Uplink power control method and apparatus

10917854 ยท 2021-02-09

Assignee

Inventors

Cpc classification

International classification

Abstract

An uplink power control method and an device is provided. The uplink power control method includes: sending a configured measurement pilot, wherein the measurement pilot is corresponding to information about a precoding matrix; and sending a configured power control parameter, wherein the power control parameter is corresponding to the configured measurement pilot, and the power control parameter is used to control transmit power of a terminal device in a serving cell. According to the embodiments of the present invention, accuracy of uplink power control is improved.

Claims

1. A network device uplink power control method, comprising: generating, by a network device, a k.sup.th measurement pilot, wherein k is an integer ranging from 1 to M, M is a total quantity of different measurement pilots configured in a serving cell, each of the M measurement pilots corresponds to a respective precoding matrix, and a k.sup.th precoding matrix corresponds to a beam having a direction and a width; sending, by the network device, the k.sup.th measurement pilot using a radio resource control (RRC) signaling; and sending, by the network device, a first power control parameter out of a plurality of power control parameters, wherein the first power control parameter corresponds to the beam, and the first power control parameter is usable to control an uplink transmit power of a first terminal device in a serving cell.

2. The method according to claim 1, wherein power control parameter configurations of terminal devices that receive a same measurement pilot configuration are the same, and the terminal devices include the first terminal device.

3. The method according to claim 1, wherein the first power control parameter comprises at least one of a target receive power, a path loss compensation factor, or a transmit format compensation term of the terminal device.

4. The method according to claim 1, wherein the terminal device controls, according to the first power control parameter, total physical uplink shared channel (PUSCH) transmit power of the terminal device to meet the following: at a transmission moment i, when the terminal device performs PUSCH transmission but does not perform physical uplink control channel (PUCCH) transmission in a serving cell c, P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } , or at a transmission moment i, when the terminal device performs PUSCH transmission and also performs PUCCH transmission in the serving cell c, P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } , wherein P.sub.CMAX,c(i) is maximum transmit power of the terminal device in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block (PRB), of PUSCH scheduling resource blocks of the terminal device at the transmission moment i, wherein i is an integer greater than or equal to o, and c is an integer greater than or equal to o; P.sub.O.sub._.sub.PUSCH,c,k(j) comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the terminal device and is semi-statically configured by using higher layer RRC signaling; and when the measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is the first power control parameter corresponding to the k.sup.th measurement pilot; when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling; PL.sub.c is a path loss measurement value, based on reference signal received power (RSRP), of a terminal; .sub.TF,c,k(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s,k1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, wherein when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, K.sub.s,k is the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the terminal device and a quantity of resource elements (REs) allocated to the data of the terminal device; and f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

5. The method according to claim 4, wherein the terminal device controls, according to the first power control parameter, total physical uplink control channel (PUCCH) transmit power of the terminal device to meet the following: at a transmission moment i, the total PUCCH transmit power of the terminal device in the serving cell c is: P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 _ PUCCH , k + PL c + h ( n CQI , n HARQ , n SR ) + F _ PUCCH ( F ) + TxD ( F ) + g ( i ) } , wherein P.sub.0.sub._.sub.PUCCH,k comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k, and when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k represents the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using RRC signaling; .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer; h(n.sub.CQI,n.sub.HARQ,n.sub.SR) is a variable related to PUCCH transmission information; .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

6. The method according to claim 4, wherein the terminal device controls, according to the first power control parameter, total sounding reference signal (SRS) transmit power to meet the following: at a transmission moment i, the total SRS transmit power of the terminal device in the serving cell c is: P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS _ OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + f c ( i ) } , wherein P.sub.O.sub._.sub.PUSCH,c,k(j) comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the terminal device and is semi-statically configured by using higher layer RRC signaling; and when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is the first power control parameter corresponding to the k.sup.th measurement pilot; when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling; P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and M.sub.SRS,c represents SRS transmission bandwidth of the terminal device.

7. A network device, comprising: a processor and a non-transitory memory, wherein the non-transitory memory stores an execution instruction; and when the network device runs, the processor communicates with the non-transitory memory, and the processor executes the execution instruction to enable the network device to perform the following steps: generating a k.sup.th measurement pilot, wherein k is an integer ranging from 1 to M, M is a total quantity of different measurement pilots configured in a serving cell, each of the M measurement pilots corresponds to a respective precoding matrix, and a k.sup.th precoding matrix corresponds to a beam having a direction and a width; sending the k.sup.th measurement pilot using a radio resource control (RRC) signaling; and sending a first power control parameter out of a plurality of power control parameters, wherein the first power control parameter corresponds to the beam, and the first power control parameter is usable to control uplink transmit power of a first terminal device in a serving cell.

8. The network device according to claim 7, wherein power control parameter configurations of terminal devices that receive a same measurement pilot configuration are the same, and the terminal devices include the first terminal device.

9. The network device according to claim 7, wherein the first power control parameter comprises at least one of a target receive power, a path loss compensation factor, or a transmit format compensation term of the terminal device.

10. The network device according to claim 7, wherein the terminal device controls, according to the first power control parameter, total physical uplink shared channel (PUSCH) transmit power of the terminal device to meet the following: at a transmission moment i, when the terminal device performs PUSCH transmission but does not perform physical uplink control channel (PUCCH) transmission in a serving cell c, P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } , or at a transmission moment i, when the terminal device performs PUSCH transmission and also performs PUCCH transmission in the serving cell c, P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } , wherein P.sub.CMAX,c(i) is maximum transmit power of the terminal device in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block (PRB), of PUSCH scheduling resource blocks of the terminal device at the transmission moment i, wherein i is an integer greater than or equal to o, and c is an integer greater than or equal to o; P.sub.O.sub._.sub.PUSCH,c,k(j) comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the terminal device and is semi-statically configured by using higher layer RRC signaling; and when the measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is the first power control parameter corresponding to the k.sup.th measurement pilot; when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling; PL.sub.c is a path loss measurement value, based on reference signal received power RSRP, of a terminal; .sub.TF,c,k(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s,k1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, wherein when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, K.sub.s,k is the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the terminal device and a quantity of resource elements REs allocated to the data of the terminal device; and f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

