WO2022227803A1 - 远端单元、多频段分布式系统以及信号处理方法 - Google Patents
远端单元、多频段分布式系统以及信号处理方法 Download PDFInfo
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- WO2022227803A1 WO2022227803A1 PCT/CN2022/076746 CN2022076746W WO2022227803A1 WO 2022227803 A1 WO2022227803 A1 WO 2022227803A1 CN 2022076746 W CN2022076746 W CN 2022076746W WO 2022227803 A1 WO2022227803 A1 WO 2022227803A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/005—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission adapting radio receivers, transmitters andtransceivers for operation on two or more bands, i.e. frequency ranges
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/25—Arrangements specific to fibre transmission
- H04B10/2575—Radio-over-fibre, e.g. radio frequency signal modulated onto an optical carrier
- H04B10/25752—Optical arrangements for wireless networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/25—Arrangements specific to fibre transmission
- H04B10/2575—Radio-over-fibre, e.g. radio frequency signal modulated onto an optical carrier
- H04B10/25752—Optical arrangements for wireless networks
- H04B10/25753—Distribution optical network, e.g. between a base station and a plurality of remote units
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
- H04W16/18—Network planning tools
Definitions
- the present disclosure relates to the field of communications, and more particularly, to a remote unit, a multi-band distributed system including the remote unit, and a signal processing method used in the multi-band distributed system.
- CN109495902A discloses a remote device for a multi-band distributed system, a multi-band distributed system and a method for processing uplink/downlink signals.
- the above literature introduces a multi-band distributed system, the near-end receives the multi-band base station signal, and transmits it to the remote device through the optical fiber.
- the remote device includes a master remote unit and at least one slave remote unit.
- the master remote unit and the slave remote respectively correspond to and process signals of one frequency band.
- the main remote unit is used to process the received signal and generate the signal output that is adapted to the channels of different frequency bands.
- the master remote unit and the slave remote unit are connected by radio frequency lines to transmit signals.
- the above system has the following shortcomings:
- the traditional analog 2G/3G/4G system remote power amplifier adopts APD (analog predistortion) technology to ensure the system linearity index and avoid channel interference.
- APD Analog Pre-Distortion
- APD Analog Pre-Distortion
- 5G applications due to the operating bandwidth of more than 100M, the existing APD technology cannot realize the linear compensation of the power amplifier for 100M signals, and the interference between channels is serious.
- the traditional digital 2G/3G/4G system uses digital serial optical signals to realize the relay transmission between the access unit and the remote unit.
- 5G applications due to the radio frequency bandwidth reaching more than 100 megabytes and the application of 5G MIMO, the rate of optical fiber links will reach tens to hundreds of gigabytes or more, which places great demands on optical modules and optical fiber resources, and operators are unacceptable. of.
- the remote unit includes:
- an optical module configured to receive signals from an access unit communicatively coupled to the remote unit
- a power distribution module connected to the optical module and configured to divide a signal received from the optical module into a first component and a second component that is different from an operating frequency band of the first component
- a first power amplifier low noise amplifier module connected to the power distribution module and configured to process the first component
- a second power amplifier low noise amplifier module is connected to the power distribution module and is configured to process the second component.
- the remote unit disclosed according to the present disclosure uses two independent power amplifier low-noise amplifier modules to process the input signal, and the input signal itself includes multi-band signals, that is to say, the input signal includes both operating
- the first component of a frequency band also includes the second component operating in a second frequency band different from the first frequency band of the first component.
- the first component and the second The components are processed, and different processing can be performed for the first frequency band of the first component and the second frequency band of the second component, for example, based on the frequency band width thereof, so that the remote unit according to the present disclosure can simultaneously process the frequency band including different frequency band widths.
- the signals of the first component and the second component enhance the application scenarios of the remote unit according to the present disclosure.
- the second power amplifier low noise amplifier module is configured to process the second component using a digital predistortion technique.
- DPD digital predistortion
- the optical module receives an analog signal output from the access unit.
- the remote unit according to the present disclosure can get rid of the need for expensive equipment. Therefore, the remote unit according to the present disclosure is suitable for the requirements of the next generation mobile communication technology.
- the first component includes at least one of a 2G signal, a 3G signal and/or a 4G signal.
- the second component includes a 5G signal and/or a 6G signal.
