WO2014000439A1 - Method, apparatus and system for baseband rf interface bearer transmission - Google Patents

Method, apparatus and system for baseband rf interface bearer transmission Download PDF

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Publication number
WO2014000439A1
WO2014000439A1 PCT/CN2013/070655 CN2013070655W WO2014000439A1 WO 2014000439 A1 WO2014000439 A1 WO 2014000439A1 CN 2013070655 W CN2013070655 W CN 2013070655W WO 2014000439 A1 WO2014000439 A1 WO 2014000439A1
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WO
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Prior art keywords
baseband signal
signal
baseband
cpri
client device
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PCT/CN2013/070655
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French (fr)
Chinese (zh)
Inventor
周健
曾博
王建民
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华为技术有限公司
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Publication of WO2014000439A1 publication Critical patent/WO2014000439A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L25/00Baseband systems

Definitions

  • Baseband radio frequency interface bearer transmission method device and system
  • the present invention relates to the field of communications technologies, and in particular, to a baseband radio frequency interface bearer transmission method, apparatus, and system.
  • a wireless access network provides a wireless access function for a user.
  • RRU Radio
  • the remote unit (radio remote unit) and the BBU (Building Base Band Unit) are connected by optical fiber to realize the transmission of baseband data between the RRU and the BBU.
  • a CPRI Common Public Radio Interface
  • OBSAI Open Base Station Architecture Initiative
  • the interface is generally used only by the device itself.
  • a base station or an access device needs to share transmission by wavelength division multiplexing, the cost is high.
  • the BBU hotel which stacks multiple BBUs together
  • the transmission between the RRU and the BBU faces the problem of how to share more.
  • FIG. 1 it is a schematic diagram of a prior art transmission sharing between a RRU and a BBU by using a wavelength division technique.
  • the return link has only one fiber, and the RRU and PHS (Personal Handy-phone System) base stations need to pass the service to the BBU and ITX control devices on the right (which are the central office devices of the PHS). Therefore, on a single fiber, four wavelengths are required to carry two uplink and downlink signals.
  • ⁇ ⁇ is the CPRI signal sent by the RRU to the BBU
  • ⁇ 3 is the CPRI signal sent by the BBU to the RRU
  • ⁇ 2 is the signal sent by the PHS base station to the
  • ⁇ 4 is ⁇ Ethernet sent to the PHS base station signal.
  • the corresponding transceiver wavelength between the transceivers needs to be fixed and cannot be replaced at will. If additional uplink and downlink applications need to be added to a single fiber, the new wavelength cannot conflict with the originally planned wavelength.
  • the prior art method for implementing transmission sharing between the RRU and the BBU by using the wavelength division technology has the following disadvantages:
  • the wavelength of the signal carried on the optical fiber needs one-to-one correspondence planning, which increases the network design and maintenance cost; and the multiplexer (WDM MUX) /DEMUX device, hereinafter referred to as MUX) is a passive device.
  • MUX multiplexer
  • aspects of the present invention provide a baseband radio frequency interface bearer transmission method, apparatus, and system for mapping a service signal of a client device external to a remote system to a baseband signal for transmission, which is low in cost and easy to monitor.
  • An aspect of the present invention provides a baseband radio frequency interface bearer transmission method, including: converting a service signal of a client device into a first baseband signal; the client device is a radio remote module RRU and an indoor baseband processing unit BBU Remote device of the remote system;
  • the second baseband signal is carried on the baseband radio frequency interface and transmitted through a line between the RRU and the BBU.
  • Another aspect of the present invention provides a baseband radio frequency interface bearer transmission method, including: receiving a second baseband signal from a baseband radio frequency interface; the second baseband signal multiplexing is performed by converting a service signal of a client device Obtaining a first baseband signal, and an original baseband signal between the RRU and the BBU; the client device is an external device of the RRU and the remote system to which the BBU belongs; and a transmission rate of the second baseband signal The transmission rate of the original baseband signal is greater than; the second baseband signal is separated, the first baseband signal and the original baseband signal are obtained, and the original baseband signal is transmitted to the RRU or the BBU;
  • the first baseband signal is restored to a traffic signal and passed to the client device.