11. The network device according to claim 10, wherein the terminal device controls, according to the first power control parameter, total physical uplink control channel (PUCCH) transmit power of the terminal device to meet the following: at a transmission moment i, the total PUCCH transmit power of the terminal device in the serving cell c is: P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 _ PUCCH , k + PL c + h ( n CQI , n HARQ , n SR ) + F _ PUCCH ( F ) + TxD ( F ) + g ( i ) } , wherein P.sub.0.sub._.sub.PUCCH,k comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k, and when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k represents the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using RRC signaling; .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer; h(n.sub.CQI, n.sub.HARQ, n.sub.SR) is a variable related to PUCCH transmission information; .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

12. The network device according to claim 10, wherein the terminal device controls, according to the first power control parameter, total sounding reference signal (SRS) transmit power to meet the following: at a transmission moment i, the total SRS transmit power of the terminal device in the serving cell c is: P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS _ OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + f c ( i ) } , wherein P.sub.O.sub._.sub.PUSCH,c,k(j) comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the terminal device and is semi-statically configured by using higher layer RRC signaling; and when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is the first power control parameter corresponding to the k.sup.th measurement pilot; when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling; P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and M.sub.SRS,c represents SRS transmission bandwidth of the terminal device.

13. A non-transitory computer readable storage medium, wherein the computer readable storage medium stores a program, and when program is executed by a processor, the following steps are performed: generating a k.sup.th measurement pilot, wherein k is an integer ranging from 1 to M, M is a total quantity of different measurement pilots configured in a serving cell, each of the M measurement pilots corresponds to a respective precoding matrix, and a k.sup.th precoding matrix corresponds to a beam having a direction and a width; sending the k.sup.th measurement pilot using a radio resource control (RRC) signaling; and sending a first power control parameter out of a plurality of power control parameters, wherein the first power control parameter corresponds to the beam, and the first power control parameter is usable to control uplink transmit power of a first terminal device in a serving cell.

14. The non-transitory computer readable storage medium according to claim 13, wherein power control parameter configurations of terminal devices that receive a same measurement pilot configuration are the same, and the terminal devices include the first terminal device.

15. The non-transitory computer readable storage medium according to claim 13, wherein the first power control parameter comprises at least one of a target receive power, a path loss compensation factor, or a transmit format compensation term of the terminal device.

16. The non-transitory computer readable storage medium according to claim 13, wherein the terminal device controls, according to the first power control parameter, total physical uplink shared channel (PUSCH) transmit power of the terminal device to meet the following: at a transmission moment i, when the terminal device performs PUSCH transmission but does not perform physical uplink control channel (PUCCH) transmission in a serving cell c, P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } , or at a transmission moment i, when the terminal device performs PUSCH transmission and also performs PUCCH transmission in the serving cell c, P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } , wherein P.sub.CMAX,c(i) is maximum transmit power of the terminal device in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block (PRB), of PUSCH scheduling resource blocks of the terminal device at the transmission moment i, wherein i is an integer greater than or equal to o, and c is an integer greater than or equal to o; P.sub.O.sub._.sub.PUSCH,c,k(j) comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the terminal device and is semi-statically configured by using higher layer RRC signaling; and when the measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is the first power control parameter corresponding to the k.sup.th measurement pilot; when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling; PL.sub.c is a path loss measurement value, based on reference signal received power (RSRP), of a terminal; .sub.TF,c,k(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s,k1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, wherein when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, K.sub.s,k the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the terminal device and a quantity of resource elements (REs) allocated to the data of the terminal device; and f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

17. The non-transitory computer readable storage medium according to claim 13, wherein the terminal device controls, according to the first power control parameter, total physical uplink control channel (PUCCH) transmit power of the terminal device to meet the following: at a transmission moment i, the total PUCCH transmit power of the terminal device in a serving cell c is: P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 _ PUCCH , k + PL c + h ( n CQI , n HARQ , n SR ) + F _ PUCCH ( F ) + TxD ( F ) + g ( i ) } , wherein P.sub.0.sub._.sub.PUCCH,k comprises P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k, and when the configured measurement pilot received by the terminal device is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k represents the first power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using RRC signaling; .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer; h(n.sub.CQI, n.sub.HARQ, n.sub.SR) is a variable related to PUCCH transmission information; .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by a network device.

18. The method according to claim 1, wherein a second power control parameter for a second measurement pilot is different from the first power control parameter, and the second measurement pilot is different from the k.sup.th measurement pilot.

19. The method according to claim 1, wherein the first power control parameter is used to control total physical uplink shared channel (PUSCH) transmit power of the terminal device.

20. The network device according to claim 7, wherein a second power control parameter for a second measurement pilot is different from the first power control parameter, and the second measurement pilot is different from the k.sup.th measurement pilot.

21. The network device according to claim 7, wherein the first power control parameter is used to control total physical uplink shared channel (PUSCH) transmit power of the terminal device.

22. The non-transitory computer readable storage medium according to claim 13, wherein a second power control parameter for a second measurement pilot is different from the first power control parameter, and the second measurement pilot is different from the k.sup.th measurement pilot.

23. The non-transitory computer readable storage medium according to claim 13, wherein the first power control parameter is used to control total physical uplink shared channel (PUSCH) transmit power of the terminal device.

Description

BRIEF DESCRIPTION OF DRAWINGS

(1) To describe the technical solutions in the embodiments of the present invention more clearly, the following briefly describes the accompanying drawings required for describing the embodiments. Apparently, the accompanying drawings in the following description show some embodiments of the present invention, and persons of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.

(2) FIG. 1A is a schematic diagram of a two-dimensional antenna configuration;

(3) FIG. 1B is a distribution diagram of large-scale fading of user equipment on the eighth floor and user equipment on the first floor in a 3D UMi scenario;

(4) FIG. 2 is a flowchart of Embodiment 1 of an uplink power control method according to the present invention;

(5) FIG. 3 is a flowchart of Embodiment 3 of an uplink power control method according to the present invention;

(6) FIG. 4 is a flowchart of Embodiment 4 of an uplink power control method according to the present invention;

(7) FIG. 5 is a schematic structural diagram of Embodiment 1 of user equipment UE according to the present invention;

(8) FIG. 6 is a schematic structural diagram of Embodiment 1 of a network device according to the present invention;

(9) FIG. 7 is a schematic structural diagram of Embodiment 2 of user equipment UE according to the present invention; and

(10) FIG. 8 is a schematic structural diagram of Embodiment 2 of a network device according to the present invention.