- the second power amplifier low-noise amplifier module includes:
- a driver amplifier configured to amplify the second component
- a digital processing module configured to denoise, filter and pre-distort the amplified second component
- a power amplifier configured to power amplify the second component processed by the digital processing module
- a circulator configured to isolate the second component amplified by the power amplifier
- a filter configured to filter the second component isolated by the circulator.
- the digital processing module is further configured to obtain the second component amplified by the power amplifier and the second component amplified by the driving amplifier.
- the digital predistortion technology is used for the second component amplified by the power amplifier and the second component amplified by the driving amplifier to realize predistortion compensation for the signal input to the power amplifier.
- the second power amplifier low-noise amplifier module further includes a low-noise amplifier module, a second drive amplifier and a radio frequency switch, wherein the filter is further configured It is used to filter the received uplink signal.
- the filtered uplink signal is amplified by the low-noise amplifier module after passing through the circulator and the radio frequency switch, and then fed into the digital processing module for noise reduction and filtering. processing, and then output after being amplified by the second driving amplifier.
- the power amplifier is made of gallium nitride material.
- a second aspect of the present disclosure relates to a multi-band distributed system, characterized in that the multi-band distributed system includes:
- a remote unit according to the first aspect of the present disclosure.
- the access unit includes a radio frequency card module for receiving and/or transmitting the second component, the radio frequency card module being configured to receive and/or transmit information from the base station with the said second component.
- the radio frequency signal of the frequency band associated with the second component is configured to receive and/or transmit information from the base station with the said second component.
- the multi-band distributed system further includes:
- At least one base station At least one base station
- the combiner is configured to combine multiple signals received from the remote unit and output to the antenna, or to divide the signals received from the antenna into multiple signals and output to the antenna.
- the remote unit, and the antenna is configured to radiate a signal processed by the combiner or to receive and output a signal to the combiner.
- a third aspect of the present disclosure relates to a signal processing method, the signal processing method comprising:
- the downlink signal received from the optical module is divided into a first component and a second component different from the working frequency band of the first component;
- the second component is processed through the second power amplifier low noise amplifier module.
- step S4 further includes:
- the second component is processed using a digital pre-distortion technique via the second power amplifier low noise amplifier module.
- step S1 further includes:
- the optical module receives the analog signal output from the access unit.
- the first component further includes at least one of a 2G signal, a 3G signal and/or a 4G signal, and/or the second component includes a 5G signal signal and/or 6G signal.
- step S4 further includes:
- the second component isolated by the circulator is filtered via a filter.
- step S4 further includes:
- the digital predistortion technology is used for the second component amplified by the power amplifier and the second component amplified by the driving amplifier to realize predistortion compensation for the signal input to the power amplifier.
- the remote unit disclosed in the present disclosure uses two independent power amplifier and low-noise amplifier modules to process the input signal, and the input signal itself includes multi-band signals, that is to say, the input signal It includes both the first component working in the first frequency band and the second component working in the second frequency band different from the first frequency band of the first component.
- the A component and a second component can be processed differently, and the first frequency band of the first component and the second frequency band of the second component can be processed differently, for example, based on their frequency band widths, so that the remote unit according to the present disclosure can simultaneously process
- the signal including the first component and the second component with different frequency band widths improves the application scenario of the remote unit according to the present disclosure.
- FIG. 1 shows a schematic diagram of a communication relay system according to the prior art
- FIG. 2 shows a schematic diagram of a first power amplifier and low noise amplifier module 150 of a remote unit used in a communication relay system according to the prior art
- Figure 3 shows a schematic diagram of a remote unit in accordance with one embodiment of the present disclosure
- FIG. 4 shows a schematic diagram of the second power amplifier LNA module 250 used in the remote unit shown in FIG. 3 according to the present disclosure
- FIG. 5 shows a schematic diagram of a multi-band distributed system 200 according to one embodiment of the present disclosure
- FIG. 6 shows a schematic diagram of a multi-band distributed system 300 according to another embodiment of the present disclosure.
- FIG. 7 shows a flowchart of a signal processing method 400 according to one embodiment of the present disclosure.
- FIG. 1 shows a schematic diagram of a communication relay system according to the prior art
- FIG. 2 shows a schematic diagram of a first power amplifier low noise amplifier module 150 of a remote unit used in the communication relay system according to the prior art.
