Embodiments of the present application relate to the field of communications technologies, and in particular, to a power control method and a device.
Currently, a data transmission processing procedure of a physical downlink shared channel (PDSCH) is as follows: After a cyclic redundancy check (CRC) is performed on data to complete verification code addition, encoding, and rate matching, scrambling is performed to obtain a scrambled bit stream. Then, after modulation, power control, and layer mapping are performed on the scrambled bit stream, the scrambled bit stream is sent through an antenna.
If two terminal devices need to perform code division multiplexing, scrambled bit streams corresponding to the two terminal devices needs to be combined, and subsequent operations such as modulation, power control, and layer mapping are uniformly performed on a bit stream obtained after the combination. Uniformly performing the power control is to use one power control factor for control. It can be learned that code division multiplexing of terminal devices is implemented in the foregoing process. However, flexibility of the power control is lost because the two terminal devices share one power control factor.
Embodiments of the present application provide a power control method and a device, to improve flexibility of power control.
According to a first aspect, a method is provided, and the method may be applied to a communications device. In one embodiment, a base station modulates a first bit stream by using a first modulation scheme, to obtain a first modulation symbol, modulates a second bit stream by using a second modulation scheme, to obtain a second modulation symbol, and modulates, by using a third modulation scheme, a combined bit stream obtained by combining the first bit stream and the second bit stream, to obtain a joint modulation symbol; obtains a first modification coefficient and a second modification coefficient based on the first modulation symbol, the second modulation symbol, and the joint modulation symbol; modifies the first modulation symbol by using the first modification coefficient, and modifies the second modulation symbol by using the second modification coefficient; performs power control processing on a first modified modulation symbol by using a first power control factor, and performs power control processing on a second modified modulation symbol by using a second power control factor; and combines a first modified modulation symbol obtained after the power control and a second modified modulation symbol obtained after the power control, and sends a combined modulation symbol obtained after power control.
In this embodiment, the base station separately modulates the first bit stream and the second bit stream. To be specific, the base station separately performs power allocation on terminal devices such as a first terminal device and a second terminal device, to ensure that independent power allocation is performed on different terminal devices while code division multiplexing is implemented, thereby improving flexibility of power control and improving signal quality of the terminal device.
In one embodiment, the obtaining, by the base station, a first modification coefficient and a second modification coefficient based on the first modulation symbol, the second modulation symbol, and the joint modulation symbol includes: obtaining, by the base station, the first modification coefficient and the second modification coefficient based on an equivalent relationship between the joint modulation symbol and a combined modulation symbol that is obtained by combining a result obtained by multiplying the first modulation symbol by the first modification coefficient and a result obtained by multiplying the second modulation symbol by the second modification coefficient.
In this embodiment, representations of the first modification coefficient and the second modification coefficient are related to modulation types of the first modulation scheme and the second modulation scheme. The first modification coefficient and the first modulation scheme are used as an example. For example, when the first modulation scheme is quadrature phase shift keying (QPSK), the first modification coefficient is represented as a modification factor ka; when the first modulation scheme is quadrature amplitude modulation (QAM), the first modification coefficient is represented as modulation factors ka0 and ka1.
In one embodiment, the obtaining, by the base station, the first modification coefficient and the second modification coefficient based on an equivalent relationship between the joint modulation symbol and a combined modulation symbol includes: obtaining, by the base station, a real part of the combined modulation symbol and a real part of the joint modulation symbol; and obtaining, by the base station, a value of the first modification coefficient and a value of the second modification coefficient based on a numerical relationship between the real part of the combined modulation symbol and the real part of the joint modulation symbol; or the obtaining, by the base station, the first modification coefficient and the second modification coefficient based on an equivalent relationship between the joint modulation symbol and the combined modulation symbol includes: obtaining, by the base station, an imaginary part of the combined modulation symbol and an imaginary part of the joint modulation symbol; and obtaining, by the base station, the first modification coefficient and the second modification coefficient based on a numerical relationship between the imaginary part of the combined modulation symbol and the imaginary part of the joint modulation symbol.
In this embodiment, because a modulation constellation diagram is a centrosymmetric constellation diagram, a real part and an imaginary part of a corresponding modulation symbol are the same. Therefore, the first modification coefficient and the second modification coefficient are obtained by using the numerical relationship between the real part of the combined modulation symbol and the real part of the joint modulation symbol, thereby reducing calculation complexity.
In this embodiment, the first modification coefficient and the second modification coefficient may also be obtained based on the numerical relationship between the imaginary part of the combined modulation symbol and the imaginary part of the joint modulation symbol. This is not limited in this embodiment of the present application.
In one embodiment, a modulation constellation diagram corresponding to the third modulation scheme is a Gray code modulation constellation diagram; before the modulating, by the base station, a second bit stream by using a second modulation scheme, to obtain a second modulation symbol, the method further includes: performing, by the base station, an XNOR operation on the first bit stream and the second bit stream, to obtain a third bit stream; and the modulating, by the base station, a second bit stream by using a second modulation scheme, to obtain a second modulation symbol includes: modulating, by the base station, the third bit stream by using the second modulation scheme, to obtain the second modulation symbol.