DESCRIPTION OF EMBODIMENTS

(11) To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the following clearly describes the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by persons of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

(12) FIG. 2 is a flowchart of Embodiment 1 of an uplink power control method according to the present invention. This embodiment may be executed by user equipment, and the solution in this embodiment is used by a network device and the user equipment to perform uplink power control. As shown in FIG. 2, the method in this embodiment may include the following steps.

(13) Step 201: Receive a measurement pilot configured by the network device, where the measurement pilot is corresponding to information about a precoding matrix.

(14) Step 202: Receive a power control parameter configured by the network device, where the power control parameter is corresponding to the configured measurement pilot, and the power control parameter is used by the user equipment UE to control transmit power of the UE in a serving cell.

(15) Specifically, the user equipment UE receives the measurement pilot configured by the network device, where the measurement pilot is corresponding to the information about a precoding matrix; and receives the power control parameter configured by the network device, where the power control parameter is corresponding to the measurement pilot. The UE controls the transmit power of the UE in the serving cell according to the power control parameter.

(16) Optionally, that the power control parameter is corresponding to the configured measurement pilot includes: power control parameter configurations of UEs that receive a same measurement pilot configuration are the same.

(17) Optionally, the power control parameter includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE.

(18) The power control parameter may be delivered by a base station by using a multicast radio network temporary identifier RNTI or a user-specific RNTI.

(19) In this embodiment of the present invention, for a feature that different user equipment groups in each cell have different large-scale fading in a new 3D scenario or a high frequency, user equipments in each cell may be grouped for power control, that is, each cell is further divided into several virtual cells, and each virtual cell is corresponding to one group of user equipments. For example, in a cell, all user equipments that are located on the first floor or on the ground are grouped into one group, and this group of user equipments are corresponding to a measurement pilot configuration of a beam that points at 12 degrees; and all user equipments that are located on the eighth floor are grouped into one group, and this group of user equipments are corresponding to a measurement pilot configuration of a beam that points at 6 degrees. Therefore, users in a measurement pilot configuration may be grouped into one group and are corresponding to one virtual cell. Each virtual cell has an independent cell-level large-scale power control parameter. The cell-level large-scale power control parameter refers to all large-scale cell-specific power control parameters in a power control mechanism.

(20) According to the uplink power control method and the apparatus in the embodiments of the present invention, a measurement pilot configured by a network device is received, where the measurement pilot is corresponding to information about a precoding matrix; and a power control parameter configured by the network device is received, where the power control parameter is corresponding to the configured measurement pilot, and the power control parameter is used by user equipment UE to control transmit power of the UE in a serving cell. In this way, an uplink power control mechanism based on compensation for large-scale fading is implemented, and both a power control parameter and an adjustment value that are related to the large-scale fading are at a user equipment group level, that is, different user equipment groups are corresponding to different measurement pilots and different power control parameters, thereby improving accuracy of uplink power control, and resolving a prior-art problem of inaccuracy in a current uplink power control method used in a new 3D scenario.

(21) The following uses a specific embodiment to describe in detail the technical solution in the method embodiment shown in FIG. 2.

(22) In Embodiment 2 of an uplink power control method in the present invention, the UE controls, according to the power control parameter, total physical uplink shared channel PUSCH transmit power of the UE to meet the following:

(23) at a transmission moment i, if the UE only performs PUSCH transmission but does not perform physical uplink control channel PUCCH transmission in a serving cell c,

(24) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
or

(25) at a transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in a serving cell c,

(26) P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
where

(27) P.sub.CMAX,c(i) is maximum transmit power of the UE in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block PRB, of PUSCH scheduling resource blocks of the UE at the transmission moment i, where i is an integer greater than or equal to 0, and c is an integer greater than or equal to 0;

(28) P.sub.O.sub._.sub.PUSCH,c,k(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; when the measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is a power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is a total quantity of different measurement pilots configured in the serving cell; and a definition of P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j) is the same as that of P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j) in the 3GPP protocol;

(29) when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling;

(30) PL.sub.c is a path loss measurement value, based on reference signal received power (RSRP for short), of a terminal;

(31) .sub.TF,c,k(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s,k1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, where when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, K.sub.s,k is the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the UE and a quantity of resource elements REs allocated to the data of the UE; and

(32) f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

(33) Specifically, the UE controls, according to the power control parameter, the total physical uplink shared channel (PUSCH for short) transmit power of the UE to meet the following formula:

(34) at the transmission moment i, if the UE only performs PUSCH transmission but does not perform PUCCH transmission in the serving cell c,

(35) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
or

(36) at the transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in the serving cell c,

(37) P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
where

(38) P.sub.O.sub._.sub.PUSCH,c,k(j) in the foregoing formula includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; and when the measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is the power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is the total quantity of different measurement pilots configured in the serving cell, that is, parameters P.sub.O.sub._.sub.PUSCH,c,k(j) are different for user equipments with different measurement pilot configurations; and when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents the path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, that is, parameters .sub.c,k(j) are different for user equipments with different measurement pilot configurations.

(39) A variable j is related to a PUSCH scheduling grant manner. When PUSCH transmission is granted by means of semi-static scheduling, j=0; when PUSCH transmission is granted by means of dynamic scheduling, j=1; and when PUSCH transmission is granted by means of random access response, j=2. A value of P.sub.O.sub._.sub.PUSCH,c,k(j) is determined according to parameters that are configured by a higher layer in the serving cell c and that are corresponding to different values of j.

