DEVICE AND METHOD FOR ANTENNA CORRECTION

DE602019071798T2Active Publication Date: 2025-06-25HUAWEI TECH CO LTD
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Patent Information

Application Number
DE602019071798
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2019-08-30
Publication Date
2025-06-25
Estimated Expiration
2039-08-30

AI Technical Summary

Technical Problem

Conventional antenna calibration systems require complex assembly techniques and high implementation costs due to the need for additional components like cables, connectors, and combiner units, which complicate the process and increase expenses.

Method used

The antenna calibration coupling port is positioned between the antenna filter and the radio frequency link, allowing the calibration circuit to directly send or receive signals without additional components, simplifying assembly and reducing costs.

Benefits of technology

This approach simplifies the assembly technique and reduces implementation costs while enabling effective antenna calibration for multi-channel and multi-band systems.

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Description

TECHNICAL FIELD

[0001] This disclosure generally relates to the communications field, and the invention in particular relates to a base station and an antenna calibration method in this communications field.BACKGROUND

[0002] As wireless communication technologies are increasingly widely used, a multi-antenna technology has become one of key technologies for wireless transmission. When a signal is transmitted in a radio frequency channel, an amplitude and a phase of the signal change due to a nonlinear feature of the channel. Therefore, an antenna calibration function is designed. Multi-channel antenna calibration is intended to obtain amplitude and phase features of the radio frequency channel, to compensate for an amplitude and a phase of the radio frequency channel, so as to ensure amplitude consistency and phase consistency between transmitter channels as well as between receiver channels, and amplitude reciprocity and phase reciprocity between receiver channels and transmitter channels.

[0003] A position of a conventional antenna calibration coupling port is located between an antenna filter and the antenna, that is, located in an antenna feeder unit. An antenna calibration circuit is located in a radio frequency unit at which a radio frequency link is located. In this case, the antenna calibration circuit needs to be connected to the antenna feeder unit to receive or obtain a signal, and then connected to the radio frequency unit to process the signal. A link of the antenna calibration circuit needs to span the foregoing antenna feeder unit and the radio frequency unit, and one or more cables (or connectors) and a combiner unit need to be added. Consequently, there are more components required, an assembly technique is complex, and implementation costs are relatively high.

[0004] US 2019 / 268046 A1 discloses a multiple-input multiple-output (MIMO) antenna having a lightweight stacked structure, wherein the structure comprises a plurality of antenna elements, a plurality of band-pass filters connected to the plurality of antenna elements, a plurality of transmitting and receiving circuits connected to the plurality of band-pass filters and calibration network with a plurality of switches in a tree structure. The calibration network coupled to branches between the plurality of transmitting and receiving circuits and the plurality of band-pass filters. The calibration may be performed for each of transmission paths after an RF deviation of a plurality of band-pass filters and antenna feeder lines measured in advance is included as an offset value in a deviation betweenSUMMARY

[0005] The object of the present invention is to provide a base station and an antenna calibration method, to simplify an assembly technique of the antenna calibration apparatus, and help reduce implementation costs of the antenna calibration apparatus. This object is solved by the attached independent claims and further embodiments and improvements of the invention are listed in the attached dependent claims. Hereinafter, up to the "brief description of the drawings", expressions like "...aspect according to the invention", "according to the invention", or "the present invention", relate to technical teaching of the broadest embodiment as claimed with the independent claims. Expressions like "implementation", "design", "optionally", "preferably", "scenario", "aspect" or similar relate to further embodiments as claimed, and expressions like "example", "...aspect according to an example", "the disclosure describes", or "the disclosure" describe technical teaching which relates to the understanding of the invention or its embodiments, which, however, is not claimed as such.

[0006] According to a first aspect in accordance with the invention, the invention provides a a base station according to claim 1.

[0007] According to the base station according to the invention, a position of an antenna calibration coupling port is arranged between the antenna filter and the radio frequency link. This enables the calibration circuit to directly send or receive a calibration signal through a radio frequency unit to perform antenna calibration, without adding components such as a cable, a connector, and a combiner unit. This simplifies an assembly technique of the antenna calibration apparatus, and helps reduce implementation costs of the antenna calibration apparatus.

[0008] It should be understood that the antenna may also be referred to as an antenna element, a feeder antenna, or another name; an antenna channel may also be referred to as a channel or another name; and the calibration circuit may also be referred to as an antenna calibration circuit or another name. This is not limited in this embodiment of this application.

[0009] It should be further understood that the antenna and the antenna filter belong to an antenna feeder unit, and the radio frequency link and the calibration circuit belong to the radio frequency unit. The antenna calibration coupling port is a connection port of the calibration circuit, and may also be referred to as an antenna calibration port or another name. In this embodiment of this application, a position of the antenna calibration coupling port of each antenna is between the antenna filter and the radio frequency link. In this way, the calibration circuit may send or receive the first calibration signal through the antenna calibration coupling port. In other words, the calibration circuit may send or receive the first calibration signal through the position between the antenna filter and the radio frequency link connected to the second end of the antenna filter. The first calibration signal is a calibration signal generated in a running process of a live network.

[0010] It should be understood that, because the position of the antenna calibration coupling port is between the antenna filter and the radio frequency link, a signal sent or received by the calibration circuit may not pass through the antenna filter. An error (which may include, for example, a PCB cable error, a connector error, an antenna filter error, an antenna network error, or an antenna element error) of a link between the antenna and the antenna filter needs to be obtained through making a table in an equipment (equipment tabling). In other words, the equipment tabling is intended to compensate for inconsistency of hardware links. In a production process of the apparatus, signal measurement is performed, and an obtained compensation parameter is stored in a memory (for example, a memory) for subsequent calibration. In this embodiment of this application, the compensation parameter in the equipment tabling process is referred to as the first compensation parameter. However, it should be understood that the first compensation parameter may also be referred to as an equipment tabling compensation parameter or another name. This is not limited in this embodiment of this application. Once the apparatus is delivered, the first compensation parameter is already stored. In a possible implementation, the first compensation parameter is stored in the memory in a form of a table (for example, an equipment table). However, this is not limited in this embodiment of this application.

[0011] In an actual running process of the live network, the calibration circuit may obtain the first compensation parameter of each antenna from the memory, determine the second compensation parameter of each antenna based on the first compensation parameter and the first calibration signal obtained from the antenna calibration coupling port, and further calibrate the antenna by using the second compensation parameter. The second compensation parameter is a compensation parameter in the actual running process of the live network. The second compensation parameter may also be referred to as a calibration compensation parameter or another name. This is not limited in this embodiment of this application.

[0012] The second calibration signal is a calibration signal generated in the equipment tabling process. In the equipment tabling process, one or more equipment tabling antennas are required, which are also referred to as antennas used for testing in this specification. It should be understood that if there is only one equipment tabling antenna, a position of the equipment tabling antenna may be adjusted each time to sweep each antenna in the l antennas. In addition, one antenna needs to be selected from the l antennas as the reference antenna, to calculate an error between the reference antenna and another antenna. In this embodiment of this application, the i th< antenna is the reference antenna.

