiving processor 452, a MIMO transmitting processor 471, a MIMO detector 472, a transmitter/receiver 456, and an antenna 460.
(124) In the downlink transmission (DL), the processing related to the base station (410) comprises:
(125) A higher layer packet is provided to the controller/processor 440, the controller/processor 440 provides header compression, encryption, packet segmentation and reordering, and multiplexing and demultiplexing between logical and transport channels so as to implement L2 layer protocols used for the user plane and the control plane, the higher layer packet may include data or control information, such as a downlink shared channel (DL-SCH);
(126) the controller/processor 440 may be connected with a memory 430 that stores program codes and data, the memory 430 may be a computer-readable medium;
(127) the controller/processor 440, which notifies the scheduler 443 of transmission requests, the scheduler 443 is configured for scheduling the air interface resource(s) corresponding to the transmission requests, and notifying the controller/processor 440 of the scheduling result;
(128) the controller/processor 440 transmits to the transmitting processor 415 control information for uplink transmission acquired from operation on uplink reception by the receiving processor 412;
(129) the transmitting processor 415, which receives the output bit stream from the controller/processor 440, and implements various signal transmission processing functions for the L1 layer (i.e. physical layer), including encoding, interleaving, scrambling, modulation, power control/allocation and physical layer control signaling (i.e., PBCH, PDCCH,PHICH,PCFICH, a reference signal) generation, etc.;
(130) the MIMO transmitting processor 441, which performs spatial processing on data symbols, control symbols or reference signal symbols (such as multi-antenna pre-coding, digital beamforming) and outputs a baseband signal to the transmitter 416;
(131) the MIMO transmitting processor 441, which outputs an analog transmitting beamforming vector to the transmitter 416;
(132) the transmitter 416, which is configured for converting a baseband signals provided by the MIMO transmitting processor 441 into a radio frequency signal to be transmitted via the antenna 420; each transmitter 416 performs sampling processing on respective input symbol streams (e.g. digital to analog conversion, amplification, filtering, upconversion, etc.) to get respective sampled signal streams; each transmitter 416 further processes respective sampled stream to obtain a downlink signal; the analog transmitting beamforming is processed in the transmitter 416.
(133) In the DL transmission, the processing related to the user equipment (450) comprises:
(134) the receiver 456 is configured for converting the radio frequency signal received through the antenna 460 into a baseband signal and providing it to the MIMO detector 472; the analog receiving beamforming is processed in the receiver 456;
(135) the MIMO detector 472 is configured to perform MIMO detection on a signal received from the receiver 456, and provide the baseband signal subjected to the MIMO detection to the receiving processor 452;
(136) the receiving processor 452 extracts parameter relevant to the analog receiving beamforming to be output to the MIMO detector 472, and the MIMO detector 472 outputs the analog receive beamforming vector to the receiver 456;
(137) the receiving processor 452, which implements various signal receiving processing functions for the L1 layer (i.e. physical layer) , including decoding, deinterleaving, descrambling, demodulation and physical layer control signaling extraction, etc.;
(138) the controller/processor 490 receives the bit stream output by the receive processor 452, provides header decompression, decryption, packet segmentation and reordering, and multiplexing and demultiplexing between a logical channel and a transport channel to implement L2 layer protocol for user plane and control plane;
(139) the controller/processor 490 is associated with a memory 480 that stores program codes and data, and the memory 480 may be a computer-readable medium;
(140) the controller/processor 490 transmits to the receiving processor 452 the control information for downlink reception obtained from uplink transmission processing by the transmitting processor 455.
(141) The first control signal in the present disclosure is generated by the transmitting processor 415. The MIMO transmitting processor 441 performs multi-antenna precoding on a baseband signal associated with the first control signal output by the transmitting processor 415. The transmitter 416 converts a baseband signal provided by the MIMO transmitting processor 441 into a radio frequency signal, performs analog transmit beamforming, and transmits the radio frequency signal via antenna 420. The receiver 456 then receives the radio frequency signal through the antenna 460, perform analog receive beamforming, obtain a radio frequency signal related to the first control signal, and convert the radio frequency signal into a baseband signal to be supplied to the MIMO detector 472. The MIMO detector 472 performs MIMO detection on the signal received from the receiver 456. The receiving processor 452 processes the baseband signal output by the MIMO detector 472 to obtain the first control signal.