In this embodiment, when the modulation constellation diagram corresponding to the third modulation scheme is the Gray code modulation constellation diagram, a modulation process is for Gray code binary, and an expansion formula of a modulation function corresponding to a modulation scheme is for natural binary. Therefore, to apply to the expansion formula of the modulation function, the base station needs to convert the combined bit stream from the Gray code binary to the natural binary. For this purpose, before modulating the second bit stream, the base station performs the XNOR operation on the first bit stream and the second bit stream, and then modulates the third bit stream by using the second modulation scheme.
In one embodiment, the performing, by the base station, power control processing on the first modified modulation symbol by using a preset first power control factor, to obtain a first modified modulation symbol obtained after the power control, and performing power control processing on the second modified modulation symbol by using a preset second power control factor, to obtain a second modified modulation symbol obtained after the power control includes: multiplying, by the base station, the first modified modulation symbol by the first power control factor, to obtain the first modified modulation symbol obtained after the power control, and multiplying the second modified modulation symbol by the second power control factor, to obtain the second modified modulation symbol obtained after the power control.
In this embodiment, the first power control factor and the second power control factor may be determined by using a downlink power allocation method in the prior art, for example, improving a transmit power of a reference signal or using a related mechanism for implementing inter-cell interference suppression in combination with user scheduling, or by using another power allocation method. This is not limited in this embodiment of the present application.
In one embodiment, the first modulation scheme is a quadrature phase shift keying QPSK modulation scheme, and the second modulation scheme is a 16QAM quadrature amplitude modulation scheme or a QPSK modulation scheme; or the first modulation scheme is a 16QAM modulation scheme, and the second modulation scheme is a QPSK modulation scheme.
Several forms of the first modulation scheme and the second modulation scheme are provided. Forms of the first modulation scheme and the second modulation scheme are not limited to the foregoing several enumerated forms in this embodiment of the present application.
According to a second aspect, a communications device is provided. The communications device includes a modulation module, an obtaining module, a modification module, a power control module, and a combination and sending module, and modules included in the communications device are configured to perform the power control method in the first aspect.
According to a third aspect, a communications device is provided. In one embodiment, a structure of the communications device includes a processor and a transmitter. The processor is configured to support the communications device in performing a corresponding function in the power control method in the first aspect. The transmitter is configured to send a combined modulation symbol obtained after power control through combining performed by the processor. The communications device may further include a memory. The memory is coupled to the processor, and is configured to store a program instruction and data that are required for the communications device.
According to a fourth aspect, a computer storage medium is provided. The computer storage medium stores an instruction. When the instruction runs on a computer, the computer performs the method in the first aspects.
According to a fifth aspect, a computer program product is provided. The computer program product includes an instruction. When the instruction runs on a computer, the computer performs the method in the foregoing aspects.
According to a sixth aspect, a chip is provided. The chip is configured to support a communications device in performing a corresponding function in the power control method in the first aspect.
According to a seventh aspect, a communications system is provided, including the communications device and a terminal device in the third aspect.
In the power control solution provided in the embodiments of the present application, the base station separately modulates the first bit stream and the second bit stream. To be specific, the base station separately performs power allocation on terminal devices such as a first terminal device and a second terminal device, to ensure that independent power allocation is performed on different terminal devices while the code division multiplexing is implemented, thereby improving the flexibility of the power control and improving the signal quality of the terminal device.
To make the purpose, technical solutions, and advantages of the embodiments of the present application clearer, the following clearly describes the technical solutions of the embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application.
In the following, some terms in the embodiments of the present application are described, so as to help persons skilled in the art have a better understanding.
(1) A network device includes, for example, a base station (for example, an access point), and may be a device that communicates in an access network with a wireless terminal device by using one or more sectors over an air interface. The base station may be configured to mutually convert a received over-the-air frame and an IP packet and serve as a router between user equipment and a rest portion of the access network, where the rest portion of the access network may include an IP network. The base station may further coordinate attribute management of the air interface. For example, the base station may include an evolved NodeB (eNB, or e-NodeB) in a Long Term Evolution (LTE) system or an LTE-advanced system (LTE-A), or may include a next generation nodeB (NG-NB) in a 5th generation (5G) system. This is not limited in the embodiments of the present application.
(2) A terminal device includes a device that provides a user with voice and/or data connectivity, for example, may include a handheld device with a wireless connection function, or a processing device connected to a wireless modem. The terminal device may communicate with a core network by using a radio access network (RAN), and exchange voice and/or data with the RAN. The terminal device may include user equipment (UE), a wireless terminal device, a mobile terminal device, a subscriber unit, a subscriber station, a mobile station, a remote station, an access point (AP), a remote terminal device, an access terminal device, a user terminal device, a user agent, a user device, or the like. For example, the terminal device may include a mobile phone (or referred to as a “cellular” phone), a computer with a mobile terminal device, a portable, pocket-sized, handheld, computer built-in, or in-vehicle mobile apparatus, or an intelligent wearable device. For example, the terminal device may be a device such as a personal communications service (PCS) phone, a cordless telephone set, a Session Initiation Protocol (SIP) phone, a wireless local loop (WLL) station, a personal digital assistant (PDA), a smartwatch, a smart helmet, smart glasses, or a smart band. The terminal device further includes a limited device, for example, a device with relatively low power consumption, a device with a limited storage capability, or a device with a limited computing capability. For example, the terminal device includes an information sensing device such as a barcode, radio frequency identification (RFID), a sensor, a global positioning system (GPS), or a laser scanner.