- the access unit 120 of the traditional analog 2G/3G/4G system 100 uses the two receiving modules 122 to connect to the base station respectively. 110 receives the downlink signal, and then transmits it to the optical module 130 through optical fiber transmission, and then distributes the signal to the corresponding remote power amplifier 150 through the power distribution module 140.
- the power distribution module 140 only plays the role of distributing power, and Subsequent remote power amplifiers 150 have the same structure, and all use APD (analog predistortion) technology to ensure system linearity and avoid channel interference.
- the signals amplified by multiple remote power amplifiers 150 are processed by the combiner 160. Radiated out by means of the antenna 170 . It can be further seen from FIG.
- the signal is first processed by the delay line 151 and then output to the power amplifier 152, where the APD chip 153 will collect the remote power amplifier
- 155 outputs to the next stage.
- the uplink signal will be output through the action of the duplexer 155 and the low noise amplifier 154 .
- Figure 3 shows a schematic diagram of a remote unit in accordance with one embodiment of the present disclosure. As can be seen in FIG.
- the inventors of the present disclosure propose a remote unit in this case, the remote unit comprising an optical module 230 configured to communicate with the remote
- the access unit eg, the access unit 220 in FIG. 5
- the optical module 230 also converts received optical signals in the form of analog signals into electrical signals.
- the remote unit according to the present disclosure can be freed from the The need for expensive and even unrealizable high-speed digital optical modules makes the remote units according to the present disclosure suitable for the requirements of next-generation mobile communication technologies.
- the remote unit in accordance with the present disclosure further includes a power distribution module 240 connected to the optical module 230 and configured for signals received from the optical module 230 It is divided into a first component and a second component different from the operating frequency band of the first component.
- the remote unit according to the present disclosure further includes a first power amplifier low noise amplifier module 250 ′ and a second power amplifier low noise amplifier module 250 .
- the first power amplifier low noise amplifier module 250' is connected to the power distribution module 240 and is configured to process the first component
- the second power amplifier low noise amplifier module 250 is connected to the power distribution module 240 is connected and configured to process the second component.
- the remote unit disclosed according to the present disclosure adopts two independent power amplifier low-noise amplifier modules 250' and 250 to process the input signal, and the input signal itself includes multi-band signals, that is to say, the input signal has both It includes a first component working in the first frequency band, and also includes a second component working in a second frequency band different from the first frequency band of the first component.
- the first component and the second component are processed separately, and the first frequency band of the first component and the second frequency band of the second component can be processed differently, for example, based on their frequency band widths, so that the remote unit according to the present disclosure Signals including the first component and the second component with different frequency band widths can be processed simultaneously, which improves the application scenario of the remote unit according to the present disclosure.
- the second power amplifier low noise amplifier module 250 is configured to use digital pre-distortion technology to process the second component.
- the second component whose frequency band width of the operating frequency band is much larger than the first component can be efficiently processed, thereby improving the performance of the second component according to the present disclosure.
- the first component can be, for example, a communication signal component of a standard before 4G and 4G
- the second component can be, for example, a communication signal of a standard of 5G and after 5G weight.
- the first component further includes at least one of a 2G signal, a 3G signal and/or a 4G signal.
- the second component includes a 5G signal and/or a 6G signal and possibly a higher bandwidth signal.
- FIG. 4 shows a schematic diagram of the second power amplifier LNA module 250 used in the remote unit shown in FIG. 3 according to the present disclosure.
- the second power amplifier low-noise amplifier module 250 includes the following components:
- a driver amplifier 251 configured to amplify the second component
- a digital processing module 253 configured to perform noise reduction, filtering and predistortion processing on the amplified second component
- the power amplifier 252 is configured to power-amplify the second component processed by the digital processing module 253;
- a circulator 255 configured to isolate the second component amplified by the power amplifier 252
- a filter 256 is designed to filter the second component isolated by the circulator 255 .
- the digital processing module 253 is further configured to obtain the second component amplified by the power amplifier 252 and the second component amplified by the drive amplifier 251
- the second component amplified by the power amplifier 252 and the second component amplified by the drive amplifier 251 are digitally predistorted to realize predistortion compensation for the signal input to the power amplifier 252 .
- the second power amplifier low-noise amplifier module 250 further includes a low-noise amplifier module 254 , a second drive amplifier 258 and a radio frequency switch 257 , wherein the filter 256 is also configured to filter the received uplink signal, and the filtered uplink signal passes through the circulator 255 and the radio frequency switch 257 and is amplified by the low noise amplifier module 254 and fed into the digital signal.