[0013] With reference to the first aspect, in some implementations of the first aspect, the first calibration signal includes e j and f j , e j represents a calibration signal received by the calibration circuit and sent by a transmitter module corresponding to the j th< antenna, and f j represents a calibration signal received by a receiver module corresponding to the j th< antenna and sent by the calibration circuit; a second compensation parameter of the j th< antenna includes a second compensation parameter τ Tj of a transmitter link corresponding to the j th< antenna and a second compensation parameter τ Rj of a receiver link corresponding to the j th< antenna; the i th< antenna in the l antennas is used as the reference antenna, and the second compensation parameter τ Tj of the transmitter link corresponding to the j th< antenna in the l antennas meets: τ T j = δ j × e i e j ; and the second compensation parameter τ Rj of the receiver link corresponding to the j th< antenna in the l antennas meets: τ R j = δ j × f i f j .

[0014] In the actual running process of the live network, a receiver channel and a transmitter channel of the antenna need to be calibrated separately. Therefore, the first calibration signal may include the calibration signal e j corresponding to the transmitter link and the calibration signal f j corresponding to the receiver link. Correspondingly, the second compensation parameter may include the compensation parameter τ Tj corresponding to the transmitter link and the compensation parameter τ Rj corresponding to the receiver link. The second compensation parameter may be obtained through calculation based on the first compensation parameter and the first calibration signal.

[0015] With reference to the first aspect, in some implementations of the first aspect, the l antennas correspond to a first frequency band, and the antenna calibration apparatus further includes: k antennas, corresponding to a second frequency band, where k is an integer greater than or equal to 2; k antenna filters, where first ends of the k antenna filters are respectively connected to the k antennas; and k radio frequency links, respectively connected to second ends of the k antenna filters. The calibration circuit is connected to each of the second ends of the k antenna filters, and is configured to: send or receive a third calibration signal through a position between each antenna filter in the k antenna filters and a radio frequency link connected to the second end of each antenna filter in the k antenna filters, and calibrate each antenna in the k antennas based on the third calibration signal.

[0016] Similar to the first frequency band corresponding to the l antennas, in the case of the second frequency band, a position of an antenna calibration coupling port of each antenna in the k antennas is between the antenna filter and the radio frequency link. In this way, the calibration circuit may send or receive the third calibration signal through the antenna calibration coupling port. In other words, the calibration circuit 140 may send or receive the third calibration signal through the position between the antenna filter and the radio frequency link connected to the second end of the antenna filter. The third calibration signal is a calibration signal generated in the running process of the live network. For related descriptions of the k antennas in the second frequency band, refer to the descriptions of the l antennas in the first frequency band. Details are not described herein again.

[0017] With reference to the first aspect, in some implementations of the first aspect, the calibration circuit is specifically configured to: determine a first compensation parameter of each antenna in the k antennas; determine a second compensation parameter of each antenna in the k antennas based on the first compensation parameter of each antenna in the k antennas and the third calibration signal; and calibrate each antenna in the k antennas based on the second compensation parameter of each antenna in the k antennas.

[0018] Similar to the first frequency band corresponding to the l antennas, in the second frequency band, equipment tabling also needs to be performed to obtain the first compensation parameter, and the first compensation parameter is written into the memory for subsequent calibration. In the second frequency band, an equipment tabling and calibration process of the k antennas is similar to the equipment tabling and calibration process in the first frequency band. Details are not described herein again.

[0019] According to the base station according to the first aspect of the invention, the assembly technique of the antenna calibration apparatus is simplified and the implementation costs of the antenna calibration apparatus are reduced. In addition, antenna calibration of a multi-band and multi-antenna channel can be implemented, and development costs are further reduced.

[0020] It should be understood that, in the equipment tabling and calibration process, the reference antenna needs to be selected. Reference antennas in frequency bands are different herein. To be specific, in the first frequency band, the reference antenna needs to be selected from the l antennas corresponding to the first frequency band; in the second frequency band, the reference antenna needs to be selected from the k antennas corresponding to the second frequency band.

[0021] It should be further understood that a sequence of calibration processes of antennas in each of the frequency bands is not limited in this application. The calibration circuit may calibrate one antenna once obtaining a second compensation parameter corresponding to the antenna. Alternatively, after obtaining the second compensation parameters corresponding to all the antennas, the calibration circuit calibrates all the antennas together. This is not limited in this embodiment of this application.

[0022] According to a second aspect according to the invention, the invention provides an antenna calibration method according to claim 7.

[0023] Further embodiments are defined in the dependent claims.

[0024] In the following description, features which in the above summary of the invention have been marked as "not claimed" or "according to the invention" are also hereinafter, when they are described and explained with reference to the drawings, to be understood as "not claimed" or "not part of the invention" or "according to the invention". Even if sometimes in the description of the embodiments below, features marked above "according to the invention" or "the invention" are referred to in connection with the words "can" or "may" or other expressions which contain the notion of them being "optional", it should be understood that indeed such features are considered essential to the invention as claimed and not optional.BRIEF DESCRIPTION OF DRAWINGS

[0025] FIG. 1 is a schematic diagram of a structure of an antenna calibration apparatus according to an embodiment of this application; FIG. 2 is a schematic diagram of a structure of an antenna calibration apparatus in an equipment tabling process according to an embodiment of this application; FIG. 3 is a schematic diagram of a structure of another antenna calibration apparatus in an equipment tabling process according to an embodiment of this application; and FIG. 4 is a schematic flowchart of an antenna calibration method according to an embodiment of this application. DESCRIPTION OF EMBODIMENTS

[0026] The following describes technical solutions of this application with reference to the accompanying drawings.

[0027] In embodiments shown below, "first", "second", "third" and various numbers are merely used for distinguishing for ease of description, and are not used to limit the scope of the embodiments of this application. For example, different signals and different parameters are distinguished. In addition, "including" and "having" and any variations thereof are intended to cover non-exclusive inclusion, for example, a process, method, system and product that include a series of steps or units, or other steps or units inherent to a device.

[0028] It should be understood that the technical solutions in the embodiments of this application may be applied to various communications systems, for example, a long term evolution (long term evolution, LTE) system, an LTE frequency division duplex (frequency division duplex, FDD) system, an LTE time division duplex (time division duplex, TDD) system, a universal mobile telecommunications system (universal mobile telecommunications system, UMTS), a worldwide interoperability for microwave access (worldwide interoperability for microwave access, WiMAX) communications system, a 5th generation (5th generation, 5G) system, a new radio (new radio, NR) system, or another evolved communications system.