  • Another aspect of the present invention provides a base station data processing control apparatus, including:
  • a conversion module configured to convert a service signal of the client device into a first baseband signal
  • the client device is an external device of the remote system of the radio remote module RRU and the indoor baseband processing unit BBU;
  • the multiplexing module multiplexes the first baseband signal and the original baseband signal between the RRU and the BBU into a second baseband signal; the transmission rate of the second baseband signal is greater than the original Baseband signal transmission rate; and, And a sending module, configured to carry the second baseband signal on the baseband radio frequency interface, and transmit the data between the RRU and the BBU.
  • a base transceiver apparatus including:
  • a receiving module configured to receive a second baseband signal from the baseband radio frequency interface; the second baseband signal is multiplexed with a first baseband signal obtained by converting a service signal of the client device, and between the RRU and the BBU The original baseband signal; the client device is an external device of the RRU and the remote system to which the BBU belongs; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal;
  • a separating module configured to separate the second baseband signal, obtain a first baseband signal and an original baseband signal, and transmit the original baseband signal to the RRU or the BBU;
  • a restoration module configured to restore the first baseband signal to a service signal and deliver the signal to the client device.
  • Another aspect of the present invention provides a baseband radio frequency interface bearer transmission system, including a BBU and an RRU;
  • a base station data processing control device is disposed on the BBU side, and a base station transceiver device is disposed on the RRU side;
  • a base station data processing control device is disposed on the RRU side, and a base station transceiver device is disposed on the BBU side;
  • a base station data processing control device and a base transceiver station are disposed on the BBU side, and a base station data processing control device and a base transceiver device are disposed on the RRU side.
  • the service signal of the client device outside the remote system is converted into a baseband signal, and then the original baseband signal between the RRU and the BBU is multiplexed into a high-speed baseband signal, thereby realizing the RRU and The original baseband signal and the service signal of the client device are simultaneously transmitted on a single physical medium between the BBUs.
  • the present invention can provide a high-bandwidth, low-cost information transmission service in a baseband link without adding physical resources; and by detecting a signal on the RRU side or the BBU side, it can determine whether the transmission line is faulty. , easy to monitor.
  • 1 is a schematic diagram of the prior art implementing transmission sharing between an RRU and a BBU by using a wavelength division technique
  • FIG. 2 is a schematic flowchart of a method for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention
  • FIG. 3 is a schematic diagram of converting an Ethernet signal into a baseband signal according to an embodiment of the present invention
  • FIG. 5 is a schematic diagram of another Ethernet signal converted to a baseband signal according to an embodiment of the present invention
  • FIG. 6 is another baseband radio frequency interface bearer transmission according to an embodiment of the present invention
  • FIG. 7 is a schematic structural diagram of a base station data processing control apparatus according to an embodiment of the present invention
  • FIG. 8 is a schematic structural diagram of a base station transceiver apparatus according to an embodiment of the present invention.
  • FIG. 9 is a schematic structural diagram of a system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention
  • FIG. 10 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention
  • FIG. 11 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention.
  • FIG. 2 it is a schematic flowchart of a method for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention.
  • the method for carrying and transmitting a baseband radio frequency interface provided by this embodiment includes the following steps:
  • the client device Convert the service signal of the client device into a first baseband signal; the client device is an external device of the remote system of the radio remote module RRU and the indoor baseband processing unit BBU.
  • the first baseband signal, and the original baseband signal between the RRU and the BBU, are multiplexed into a second baseband signal; the second baseband signal has a transmission rate greater than the original baseband signal. Transmission rate.
  • the second baseband signal is carried on a baseband radio frequency interface, and is transmitted through a line between the RRU and the BBU.
  • the client device is a device other than the remote system to which the RRU and the BBU belong, and needs to share the physical line between the RRU and the BBU to transmit service data.
  • the client device is a device externally accessed by a distributed base station, a video monitoring device, or the like.
  • the service signal of the client device may be a synchronization signal or an asynchronous signal.
  • asynchronous signals include, but are not limited to, Ethernet (Ethernet) signals and ATM (Asynchronous Transfer Mode) signals.
  • the first baseband signal is a baseband signal in a CPRI format of a common public radio interface
  • the original baseband signal is a baseband signal in a CPRI format
  • the second baseband signal is a baseband in a CPRI format.
  • Signal, the baseband radio frequency interface is a CPRI interface.
  • the first baseband signal is an open base station architecture protocol.
  • the baseband signal in the OBSAI format is a baseband signal in an OBSAI format
  • the second baseband signal is a baseband signal in an OBSAI format
  • the baseband radio frequency interface is an OBSAI interface.