- the processing module 253 performs noise reduction and filtering processing.
- the circulator 255 also performs combining and/or branching processing on the uplink signal fed by the antenna, and then amplified by the second driver amplifier 258 and output. Since the operation mechanism of the lower half of the embodiment shown in FIG.
- the power amplifier 252 can be made of, for example, a gallium nitride material.
- the digital processing module 253 uses an integrated TRX chip to improve the single-board integration
- the power amplifier 252 using GaN supports ultra-wideband amplification
- the digital pre-distortion technology is used to realize the linear amplification of ultra-wideband signals under the condition of lower energy consumption.
- the 5G 2T2R power amplifier low-noise amplifier module compatible design is realized under the condition of compatibility with the original 4G power amplifier low-noise amplifier structure and size.
- FIG. 5 shows a schematic diagram of a multi-band distributed system 200 in accordance with one embodiment of the present disclosure.
- the multi-band distributed system 200 includes:
- a remote unit according to the first aspect of the present disclosure.
- the access unit includes a radio frequency card module 222 for receiving and/or transmitting the second component (for example, the radio frequency card in the lower left corner of the access unit 220 in FIG. 5 ) module 222), the radio frequency card module 222 is configured to receive the radio frequency signal of the frequency band associated with the second component from the base station 210.
- the remote unit proposed according to the present disclosure, two independent power amplifier low-noise amplifier modules 250' and 250 are used to process the input signal, and the input signal itself includes multi-band signals, that is, the input signal The signal includes both a first component operating in the first frequency band and a second component operating in a second frequency band different from the first frequency band of the first component.
- two independent power amplifier low noise amplifier modules 250' and 250 respectively process the first component and the second component, and can perform different processing on the first frequency band of the first component and the second frequency band of the second component, for example, based on their frequency band widths, so that the remote control according to the present disclosure can perform different processing.
- the end unit can simultaneously process signals including the first component and the second component with different frequency band widths, thereby improving the application scenario of the remote unit according to the present disclosure.
- the multi-band distributed system further includes:
- At least one base station can be two base stations in FIG. 5 , that is, the two base stations 210 shown, additionally or alternatively, the two base stations 210 include multiple standards corresponding to one or more operators.
- Base station here, those skilled in the art should understand that the two base stations here are only exemplary rather than limiting, and the multi-band distributed system according to the present disclosure can include only one base station, or can Including a plurality of two base stations. If only one base station is included, the base station will support multiple communication modes, for example, the one base station supports 2G, 3G, 4G and 5G wireless communication at the same time.
- multi-band distributed system can also include the following parts:
- At least one optical fiber which is shown as a connection between the access unit 220 and the optical module 230, the at least one optical fiber connecting the access unit and the remote unit;
- the combiner 260 is configured to combine multiple signals received from the remote unit and output to the antenna 270, or to divide the signals received from the antenna 270 into multiple signals output to the remote unit, and the antenna 270 is configured to radiate the signal processed by the combiner 260 or to receive and output the signal to the combiner 260 .
- FIG. 6 shows a schematic diagram of a multi-band distributed system 300 according to another embodiment of the present disclosure.
- the multi-band distributed system 300 includes:
- a remote unit according to the first aspect of the present disclosure.
- the access unit includes a radio frequency card module 322 for receiving and/or transmitting the second component (for example, the radio frequency card in the lower left corner of the access unit 320 in FIG. 6 ) module 322), the radio frequency card module 322 is configured to receive the radio frequency signal of the frequency band associated with the second component from the base station 310 or transmit the radio frequency signal of the frequency band associated with the second component to the base station 310.
- the remote unit proposed in accordance with the present disclosure, two independent power amplifier low noise amplifier modules 352 and 354 are used to process the input signal, and in the example shown in FIG. 6, another additional power amplifier low noise amplifier module is also included 356, the structure of the power amplifier low noise amplifier module 356 is similar to the power amplifier low noise amplifier module 352.
- the power amplifier low-noise amplifier module 354 can include, for example, two groups of power amplifier and low-noise amplifier sub-modules.
- the LNA sub-modules can share the same digital processing module.