[0029] FIG. 1 is a schematic block diagram of an antenna calibration apparatus 100 according to an embodiment of this application. As shown in FIG. 1, the antenna calibration apparatus 100 includes: l antennas 110, l antenna filters 120, l radio frequency links 130, and a calibration circuit 140, where l is an integer greater than or equal to 2.

[0030] As shown in FIG. 1, the l antennas 110 are respectively an antenna 1, an antenna 2, ..., and an antenna l. The l antennas 110 are respectively connected to the l antenna filters 120 (which are respectively an antenna filter 1, an antenna filter 2, ..., and an antenna filter l, and are not marked in the figure) and the l radio frequency links 130 (which are respectively a radio frequency link 1, a radio frequency link 2, ..., and a radio frequency link l, and are not marked in the figure), thereby forming l antenna channels. Further, the l radio frequency links 130 may include l radio frequency transmitter links 131 and l radio frequency receiver links 132, which respectively form l antenna transmitter channels and l antenna receiver channels with the l antennas and the l antenna filters.

[0031] In FIG. 1, the l antennas 110 are respectively connected to first ends of the l antenna filters 120, and the l radio frequency links 130 are respectively connected to second ends of the l antenna filters 120. Each of the second ends of the l antenna filters is connected to the calibration circuit 140. The antenna 1 is used as an example. The antenna 1 is connected to a first end of the antenna filter 1, a second end of the antenna filter 1 is connected to the radio frequency link 1, and the second end of the antenna filter 1 is further connected to the calibration circuit 140. Each of the second ends of the l antenna filters is connected to the calibration circuit 140.

[0032] It should be understood that the antenna may also be referred to as an antenna element, a feeder antenna, or another name; the antenna channel may also be referred to as a channel or another name; and the calibration circuit may also be referred to as an antenna calibration circuit or another name. This is not limited in this embodiment of this application.

[0033] It should be further understood that the antenna and the antenna filter belong to an antenna feeder unit, and the radio frequency link and the calibration circuit belong to a radio frequency unit. The antenna calibration coupling port is a connection port of the calibration circuit, and may also be referred to as an antenna calibration port or another name. In this embodiment of this application, as shown in FIG. 1, a position of the antenna calibration coupling port of each antenna is between the antenna filter and the radio frequency link. In this way, the calibration circuit 140 may send or receive a first calibration signal through the antenna calibration coupling port. In other words, the calibration circuit 140 may send or receive the first calibration signal through the position between the antenna filter and the radio frequency link connected to the second end of the antenna filter. The first calibration signal is a calibration signal generated in a running process of a live network.

[0034] According to the antenna calibration apparatus in this embodiment of this application, the position of the antenna calibration coupling port is arranged between the antenna filter and the radio frequency link. This enables the calibration circuit to directly send or receive a calibration signal through the radio frequency unit to perform antenna calibration, without adding components such as a cable, a connector, and a combiner unit. This simplifies an assembly technique of the antenna calibration apparatus, and helps reduce implementation costs of the antenna calibration apparatus.

[0035] For example, the calibration circuit may be specifically a printed circuit board (printed circuit board, PCB), or may include another component, or may be integrated into a chip system. It should be understood that the calibration circuit may include an input circuit or interface configured to send a signal, and an output circuit or interface configured to receive a signal. Further, the calibration circuit may further include a memory and a processor, where the memory may store the signal obtained by the calibration circuit and a corresponding processing program, and the processor may perform calibration processing based on the processing program stored in the memory. Optionally, there may be one or more processors, and one or more memories. Optionally, the memory and the processor may be integrated together, or may be separately disposed. This is not limited in this embodiment of this application.

[0036] In addition, the antenna calibration apparatus may be any multi-antenna apparatus that can implement the foregoing functions. This is not limited in this embodiment of this application. In a possible implementation, the antenna calibration apparatus is a base station, for example, an evolved NodeB (evolved NodeB, eNB, or eNodeB) or a home base station (for example, home evolved NodeB, or home NodeB, HNB) in an LTE system, or gNB in a new radio (new radio, NR) system.

[0037] In an optional embodiment, the calibration circuit is specifically configured to: determine a first compensation parameter of each antenna in the l antennas; determine a second compensation parameter of each antenna based on the first compensation parameter and the first calibration signal; and calibrate each antenna based on the second compensation parameter.

[0038] It should be understood that, because the position of the antenna calibration coupling port is between the antenna filter and the radio frequency link, a signal sent or received by the calibration circuit may not pass through the antenna filter. An error (which may include, for example, a PCB cable error, a connector error, an antenna filter error, an antenna network error, or an antenna element error) of a link between the antenna and the antenna filter needs to be obtained through equipment tabling. In other words, the equipment tabling is intended to compensate for inconsistency of hardware links. In a production process of the apparatus, signal measurement is performed, and an obtained compensation parameter is stored in a memory (for example, a memory) for subsequent calibration. In this embodiment of this application, the compensation parameter in the equipment tabling process is referred to as the first compensation parameter. However, it should be understood that the first compensation parameter may also be referred to as an equipment tabling compensation parameter or another name. This is not limited in this embodiment of this application. Once the apparatus is delivered, the first compensation parameter is already stored. In a possible implementation, the first compensation parameter is stored in the memory in a form of a table (for example, an equipment table). However, this is not limited in this embodiment of this application.

[0039] According to the antenna calibration apparatus shown in FIG. 1, in an actual running process of the live network, the calibration circuit may obtain the first compensation parameter of each antenna from the memory, determine the second compensation parameter of each antenna based on the first compensation parameter and the first calibration signal obtained from the antenna calibration coupling port, and further calibrate the antenna by using the second compensation parameter. The second compensation parameter is a compensation parameter in the actual running process of the live network. The second compensation parameter may also be referred to as a calibration compensation parameter or another name. This is not limited in this embodiment of this application.

[0040] In an optional embodiment, the i th< antenna in the l antennas is used as a reference antenna, and a first compensation parameter δ j of the j th< antenna in the l antennas meets: δ j = 1 2 a i × b j a j × b i + c i × d j c j × d i

[0041] A radio frequency link corresponding to the j th< antenna includes a receiver link and a transmitter link, the receiver link is connected to a receiver module, the transmitter link is connected to a transmitter module, the j th< antenna is connected to an antenna used for testing, a j represents a second calibration signal received by the receiver module and sent by the antenna used for testing, b j represents a second calibration signal received by the receiver module and sent by the calibration circuit, c j represents a second calibration signal received by the antenna used for testing and sent by the transmitter module, d j represents a second calibration signal received by the calibration circuit and sent by the transmitter module, i is an integer and 1≤i≤l, and j is an integer ranging from 1 to l.

[0042] The second calibration signal is a calibration signal generated in the equipment tabling process. In the equipment tabling process, one or more equipment tabling antennas are required, which are also referred to as antennas used for testing in this specification. It should be understood that if there is only one equipment tabling antenna, a position of the equipment tabling antenna may be adjusted each time to sweep each antenna in the l antennas. In addition, one antenna needs to be selected from the l antennas as the reference antenna, to calculate an error between the reference antenna and another antenna. In this embodiment of this application, the i th< antenna is the reference antenna.