  • steps S21 to S23 may be performed by the RRU built-in or external base station data processing control device, or by the BBU built-in or external base station data processing control device, or built in by the client device or The external base station data processing control device executes.
  • the service signal of the client device is an Ethernet signal
  • the original baseband signal, the first baseband signal, and the second baseband signal are both CPRI signals
  • the service in the above step S21 is taken as an example.
  • a method of converting a signal into a baseband signal will be described in detail.
  • step S21 the converting the service signal of the client device into the first baseband signal includes: mapping the Ethernet signal of the client device to the CPRI report after being encoded by the 4B/5B In the air interface user plane data area of the text, a first baseband signal in a CPRI format is generated.
  • the format of a commonly used Ethernet packet includes: Preamble, SFD (Start Frame Delimiter), and DA (Destination Address). , SA (Source Address), L/T (Length or Type), Data/Padding, FCS (Frame Check Sequence), and Extension (tail extension) ).
  • the converted 5Bit data stream is directly mapped into the air interface user data area ( IQ Data Block) of the CPRI message, and the CPRI format can be obtained.
  • Baseband signal The data of the air interface user plane data area is digitized baseband data.
  • the converting the service signal of the client device to the first baseband signal comprises: encapsulating the Ethernet signal of the client device into a general-purpose encapsulation protocol GFP signal, and then The GFP signal is converted to generate a first baseband signal in CPRI format.
  • the 3 ⁇ 4 port is shown in Figure 4.
  • the GFP (Generic Framing Procedure) message contains: Core Header, Payload Header, and Ethernet Packet. (Ethernet packet) and Cyclic Redundancy Check (CRC).
  • the first four bytes of the GFP packet are the kernel header, the first two bytes indicate the length of the GFP packet, and the last two bytes are the first two bytes of the check.
  • the payload header includes: a Payload Type Identifier (PTI), a Payload FCS Indicator (PFI), and an Extension Header Identifier. , referred to as EHI), User Payload Identifier (UPI), Type Header Error Control, and Extension Header.
  • the Ethernet packet when the Ethernet signal is encapsulated into the GFP signal, the Ethernet packet is directly encapsulated in the GFP payload; and 0x1 is indicated in the user payload identifier, indicating the Ethernet payload.
  • the other fields of the GFP message are generated according to the GFP protocol.
  • the Ethernet packet has the same structure as the general Ethernet packet shown in Figure 3, that is, the Ethernet packet starts from the DA and ends at the Extension.
  • the encapsulated GFP signal is encapsulated by CPRI to obtain a baseband signal in the CPRI format.
  • the "GFP-F" shown in FIG. 4 is one of the methods of encapsulating a client frame into a general-purpose encapsulation frame in a general encapsulation protocol.
  • the converting the service signal of the client device to the first baseband signal includes: according to HDLC (High-Level Data Link Control, high)
  • the data link control protocol encapsulates the Ethernet signal of the client device into the air interface user plane data area of the CPRI message to generate a first baseband signal in the CPRI format.
  • Ethernet signals such as PPP (Point to Point) and LAPS (Link) can be encapsulated according to other series of HDLC-like protocols (HDLC-Link protocol).
  • HDLC-Link protocol a series of HDLC-like protocols
  • the main feature of the HDLC-Link protocol is to use 0x7E as the framing byte to determine the message length. Use 0x7D5E bytes instead of 0x7E in the original message.
  • the Ethernet packet has the same structure as the general Ethernet packet shown in FIG. 3, that is, the Ethernet packet starts from the DA and ends at the Extension.
  • the present invention can provide high bandwidth, easy to monitor, and low cost information transmission services by utilizing unused bandwidth in the baseband radio frequency CPRI or OBSAI band.
  • the following uses the baseband signal as the CPRI signal as an example.
  • the CPRI signal is one of the following seven signals:
  • the transmission rate of the original baseband signal (original air interface signal) between the RRU and the BBU is 2457.6 Mbits.
  • CPRI can provide a transmission rate of 4915.2 Mbits. If only the original air interface signal is transmitted, that is, the transmission line actually uses only 2457.6 Mbits, then the remaining part is the unused bandwidth in the baseband radio frequency CPRI band.
  • the baseband signal with a transmission rate of 2457.6 Mbits is a low-speed baseband signal relative to a baseband signal with a transmission rate of 4915.2 Mbits.