- the analog signal input to the optical module 332 or the optical module 334 itself includes a multi-band signal, that is to say, the input signal includes not only the first component operating in the first frequency band, but also the first component operating in the first frequency band.
- the first frequency band and the second component of the first component can be processed for the first frequency band and
- the second frequency band of the second component is processed differently based on, for example, its frequency band width, so that the remote unit according to the present disclosure can simultaneously process signals including the first component and the second component with different frequency band widths, thereby improving the performance according to the present disclosure.
- the multi-band distributed system 300 further includes:
- Multiple base stations such as multiple base stations 310 shown in FIG. 6 , additionally or alternatively, the multiple base stations 310 include base stations of multiple standards corresponding to one or more operators;
- At least one optical fiber including two optical fibers in the example shown in FIG. 6, the two optical fibers being shown as connecting lines between the access unit 320 and the optical modules 332 and 334, respectively, the two optical fibers connecting the optical modules 332 and 334 in the access unit 320 and the remote unit;
- the combiners 362 and 364 are configured to combine multiple signals received from the remote units and output to the antennas 372 and 374 or receive from the antennas 372 and 374
- the signal is divided into a plurality of signals for output to the remote unit, and the antennas 372 and 374 are configured to radiate the signals processed by the combiners 362 and 364 or receive signals and output them to the Combiners 362 and 364.
- FIG. 7 shows a flowchart of a signal processing method 400 according to one embodiment of the present disclosure.
- the signal processing method 400 involved in the third aspect of the present disclosure includes at least the following four steps, namely:
- Step S1 receiving a downlink signal from an access unit communicatively connected to the remote unit via an optical module
- Step S2 via the power distribution module, the downlink signal received from the optical module is divided into a first component and a second component that is different from the working frequency band of the first component;
- Step S3 processing the first component through the first power amplifier and low noise amplifier module
- Step S4 processing the second component through the second power amplifier low noise amplifier module.
- step S4 further includes:
- the second component is processed using a digital pre-distortion technique via the second power amplifier low noise amplifier module.
- step S1 further includes:
- the optical module receives the analog signal output from the access unit.
- the first component further includes at least one of a 2G signal, a 3G signal and/or a 4G signal, and/or the second component includes a 5G signal signal and/or 6G signal.
- step S4 further includes:
- the second component isolated by the circulator is filtered via a filter.
- step S4 further includes:
- the digital predistortion technology is used for the second component amplified by the power amplifier and the second component amplified by the driving amplifier to realize predistortion compensation for the signal input to the power amplifier.
- the inventive concept of the inventors of the present disclosure is to propose an innovative analog remote plus digital distribution system, the high-power remote unit adopts DPD (digital predistortion) technology and analog fiber remote technology, which overcomes the The impact of analog pre-distortion technology of high-power remote power amplifiers in analog distributed systems on the predistortion correction of 5G ultra-wideband signals cannot be realized, which solves the problems of linearization of ultra-wideband power amplifiers and limited transmission bandwidth of the system, and also overcomes the The bottleneck and limitation of the relay transmission bandwidth of a single digital system meets the requirements of 5G MIMO applications and realizes the coverage requirements of 2G/3G/4G/5G. For 2G/3G/4G to add 5G coverage, there is no need to add optical fiber resources and site resources. The network construction cost is low, the engineering connection is simple, and the system is smoothly upgraded.