(40) .sub.TF,c,k(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s,k1).Math..sub.offset.sup.PUSCH) is the power adjustment value for the different modulation and coding schemes, where when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, K.sub.s,k is the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is the parameter configured by the higher layer, and BPRE is obtained by calculating the quantity of bits carried in the data of the UE and the quantity of resource elements REs allocated to the data of the UE, that is, parameters .sub.TF,c,k(i) are different for user equipments with different measurement pilot configurations.

(41) A definition of P.sub.PUCCH(i) is the same as that of P.sub.PUCCH(i) in the 3GPP protocol.

(42) Optionally, the UE controls, according to the power control parameter, total physical uplink control channel (PUCCH for short) transmit power of the UE to meet the following:

(43) at a transmission moment i, total transmit power of the UE in a serving cell c is:

(44) P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 PUCCH , k + PL c + h ( n CQI , n HARQ , n SR ) + F PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(45) P.sub.0.sub._.sub.PUCCH,k includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k, and when the configured measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k represents a power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using RRC signaling;

(46) .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer;

(47) h(n.sub.CQI,n.sub.HARQ,n.sub.SR) is a variable related to PUCCH transmission information;

(48) .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and

(49) g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

(50) Specifically, the UE controls, according to the power control parameter, the total physical uplink control channel PUCCH transmit power of the UE to meet the following formula:

(51) at the transmission moment i, the total transmit power of the UE in the serving cell c is:

(52) 0 P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 PUCCH , k + PL c + h ( n CQI , n HARQ , n SR ) + F PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(53) P.sub.0.sub._.sub.PUCCH,k includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k, and when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k represents the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using RRC signaling, that is, parameters P.sub.0.sub._.sub.PUCCH,k are different for user equipments with different measurement pilot configurations; and a definition of P.sub.0.sub._.sub.PUCCH,k is the same as that of P.sub.0.sub._.sub.PUCCH in the 3GPP protocol, a definition of P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k is the same as that of P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH in the 3GPP protocol, and a definition of P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k is the same as that of P.sub.O.sub._.sub.UE.sub._.sub.PUCCH in the 3GPP protocol.

(54) Optionally, the UE controls, according to the power control parameter, total sounding reference signal SRS transmit power to meet the following:

(55) at a transmission moment i, total sounding reference signal SRS transmit power of the UE in a serving cell c is:

(56) P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + f c ( i ) } ,
where

(57) P.sub.O.sub._.sub.PUSCH,c,k(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; and when the configured measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is a power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is a total quantity of different measurement pilots configured in the serving cell;

(58) when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling;

(59) P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and

(60) M.sub.SRS,c represents SRS transmission bandwidth of the UE.

(61) Specifically, the UE controls, according to the power control parameter, the total sounding reference signal SRS transmit power to meet the following:

(62) at the transmission moment i, the total sounding reference signal SRS transmit power of the UE in the serving cell c is:

(63) P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + f c ( i ) } ,
where

(64) P.sub.O.sub._.sub.PUSCH,c,k(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; and when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is the power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is the total quantity of different measurement pilots configured in the serving cell, that is, parameters P.sub.O.sub._.sub.PUSCH,c,k(j) are different for user equipments with different measurement pilot configurations; and

(65) when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents the path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, that is, parameters .sub.c,k(j) are different for user equipments with different measurement pilot configurations.

(66) In the foregoing formula, m is specified in the 3GPP protocol, and m is related to a trigger type of SRS transmission. When the trigger type is 0, m=0, and when the trigger type is 1, m=1.

(67) Each measurement pilot configuration is corresponding to one precoding matrix (corresponding to a beam in a particular direction and with a particular width), and different configured measurement pilots have different precoding matrixes. For example, in a 3D UMi scenario, a height of a base station is lower than a height of a high-rise building user. In this case, the base station configures, for a low-floor user, a measurement pilot that point at a 12 degree downtilt angle (that is, the measurement pilot is corresponding to a precoding matrix that points at 12 degrees), and configures, for a high-floor user whose height is higher than that of the base station, a measurement pilot that point at a 6 degree uptilt angle (that is, the measurement pilot is corresponding to a precoding matrix that points at 6 degrees).

(68) In one possible implementation manner of grouping user equipments, user equipments configured with a same measurement pilot are grouped into one group. For example, all user equipments configured with a measurement pilot that points at a 12 degree downtilt angle are grouped into one group, and all user equipments configured with a measurement pilot that points at a 6 degree uptilt angle are grouped into one group.

(69) Generally, cell-specific parameters in transmit power of other uplink channels and signals such as a PUCCH, an SRS, and a physical random access channel (PRACH for short) can be similarly extended into parameters that are specific to a measurement pilot configuration or a user equipment group.

(70) FIG. 3 is a flowchart of Embodiment 3 of an uplink power control method according to the present invention. This embodiment may be executed by user equipment, and the solution in this embodiment is used by a network device and the user equipment to perform uplink power control. As shown in FIG. 3, the method in this embodiment may include the following steps.

(71) Step 301: The user equipment UE receives configuration information, sent by the network device, of a user-specific power control parameter, where a power control parameter configured by the network device includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE.

(72) Step 302: The UE controls transmit power of the UE in a serving cell according to the power control parameter.

(73) Specifically, the user equipment UE receives the configuration information, sent by the network device, of the user-specific power control parameter, where the power control parameter configured by the network device includes the target receive power, the path loss compensation factor, and the transmit format compensation term of the UE; and the UE controls the transmit power of the UE in the serving cell according to the power control parameter.

(74) Further, to set large-scale power control parameters for different user equipment groups in each cell in a new 3D scenario or a high frequency, each user equipment may have an independent cell-level large-scale power control parameter, that is, a user-specific power control parameter. The cell-level large-scale power control parameter refers to all large-scale cell-specific power control parameters in a power control mechanism.