  • the service signal of the client device is converted into a baseband signal, and then the low-speed original baseband signal (2457.6 Mbits) between the RRU and the BBU is multiplexed into a high-speed baseband signal. (4915.2 Mbits of data), then transmitted over the 4915.2 Mbits transmission line, enabling the use of unused bandwidth within the baseband radio frequency CPRI band to provide high bandwidth, easy to monitor, low cost information transmission services.
  • the original baseband signal and the service signal of the client device are simultaneously transmitted on a single physical medium without adding physical resources.
  • FIG. 6 is a schematic flowchart diagram of another method for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention.
  • the method for carrying and transmitting a baseband radio frequency interface provided by this embodiment includes the following steps:
  • the second baseband signal is multiplexed with a first baseband signal obtained by converting a service signal of the client device, and an original baseband between the RRU and the BBU.
  • the client device is an external device of the RRU and the remote system to which the BBU belongs; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal.
  • the client device is a device other than the remote system to which the RRU and the BBU belong, and needs to share the physical line between the RRU and the BBU to transmit service data.
  • the client device is a device externally accessed by a distributed base station, a video monitoring device, or the like.
  • the service signal of the client device may be a synchronization signal or an asynchronous signal.
  • asynchronous signals include, but are not limited to, Ethernet (Ethernet) signals and ATM (Asynchronous Transfer Mode) signals.
  • the first baseband signal is a baseband signal in a CPRI format of a common public radio interface
  • the original baseband signal is a baseband signal in a CPRI format
  • the second baseband signal is a baseband in a CPRI format.
  • Signal, the baseband radio frequency interface is a CPRI interface.
  • the service signal of the client device is an Ethernet signal
  • the first baseband signal is mapped to the air interface user plane data area of the CPRI file after the Ethernet signal of the client device is encoded by 4B/5B. And generating a baseband signal in the CPRI format;
  • the first baseband signal is a baseband signal in a CPRI format generated by encapsulating an Ethernet signal of the client device into a general encapsulation protocol GFP signal and then converting the GFP signal;
  • the first baseband signal is a baseband signal of a CPRI format generated by encapsulating an Ethernet signal of the client device into an air interface user plane data area of a CPRI message according to an advanced data link control HDLC protocol.
  • the first baseband signal is a baseband signal in an open base station architecture protocol OBSAI format
  • the original baseband signal is a baseband signal in an OBSAI format
  • the second baseband signal is in an OBSAI format.
  • the baseband signal, the baseband radio frequency interface is an OBSAI interface.
  • FIG. 7 is a schematic structural diagram of a base station data processing control apparatus according to an embodiment of the present invention.
  • the base station data processing control device (Radio Equipment Control, REC for short) provided in this embodiment can implement the baseband radio frequency interface bearer transmission method in the foregoing embodiment of FIG. 2.
  • the base station data processing control apparatus includes a conversion module 71, a multiplexing module 72, and a transmitting module 73, as follows:
  • the conversion module 71 is configured to convert the service signal of the client device into the first baseband signal; the client device is an external device of the remote system of the radio remote module RRU and the indoor baseband processing unit BBU.
  • the multiplexing module 72 is configured to multiplex the first baseband signal and the original baseband signal between the RRU and the BBU into a second baseband signal; the second baseband signal has a higher transmission rate than the The transmission rate of the original baseband signal is described.
  • the sending module 73 is configured to carry the second baseband signal on the baseband radio frequency interface, and transmit the data between the RRU and the BBU.
  • the client device is a device other than the remote system to which the RRU and the BBU belong, and needs to share the physical line between the RRU and the BBU to transmit service data.
  • the client device is a device externally accessed by a distributed base station, a video monitoring device, or the like.
  • the service signal of the client device may be a synchronization signal or an asynchronous signal.
  • asynchronous signals include, but are not limited to, Ethernet (Ethernet) signals and ATM (Asynchronous Transfer Mode) signals.
  • the first baseband signal is a general public radio interface CPRI
  • the baseband signal of the format, the original baseband signal is a baseband signal in a CPRI format, the second baseband signal is a baseband signal in a CPRI format, and the baseband radio frequency interface is a CPRI interface.
  • the conversion module 71 When the service signal of the client device is an Ethernet signal, the conversion module 71 performs the 4B/5B encoding on the Ethernet signal of the client device, and then maps the data to the air interface user plane data area of the CPRI file to generate a CPRI format.