(3) In addition, the term “and/or” in this specification describes only an association relationship for describing associated objects and represents that three relationships may exist. For example, A and/or B may represent the following three cases: Only A exists, both A and B exist, and only B exists. In addition, the character “/” in this specification generally indicates an “or” relationship between the associated objects unless specified otherwise. In the description of the embodiments of the present application, terms such as “first” and “second” are only used for distinction and description, but cannot be understood as indication or implication of relative importance, and cannot be understood as an indication or implication of a sequence.
An application scenario of an embodiment of the present application is first briefly described.
The EPS may include one or more user equipment (UE 1, UE 2, UE 3, and the like), an evolved universal terrestrial radio access network (E-UTRAN), an evolved packet core (EPC), and an Internet Protocol (IP) service between carrier networks. In addition, the EPS can also be connected to another access network (not shown in the figure).
The E-UTRAN may include one or more eNodeBs, and may further include a multicast coordination entity (MCE). When the E-UTRAN includes a plurality of eNodeBs, one eNodeB may be connected to another eNodeB through backhaul. The MCE may allocate a time-frequency radio resource to an evolved multimedia broadcast/multicast service (eMBMS), and determine a radio configuration for the eMBMS. The MCE may be an entity independent of the eNodeB, or may be a part of the eNodeB.
UE may communicate with the eNodeB by using a Long Term Evolution (LTE) link (including an LTE downlink and an LTE uplink). In addition, the UE may also communicate with another connection point (CP) by using a millimeter wave (mmW) link.
The power control in the foregoing processing procedure is mainly to allocate power to each terminal device. A meaning of downlink power control is as follows:
1. In a wireless channel environment, it cannot be ensured that all cells have a same downlink transmit power, due to a requirement of network deployment, different geographical locations, and the like. A relatively large cell power causes interference to a neighboring cell. However, a relatively small power cannot cover an entire cell, thereby causing relatively poor signal quality at a cell edge. Therefore, inter-cell interference suppression is closely related to proper power allocation.
2. Power of each downlink channel or a power relationship between a data signal and a reference signal (RS) cannot be unchanged. For example, for the reference signal, because channel estimation needs to be performed, power of the reference signal is higher than that of the data signal, to ensure correct demodulation and decoding of the reference signal. In addition, how a downlink control channel can correctly receive the data signal is also closely related to proper power allocation.
Further, in a base station of the wireless communications system, data of a plurality of terminal devices is usually multiplexed on one frequency resource, to improve a system throughput.
When the two terminal devices need to perform the code division multiplexing, CRC verification code addition, encoding, rate matching, and scrambling are separately performed on a first bit stream and a second bit stream, to obtain two bit streams; the two bit streams are combined for modulation, to obtain a joint modulation symbol; and power control and layer mapping are performed on the joint modulation symbol, and then the joint modulation symbol is allocated to an antenna for sending.
However, for the PDSCH data processing procedure shown in
In view of this, an embodiment of the present application provides a power control method. In the power control method, the base station separately modulates the first bit stream and the second bit stream. To be specific, the base station performs independent power allocation on terminal devices such as the first terminal device and the second terminal device, to ensure that independent power allocation is performed on different terminal devices while the code division multiplexing is implemented, thereby improving the flexibility of the power control and improving signal quality of the terminal device.
The following describes the technical solutions in the embodiments of the present application in detail with reference to the accompanying drawings in this specification and specific embodiments. The following description process uses an example in which the technical solutions provided in the embodiments of the present application are applied to the application scenario shown in
Referring to
Step 401: A base station modulates a first bit stream by using a first modulation scheme, to obtain a first modulation symbol, modulates a second bit stream by using a second modulation scheme, to obtain a second modulation symbol, and modulates, by using a third modulation scheme, a combined bit stream obtained by combining the first bit stream and the second bit stream, to obtain a joint modulation symbol, where the third modulation scheme is obtained based on the first modulation scheme and the second modulation scheme.
In this embodiment, first user equipment and second user equipment are code division multiplexing devices, and it indicates that the first bit stream and the second bit stream are multiplexed into a same frequency sub-band.
In this embodiment, before step 401 is performed, the base station may schedule a plurality of user equipments for each frequency sub-band. To be specific, the base station determines to multiplex data to be sent to specific user equipments into the frequency sub-band. For example, the base station may schedule each user equipment based on channel state information (CSI) fed back by each user equipment, for example, a channel quality indicator (CQI).