[0043] In this embodiment of this application, it is assumed that a j =h j C j R j , b j =D j R j , c j =T j C j h j , and d j = T j D j . h j represents a coupling degree (also referred to as a coupling loss) between the j th< antenna and the equipment tabling antenna. C j represents a system transmission function (which may include a PCB cable error, a connector error, an antenna filter error, an antenna network error, or an antenna element error existing after the transmitter link and the receiver link are combined) of a common part of the j th< antenna. R j represents a transmission function of the receiver link corresponding to the j th< antenna. T j represents a transmission function of the transmitter link corresponding to the j th< antenna. D j represents a transmission function of a link between the j th< antenna and the calibration circuit.

[0044] It should be understood that, δ j = 1 2 a i × b j a j × b i + c i × d j c j × d i is equal to δ j = 1 2 a i b j a j b i + c i d j c j d i . "×" is omitted in the following embodiments for simplified description.

[0045] It should be further understood that, δ j = 1 2 a i × b j a j × b i + c i × d j c j × d i does not mean absolute equation but equation satisfying a quantization range. "=" in this specification all refers to equation satisfying a quantization range. Details are not described again subsequently.

[0046] FIG. 2 shows an antenna calibration apparatus in an equipment tabling process. For example, an antenna 1 (that is, the first antenna) is a reference antenna. First, an equipment tabling antenna 10 performs sweeping to align with the antenna 1, and the following steps are performed:

[0047] The equipment tabling antenna 10 sends a second calibration signal, and a receiver module receives the second calibration signal and obtains a measurement result a 1 = h 1 C 1 R 1

[0048] A calibration circuit sends a second calibration signal through an antenna calibration coupling port, and the receiver module receives the second calibration signal and obtains a measurement result b 1 = D 1 R 1

[0049] A transmitter module sends a second calibration signal, and the equipment tabling antenna 10 receives the second calibration signal and obtains a measurement result c 1 = T 1 C 1 h 1

[0050] The transmitter module sends a second calibration signal, and the calibration circuit receives the second calibration signal through the antenna calibration coupling port and obtains a measurement result d 1 = T 1 D 1

[0051] Then, the equipment tabling antenna 10 performs sweeping to align with an antenna 2, and steps similar to the foregoing steps are performed to obtain measurement results a 2 = h 2 C 2 R 2 b 2 = D 2 R 2 c 2 = T 2 C 2 h 2 and d 2 = T 2 D 2 C 1 R 1 C 2 R 2 = h 2 a 1 h 1 a 2 may be obtained according to the foregoing formulas (1) and (5). D 1 R 1 D 2 R 2 = b 1 b 2 may be obtained according to the foregoing formulas (2) and (6). T 1 C 1 T 2 C 2 = h 2 c 1 h 1 c 2 may be obtained according to the foregoing formulas (3) and (7). T 1 D 1 T 2 D 2 = d 1 d 2 may be obtained according to the foregoing formulas (4) and (8).

[0052] Further, C 1 D 2 C 2 D 1 = h 2 a 1 b 2 h 1 a 2 b 1 may be obtained according to the formulas (9) and (10). C 1 D 2 C 2 D 1 = h 2 c 1 d 2 h 1 c 2 d 1 may be obtained according to the formulas (11) and (12).

[0053] Therefore, according to the formulas (13) and (14), δ 2 = C 1 D 2 C 2 D 1 = h 2 h 1 × 1 2 × a 1 b 2 a 2 b 1 + c 1 d 2 c 2 d 1 ≈ 1 2 a 1 b 2 a 2 b 1 + c 1 d 2 c 2 d 1 may be obtained, which represents a first compensation parameter of the antenna 2 relative to the antenna 1. In this embodiment, it is assumed that coupling degrees between the equipment tabling antenna and the antennas are equal, that is, h 1 = h 2 .

[0054] By analogy, a first compensation parameter of each antenna relative to the antenna 1 in l antennas is calculated as follows: δ j = 1 2 a 1 b j a j b 1 + c 1 d j c j d 1 In this way, l first compensation parameters respectively corresponding to the l antennas are obtained, and are stored in a memory, for example, written into an equipment table.

[0055] It should be understood that an example in which the antenna 1 is used as the reference antenna is merely used above for description. In actual application, the reference antenna may be any one of the l antennas. In addition, only one equipment tabling antenna is used as an example in FIG. 2 to describe a process of successively performing equipment tabling on each of the l antennas. In another possible implementation, there may be more equipment tabling antennas. For example, there are l equipment tabling antennas. In this way, equipment tabling can be concurrently performed for all or some antennas in the l antennas, helping improve efficiency of equipment tabling.

[0056] In an optional embodiment, the first calibration signal includes e j and f j . e j represents a calibration signal received by the calibration circuit and sent by a transmitter module corresponding to the j th< antenna, and f j represents a calibration signal received by a receiver module corresponding to the j th< antenna and sent by the calibration circuit. A second compensation parameter of the j th< antenna includes a second compensation parameter τ Tj of a transmitter link corresponding to the j th< antenna and a second compensation parameter τ Rj of a receiver link corresponding to the j th< antenna. The i th< antenna in the l antennas is used as the reference antenna, and the second compensation parameter τ Tj of the transmitter link corresponding to the j th< antenna in the l antennas meets: τ T j = δ j × e i e j ; and the second compensation parameter τ Rj of the receiver link corresponding to the j th< antenna in the l antennas meets: τ R j = δ j × f i f j .

[0057] In an actual running process of a live network, a receiver channel and a transmitter channel of the antenna need to be calibrated separately. Therefore, the first calibration signal may include the calibration signal e j corresponding to the transmitter link and the calibration signal f j corresponding to the receiver link. Correspondingly, the second compensation parameter may include the compensation parameter τ Tj corresponding to the transmitter link and the compensation parameter τ Rj corresponding to the receiver link. The second compensation parameter may be obtained through calculation based on the first compensation parameter and the first calibration signal.

[0058] In this embodiment of this application, it is assumed that e j = T j ′ D j ′ , and f j = D j ′ R j ′ , where R j ′ represents a transmission function of the receiver link corresponding to the j th< antenna during actual running, T j ′ represents a transmission function of the transmitter link corresponding to the j th< antenna during actual running, and D j ′ represents a transmission function of a link between the j th< antenna and the calibration circuit during actual running.