(142) The first radio signal in the present disclosure is generated by the transmitting processor 415. The MIMO transmitting processor 441 performs multi-antenna precoding on a baseband signal associated with the first radio signal output by the transmitting processor 415. The transmitter 416 converts the baseband signal provided by MIMO transmit processor 441 into a radio frequency signal, performs analog transmitting beamforming, and transmits the radio frequency signal via antenna 420. The receiver 456 will receive the radio frequency signal through the antenna 460, perform analog receive beamforming, obtain a radio frequency signal related to the first radio signal, and convert the radio frequency signal into a baseband signal to be supplied to the MIMO detector 472. The MIMO detector 472 performs MIMO detection on the signal received from the receiver 456. The receiving processor 452 performs channel detection on the baseband signal output from the MIMO detector 472.
(143) The first signaling in the present disclosure is generated by the transmitting processor 415 and output to the controller/processor 440 or is directly generated by the transmitting processor 415. The MIMO transmitting processor 441 performs multi-antenna precoding on a baseband signal relevant to the first signaling output by the transmitting processor 415. The transmitter 416 converts the baseband signal provided by MIMO transmitting processor 441 into a radio frequency signal, performs analog transmit beamforming, and transmits the radio frequency signal via antenna 420. The receiver 456 will receive the radio frequency signal through the antenna 460, perform analog receive beamforming, obtain a radio frequency signal related to the first signaling, and convert the radio frequency signal into a baseband signal to be provided to the MIMO detector 472. The MIMO detector 472 performs MIMO detection on the signal received from the receiver 456. The receiving processor 452 processes the baseband signal output by the MIMO detector 472 to obtain the first signaling.
(144) The second signaling in this disclosure is generated by the transmitting processor 415. The MIMO transmitting processor 441 performs multi-antenna precoding on a baseband signal relevant to the first signaling output by the transmission processor 415. The transmitter 416 converts the baseband signal provided by MIMO transmitting processor 441 into a radio frequency signal, performs analog transmit beamforming, and transmits the radio frequency signal via antenna 420. The receiver 456 will receive the radio frequency signal through the antenna 460, perform analog receive beamforming, obtain a radio frequency signal related to the first signaling, and convert the radio frequency signal into a baseband signal to be supplied to the MIMO detector 472. The MIMO detector 472 performs MIMO detection on the signal received from the receiver 456. The receiving processor 452 processes the baseband signal outputted by the MIMO detector 472 to obtain the first signaling.
(145) The first information in the present disclosure is generated by the controller/processor 440 and output to the transmit processor 415 or is directly generated by the transmit processor 415. The MIMO transmitting processor 441 performs multi-antenna precoding on a baseband signal relevant to the first signaling output by the transmitting processor 415. The transmitter 416 converts the baseband signal provided by MIMO transmitting processor 441 into a radio frequency signal, performs analog transmit beamforming, and transmits the radio frequency signal via antenna 420. The receiver 456 will receive the radio frequency signal through the antenna 460, perform analog receive beamforming, obtain a radio frequency signal related to the first signaling, and convert the radio frequency signal into a baseband signal to be provided to the MIMO detector 472. The MIMO detector 472 performs MIMO detection on the signal received from the receiver 456. The receiving processor 452 processes the baseband signal outputted by the MIMO detector 472 to obtain the first information.
(146) In uplink (UL) transmission, the processing related to the user equipment (UE450) comprises:
(147) the data source 467 provides a higher layer packet to controller/processor 490. The controller/processor 490 implements header compression, encryption, packet segmentation and reordering, and multiplexing and demultiplexing between the logical and transport channels, and implements an L2 layer protocol for the user plane and the control plane; the higher layer packet includes data or control information, such as an Uplink Shared Channel (UL-SCH);
(148) the controller/processor 490 can be associated with the memory 480 that stores program codes and data. The memory 480 can be a computer readable medium;
(149) the controller/processor 490 transmits to the transmitting processor 455 the control information for uplink transmission obtained from processing on downlink reception by the receiving processor 452;
(150) the transmitting processor 455 receives the output bit stream of controller/processor 490 and implements various signal reception processing functions for the L1 layer (i.e. physical layer), including encoding, interleaving, scrambling, modulation, power control/allocation and physical layer signaling (i.e., PUCCH, Sounding Reference Signal generation (SRS), a detection reference signal) , etc.;
(151) the MIMO transmitting processor 471 performs spatial processing on data symbols, control symbols or reference signal symbols (such as multi-antenna pre-coding, digital beamforming) and outputs a baseband signal to the transmitter 456;
(152) the MIMO transmitting processor 471 outputs an analog transmitting beamforming vector to the transmitter 457;
(153) The transmitter 456 is configured to convert a baseband signals provided by MIMO transmitting processor 471 into a radio frequency signal and transmit the radio frequency signal via the antenna 460; each transmitter 456 samples respective input symbol stream to obtain respective sampled signal stream. Each transmitter 456 further processes the respective sampled streams (such as digital-to-analog conversion, amplification, filtering, up-conversion, etc.) to obtain an uplink signal. The analog transmitting beamforming is processed in the transmitter 456.