If the base station determines to multiplex the first bit stream and the second bit stream into the same frequency sub-band, the base station adds a CRC verification code to the first bit stream, and encodes the bit stream with the added verification code. For example, the base station uses an encoding method well-known in the art based on a modulation and coding scheme (MCS) allocated to each user equipment, to encode a bit stream to be sent to the user equipment, thereby generating an encoded signal. Rate matching and scrambling are performed on the encoded signal, to obtain a scrambled first bit stream that is denoted as A: {a0, a1, . . . } for example, {1, 0, . . . } or {0, 1, . . . }.
A manner of processing the second bit stream by the base station is similar to a manner of processing the first bit stream, and details are not described herein again. A scrambled second bit stream obtained by the base station is denoted as B: {b0, b1, b2, b3 . . . }, for example {0, 1, 1, 0, . . . } or {0, 0, 1, . . . }.
The first modulation scheme and the second modulation scheme in this embodiment of the present application may be a same modulation scheme. For example, the first modulation scheme is quadrature phase shift keying (QPSK), and the second modulation scheme is QPSK modulation. The first modulation scheme and the second modulation scheme may alternatively be different modulation schemes. For example, the first modulation scheme is QPSK modulation, and the second modulation scheme is hexadecimal quadrature amplitude modulation (QAM); or the first modulation scheme is 16QAM modulation, and the second modulation scheme is QPSK modulation.
In this embodiment, the third modulation scheme is obtained based on the first modulation scheme and the second modulation scheme. In one embodiment, the first modulation scheme is QPSK modulation, the second modulation scheme is QPSK modulation, and the third modulation scheme is 16QAM modulation; or the first modulation scheme is QPSK modulation, the second modulation scheme is 16QAM modulation, and the third modulation scheme is 64QAM modulation; or the first modulation scheme is 16QAM modulation, the second modulation scheme is QPSK modulation, and the third modulation scheme is 64QAM modulation; or there may be another case. This is not limited in this embodiment of the present application.
If the first modulation scheme and/or the second modulation scheme correspond/corresponds to QPSK, a quantity of bits that are used to encode a signal and that are of a symbol corresponding to each constellation point in a constellation diagram of a modulation symbol is 2. The points in the constellation diagram have a same amplitude but different phases. If the first modulation scheme and/or the second modulation scheme correspond/corresponds 16QAM, a quantity of bits that are used to encode a signal and that are of a symbol corresponding to each constellation point in a constellation diagram of a modulation symbol is 4, and a point in the constellation diagram is no longer located in a unit circle, but is distributed within a specific range of a complex plane. If points in the constellation diagram have a same amplitude, the points do not need to have a same phase; or if points in the constellation diagram have a same phase, the points do not need to have a same amplitude. If the first modulation scheme and/or the second modulation scheme correspond/corresponds 64QAM, a quantity of bits that are used to encode a signal and that are of a symbol corresponding to each constellation point in a constellation diagram of a modulation symbol is 6.
In this embodiment, the base station may map, in a plurality of manners, a bit to the symbol corresponding to the constellation point in the constellation diagram. For example, the base station may map the bit to the symbol corresponding to each constellation point in the constellation diagram based on a mapping table of a mapping relationship between the bit and the symbol corresponding to each constellation point in the constellation diagram, and the mapping table may be predefined and stored in the base station and each user equipment. Alternatively, the base station may directly map the bit to the symbol corresponding to each constellation point in the constellation diagram based on a mapping manner known to both the base station and each user equipment. In this way, the mapping table in the previous mapping manner may not need to be set. This is relatively simple. Alternatively, mapping may be performed in another mapping manner. This is not limited in this embodiment of the present application.
In this embodiment, when needing to obtain the joint modulation symbol, the base station needs to combine the first bit stream and the second bit stream. If a quantity of bits of the first bit stream is the same as a quantity of bits of the second bit stream, the first bit stream and the second bit stream are sequentially combined at an equal interval. For example, the first bit stream is {a0, a1, . . . }, the second bit stream is {b0 b1, . . . }, a0 of the first bit stream is used as a first bit of the combined bit stream, and the obtained combined bit stream is {a0, b0, a1, b1 . . . }. If a quantity of bits of the first bit stream is different from a quantity of bits of the second bit stream, an interval, in the combined bit stream, of adjacent bits in the second bit stream is determined based on the quantity of bits of the first bit stream and the quantity of bits of the second bit stream, and then the first bit stream and the second bit stream are combined based on the interval. For example, the first bit stream is {a0, a1, . . . }, and the second bit stream is {b0, b1, b2, b3, . . . }. If a first bit a0 of the first bit stream {a0, a1, . . . } is used as a first bit of the combined bit stream, the obtained combined bit stream is {a0, b0, b1, a1, b2, b3}. If a first bit b0 of the second bit stream {b0 b1, b2 b3, . . . } is used as a first bit of the combined bit stream, the obtained combined bit stream is {b0, b2, a0, b1, b3, a1}. This may be selected according to an actual situation.
Step 402: The base station obtains a first modification coefficient and a second modification coefficient based on the first modulation symbol, the second modulation symbol, and the joint modulation symbol.