[0059] In an optional embodiment, the calibration circuit is configured to: obtain the first calibration signal e j and f j corresponding to each antenna; determine, based on the first compensation parameter δ j of each antenna and the first calibration signal e j corresponding to each antenna, a second compensation parameter τ Tj of a transmitter link corresponding to each antenna; determine, based on the first compensation parameter δ j of each antenna and the first calibration signal f j corresponding to each antenna, a second compensation parameter τ Rj of a receiver link corresponding to each antenna; and compensate for the transmitter link corresponding to each antenna with the second compensation parameter τ Tj of the transmitter link corresponding to each antenna, and compensate for the receiver link corresponding to each antenna with the second compensation parameter τ Rj of the receiver link corresponding to each antenna.

[0060] Refer to the example in which the antenna 1 (that is, the first antenna) is the reference antenna, as shown in FIG. 2. The following steps are performed to obtain the second compensation parameter corresponding to the transmitter link: The transmitter module sends the first calibration signal, and the calibration circuit receives the first calibration signal through the antenna calibration coupling port and obtains measurement results e 1 = T 1 ′ D 1 ′ and e j = T j ′ D j ′ σ T j = T 1 ′ D 1 ′ T i ′ D i ′ = e 1 e j may be obtained according to the foregoing formulas (17) and (18).

[0061] A result of the first compensation parameter is multiplied by the foregoing formula (19), to obtain τ T i = δ j σ T j = C 1 D j C j D 1 × T 1 ′ D 1 ′ T j ′ D j ′ ≈ T 1 C 1 T j C j which represents a second compensation parameter that is corresponding to the transmitter link and that is of the j th< antenna relative to the antenna 1. In this embodiment, it is assumed that T j = T j ′ , and D j = D j ′ .

[0062] Similarly, the following steps are performed to obtain a second compensation parameter corresponding to the receiver link: The calibration circuit sends the first calibration signal through the antenna calibration coupling port, and the receiver module receives the first calibration signal and obtains measurement results f 1 = D 1 ′ R 1 ′ and f j = D j ′ R j ′ σ R j = T 1 ′ D 1 ′ T j ′ D j ′ = f 1 f j may be obtained according to the foregoing formulas (21) and (22).

[0063] A result of the first compensation parameter is multiplied by the foregoing formula (23), to obtain τ R j = δ j σ R j = C 1 D j C j D 1 × D 1 ′ R 1 ′ D j ′ R j ′ ≈ C 1 R 1 C j R j which represents a second compensation parameter that is corresponding to the receiver link and that is of the j th< antenna relative to the antenna 1. In this embodiment, it is assumed that D j = D j ′ , and C j = C j ′ .

[0064] Finally, the corresponding receiver link and transmitter link are respectively supplemented with the result of the formula (20) and the result of the formula (24), to complete antenna calibration.

[0065] It should be understood that the calibration of the receiver link and the calibration of the transmitter link are two independent calibration processes, and may be performed in sequence, or may be processed in parallel. This is not limited in this embodiment of this application.

[0066] In addition, the following condition 1 may be obtained according to the formulas (20) and (24): T 1 C 1 = δ 2 σ T 2 T 2 C 2 = … = δ l σ T l T l C l C 1 R 1 = δ 2 σ R 2 C 2 R 2 = … = δ l σ R l C l R l

[0067] The following condition 2 may be obtained by dividing (25) by (26): T 1 R 1 = σ T 2 T 2 σ R 2 R 2 = … = σ T l T l σ R l R l

[0068] An error of equipment tabling (which may also be referred to as precision of equipment tabling) affects a value of δ j , which affects the condition 1 only and is unrelated to the condition 2. A calibration algorithm affects a value of σ j , which affects both the condition 1 and the condition 2. In conclusion, the error of equipment tabling affects only forming precision of an open-loop beam, and has no impact on uplink and downlink reciprocity. Because impact of forming precision of the open-loop beam on a multi-antenna system is relatively weak, the antenna calibration apparatus in this embodiment of this application has a low requirement on precision of equipment tabling, which is likely to be met.

[0069] In the foregoing embodiment, frequency bands of the l antennas are the same, and all correspond to a first frequency band. This application does not exclude a case in which the antenna calibration apparatus further includes another frequency band. In other words, the antenna calibration apparatus is a multi-band multi-antenna channel.

[0070] In an optional embodiment, the l antennas correspond to the first frequency band, and the antenna calibration apparatus further includes: k antennas, corresponding to a second frequency band, where k is an integer greater than or equal to 2; k antenna filters, where first ends of the k antenna filters are respectively connected to the k antennas; and k radio frequency links, respectively connected to second ends of the k antenna filters. The calibration circuit is connected to each of the second ends of the k antenna filters, and is configured to: send or receive a third calibration signal through a position between each antenna filter in the k antenna filters and a radio frequency link connected to the second end of each antenna filter in the k antenna filters, and calibrate each antenna in the k antennas based on the third calibration signal.

[0071] The antenna calibration apparatus further includes the k antennas corresponding to the second frequency band. Similar to the first frequency band, in the case of the second frequency band, the k antennas are connected to the k antenna filters and the k radio frequency links, to form k antenna channels. Further, the k radio frequency links may include k radio frequency transmitter links and k radio frequency receiver links, which respectively form k antenna transmitter channels and k antenna receiver channels with the k antennas and k antenna filters. The k antennas are respectively connected to first ends of the k antenna filters, and the k radio frequency links are respectively connected to second ends of the k antenna filters. Each of the second ends of the k antenna filters is further connected to the calibration circuit.

[0072] Similar to the first frequency band corresponding to the l antennas, in the case of the second frequency band, a position of an antenna calibration coupling port of each antenna in the k antennas is between the antenna filter and the radio frequency link. In this way, the calibration circuit may send or receive the third calibration signal through the antenna calibration coupling port. In other words, the calibration circuit 140 may send or receive the third calibration signal through the position between the antenna filter and the radio frequency link connected to the second end of the antenna filter. The third calibration signal is a calibration signal generated in the running process of the live network. For related descriptions of the k antennas in the second frequency band, refer to the descriptions of the l antennas in the first frequency band. Details are not described herein again.

[0073] In an optional embodiment, the calibration circuit is specifically configured to: determine a first compensation parameter of each antenna in the k antennas; determine a second compensation parameter of each antenna in the k antennas based on the first compensation parameter of each antenna in the k antennas and the third calibration signal; and calibrate each antenna in the k antennas based on the second compensation parameter of each antenna in the k antennas.

[0074] Similar to the first frequency band corresponding to the l antennas, in the second frequency band, equipment tabling also needs to be performed to obtain the first compensation parameter, and the first compensation parameter is written into the memory for subsequent calibration. In the second frequency band, an equipment tabling and calibration process of the k antennas is similar to the equipment tabling and calibration process in the first frequency band. Details are not described herein again.

[0075] According to the antenna calibration apparatus in this embodiment of this application, an assembly technique of the antenna calibration apparatus is simplified and implementation costs of the antenna calibration apparatus are reduced. In addition, antenna calibration of a multi-band and multi-antenna channel can be implemented, and development costs are further reduced.