  • the conversion module 71 encapsulates the Ethernet signal of the client device into a general-purpose encapsulation protocol GFP signal, and then converts the GFP signal to generate a first baseband signal in a CPRI format; or, the conversion module 71 is configured according to The advanced data link controls the HDLC protocol, and encapsulates the Ethernet signal of the client device into the air interface user plane data area of the CPRI message to generate a first baseband signal in the CPRI format.
  • the first baseband signal is an open base station architecture protocol.
  • FIG. 8 is a schematic structural diagram of a base transceiver apparatus according to an embodiment of the present invention.
  • the base station transceiver device (Radio Equipment, RE for short) provided in this embodiment can implement the method for baseband radio frequency interface bearer transmission in the embodiment of FIG. 6.
  • the base transceiver device includes a receiving module 81, a separating module 82, and a restoring module 83, as follows:
  • the receiving module 81 is configured to receive a second baseband signal from the baseband radio frequency interface; the second baseband signal is multiplexed with a first baseband signal obtained by converting a service signal of the client device, and between the RRU and the BBU The original baseband signal; the client device is an external device of the RRU and the remote system to which the BBU belongs; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal.
  • the separating module 82 is configured to separate the second baseband signal, obtain a first baseband signal and an original baseband signal, and transmit the original baseband signal to the RRU or the BBU.
  • the restoration module 83 is configured to restore the first baseband signal to a service signal and transmit the signal to the client device.
  • the service signal of the client device may be a synchronization signal or an asynchronous signal.
  • asynchronous signals include, but are not limited to, Ethernet (ATM) signals and ATM (Asynchronous Transfer Mode) signals.
  • ATM ATM
  • the first baseband signal is a baseband signal in a CPRI format of a common public radio interface
  • the original baseband signal is a baseband signal in a CPRI format
  • the second baseband signal is a baseband in a CPRI format.
  • the baseband radio frequency interface is a CPRI interface.
  • the first baseband signal is an air interface user plane data area that is mapped to a CPRI message after the Ethernet signal of the client device is encoded by 4B/5B.
  • the first baseband signal is a baseband signal in a CPRI format generated by encapsulating an Ethernet signal of the client device into a general-package protocol GFP signal and then converting the GFP signal;
  • the first baseband signal is a baseband signal in a CPRI format generated by encapsulating an Ethernet signal of the client device into an air interface user plane data area of a CPRI message according to an advanced data link control HDLC protocol.
  • the first baseband signal is a baseband signal in an open base station architecture protocol OBSAI format
  • the original baseband signal is a baseband signal in an OBSAI format
  • the second baseband signal is in an OBSAI format.
  • the baseband signal, the baseband radio frequency interface is an OBSAI interface.
  • FIG. 9 is a schematic structural diagram of a system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention.
  • the baseband radio frequency interface bearer transmission system provided in this embodiment includes an indoor baseband processing unit 91 (hereinafter referred to as BBU) and a radio remote module 92 (hereinafter referred to as RRU).
  • BBU indoor baseband processing unit 91
  • RRU radio remote module
  • the base station data processing control device 93 (hereinafter referred to as REC) in the above-described embodiment is disposed on the BBU side, and the base transceiver station 94 (hereinafter referred to as RE) in the above-described embodiment of Fig. 8 is disposed on the RRU side.
  • the first client device 95 is disposed near the BBU, and the second client device 96 is disposed near the RRU, and the first client device 95 needs to send a service signal to the line between the BBU and the RRU.
  • the second client device 96 is taken as an example to describe a method for carrying and transmitting a baseband radio frequency interface.
  • the traffic signal from the first client device 95 into a first baseband signal in the REC in the direction in which the signal is transmitted from the REC to the RE; then the first baseband signal, and the low speed in the BBU to RRU direction
  • the original baseband signals are multiplexed together into a high-speed second baseband signal, and the high-speed second baseband signal is transmitted to the RE near-end through the optical fiber line between the BBU and the RRU.
  • the RE receives the high speed second baseband signal and separates the high speed second baseband signal to obtain the original baseband signal and the first baseband signal.
  • the original baseband signal is then transmitted to the RRU for processing by the original wireless module. And, the first baseband signal is restored to a traffic signal and transmitted to the second client device 96.
  • FIG. 10 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention.
  • the baseband radio frequency interface bearer transmission system provided in this embodiment includes an indoor baseband processing unit 101 (hereinafter referred to as BBU) and a radio remote module 102 (hereinafter referred to as RRU).