(75) Optionally, the UE controls, according to the power control parameter, total physical uplink shared channel PUSCH transmit power of the UE to meet the following:

(76) at a transmission moment i, if the UE only performs PUSCH transmission but does not perform physical uplink control channel PUCCH transmission in a serving cell c,

(77) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
or

(78) at a transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in a serving cell c,

(79) P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
where

(80) P.sub.CMAX,c(i) is maximum transmit power of the UE in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block PRB, of PUSCH scheduling resource blocks of the UE at the transmission moment i, where i is an integer greater than or equal to 0, and c is an integer greater than or equal to 0;

(81) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(82) .sub.c(j) represents a path loss compensation factor parameter in the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling;

(83) PL.sub.c is a path loss measurement value, based on reference signal received power RSRP, of a terminal;

(84) .sub.TF,c(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, where K.sub.s is the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the UE and a quantity of resource elements REs allocated to the data of the UE; and

(85) f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

(86) Specifically, the UE controls, according to the power control parameter, the total physical uplink shared channel PUSCH transmit power of the UE to meet the following formula:

(87) at the transmission moment i, if the UE only performs PUSCH transmission but does not perform PUCCH transmission in the serving cell c,

(88) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
or

(89) at the transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in the serving cell c,

(90) P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
where

(91) the target receive power P.sub.O.sub._.sub.PUSCH,c(j), the path loss compensation factor .sub.c(j), and the transmit format compensation term .sub.TF,c(i) of the UE are user-specific power control parameters, that is, parameter values are different for different user equipments;

(92) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(93) .sub.c(j) represents the path loss compensation factor parameter in the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling; and

(94) .sub.TF,c(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s1).Math..sub.offset.sup.PUSCH) is the power adjustment value for the different modulation and coding schemes, where K.sub.s is the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is the parameter configured by the higher layer, and BPRE is obtained by calculating the quantity of bits carried in the data of the UE and the quantity of resource elements REs allocated to the data of the UE.

(95) Optionally, the UE controls, according to the power control parameter, total physical uplink control channel PUCCH transmit power of the UE to meet the following:

(96) at a transmission moment i, total transmit power of the UE in a serving cell c is:

(97) P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 PUCCH + PL c + h ( n CQI , n HARQ , n SR ) + F PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(98) P.sub.0.sub._.sub.PUCCH includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH represents the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(99) .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer;

(100) h(n.sub.CQI,n.sub.HARQ,n.sub.SR) is a variable related to PUCCH transmission information;

(101) .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and

(102) g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

(103) Specifically, the UE controls, according to the power control parameter, the total physical uplink control channel PUCCH transmit power of the UE to meet the following:

(104) at the transmission moment i, the total transmit power of the UE in the serving cell c is:

(105) P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 PUCCH + PL c + h ( n CQI , n HARQ , n SR ) + F PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(106) P.sub.0.sub._.sub.PUCCH is a user-specific power control parameter and includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH represents the UE-specific power control parameter and is semi-statically configured by using RRC signaling, that is, parameter values are different for different user equipments.

(107) Optionally, the UE controls, according to the power control parameter, total sounding reference signal SRS transmit power to meet the following:

(108) at a transmission moment i, total sounding reference signal SRS transmit power of the UE in a serving cell c is:

(109) P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + f c ( i ) } ,
where

(110) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(111) .sub.c(j) represents a path loss compensation factor parameter in the user-specific power control parameter and is semi-statically configured by using higher layer RRC signaling;

(112) P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and

(113) M.sub.SRS,c represents SRS transmission bandwidth of the UE.

(114) Specifically, the UE controls, according to the power control parameter, the total sounding reference signal SRS transmit power to meet the following:

(115) at the transmission moment i, the total sounding reference signal SRS transmit power of the UE in the serving cell c is:

(116) 0 P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + f c ( i ) } ,
where

(117) the target receive power P.sub.O.sub._.sub.PUSCH,c(j) and the path loss compensation factor .sub.c(j) of the UE are user-specific power control parameters, that is, parameter values are different for different user equipments;

(118) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling; and

(119) .sub.c(j) represents the path loss compensation factor parameter in the user-specific power control parameter and is semi-statically configured by using higher layer RRC signaling.

(120) According to the uplink power control method and the apparatus provided in the embodiments of the present invention, user equipment UE receives configuration information, sent by a network device, of a user-specific power control parameter, where a power control parameter configured by the network device includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE; and the UE controls transmit power of the UE in a serving cell according to the power control parameter. In this way, an uplink power control mechanism based on compensation for large-scale fading is implemented, and both a power control parameter and an adjustment value that are related to the large-scale fading are at a user equipment level, that is, different user equipments may be corresponding to different power control parameters, thereby improving accuracy of uplink power control, and resolving a prior-art problem of inaccuracy in a current uplink power control method used in a new 3D scenario.

(121) FIG. 4 is a flowchart of Embodiment 4 of an uplink power control method according to the present invention. This embodiment may be executed by a network device, and the solution in this embodiment is used by the network device and user equipment to perform uplink power control. As shown in FIG. 4, the method in this embodiment may include the following steps.

(122) Step 401: The network device sends a configured measurement pilot to the user equipment UE, where the measurement pilot is corresponding to information about a precoding matrix.

(123) Step 402: The network device sends a configured power control parameter to the user equipment UE, where the power control parameter is corresponding to the configured measurement pilot, and the power control parameter is used by the user equipment UE to control transmit power of the UE in a serving cell.

(124) Specifically, the network device sends the configured measurement pilot to the user equipment UE, where the measurement pilot is corresponding to the information about a precoding matrix; and sends the configured power control parameter to the user equipment UE, where the power control parameter is corresponding to the configured measurement pilot, and the power control parameter is used by the user equipment UE to control the transmit power of the UE in the serving cell.

(125) Optionally, that the power control parameter is corresponding to the configured measurement pilot includes: power control parameter configurations of UEs that receive a same measurement pilot configuration are the same.

(126) Optionally, the power control parameter includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE.