[0076] In an optional embodiment, a reference antenna used to determine the first compensation parameter of each antenna in the k antennas is the q th< antenna in the k antennas, q is an integer, and 1 ≤ q ≤ k.

[0077] It should be understood that, in the equipment tabling and calibration process, the reference antenna needs to be selected. Reference antennas in frequency bands are different herein. To be specific, in the first frequency band, the reference antenna needs to be selected from the l antennas corresponding to the first frequency band; in the second frequency band, the reference antenna needs to be selected from the k antennas corresponding to the second frequency band.

[0078] FIG. 3 is a schematic diagram of a structure of another antenna calibration apparatus in an equipment tabling process. The antenna calibration apparatus shown in FIG. 3 includes N frequency bands, and N is an integer greater than or equal to 2. The N frequency bands may include a same or different quantity of antennas. This is not limited in this embodiment of this application. A frequency band 1 corresponds to the foregoing first frequency band and includes l antennas. A frequency band 2 corresponds to the foregoing second frequency band and includes k antennas. In addition, the frequency band N includes m antennas, and m is an integer greater than or equal to 2.

[0079] In the example in FIG. 2, a reference antenna of the frequency band 1 is an antenna 1. According to the corresponding descriptions of FIG. 2, formulas (20) and (24), that is, a second compensation parameter, may be obtained. For example, a reference antenna of the frequency band 2 may be an antenna l+1, and a reference antenna of the frequency band N may be an antenna l+k+1. Like the frequency band 1, in the case of the second frequency band, a second compensation parameter corresponding to each frequency band may be obtained. Then, a corresponding receiver link and a corresponding transmitter link are compensated for with the second compensation parameter corresponding to each frequency band, so as to complete antenna calibration.

[0080] It should be understood that FIG. 3 shows only one equipment tabling antenna. A position of the equipment tabling antenna may be adjusted each time to sweep each antenna in l+k+m antennas. In another possible implementation, one or more equipment tabling antennas may be separately disposed for each frequency band, so that equipment tabling processes of all frequency bands can be performed in parallel. This helps improve efficiency of equipment tabling.

[0081] It should be further understood that a sequence of calibration processes of antennas in each of the frequency bands is not limited in this application. The calibration circuit may calibrate one antenna once obtaining a second compensation parameter corresponding to the antenna. Alternatively, after obtaining the second compensation parameters corresponding to all the antennas, the calibration circuit calibrates all the antennas together. This is not limited in this embodiment of this application.

[0082] The foregoing describes in detail the antenna calibration apparatus in the embodiments of this application with reference to FIG. 1 to FIG. 3. The following describes in detail an antenna calibration method in the embodiments of this application with reference to FIG. 4.

[0083] FIG. 4 is a schematic flowchart of an antenna calibration method 400 according to this application. The method 400 is applied to an antenna calibration apparatus including l antennas. The l antennas are respectively connected to first ends of l antenna filters, and second ends of the l antenna filters are respectively connected to l radio frequency links and each connected to a calibration circuit. The method 400 includes the following steps:

[0084] S410: Obtain a first calibration signal, where the first calibration signal is sent or received by the calibration circuit through a position between each antenna filter in the l antenna filters and a radio frequency link connected to the second end of each antenna filter.

[0085] S420: Determine a first compensation parameter of each antenna in the l antennas.

[0086] S430: Determine a second compensation parameter of each antenna based on the first compensation parameter and the first calibration signal.

[0087] S440: Calibrate each antenna based on the second compensation parameter.

[0088] According to the antenna calibration method in this embodiment of this application, the position of the antenna calibration coupling port is arranged between the antenna filter and the radio frequency link. This enables the calibration circuit to directly send or receive a calibration signal through a radio frequency unit to perform antenna calibration, without adding components such as a cable, a connector, and a combiner unit. This simplifies an assembly technique of the antenna calibration apparatus, and helps reduce implementation costs of the antenna calibration apparatus.

[0089] The method 400 may be applied to the antenna calibration apparatus shown in FIG. 1 to FIG. 3. However, this embodiment of this application is not limited thereto. For a specific calibration process, refer to the related descriptions of the foregoing antenna calibration apparatus. Details are not described herein again.

[0090] The i th< antenna in the l antennas is used as a reference antenna, and a first compensation parameter δ j of the j th< antenna in the l antennas meets δ j = 1 2 a i × b j a j × b i + c i × d j c j × d i . A radio frequency link corresponding to the j th< antenna includes a receiver link and a transmitter link, the receiver link is connected to a receiver module, the transmitter link is connected to a transmitter module, the j th< antenna is connected to an antenna used for testing, a j represents a second calibration signal received by the receiver module and sent by the antenna used for testing, b j represents a second calibration signal received by the receiver module and sent by the calibration circuit, c j represents a second calibration signal received by the antenna used for testing and sent by the transmitter module, d j represents a second calibration signal received by the calibration circuit and sent by the transmitter module, i is an integer and 1≤i≤l, and j is an integer ranging from 1 to l.

[0091] In an optional embodiment, the first calibration signal includes e j and f j . e j represents a calibration signal received by the calibration circuit and sent by a transmitter module corresponding to the j th< antenna, and f j represents a calibration signal received by a receiver module corresponding to the j th< antenna and sent by the calibration circuit. A second compensation parameter of the j th< antenna includes a second compensation parameter τ Tj of a transmitter link corresponding to the j th< antenna and a second compensation parameter τ Rj of a receiver link corresponding to the j th< antenna. The i th< antenna in the l antennas is used as the reference antenna, and the second compensation parameter τ Tj of the transmitter link corresponding to the j th< antenna in the l antennas meets: τ T j = δ j × e i e j ; and the second compensation parameter τ Rj of the receiver link corresponding to the j th< antenna in the l antennas meets: τ R j = δ j × f i f j .

[0092] In an optional embodiment, the obtaining a first calibration signal includes: obtaining the first calibration signal e j and f j corresponding to each antenna. The determining a second compensation parameter of each antenna based on the first compensation parameter and the first calibration signal includes: determining, based on the first compensation parameter δ j of each antenna and the first calibration signal e j corresponding to each antenna, a second compensation parameter τ Tj of a transmitter link corresponding to each antenna; and determining, based on the first compensation parameter δ j of each antenna and the first calibration signal f j corresponding to each antenna, a second compensation parameter τ Rj of a receiver link corresponding to each antenna. The calibrating each antenna based on the second compensation parameter includes: compensating for the transmitter link corresponding to each antenna with the second compensation parameter τ Tj of the transmitter link corresponding to each antenna, and compensating for the receiver link corresponding to each antenna with the second compensation parameter τ Rj of the receiver link corresponding to each antenna.