  • BBU indoor baseband processing unit 101
  • RRU radio remote module 102
  • the base station transceiver 103 (hereinafter referred to as RE) in the above-described embodiment of Fig. 8 is disposed on the BBU side, and the base station data processing control device 104 (hereinafter referred to as REC) in the above-described embodiment of Fig. 7 is disposed on the RRU side.
  • a client device 105 is taken as an example to describe a method for carrying and transmitting a baseband radio frequency interface.
  • FIG. 11 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention.
  • the baseband radio frequency interface bearer transmission system provided in this embodiment includes an indoor baseband processing unit 111 (hereinafter referred to as BBU) and a radio remote module 112 (hereinafter referred to as RRU).
  • the BBU side is configured with the base station data processing control apparatus in the above-described embodiment and the base station transceiver apparatus in the above-described embodiment of FIG. 8. Further, the RRU side is also configured with the base station data processing in the above-described embodiment of FIG. The control device and the base transceiver device in the above-described embodiment of FIG.
  • only the first client device 113 is disposed near the BBU, and is set near the RRU.
  • a second client device 114 is taken as an example to describe a method for carrying and transmitting a baseband radio frequency interface.
  • the bidirectional data transmission can be implemented, and the service signals of the first client device 113 to the second client device 114 are multiplexed in the baseband signal for transmission in the downlink direction, and the transmission method thereof is the same as the embodiment of FIG. 9 described above.
  • the service signal of the second client device 114 to the first client device 113 is multiplexed in the baseband signal for transmission, and the transmission method is the same as the embodiment of FIG. 10 described above, and is not allowed here. Narration.
  • the base station data processing control device when the base station data processing control device is disposed on the BBU side, the base station data processing control device may be provided inside the BBU or may be provided outside the BBU.
  • the base transceiver device When the base transceiver device is configured on the BBU side, the base transceiver device may be disposed inside the BBU or external to the BBU.
  • the base station data processing control device When the base station data processing control device is configured on the RRU side, the base station data processing control device may be disposed inside the RRU or may be disposed outside the RRU.
  • the base transceiver device When the base transceiver device is configured on the RRU side, the base transceiver device may be disposed inside the RRU or external to the RRU.
  • the baseband radio frequency interface bearer transmission system provided by the embodiment of the present invention, since the unit for processing the baseband signal and the service signal is disposed on the BBU side and the RRU side, the transmission line can be determined by detecting the signal on the RRU side or the BBU side. Whether a fault occurs (for example, whether the fiber between the RRU and the MUX device is interrupted), fault isolation and positioning are good, and it is easy to monitor.
  • the method, device and system for carrying and transmitting a baseband radio frequency interface provided by an embodiment of the present invention, by converting a service signal of a client device external to the remote system into a baseband signal, and then combining the original baseband signal between the RRU and the BBU It is multiplexed into the high-speed baseband signal to simultaneously transmit the original baseband signal and the service signal of the client device on a single physical medium between the RRU and the BBU.
  • the present invention can provide a high-bandwidth, low-cost information transmission service in a baseband link without adding physical resources. Moreover, by detecting signals on the RRU side or the BBU side, it can be determined whether the transmission line is faulty. , easy to monitor.
  • the storage medium may be a magnetic disk, an optical disk, or a read-only memory (Read-Only Memory, ROM) or random access memory (RAM).
  • ROM Read-Only Memory
  • RAM random access memory

Abstract

Disclosed is a method for baseband RF interface bearer transmission, comprising: transforming a service signal of a client device to a first baseband signal, wherein the client device is an external device of a remote system which an RF Remote Unit (RRU) and a Building Baseband Unit (BBU) belong to; multiplexing the first baseband signal and the original baseband signal between the RRU and the BBU to a second baseband signal, wherein the transmission rate of the second baseband signal is faster than the transmission rate of the original baseband signal; bearing the second baseband signal on the baseband RF interface, and transmitting the second baseband signal on the line between the RRU and the BBU. Also disclosed are a control apparatus for baseband data processing, base station transceiver apparatus and system. Through the embodiment of the invention, the service signal of the external client device of the remote system is mapped into the baseband signal and transmitted. Thereby the cost is low and the supervision is also easy to perform.