In one embodiment, a location of the constellation point in the constellation diagram is related to power allocated to each user equipment. Therefore, as the power allocated to each user equipment changes, the constellation diagram may be a regular constellation diagram, or may be an irregular constellation diagram. In the regular constellation diagram, constellation points are evenly distributed, while in the irregular constellation diagram, constellation points are unevenly distributed. For example, when two bit streams are multiplexed in the frequency sub-band, and both the first modulation scheme and the second modulation scheme are QPSK modulation, if a ratio of a power P1 allocated to the first user equipment to a power P2 allocated to the second user equipment is 0.8:0.2, a constellation diagram corresponding to the third modulation scheme used to modulate the combined bit stream is the same as a 16QAM constellation diagram and is a regular constellation diagram. However, if a ratio of a power P1 allocated to the first user equipment to a power P2 allocated to the second user equipment is another value, a joint modulation constellation diagram is different from a 16QAM constellation diagram and is an irregular constellation diagram.
In this embodiment, if both the power allocated to the first user equipment and the power allocated to the second user equipment are P, the first modulation symbol and the second modulation symbol need to be modified, to ensure that a result of separately modulating the first bit stream and the second bit stream by the base station is the same as a result of jointly modulating the first bit stream and the second bit stream.
In one embodiment, the base station obtains the first modification coefficient and the second modification coefficient based on an equivalent relationship between the joint modulation symbol and a combined modulation symbol that is obtained by combining a result obtained by multiplying the first modulation symbol by the first modification coefficient and a result obtained by multiplying the second modulation symbol by the second modification coefficient.
In this embodiment, an example in which the first modulation scheme is QPSK modulation, the second modulation scheme is QPSK modulation, and the third modulation scheme is 16QAM modulation is used to describe obtaining of the first modification coefficient and the second modification coefficient.
If the first bit stream is A: {a0, a1}, and the second bit stream is B: {b0, b1}, the base station modulates the first bit stream by using the QPSK modulation scheme, to obtain the first modulation symbol FQPSK (a0, a1) and modulates the second bit stream by using the QPSK modulation scheme, to obtain the second modulation symbol FQPSK(b0, b1) The result obtained by multiplying the first modulation symbol by the first modification coefficient ka is ka*FQPSK (a0 a1) the result obtained by multiplying the second modulation symbol by the second modification coefficient kb is kb*FQPSK (b0, b1) and the combined modulation symbol that is obtained by combining the result obtained by multiplying the first modulation symbol by the first modification coefficient and the result obtained by multiplying the second modulation symbol by the second modification coefficient is ka*FQPSK (a0, a1)+kb*FQPSK (b0, b1).
The base station combines the first bit stream and the second bit stream to obtain the combined bit stream (a0, b0, a1, b1), modulates the combined bit stream by using a 16QAM modulation scheme, to obtain the joint modulation symbol F16QAM (a0, b0, a1, b1), and obtains formula (1) based on the equivalent relationship between the joint modulation symbol and the combined modulation symbol.
P*F
16QAM(a0,b0,a1,b1)=ka*P*FQPSK(a0a1)+kb*P*FQPSK(b0b1) (1)
For a binary centrosymmetric constellation pattern, modulation functions FQPSK and F16QAM can be respectively expanded to the following formulas:
F
QPSK(x0,x1)={q0QPSK*x0,q0QPSK*x1} (2)
F
16QAM(y0,y1,y2,y3)={q116QAM*y0+q016QAM*y1,q116QAM*y2+q016QAM*y3} (3)
In formula (2), q0QPSK is a coefficient obtained by expanding a binomial for coordinates of a QPSK binary constellation diagram, for example, 1/√{square root over (2)}. In formula (3), q116QAM and q016QAM are coefficients obtained by expanding a binomial for coordinates of a 16QAM binary constellation diagram, and q116QAM and q016QAM are obtained through calculation based on the coordinates of the 16QAM binary constellation diagram, for example, q116QAM=2/√{square root over (10)} and 1/√{square root over (10)}.
In formula (2), x0, x1 on a left side of the equation represents the first bit stream or the second bit stream. In formula (3), y0, y1, y2, y3 on a left side of the equation represents the combined bit stream of the first bit stream and the second bit stream. However, on a right side of the equation in formula (2) and formula (3), x0, x1 and y0, y1, y2, y3 represent a symbol item. Specifically, referring to
phase, and both horizontal and vertical coordinates are positive. A constellation point corresponding to bits 10 corresponds to a
phase, a horizontal coordinate is negative, and a vertical coordinate is positive. A constellation point corresponding to bits 11 corresponds to a
phase, and both horizontal and vertical coordinates are negative. A constellation point corresponding to bits 01 corresponds to a
phase, a horizontal coordinate is positive, and a vertical coordinate is negative. Therefore, it can be learned that if x is 0, on the right side of formula (2) and formula (3), x represents +1; or if x is 1, on the right side of formula (2) and formula (3), x represents −1.