(154) In the uplink (UL) transmission, the processing related to the base station device (410) comprises:
(155) the receiver 416 is configured to convert the radio frequency signal received by the antenna 420 into a baseband signal and provide the baseband signal to the MIMO detector 442; the analog receiving beamforming is processed in the receiver 416;
(156) the MIMO detector 442 is configured to perform MIMO detection on the signal received from the receiver 416, and provide the receiving processor 442 with the MIMO-detected symbol;
(157) the MIMO detector 442 outputs an analog receiving beamforming vector to the receiver 416;
(158) the receiving processor 412 implements various signal receiving processing functions for the L1 layer (i.e. the physical layer), including decoding, deinterleaving, descrambling, demodulation, and physical layer control signaling extraction, and the like;
(159) the controller/processor 440 receives the bit stream outputted by the receiving processor 412, and provides header decompression, decryption, packet segmentation, reordering, and multiplexing and demultiplexing between the logical and transport channels so as to implement L2 layer protocol of user plane and control plane;
(160) the controller/processor 440 can be associated with memory 430 that stores program codes and data. The memory 430 can be a computer readable medium;
(161) the controller/processor 440 transmits the control information of the uplink transmission obtained from processing the downlink transmission by the transmission processor 415 to the receiving processor 412;
(162) The second information in the present disclosure is generated by the transmit processor 455. The MIMO transmitting processor 471 performs multi-antenna precoding on a baseband signal relevant to the second information output by the transmitting processor 455. The transmitter 456 converts the baseband signal provided by the MIMO transmitting processor 471 into a radio frequency signal, performs analog transmitting beamforming, and transmits the radio frequency signal via antenna 460. The receiver 416 will receive the radio frequency signal through the antenna 420, perform analog receive beamforming, obtain a radio frequency signal related to the second information, and convert the radio frequency signal into a baseband signal for supply to the MIMO detector 442. The MIMO detector 442 performs MIMO detection on the signal received from the receiver 416. The receiving processor 412 processes the baseband signal outputted by the MIMO detector 442 to obtain the second information.
(163) In one embodiment, the UE 450 comprises: at least one processor and at least one memory, the at least one memory further comprising computer program codes; the at least one memory and the computer program code are configured to work in collaboration with the processor, the UE 450 at least: receives a first radio signal and a first signaling. The first radio signal is transmitted by K antenna port groups; the antenna port group(s) includes a positive integer number of the antenna port(s); the first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; at least one first antenna virtualization vector, and second antenna virtualization vector is associated with the first antenna port group; the first antenna virtualization vector is an antenna virtualization vector available to a transmitter of the first signaling in the first time resource pool; the second antenna virtualization vector is an antenna virtualization vector available to the user equipment in the first time resource pool; the K is a positive integer greater than 1.
(164) In one embodiment, the UE 450 comprises a memory storing a computer readable instruction program, which generates an action when executed by at least one processor, and the action comprises: receiving first radio signal and a first signaling. The first radio signal is transmitted by K antenna port groups; the antenna port group(s) includes a positive integer number of the antenna port(s); the first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; at least one of first antenna virtualization vector, and second antenna virtualization vector is associated with the first antenna port group; the first antenna virtualization vector is an antenna virtualization vector available to a transmitter of the first signaling in the first time resource pool; the second antenna virtualization vector is an antenna virtualization vector available to the user equipment in the first time resource pool; the K is a positive integer greater than 1.
(165) In one embodiment, the gNB 410 device comprises: at least one processor and at least one memory, the at least one memory comprises computer program codes; the at least one memory and the computer program code are configured to work in collaboration with at least one processor. The gNB410 at least: transmits a first radio signal; and transmits a first signaling. The first radio signal is transmitted by K antenna port groups, the antenna port group(s) includes a positive integer number of the antenna port(s); and the first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; at least one first antenna virtualization vector, and second antenna virtualization vector is associated with the first antenna port group; the first antenna virtualization vector is an antenna virtualization vector available to a transmitter of the first signaling in the first time resource pool; the second antenna virtualization vector is an antenna virtualization vector available to a target receiver of the first signaling in the first time resource pool; the K is a positive integer greater than 1.