Description

基带射频接口承载传输的方法、 装置和系统  Baseband radio frequency interface bearer transmission method, device and system
本申请要求于 2012 年 6 月 29 日提交中国专利局、 申请号为 201210222497.2、 发明名称为 "基带射频接口承载传输的方法、 装置和系统" 的中国专利申请的优先权, 其全部内容通过引用结合在本申请中。 技术领域  This application claims priority to Chinese Patent Application No. 201210222497.2, entitled "Method, Apparatus and System for Carrying Transmission of Baseband RF Interfaces", which is filed on June 29, 2012, the entire contents of which are incorporated by reference. In this application. Technical field
本发明涉及通信技术领域, 尤其涉及一种基带射频接口承载传输的方法、 装置和系统。  The present invention relates to the field of communications technologies, and in particular, to a baseband radio frequency interface bearer transmission method, apparatus, and system.
背景技术 Background technique
在无线基站系统中,无线接入网为用户提供了无线接入功能。 RRU ( Radio In a wireless base station system, a wireless access network provides a wireless access function for a user. RRU (Radio
Remote Unit, 射频拉远模块 )和 BBU ( Building Base band Unit, 室内基带处 理单元 )之间通过光纤连接, 实现基带数据在 RRU和 BBU间的传输。 The remote unit (radio remote unit) and the BBU (Building Base Band Unit) are connected by optical fiber to realize the transmission of baseband data between the RRU and the BBU.
目前, RRU和 BBU之间使用 CPRI ( Common Public Radio Interface , 通 用公共无线接口)或者 OBSAI ( Open Base Station Architecture Initiative, 开放 基站架构协议)接口, 该接口一般仅供设备本身使用, 当 RRU附近有其它基 站或接入设备时, 需要通过波分复用技术共享传输, 成本很高。 而且, 随着 BBU hotel (是指将多个 BBU堆叠在一起 )应用越来越多, RRU和 BBU之间 的传输面临如何更大程度共享的问题。  Currently, a CPRI (Common Public Radio Interface) or an OBSAI (Open Base Station Architecture Initiative) interface is used between the RRU and the BBU. The interface is generally used only by the device itself. When a base station or an access device needs to share transmission by wavelength division multiplexing, the cost is high. Moreover, with the increasing number of applications of the BBU hotel (which stacks multiple BBUs together), the transmission between the RRU and the BBU faces the problem of how to share more.
如图 1所示,是现有技术的通过波分技术实现 RRU和 BBU之间的传输共 享的示意图。 回传链路只有一根光纤, RRU 和 PHS ( Personal Handy-phone System, 移动电话系统 )基站都需要将业务传递到右侧的 BBU和 ITX控制设 备(是 PHS 的局端设备)。 因此, 在单根光纤上, 需要使用四种波长承载两路 上下行信号。 其中, λ ΐ是 RRU发送到 BBU上的 CPRI信号, λ 3是 BBU发 送到 RRU上的 CPRI信号; λ 2是 PHS基站发送到 ΙΤΧ上的信号, λ 4是 ΙΤΧ 发送到 PHS基站上的以太网信号。收发设备间对应的收发波长需要固定下来, 不能随意更换。如果在单根光纤上需要增加其他的上下行应用, 那么新增的波 长不能与原先规划的波长冲突。  As shown in FIG. 1, it is a schematic diagram of a prior art transmission sharing between a RRU and a BBU by using a wavelength division technique. The return link has only one fiber, and the RRU and PHS (Personal Handy-phone System) base stations need to pass the service to the BBU and ITX control devices on the right (which are the central office devices of the PHS). Therefore, on a single fiber, four wavelengths are required to carry two uplink and downlink signals. Where λ ΐ is the CPRI signal sent by the RRU to the BBU, λ 3 is the CPRI signal sent by the BBU to the RRU; λ 2 is the signal sent by the PHS base station to the ,, λ 4 is 以太网 Ethernet sent to the PHS base station signal. The corresponding transceiver wavelength between the transceivers needs to be fixed and cannot be replaced at will. If additional uplink and downlink applications need to be added to a single fiber, the new wavelength cannot conflict with the originally planned wavelength.