Formula (2) and formula (3) are applied to formula (1), to obtain the following formula (4):
{q116QAM*a0+q016QAM*b0,q116QAM*a1+q016QAM*b1}=ka{q0QPSK*a0,q0QPSK*a1}+kb{q0QPSK*b0,q0QPSK*b1} (4)
Further, the constellation pattern is a centrosymmetric constellation diagram, and a real part and an imaginary part of a corresponding modulation symbol are the same. Therefore, to reduce calculation complexity, the base station can obtain the first modification coefficient and the second modification coefficient by using a numerical relationship between a real part of the combined modulation symbol and a real part of the joint modulation symbol. For the centrosymmetric constellation diagram, a constellation point corresponding to the bits 00 in the constellation diagram is used as an example, and after the constellation point is rotated by 180 degrees from an origin, bitwise invert is performed on the bits 00 corresponding to the constellation point so that the bits become the same as bits corresponding to a constellation point at this location in an original constellation diagram.
Formula (5) is obtained based on an equal relationship of real parts on two sides of an equal sign in formula (4):
{q116QAM*a0+q016QAM*b0}={kaq0QPSK*a0+kbq0QPSK*b0} (5)
Corresponding items on two sides of formula (5) are equal, and x0, x1 and y0, y1, y2, y3 represent a relationship of symbol items. Therefore, the first modification coefficient ka=q116QAM/q0QPSK and the second modification coefficient kb=q016QAM/q0QPSK can be obtained.
In the following, an example in which the first modulation scheme is QPSK modulation, the second modulation scheme is 16QAM modulation, and the third modulation scheme is 64QAM modulation is used to describe obtaining of the first modification coefficient and the second modification coefficient. The foregoing example is still used. If the first bit stream is A: {a0, a1, . . . }, the second bit stream is B: {b0, b1, b2, b3, . . . }, a power control factor is P when QPSK modulation is performed on A: {a0, a1, . . . }, and a power control factor is also P when 16QAM modulation is performed on B: {b0, b1, b2, b3, . . . }, the base station modulates the first bit stream by using the QPSK modulation scheme, to obtain the first modulation symbol FQPSK(a0, a1), and modulates the second bit stream by using the 16QAM modulation scheme, to obtain the second modulation symbol F16QAM (b0, b1, b2, b3) The result obtained by multiplying the first modulation symbol by the first modification coefficient ka is ka*FQPSK (a0, a1), the result obtained by multiplying the second modulation symbol by the second modification coefficient kb(kb0, kb1 is ka*F16QAM (b0, b1, b2, b3), and the combined modulation symbol that is obtained by combining the result obtained by multiplying the first modulation symbol by the first modification coefficient and the result obtained by multiplying the second modulation symbol by the second modification coefficient is kb*F16QAM(b0, b1, b2, b3)+ka*FQPSK(a0, a1).
The base station combines the first bit stream and the second bit stream to obtain the combined bit stream (b0, b1, a0, b2, b3, a1), modulates the combined bit stream by using a 64QAM modulation scheme, to obtain the joint modulation symbol F64QAM(b0, b1, a0, b2, b3, a1), and obtains formula (6) based on the equivalent relationship between the joint modulation symbol and the combined modulation symbol.
P*F
64QAM(b0,b1,a0,b2,b3,a1)=kb*P*F16QAM(b0,b1,b2,b3)+ka*P*FQPSK(a0,a1) (6)
For a binary centrosymmetric constellation pattern, a modulation function F64QAM can be expanded to the following equation:
F
64QAM(z0,z1,z2,z3,z4,z5)={q264QAM*z0+q164QAM*z1+q064QAMz2,q264QAM*z3+q164QAM*z4+q064QAM*z5} (7)
Formula (2), formula (3), and formula (7) are applied to formula (6), to obtain formula (8):
{q264QAM*b0+q164QAM*b1+q064QAM*a0,q264QAM*b2+q164QAM*b364QAM*a1}={kb1q116QAM*b0+kb0q016QAM*b1,kb1q116QAM*b2+kb0q016QAM*b3}+ka{q0QPSK*a0,q0QPSK*a1} (8)
Likewise, the constellation pattern is a centrosymmetric constellation diagram, and a real part and an imaginary part of a corresponding modulation symbol are the same. Therefore, to reduce calculation complexity, the first modification coefficient and the second modification coefficient can be obtained by using a numerical relationship between a real part of the combined modulation symbol and a real part of the joint modulation symbol.
The following formula (9) is obtained based on an equal relationship of real parts on two sides of an equal sign in formula (8):
{q264QAM*b0+q164QAM*b1+q064QAM*a0}={kb1q116QAM*b0+kb0q016QAM*b1,kb1q116QAM*b2+kb0q016QAM*b3+kaq0QPSK*a0} (9)
Corresponding items on two sides of the equation are equal, and x0, x1 and y0, y1, y2, y3 represent a relationship of symbol items. Therefore, the first modification coefficient and the second modification coefficient can be obtained:
The first modification coefficient ka=q064QAM/q0QPSK and the second modification coefficient kb0=q164QAM/q016QAM.