(166) In one embodiment, the gNB 410 comprises: a memory storing a computer readable instruction program, which generates an action when executed by at least one processor, and the action comprises: transmitting first radio signal, transmitting the first signaling. The first radio signal is transmitted by K antenna port groups, the antenna port group(s) includes a positive integer number of the antenna port(s); and the first antenna port group is one of the K antenna port groups; the first signaling is used to determine a first time resource pool; at least one first antenna virtualization vector, and second antenna virtualization vector is associated with the first antenna port group; the first antenna virtualization vector is an antenna virtualization vector available to a transmitter of the first signaling in the first time resource pool; the second antenna virtualization vector is an antenna virtualization vector available to the user equipment in the first time resource pool; the K is a positive integer greater than 1.
(167) In one embodiment, the UE 450 corresponds to the UE in the present disclosure.
(168) In one embodiment, the gNB 410 corresponds to the base station in the present disclosure.
(169) In one embodiment, the transmitting processor 415, the MIMO transmitter 441 and the transmitter/receiver 416 are used to transmit the first radio signal in the present disclosure.
(170) In one embodiment, the receiver 456, the MIMO detector 472, and the receiving processor 452 are configured to receive the first radio signal in the present disclosure.
(171) In one embodiment, the transmitting processor 415, the MIMO transmitter 441 and the transmitter/receiver 416 are used to transmit the first signaling in the present disclosure.
(172) In one embodiment, the controller/processor 440 is configured to transmit the first signaling in the present disclosure.
(173) In one embodiment, the transmitter/receiver 456, the MIMO detector 472, and the receiving processor 452 are configured to receive the first signaling in the present disclosure.
(174) In one embodiment, the controller/processor 490 is configured to receive the first signaling in the present disclosure.
(175) In one embodiment, the transmitting processor 415, the MIMO transmitter 441 and the transmitter/receiver 416 are used to transmit the second signaling in the present disclosure.
(176) In one embodiment, the transmitter/receiver 456, the MIMO detector 472, and the receiving processor 452 are configured to receive the second signaling in the present disclosure.
(177) In one embodiment, the transmitting processor 415, the MIMO transmitter 441 and the transmitter/receiver 416 are used to transmit the first information in the present disclosure.
(178) In one embodiment, the controller/processor 440 is configured to transmit the first information in the present disclosure.
(179) In one embodiment, the transmitter/receiver 456, the MIMO detector 472, and the receiving processor 452 are used to receive the first information in the present disclosure.
(180) In one embodiment, the controller/processor 490 is configured to receive the first information in the present disclosure.
(181) In one embodiment, the transmitting processor 455, the MIMO transmitter 471, and the transmitter 456 are used to transmit the second information in the present disclosure.
(182) In one embodiment, the receiver 416, the MIMO detector 442, and the receiving processor 412 are configured to receive the second information in the present disclosure.
(183) The ordinary skill in the art may understand that all or part of steps in the above method may be implemented by instructing related hardware through a program. The program may be stored in a computer readable storage medium, for example Read-Only-Memory (ROM), hard disk or compact disc, etc. Optionally, all or part of steps in the above embodiments also may be implemented by one or more integrated circuits. Correspondingly, each module unit in the above embodiment may be implemented in the form of hardware, or in the form of software function modules. The present disclosure is not limited to any combination of hardware and software in specific forms. The UE and terminal in the present disclosure include but are not limited to unmanned aerial vehicles, communication modules on unmanned aerial vehicles, telecontrolled aircrafts, aircrafts, diminutive airplanes, mobile phones, tablet computers, notebooks, vehicle-mounted communication equipment, wireless sensor, network cards, terminals for Internet of Things (TOT), RFID terminals, NB-IOT terminals, Machine Type Communication (MTC) terminals, enhanced MTC (eMTC) terminals, data cards, low-cost mobile phones, low-cost tablet computers, etc. The base station in the present disclosure includes but is not limited to macro-cellular base stations, micro-cellular base stations, home base stations, relay base station, gNB (NR node B), Transmitter Receiver Point (TRP), and other radio communication equipment.
(184) The above are merely the preferred embodiments of the present disclosure and are not intended to limit the scope of protection of the present disclosure. Any modification, equivalent substitute and improvement made within the spirit and principle of the present disclosure are intended to be included within the scope of protection of the present disclosure.