- DPD digital predistortion
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Abstract
Description
Claims (18)
- 一种远端单元,其特征在于,所述远端单元包括:光模块,所述光模块被构造用于从与所述远端单元通信连接的接入单元接收信号;功率分配模块,所述功率分配模块与所述光模块连接并且被构造用于将从所述光模块接收的信号分为第一分量和与所述第一分量的工作频段不同的第二分量;第一功放低噪放模块,所述第一功放低噪放模块与所述功率分配模块相连接并且被构造为对所述第一分量进行处理;以及第二功放低噪放模块,所述第二功放低噪放模块与所述功率分配模块相连接并且被构造为对所述第二分量进行处理。
- 根据权利要求1所述的远端单元,其特征在于,所述第二功放低噪放模块被构造为采用数字预失真技术对所述第二分量进行处理。
- 根据权利要求1或2所述的远端单元,其特征在于,所述光模块接收来自所述接入单元输出的模拟信号。
- 根据权利要求1所述的远端单元,其特征在于,所述第一分量包括2G信号、3G信号和/或4G信号中的至少一种信号。
- 根据权利要求1或4所述的远端单元,其特征在于,所述第二分量包括5G信号和/或6G信号。
- 根据权利要求1所述的远端单元,其特征在于,所述第二功放低噪放模块包括:驱动放大器,所述驱动放大器被构造用于对所述第二分量进行放大;数字处理模块,所述数字处理模块被构造用于将经放大的第二分量进行降噪、滤波和预失真处理;功率放大器,所述功率放大器被构造用于将经所述数字处理模块处理后的第二分量进行功率放大;环形器,所述环形器被构造用于对经所述功率放大器放大的第二分量进行隔离;以及滤波器,所述滤波器被构造用于对经所述环形器隔离的第二分量进行滤波处理。
- 根据权利要求6所述的远端单元,其特征在于,所述数字处理模块还被构造用于获取经所述功率放大器放大后的第二分量以及经所述驱动放大器放大后的第二分量,并对功率放大器放大后的第二分量和驱动放大器放大后的第二分量采用数字预失真技术实现对输入所述功率放大器的信号进行预失真补偿。
- 根据权利要求6所述的远端单元,其特征在于,所述第二功放低噪放模块还包括低噪放模块、第二驱动放大器以及射频开关,其中,所述滤波器还被构造用于对接收到的上行信号进行滤波处理,经滤波处理的上行信号经过所述环形器和所述射频开关后经过所述低噪放模块放大后馈入所述数字处理模块进行降噪和滤波处理,之后经过所述第二驱动放大器放大后输出。
- 根据权利要求6所述的远端单元,其特征在于,所述功率放大器采用氮化镓材料制成。
- 一种多频段分布式系统,其特征在于,所述多频段分布式系统包括:接入单元;以及根据权利要求1至9中任一项所述的远端单元。
- 根据权利要求10所述的多频段分布式系统,其特征在于,所述接入单元包括用于接收和/或发射所述第二分量的射频卡模块,所述射频卡模 块被构造用于从基站接收与所述第二分量相关联的频段的射频信号。
- 根据权利要求10所述的多频段分布式系统,其特征在于,所述多频段分布式系统还包括:至少一个基站;至少一根光纤,所述至少一根光纤连接所述接入单元和所述远端单元;合路器;以及天线,其中,所述合路器被构造用于将从所述远端单元接收的多个信号进行合路处理并输出至所述天线,或者将从所述天线接收的信号分成多个信号输出至所述远端单元,并且所述天线被构造用于将经所述合路器处理的信号辐射出去或者接收信号并将其输出至所述合路器。
- 一种信号处理方法,其特征在于,所述信号处理方法包括:S1,经由光模块从与所述远端单元通信连接的接入单元接收下行信号;S2,经由功率分配模块将从所述光模块接收的下行信号分为第一分量和与所述第一分量的工作频段不同的第二分量;S3,经由第一功放低噪放模块对所述第一分量进行处理;以及S4,经由第二功放低噪放模块为对所述第二分量进行处理。
- 根据权利要求13所述的信号处理方法,其特征在于,步骤S4进一步包括:经由所述第二功放低噪放模块采用数字预失真技术对所述第二分量进行处理。
- 根据权利要求13或14所述的信号处理方法,其特征在于,步骤S1进一步包括:所述光模块接收来自接入单元输出的模拟信号。
- 根据权利要求13所述的信号处理方法,其特征在于,所述第一分 量包括2G信号、3G信号和/或4G信号中的至少一种信号,和/或所述第二分量包括5G信号和/或6G信号。
- 根据权利要求13所述的信号处理方法,其特征在于,步骤S4进一步包括:经由驱动放大器对所述第二分量进行放大;经由数字处理模块将经放大的第二分量进行降噪和、滤波和预失真处理;经由功率放大器将经所述数字处理模块处理后的第二分量进行功率放大;经由环形器对经所述功率放大器放大的第二分量进行隔离;以及经由滤波器对经所述环形器隔离的第二分量进行滤波处理。
- 根据权利要求17所述的信号处理方法,其特征在于,步骤S4进一步还包括:经由数字处理模块获取经所述功率放大器放大后的第二分量以及经所述驱动放大器放大后的第二分量;以及对功率放大器放大后的第二分量和驱动放大器放大后的第二分量采用数字预失真技术实现对输入所述功率放大器的信号进行预失真补偿。
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