For specific implementations of the first modulation scheme and the second modulation scheme given above, a corresponding first modulation coefficient and second modulation coefficient are shown in Table 1 below.
In this embodiment, certainly, the first modification coefficient and the second modification coefficient may also be obtained through calculation by using a numerical relationship between an imaginary part of the combined modulation symbol and an imaginary part of the joint modulation symbol. The foregoing two implementations may be selected based on an actual requirement. This is not limited in this embodiment of the present application.
In one embodiment, to ensure performance of each user equipment and a service requirement, a constellation diagram corresponding to the third modulation scheme is required to be a Gray code constellation diagram. As shown in
Still referring to
In one embodiment, when the modulation constellation diagram corresponding to the third modulation scheme is the Gray code constellation diagram, the first bit stream and the second bit stream are Gray code binary, and an expansion formula of the modulation function F16QAM used to modulate the combined bit stream in formula (3) is for natural binary. Therefore, the base station needs to convert the combined bit stream from the Gray code binary to the natural binary, to meet a requirement of formula (3). A conversion formula for converting the Gray code binary to the natural binary, for example, Gray2Int(x1, x0)=(x1, x1e x0).
Further, the conversion formula for converting the Gray code binary to the natural binary is applied to formula (1), to obtain formula (10):
P*F
16QAM[Gray2 Int(a0,a0e b0),Gray2 Int(a1,a1e b1)]=ka*P*FQPSK[a0′,a1′]+kb*P*FQPSK[b0′,b1′] (10)
Further, formula (2) and formula (3) are applied to formula (10), to obtain formula (11):
{q116QAM*a0+q016QAM*(a0e b0),q116QAM*a1+q016QAM*(a1e b1)}=ka{q0QPSK*a0′,q0QPSK*d1}+kb{q0QPSK*b0′,q0QPSK*b1′} (11)
Therefore, it can be learned according to formula (11) that, if ka=q116QAM/q016QAM, kb=q016QAM/q0QPSK, a0′=a0, and b0′=a0 e b0, it can be ensured that two sides of the equation in formula (11) are correct. Therefore, when the modulation constellation diagram corresponding to the third modulation scheme is the Gray code constellation diagram, before separately modulating the first bit stream and the second bit stream, the base station needs to perform XNOR processing on the second bit stream.
In this embodiment, if the first bit a0 of the first bit stream {a0, a1, . . . } is used as the first bit of the combined bit stream, an XNOR operation needs to be performed on the second bit stream by using the first bit stream; or if the first bit b of the second bit stream {b0, b1, b2, b3, . . . } is used as the first bit of the combined bit stream, an XNOR operation needs to be performed on the first bit stream by using the second bit stream. To be specific, a sequence of combining the first bit stream and the second bit stream needs to be consistent with that of performing the XNOR operation on the first bit stream and the second bit stream. This may be selected according to an actual situation. This is not limited in this embodiment of the present application.
Step 403: The base station modifies the first modulation symbol by using the first modification coefficient, to obtain a first modified modulation symbol, and modifies the second modulation symbol by using the second modification coefficient, to obtain a second modified modulation symbol.
In this embodiment, after obtaining the first modification coefficient and the second modification coefficient, the base station modifies the first modulation symbol by using the first modification coefficient, to obtain the first modified modulation symbol, and modifies the second modulation symbol by using the second modification coefficient, to obtain the second modified modulation symbol.
Step 404: The base station performs power control processing on the first modified modulation symbol by using a first power control factor, to obtain a first modified modulation symbol obtained after the power control, and performs power control processing on the second modified modulation symbol by using a second power control factor, to obtain a second modified modulation symbol obtained after the power control.
In this embodiment, the base station performs power control processing on the first modified modulation symbol by using the first power control factor and performs power control processing on the second modified modulation symbol by using the second power control factor. In one embodiment, the base station multiplies the first modified modulation symbol by the first power control factor, and multiplies the second modified modulation symbol by the second power control factor, so as to allocate power to the first user equipment and the second user equipment.
In this embodiment, the first power control factor P1 and the second power control factor P2 may be determined by using a downlink power allocation method in the prior art, for example, improving a transmit power of a reference signal or using a related mechanism for implementing inter-cell interference suppression in combination with user scheduling, or by using another power allocation method. This is not limited in this embodiment of the present application.
Step 405: The base station combines the first modified modulation symbol obtained after the power control and the second modified modulation symbol obtained after the power control, and sends a combined modulation symbol obtained after the power control.
In this embodiment, the base station performs layer mapping on the first modified modulation symbol obtained after the power control and the second modified modulation symbol obtained after the power control. The layer mapping is to re-map a code word stream to a plurality of layers according to a specific rule, and layer mapping data is mapped to an antenna port by multiplying a precoding matrix and then is sent out.