(127) Optionally, the UE controls, according to the power control parameter, total physical uplink shared channel PUSCH transmit power of the UE to meet the following:

(128) at a transmission moment i, if the UE only performs PUSCH transmission but does not perform PUCCH transmission in a serving cell c,

(129) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
or

(130) at a transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in a serving cell c,

(131) P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
where

(132) P.sub.CMAX,c(i) is maximum transmit power of the UE in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block PRB, of PUSCH scheduling resource blocks of the UE at the transmission moment i, where i is an integer greater than or equal to 0, and c is an integer greater than or equal to 0;

(133) P.sub.O.sub._.sub.PUSCH,c,k(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; and when the measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is a power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is a total quantity of different measurement pilots configured in the serving cell;

(134) when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling;

(135) PL.sub.c is a path loss measurement value, based on reference signal received power RSRP, of a terminal;

(136) .sub.TF,c,k(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s,k1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, where when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, K.sub.s,k is the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the UE and a quantity of resource elements REs allocated to the data of the UE; and

(137) f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

(138) Optionally, the UE controls, according to the power control parameter, total physical uplink control channel PUCCH transmit power of the UE to meet the following:

(139) at a transmission moment i, total transmit power of the UE in a serving cell c is:

(140) P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 PUCCH , k + PL c + h ( n CQI , n HARQ , n SR ) + F PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(141) P.sub.O.sub._.sub.PUCCH,k includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k, and when the configured measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k represents a power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using RRC signaling;

(142) .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer;

(143) h(n.sub.CQI,n.sub.HARQ,n.sub.SR) is a variable related to PUCCH transmission information;

(144) .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and

(145) g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

(146) Optionally, the UE controls, according to the power control parameter, total sounding reference signal SRS transmit power to meet the following:

(147) at a transmission moment i, total sounding reference signal SRS transmit power of the UE in a serving cell c is:

(148) P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + f c ( i ) } ,
where

(149) P.sub.O.sub._.sub.PUSCH,c,k(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; and when the configured measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is a power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is a total quantity of different measurement pilots configured in the serving cell;

(150) when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling;

(151) P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and

(152) M.sub.SRS,c represents SRS transmission bandwidth of the UE.

(153) In Embodiment 5 of an uplink power control method in the present invention, this embodiment may be executed by a network device, and the solution in this embodiment is used by the network device and user equipment to perform uplink power control. The method in this embodiment may include:

(154) sending, by the network device, configuration information of a UE-specific power control parameter to the user equipment UE, where a power control parameter configured by the network device includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE, and the power control parameter is used by the UE to control transmit power of the UE in a serving cell according to the power control parameter.

(155) Optionally, the UE controls, according to the power control parameter, total physical uplink shared channel PUSCH transmit power of the UE to meet the following:

(156) at a transmission moment i, if the UE only performs PUSCH transmission but does not perform PUCCH transmission in a serving cell c,

(157) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
or

(158) at a transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in a serving cell c,

(159) P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
where

(160) P.sub.CMAX,c(i) is maximum transmit power of the UE in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block PRB, of PUSCH scheduling resource blocks of the UE at the transmission moment i, where i is an integer greater than or equal to 0, and c is an integer greater than or equal to 0;

(161) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(162) .sub.c(j) represents a path loss compensation factor parameter in the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling;

(163) PL.sub.c is a path loss measurement value, based on reference signal received power RSRP, of a terminal;

(164) .sub.TF,c(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, where K.sub.s is the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the UE and a quantity of resource elements REs allocated to the data of the UE; and

(165) f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

(166) Optionally, the UE controls, according to the power control parameter, total physical uplink control channel PUCCH transmit power of the UE to meet the following:

(167) at a transmission moment i, total transmit power of the UE in a serving cell c is:

(168) P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 PUCCH + PL c + h ( n CQI , n HARQ , n SR ) + F PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(169) P.sub.0.sub._.sub.PUCCH includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH represents the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(170) .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer;

(171) h(n.sub.CQI,n.sub.HARQ,n.sub.SR) is a variable related to PUCCH transmission information;

(172) .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and

(173) g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

(174) Optionally, the UE controls, according to the power control parameter, total sounding reference signal SRS transmit power to meet the following:

(175) at a transmission moment i, total sounding reference signal SRS transmit power of the UE in a serving cell c is:

(176) P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O PUSCH , c ( j ) + c ( j ) .Math. PL c + f c ( i ) } ,
where

(177) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(178) .sub.c(j) represents a path loss compensation factor parameter in the user-specific power control parameter and is semi-statically configured by using higher layer RRC signaling;

(179) P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and

(180) M.sub.SRS,c represents SRS transmission bandwidth of the UE.

(181) FIG. 5 is a schematic structural diagram of Embodiment 1 of user equipment UE according to the present invention. As shown in FIG. 5, the user equipment UE in this embodiment may include a receiving module 501. The receiving module 501 is configured to receive a measurement pilot configured by a network device, where the measurement pilot is corresponding to information about a precoding matrix.

(182) The receiving module 501 is further configured to receive a power control parameter configured by the network device, where the power control parameter is corresponding to the configured measurement pilot, and the power control parameter is used by the user equipment UE to control transmit power of the UE in a serving cell.

(183) Specifically, the receiving module 501 of the user equipment UE receives the measurement pilot configured by the network device, where the measurement pilot is corresponding to the information about a precoding matrix; and receives the power control parameter configured by the network device, where the power control parameter is corresponding to the measurement pilot, and the power control parameter is used by the UE to control the transmit power of the UE in the serving cell according to the power control parameter.

(184) Optionally, that the power control parameter is corresponding to the configured measurement pilot includes: power control parameter configurations of UEs that receive a same measurement pilot configuration are the same.

(185) Optionally, the power control parameter includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE.