[0093] In an optional embodiment, the l antennas correspond to a first frequency band, and the antenna calibration apparatus further includes k antennas corresponding to a second frequency band, where k is an integer greater than or equal to 2. The k antennas are respectively connected to first ends of k antenna filters, and second ends of the k antenna filters are respectively connected to k radio frequency links and each connected to the calibration circuit. The method further includes: obtaining a third calibration signal, where the third calibration signal is sent or received by the calibration circuit through a position between each antenna filter in the k antenna filters and a radio frequency link connected to the second end of each antenna filter in the k antenna filters; determining a first compensation parameter of each antenna in the k antennas; determining a second compensation parameter of each antenna in the k antennas based on the first compensation parameter of each antenna in the k antennas and the third calibration signal; and calibrating each antenna in the k antennas based on the second compensation parameter of each antenna in the k antennas.

[0094] In an optional embodiment, a reference antenna used to determine the first compensation parameter of each antenna in the k antennas is the q th< antenna in the k antennas, q is an integer, and 1 ≤ q ≤ k.

[0095] It should be understood that, sequence numbers of the foregoing processes do not mean execution sequences. The execution sequences of the processes should be determined based on functions and internal logic of the processes, and should not be construed as any limitation on the implementation processes of the embodiments of this application.

[0096] In this application, "at least one" means one or more, and "a plurality of" means two or more. "And / or" describes an association relationship of associated objects, and indicates that three relationships may exist. For example, A and / or B may indicate the following cases: Only A exists; both A and B exist, or only B exists, where A and B may be singular or plural. The character " / " generally indicates that associated objects are in an "or" relationship. "At least one item (piece) of the following" or a similar expression thereof means any combination of these items and includes any combination of a single item (piece) or a plurality of items (pieces). For example, at least one item (piece) of a, b, or c may indicate a, b, c, a and b, a and c, b and c, or a, b, and c, where a, b, and c may be singular or plural.

[0097] A person of ordinary skill in the art may be aware that, in combination with the examples described in the embodiments disclosed in this specification, units and algorithm steps may be implemented by electronic hardware or a combination of computer software and electronic hardware. Whether the functions are performed by hardware or software depends on particular applications and design constraints of the technical solutions. A person skilled in the art may use different methods to implement the described functions for each particular application, but it should not be considered that the implementation goes beyond the scope of this application.

[0098] It may be clearly understood by a person skilled in the art that, for the purpose of convenient and brief description, for a detailed working process of the foregoing systems, apparatuses, and units, refer to a corresponding process in the foregoing method embodiments. Details are not described herein again.

[0099] In the several embodiments provided in this application, it should be understood that the disclosed system, apparatus, and method may be implemented in another manner. For example, the described apparatus embodiments are merely examples. For example, the unit division is merely logical function division and may be other division during actual implementation. For example, a plurality of units or components 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 through some interfaces. The indirect couplings or communication connections between the apparatuses or units may be implemented in electronic, mechanical, or other forms.

[0100] The units described as separate parts may or may not be physically separate, and parts displayed as units may or may not be physical units, and may be located in one position, or may be distributed on a plurality of network units. Some or all of the units may be selected depending on actual requirements to achieve the objectives of the solutions in the embodiments.

[0101] In addition, functional units in the embodiments of this application may be integrated into one processing unit, each of the units may exist alone physically, or two or more units are integrated into one unit.

[0102] When the functions are implemented in a form of a software functional unit and sold or used as an independent product, the functions may be stored in a computer-readable storage medium. Based on such an understanding, the technical solutions in this application essentially, or a part contributing to an existing technology, or some of the technical solutions may be implemented in a form of a software product. The computer software product is stored in a storage medium, and includes several instructions for instructing a computer device (which may be a personal computer, a server, a network device, or the like) to perform all or some of the steps of the methods in the embodiments of this application. The foregoing storage medium includes any medium that can store program code, such as a USB flash drive, a removable hard disk, a read-only memory (read-only memory, ROM), a random access memory (random access memory, RAM), a magnetic disk, or an optical disc.

[0103] Therefore, the protection scope of this application shall be subject to the protection scope of the claims.

Claims

1. A base station, comprising: l antennas (110), wherein l is an integer greater than or equal to 2; l antenna filters (120), wherein first ends of the l antenna filters (120) are respectively connected to the l antennas (110); l radio frequency links (130), respectively connected to second ends of the l antenna filters (120); and a calibration circuit (140), connected to each of the second ends of the l antenna filters (120), and configured to: send or receive, in an actual running process of a live network, a first calibration signal through a position between each antenna filter in the l antenna filters (120) and a radio frequency link (130) connected to the second end of each antenna filter; and wherein the calibration circuit (140) is configured to: determine a first compensation parameter of each antenna (10) in an equipment tabling process; determine a second compensation parameter (13, 23) of each antenna (10) based on the first compensation parameter and the first calibration signal in the actual running process of a live network; and calibrate each antenna (10) based on the second compensation parameter (13, 23); wherein the ith antenna (10) in the l antennas (110) is used as a reference antenna, and a first compensation parameter δj of the jth antenna in the l antennas (110) meets: δ j = 1 2 a i × b j a j × b i + c i × d j c j × d i , wherein a radio frequency link (130) corresponding to the jth antenna comprises a receiver link (132) and a transmitter link (131), the receiver link (132) is connected to a receiver module, the transmitter link (131) is connected to a transmitter module, the jth antenna is connected to an antenna (10) used for testing, aj represents a second calibration signal received by the receiver module and sent by the antenna (10) used for testing, bj represents a second calibration signal received by the receiver module and sent by the calibration circuit (140), cj represents a second calibration signal received by the antenna (10) used for testing and sent by the transmitter module, dj represents a second calibration signal received by the calibration circuit (140) and sent by the transmitter module, i is an integer and 1≤i≤l, and j is an integer ranging from 1 to l; wherein the second calibration signal is a calibration signal generated in the equipment tabling process.

2. The base station according to claim 1, wherein the first calibration signal comprises ej and fj, ej represents a calibration signal received by the calibration circuit (140) and sent by a transmitter module corresponding to the jth antenna, and fj represents a calibration signal received by a receiver module corresponding to the jth antenna and sent by the calibration circuit (140); a second compensation parameter (13, 23) of the jth antenna comprises a second compensation parameter τTi of a transmitter link (131) corresponding to the jth antenna and a second compensation parameter τRj of a receiver link (132) corresponding to the jth antenna; the ith antenna (10) in the l antennas (110) is used as the reference antenna, and the second compensation parameter τTj of the transmitter link (131) corresponding to the jth antenna in the l antennas (110) meets: τ T j = δ j × e i e j ; and the second compensation parameter τRj of the receiver link (132) corresponding to the jth antenna in the l antennas (110) meets: τ R j = δ j × f i f j .