In this embodiment, when a modulation constellation diagram corresponding to a modulation scheme used to modulate the combined bit stream is a Gray code constellation diagram, a power control process is described. For details, refer to
A first bit stream is denoted as {a0, a1, . . . }, a second bit stream is denoted as {b0, b1, . . . }, and a base station modulates the first bit stream {a0, a1, . . . } to obtain a first modulation symbol, and performs power control after modifying the first modulation symbol. Before modulating the second bit stream {b0, b1, . . . }, the base station performs an XNOR operation by using the first bit stream {a0, a1, . . . } and the second bit stream {b0, b1, . . . }, to obtain a third bit stream, modulates the third bit stream, obtains a second modulation symbol, performs power control after modifying the first modulation symbol and the second modulation symbol, combines modulation symbols obtained after the power control, and then sends a combined modulation symbol obtained after the power control.
In one embodiment, to adapt to a case in which a modulation constellation diagram corresponding to a modulation scheme used to modulate a combined bit stream is Gray code and a case in which the modulation constellation diagram is non-Gray code, the base station needs to select data before modulating the second bit stream. To be specific, when a modulation constellation diagram corresponding to a third modulation scheme is a Gray code constellation diagram, the base station needs to select a bit stream obtained by performing the XNOR operation on the first bit stream and the second bit stream. When a modulation constellation diagram corresponding to a third modulation scheme is a non-Gray code constellation diagram, the base station selects the second bit stream on which the XNOR operation is not performed. This selection process is added, so that the technical solutions in the embodiments of the present application are more universally applicable.
In this embodiment, a procedure of processing the first bit stream and the second bit stream by the base station may be performed in a parallel manner, or may be performed in a serial manner. When processing is performed in a serial manner, complexity is reduced. A specific processing manner is not limited in this embodiment.
In this embodiment, the base station separately modulates the first bit stream and the second bit stream, separately modifies the obtained first modulation symbol and the second modulation symbol, performs power control processing on a first modified modulation symbol by using a first power control factor, and performs power control processing on the second modified modulation symbol by using a second power control factor. To be specific, the base station separately allocates power to first user equipment and second user equipment, so that the base station combines a first modified modulation symbol obtained after the power control and a second modified modulation symbol obtained after the power control, and sends a combined modulation symbol obtained after the power control, to ensure that independent power allocation is performed on different user equipments while code division multiplexing is implemented, thereby improving flexibility of the power control and improving signal quality of user equipment.
Referring to
The processor 701 may be a central processing unit (CPU) or an application-specific integrated circuit (ASIC), may be one or more integrated circuits configured to control program execution, may be a baseband chip, or the like.
The communications device may further include a memory. The memory is coupled to the processor 701. There may be one or more memories. The memory may be a read-only memory (ROM), a random access memory (RAM), a magnetic disk memory, or the like.
Code corresponding to the foregoing power control method is written permanently into a chip through designing programming for the processor 701. In this way, when the code runs, the chip can perform the power control method provided the embodiment shown in
Referring to
In actual application, entity apparatuses corresponding to the modulation module 801, the obtaining module 802, the modification module 803, and the power control module 804 may be integrated into the processor 701 in
An embodiment of the present application provides a chip. The chip is configured to support a communications device in performing a corresponding function in the power control method provided in the embodiment shown in
An embodiment of the present application provides a communications system, including a terminal device and a communications device provided in the embodiment shown in
The communications device in this embodiment may be configured to perform the method provided in the embodiment shown in
All or some of the foregoing embodiments in the present application may be implemented by using software, hardware, firmware, or any combination thereof. When software is used to implement the embodiments, the embodiments may be implemented completely or partially in a form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on the computer, the procedures or functions according to the embodiments of the present application are all or partially generated. The computer may be a general-purpose computer, a dedicated computer, a computer network, or another programmable apparatus. The computer instructions may be stored in a computer-readable storage medium or may be transmitted from a computer-readable storage medium to another readable storage medium. For example, the computer instructions may be transmitted from a website, computer, server, or data center to another website, computer, server, or data center in a wired (for example, a coaxial cable, an optical fiber, or a digital subscriber line (DSL)) or wireless (for example, infrared, radio, microwave, or the like) manner. The computer-readable storage medium may be any usable medium accessible by a computer, or a data storage device integrating one or more usable media, for example, a server or a data center. The usable medium may be a magnetic medium (for example, a floppy disk, a hard disk, or a magnetic tape), an optical medium (for example, a DVD), a semiconductor medium (for example, a solid state disk (SSD)), or the like.
The foregoing embodiments are merely used to describe the technical solutions in the embodiments of the present application. The foregoing embodiments are merely intended to help understand the method and core idea of the embodiments of the present application, and shall not be construed as a limitation on this application. Any variation or replacement readily figured out by persons skilled in the art within the technical scope disclosed in the embodiments of the present application shall fall within the protection scope of the embodiments of the present application.
Number | Date | Country | Kind |
---|---|---|---|
201710359004.2 | May 2017 | CN | national |
This application is a continuation of International Application No. PCT/CN2018/083607, filed on Apr. 18, 2018, which claims priority to Chinese Patent Application No. 201710359004.2, filed on May 19, 2017, the disclosures of which are incorporated herein by reference in their entireties.
Number | Date | Country | |
---|---|---|---|
Parent | PCT/CN2018/083607 | Apr 2018 | US |
Child | 16687114 | US |