(186) Optionally, the user equipment UE in this embodiment further includes:

(187) a control module 502, configured to control, according to the power control parameter, total physical uplink shared channel PUSCH transmit power of the UE to meet the following:

(188) at a transmission moment i, if the UE only performs PUSCH transmission but does not perform PUCCH transmission in a serving cell c,

(189) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
or

(190) at a transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in a serving cell c,

(191) 0 P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + TF , c , k ( i ) + f c ( i ) } ,
where

(192) P.sub.CMAX,c(i) is maximum transmit power of the UE in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block PRB, of PUSCH scheduling resource blocks of the UE at the transmission moment i, where i is an integer greater than or equal to 0, and c is an integer greater than or equal to 0;

(193) P.sub.O.sub._.sub.PUSCH,c,k(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; and when the measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is a power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is a total quantity of different measurement pilots configured in the serving cell;

(194) when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling;

(195) PL.sub.c is a path loss measurement value, based on reference signal received power RSRP, of a terminal;

(196) .sub.TF,c,k(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s,k1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, where when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, K.sub.s,k is the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the UE and a quantity of resource elements REs allocated to the data of the UE; and

(197) f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

(198) Optionally, the control module 502 is further configured to control, according to the power control parameter, total physical uplink control channel PUCCH transmit power of the UE to meet the following:

(199) at a transmission moment i, total transmit power of the UE in a serving cell c is:

(200) P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 PUCCH , k + PL c + h ( n CQI , n HARQ , n SR ) + F PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(201) P.sub.0.sub._.sub.PUCCH,k includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH,k, and when the configured measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH,k represents a power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using RRC signaling;

(202) .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer;

(203) h(n.sub.CQI,n.sub.HARQ,n.sub.SR) is a variable related to PUCCH transmission information;

(204) .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and

(205) g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

(206) Optionally, the control module 502 is further configured to control, according to the power control parameter, total sounding reference signal SRS transmit power to meet the following:

(207) at a transmission moment i, total sounding reference signal SRS transmit power of the UE in a serving cell c is:

(208) P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O PUSCH , c , k ( j ) + c , k ( j ) .Math. PL c + f c ( i ) } ,
where

(209) P.sub.O.sub._.sub.PUSCH,c,k(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c,k(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling; and when the configured measurement pilot received by the UE is a k.sup.th measurement pilot in the serving cell, P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c,k(j) is a power control parameter corresponding to the k.sup.th measurement pilot, where k is an integer ranging from 1 to M, and M is a total quantity of different measurement pilots configured in the serving cell;

(210) when the configured measurement pilot received by the UE is the k.sup.th measurement pilot in the serving cell, .sub.c,k(j) represents a path loss compensation factor parameter in the power control parameter corresponding to the k.sup.th measurement pilot and is semi-statically configured by using higher layer RRC signaling;

(211) P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and

(212) M.sub.SRS,c represents SRS transmission bandwidth of the UE.

(213) The user equipment UE in this embodiment may be configured to execute the technical solution in the method embodiment shown in FIG. 2. Implementation principles and technical effects thereof are similar and are not repeatedly described herein.

(214) In Embodiment 2 of user equipment UE in the present invention, the user equipment UE in this embodiment is based on the structure of the user equipment UE shown in FIG. 5. In this embodiment, the receiving module 501 is configured to receive configuration information, sent by a network device, of a user-specific power control parameter, where a power control parameter configured by the network device includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE.

(215) The control module 502 is configured to control transmit power of the UE in a serving cell according to the power control parameter.

(216) Specifically, the receiving module 501 of the user equipment UE receives the configuration information, sent by the network device, of the user-specific power control parameter, where the power control parameter configured by the network device includes the target receive power, the path loss compensation factor, and the transmit format compensation term of the UE; and the control module 502 of the user equipment controls the transmit power of the UE in the serving cell according to the power control parameter.

(217) Optionally, the control module 502 is specifically configured to control, according to the power control parameter, total physical uplink shared channel PUSCH transmit power of the UE to meet the following:

(218) at a transmission moment i, if the UE only performs PUSCH transmission but does not perform PUCCH transmission in a serving cell c,

(219) P PUSCH , c ( i ) = min { P CMAX , c ( i ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c ( j ) + c ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
or

(220) at a transmission moment i, if the UE performs PUSCH transmission and also performs PUCCH transmission in a serving cell c,

(221) P PUSCH , c ( i ) = min { 10 log 10 ( P CMAX , c ( i ) - P PUCCH ( i ) ) , 10 log 10 ( M PUSCH , c ( i ) ) + P O _ PUSCH , c ( j ) + c ( j ) .Math. PL c + TF , c ( i ) + f c ( i ) } ,
where

(222) P.sub.CMAX,c(i) is maximum transmit power of the UE in the serving cell c; and M.sub.PUSCH,c(i) is a quantity, in a unit of physical resource block PRB, of PUSCH scheduling resource blocks of the UE at the transmission moment i, where i is an integer greater than or equal to 0, and c is an integer greater than or equal to 0;

(223) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(224) .sub.c(j) represents a path loss compensation factor parameter in the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling;

(225) PL.sub.c is a path loss measurement value, based on reference signal received power RSRP, of a terminal;

(226) .sub.TF,c(i)=10 log.sub.10((2.sup.BPRE.Math.K.sup.s1).Math..sub.offset.sup.PUSCH) is a power adjustment value in different modulation and coding schemes, where K.sub.s is the UE-specific power control parameter and is semi-statically configured by using higher layer RRC signaling, .sub.offset.sup.PUSCH is a parameter configured by a higher layer, and BPRE is obtained by calculating a quantity of bits carried in data of the UE and a quantity of resource elements REs allocated to the data of the UE; and

(227) f.sub.c(i) is a closed-loop power adjustment amount and is a feedback value that is quantized by a receive end according to a receive error or a measurement error.

(228) Optionally, the control module 502 is specifically configured to control, according to the power control parameter, total physical uplink control channel PUCCH transmit power of the UE to meet the following:

(229) at a transmission moment i, total transmit power of the UE in a serving cell c is:

(230) P PUCCH ( i ) = min { P CMAX , c ( i ) , P 0 _ PUCCH + PL c + h ( n CQI , n HARQ , n SR ) + F _ PUCCH ( F ) + TxD ( F ) + g ( i ) } ,
where

(231) P.sub.0.sub._.sub.PUCCH includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH and P.sub.O.sub._.sub.UE.sub._.sub.PUCCH, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUCCH represents the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(232) .sub.F.sub._.sub.PUCCH(F) is a power control adjustment parameter related to a PUCCH format and is determined according to a parameter configured by a higher layer;

(233) h(n.sub.CQI,n.sub.HARQ,n.sub.SR) is a variable related to PUCCH transmission information;

(234) .sub.TD(F) is a parameter related to a quantity of antenna ports for PUCCH sending and a PUCCH transmission mode; and

(235) g(i) is a closed-loop power control adjustment value and is determined according to a power control command sent by the network device.