3. The base station according to claim 2, wherein the calibration circuit (140) is configured to: obtain the first calibration signal ej and fj corresponding to each antenna (10); determine, based on the first compensation parameter δj of each antenna (10) and the first calibration signal ej corresponding to each antenna (10), a second compensation parameter τTj of a transmitter link (131) corresponding to each antenna (10); determine, based on the first compensation parameter δj of each antenna (10) and the first calibration signal fj corresponding to each antenna (10), a second compensation parameter τRj of a receiver link (132) corresponding to each antenna (10); and compensate for the transmitter link (131) corresponding to each antenna (10) with the second compensation parameter τTj of the transmitter link (131) corresponding to each antenna (10), and compensate for the receiver link (132) corresponding to each antenna (10) with the second compensation parameter τRj of the receiver link (132) corresponding to each antenna (10).

4. The base station according to any one of claims 1 to 3, wherein the l antennas correspond to a first frequency band, and the apparatus further comprises: k antennas, corresponding to a second frequency band, wherein k is an integer greater than or equal to 2; k antenna filters, wherein first ends of the k antenna filters are respectively connected to the k antennas; and k radio frequency links (130), respectively connected to second ends of the k antenna filters, wherein the calibration circuit (140) is connected to each of the second ends of the k antenna filters, and is configured to: send or receive a third calibration signal through a position between each antenna filter in the k antenna filters and a radio frequency link (130) connected to the second end of each antenna filter in the k antenna filters, and calibrate each antenna (10) in the k antennas based on the third calibration signal.

5. The base station according to claim 4, wherein the calibration circuit (140) is specifically configured to: determine a first compensation parameter of each antenna (10) in the k antennas; determine a second compensation parameter (13, 23) of each antenna (10) in the k antennas based on the first compensation parameter of each antenna (10) in the k antennas and the third calibration signal; and calibrate each antenna (10) in the k antennas based on the second compensation parameter (13, 23) of each antenna (10) in the k antennas.

6. The base station according to claim 5, wherein a reference antenna used to determine the first compensation parameter of each antenna (10) in the k antennas is the qth antenna in the k antennas, q is an integer, and 1 ≤ q ≤ k.

7. An antenna calibration method (400), applied to an antenna calibration apparatus (100) comprising l antennas (110), wherein the l antennas (110) are respectively connected to first ends of l antenna filters (120), second ends of the l antenna filters (120) are respectively connected to l radio frequency links (130) and each connected to a calibration circuit (140), and the method (400) comprises: obtaining (S410) a first calibration signal, in an actual running process of a live network, wherein the first calibration signal is sent or received by the calibration circuit (140) through a position between each antenna filter in the l antenna filters (120) and a radio frequency link (130) connected to the second end of each antenna filter; determining (S420) a first compensation parameter of each antenna (10) in the l antennas (110) in an equipment tabling process; determining (S430) a second compensation parameter (13, 23) of each antenna (10) based on the first compensation parameter and the first calibration signal, in the actual running process of a live network; and calibrating (S440) each antenna (10) based on the second compensation parameter (13, 23); wherein the ith antenna (10) in the l antennas (110) is used as a reference antenna, and a first compensation parameter δj of the jth antenna in the l antennas (110) meets: δ j = 1 2 a i × b j a j × b i + c i × d j c j × d i ; and a radio frequency link (130) corresponding to the jth antenna comprises a receiver link (132) and a transmitter link (131), the receiver link (132) is connected to a receiver module, the transmitter link (131) is connected to a transmitter module, the jth antenna is connected to an antenna (10) used for testing, aj represents a second calibration signal received by the receiver module and sent by the antenna (10) used for testing, bj represents a second calibration signal received by the receiver module and sent by the calibration circuit (140), cj represents a second calibration signal received by the antenna (10) used for testing and sent by the transmitter module, dj represents a second calibration signal received by the calibration circuit (140) and sent by the transmitter module, i is an integer and 1≤i≤l , and j is an integer ranging from 1 to l; and wherein the second calibration signal is a calibration signal generated in the equipment tabling process.

8. The method (400) according to claim 7, wherein the first calibration signal comprises ej and fj, ej represents a calibration signal received by the calibration circuit (140) and sent by a transmitter module corresponding to the jth antenna, and fj represents a calibration signal received by a receiver module corresponding to the jth antenna and sent by the calibration circuit (140); a second compensation parameter (13, 23) of the jth antenna comprises a second compensation parameter τTj of a transmitter link (131) corresponding to the jth antenna and a second compensation parameter τRj of a receiver link (132) corresponding to the jth antenna; the ith antenna (10) in the l antennas (110) is used as the reference antenna, and the second compensation parameter τTj of the transmitter link (131) corresponding to the jth antenna in the l antennas (110) meets: τ T j = δ j × e i e j ; and the second compensation parameter τRj of the receiver link (132) corresponding to the jth antenna in the l antennas (110) meets: τ R j = δ j × f i f j .

9. The method (400) according to claim 8, wherein the obtaining a first calibration signal comprises: obtaining the first calibration signal ej and fj corresponding to each antenna (10); the determining a second compensation parameter (13, 23) of each antenna (10) based on the first compensation parameter and the first calibration signal comprises: determining, based on the first compensation parameter δj of each antenna (10) and the first calibration signal ej corresponding to each antenna (10), a second compensation parameter τTj of a transmitter link (131) corresponding to each antenna (10); and determining, based on the first compensation parameter δj of each antenna (10) and the first calibration signal fj corresponding to each antenna (10), a second compensation parameter τRj of a receiver link (132) corresponding to each antenna (10); and the calibrating each antenna (10) based on the second compensation parameter (13, 23) comprises: compensating for the transmitter link (131) corresponding to each antenna (10) with the second compensation parameter τTj of the transmitter link (131) corresponding to each antenna (10), and compensating for the receiver link (132) corresponding to each antenna (10) with the second compensation parameter τRj of the receiver link (132) corresponding to each antenna (10).

10. The method (400) according to any one of claims 7 to 9, wherein the l antennas correspond to a first frequency band, and the antenna calibration apparatus (100) further comprises k antennas corresponding to a second frequency band, wherein k is an integer greater than or equal to 2, the k antennas are respectively connected to first ends of k antenna filters, and second ends of the k antenna filters are respectively connected to k radio frequency links (130) and each connected to the calibration circuit (140); and the method (400) further comprises: obtaining a third calibration signal, wherein the third calibration signal is sent or received by the calibration circuit (140) through a position between each antenna filter in the k antenna filters and a radio frequency link (130) connected to the second end of each antenna filter in the k antenna filters; determining a first compensation parameter of each antenna (10) in the k antennas; determining a second compensation parameter (13, 23) of each antenna (10) in the k antennas based on the first compensation parameter of each antenna (10) in the k antennas and the third calibration signal; and calibrating each antenna (10) in the k antennas based on the second compensation parameter (13, 23) of each antenna (10) in the k antennas.

11. The method (400) according to claim 10, wherein a reference antenna used to determine the first compensation parameter of each antenna (10) in the k antennas is the qth antenna in the k antennas, q is an integer, and 1 ≤ q ≤ k.