(236) Optionally, the control module 502 is specifically configured to control, according to the power control parameter, total sounding reference signal SRS transmit power to meet the following:

(237) at a transmission moment i, total sounding reference signal SRS transmit power of the UE in a serving cell c is:

(238) P SRS , c ( i ) = min { P CMAX , c ( i ) , P SRS _ OFFSET , c ( m ) + 10 log 10 ( M SRS , c ) + P O _ PUSCH , c ( j ) + c ( j ) .Math. PL c + f c ( i ) } ,
where

(239) P.sub.O.sub._.sub.PUSCH,c(j) includes P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) and P.sub.O.sub._.sub.UE.sub._.sub.PUSCH,c(j), and is used to represent the target receive power of the UE and is semi-statically configured by using higher layer RRC signaling, where P.sub.O.sub._.sub.NOMINAL.sub._.sub.PUSCH,c(j) is the UE-specific power control parameter and is semi-statically configured by using RRC signaling;

(240) .sub.c(j) represents a path loss compensation factor parameter in the user-specific power control parameter and is semi-statically configured by using higher layer RRC signaling;

(241) P.sub.SRS.sub._.sub.OFFSET,c(m) represents an offset, caused by different modulation and coding schemes, of SRS transmit power relative to PUSCH transmit power; and

(242) M.sub.SRS,c represents SRS transmission bandwidth of the UE.

(243) The user equipment UE in this embodiment may be configured to execute the technical solution in the method embodiment shown in FIG. 3. An implementation principle and a technical effect of this embodiment are similar to those of the method embodiment shown in FIG. 3 and are not repeatedly described herein.

(244) FIG. 6 is a schematic structural diagram of Embodiment 1 of a network device according to the present invention. As shown in FIG. 6, the network device in this embodiment may include a sending module 601. The sending module 601 is configured to send a configured measurement pilot to user equipment UE, where the measurement pilot is corresponding to information about a precoding matrix.

(245) The sending module 601 is further configured to send a configured power control parameter to the user equipment UE, where the power control parameter is corresponding to the configured measurement pilot, and the power control parameter is used by the user equipment UE to control transmit power of the UE in a serving cell.

(246) Optionally, that the power control parameter is corresponding to the configured measurement pilot includes: power control parameter configurations of UEs that receive a same measurement pilot configuration are the same.

(247) Optionally, the power control parameter includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE.

(248) The network device in this embodiment may be configured to execute the technical solution in the method embodiment shown in FIG. 4. An implementation principle and a technical effect of this embodiment are similar to those of the method embodiment shown in FIG. 4 and are not repeatedly described herein.

(249) In Embodiment 2 of a network device in the present invention, the network device in this embodiment is based on the structure of the network device shown in FIG. 6. In this embodiment, the sending module 601 is further configured to send configuration information of a user-specific power control parameter to user equipment UE, where a power control parameter configured by the network device includes target receive power, a path loss compensation factor, and a transmit format compensation term of the UE, and the power control parameter is used by the UE to control transmit power of the UE in a serving cell according to the power control parameter.

(250) The network device in this embodiment may be configured to execute the technical solution in the fifth method embodiment. An implementation principle and a technical effect of this embodiment are similar to those of the fifth method embodiment and are not repeatedly described herein.

(251) FIG. 7 is a schematic structural diagram of Embodiment 2 of user equipment UE according to the present invention. As shown in FIG. 7, user equipment UE 70 provided in this embodiment includes a processor 701 and a memory 702. The user equipment UE 70 may further include a receiver 703. The receiver 703 may be connected to the processor 701. The receiver 704 is configured to receiver data or information. The memory 702 stores an execution instruction. When the user equipment UE 70 runs, the processor 701 communicates with the memory 702, and the processor 701 invokes the execution instruction in the memory 702, so as to execute the technical solution of the uplink power control method provided in any one of Embodiment 1, Embodiment 2, or Embodiment 3 of the present invention. An implementation principle and a technical effect of this embodiment are similar to those of any one of Embodiment 1, Embodiment 2, or Embodiment 3 and are not repeatedly described herein.

(252) FIG. 8 is a schematic structural diagram of Embodiment 2 of a network device according to the present invention. As shown in FIG. 8, a network device 80 provided in this embodiment includes a processor 801 and a memory 802. The network device 80 may further include a transmitter 803. The transmitter 803 may be connected to the processor 801. The transmitter 803 is configured to transmit data or information. The memory 802 stores an execution instruction. When the network device 80 runs, the processor 801 communicates with the memory 802, and the processor 801 invokes the execution instruction in the memory 802, so as to execute the technical solution of the uplink power control method provided in either Embodiment 4 or Embodiment 5 of the present invention. An implementation principle and a technical effect of this embodiment are similar to those of either Embodiment 4 or Embodiment 5 and are not repeatedly described herein.

(253) In the several embodiments provided in this application, it should be understood that the disclosed device and method may be implemented in another manner. For example, the described device embodiment is merely an example. For example, the unit or module division is merely logical function division and may be other division in actual implementation. For example, multiple units or modules may be combined or integrated into another system, or some features may be ignored or not performed. In addition, the displayed or discussed mutual couplings or direct couplings or communication connections may be implemented by using some interfaces. The indirect couplings or communication connections between the devices or modules may be implemented in electronic, mechanical, or other forms.

(254) The modules described as separate parts may or may not be physically separate, and parts displayed as modules may or may not be physical modules, may be located in one position, or may be distributed on multiple network units. Some or all the modules may be selected according to actual needs to achieve the objectives of the solutions of the embodiments.

(255) Persons of ordinary skill in the art may understand that all or some of the steps of the method embodiments may be implemented by a program instructing relevant hardware. The program may be stored in a computer-readable storage medium. When the program runs, the steps of the method embodiments are performed. The storage medium includes: any medium that can store program code, such as a ROM, a RAM, a magnetic disk, or an optical disc.

(256) Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the present invention, but not for limiting the present invention. Although the present invention is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some or all technical features thereof, without departing from the scope of the technical solutions of the embodiments of the present invention.