现有技术的通过波分技术实现 RRU和 BBU之间的传输共享的方法,具有 如下缺点: 光纤上承载的信号波长需要一一对应规划,增加了网络设计维护成 本; 而且复用器( WDM MUX/DEMUX设备, 以下简称 MUX )是无源设备, 没有对应的网管设备进行维护, 当 RRU与 MUX设备之间的光纤中断, 或者 两个 MUX设备之间的光纤中断时, 仅仅从 RRU侧无法确定, 故障隔离及定 位性差。 The prior art method for implementing transmission sharing between the RRU and the BBU by using the wavelength division technology has the following disadvantages: The wavelength of the signal carried on the optical fiber needs one-to-one correspondence planning, which increases the network design and maintenance cost; and the multiplexer (WDM MUX) /DEMUX device, hereinafter referred to as MUX) is a passive device. There is no corresponding network management device for maintenance. When the fiber between the RRU and the MUX device is interrupted, or the fiber between the two MUX devices is interrupted, it can only be determined from the RRU side, and the fault isolation and positioning are poor.
发明内容 Summary of the invention
本发明的多个方面提出一种基带射频接口承载传输的方法、 装置和系统, 将拉远系统外部的客户端设备的业务信号映射到基带信号中进行传输, 成本 低, 且容易监控。  Aspects of the present invention provide a baseband radio frequency interface bearer transmission method, apparatus, and system for mapping a service signal of a client device external to a remote system to a baseband signal for transmission, which is low in cost and easy to monitor.
本发明的一个方面提供一种基带射频接口承载传输的方法, 包括: 将客户端设备的业务信号转换为第一基带信号;所述客户端设备是射频拉 远模块 RRU和室内基带处理单元 BBU所属的拉远系统的外部设备;  An aspect of the present invention provides a baseband radio frequency interface bearer transmission method, including: converting a service signal of a client device into a first baseband signal; the client device is a radio remote module RRU and an indoor baseband processing unit BBU Remote device of the remote system;
将所述第一基带信号, 以及所述 RRU和所述 BBU之间的原有基带信号,复 用为第二基带信号;所述第二基带信号的传输速率大于所述原有基带信号的传 输速率;  And multiplexing the first baseband signal and the original baseband signal between the RRU and the BBU into a second baseband signal; the transmission rate of the second baseband signal is greater than the transmission of the original baseband signal Rate
在基带射频接口上承载所述第二基带信号,通过所述 RRU和所述 BBU之间 的线路进行传输。  The second baseband signal is carried on the baseband radio frequency interface and transmitted through a line between the RRU and the BBU.
本发明的另一个方面提供一种基带射频接口承载传输的方法, 包括: 接收来自基带射频接口的第二基带信号;所述第二基带信号复用有对客户 端设备的业务信号进行转换后而获得的第一基带信号,以及 RRU和 BBU之间的 原有基带信号;所述客户端设备是所述 RRU和所述 BBU所属的拉远系统的外部 设备; 所述第二基带信号的传输速率大于所述原有基带信号的传输速率; 对所述第二基带信号进行分离, 获得第一基带信号和原有基带信号, 并将 所述原有基带信号传递给所述 RRU或所述 BBU;  Another aspect of the present invention provides a baseband radio frequency interface bearer transmission method, including: receiving a second baseband signal from a baseband radio frequency interface; the second baseband signal multiplexing is performed by converting a service signal of a client device Obtaining a first baseband signal, and an original baseband signal between the RRU and the BBU; the client device is an external device of the RRU and the remote system to which the BBU belongs; and a transmission rate of the second baseband signal The transmission rate of the original baseband signal is greater than; the second baseband signal is separated, the first baseband signal and the original baseband signal are obtained, and the original baseband signal is transmitted to the RRU or the BBU;
将所述第一基带信号还原成业务信号, 并传递给所述客户端设备。  The first baseband signal is restored to a traffic signal and passed to the client device.
本发明的另一个方面提供一种基站数据处理控制装置, 包括:  Another aspect of the present invention provides a base station data processing control apparatus, including:
转换模块, 用于将客户端设备的业务信号转换为第一基带信号; 所述客户 端设备是射频拉远模块 RRU和室内基带处理单元 BBU所属的拉远系统的外部 设备;  a conversion module, configured to convert a service signal of the client device into a first baseband signal; the client device is an external device of the remote system of the radio remote module RRU and the indoor baseband processing unit BBU;
复用模块,将所述第一基带信号, 以及所述 RRU和所述 BBU之间的原有基 带信号, 复用为第二基带信号; 所述第二基带信号的传输速率大于所述原有基 带信号的传输速率; 和, 发送模块,用于在基带射频接口上承载所述第二基带信号,通过所述 RRU 和所述 BBU之间的线路进行传输。 The multiplexing module multiplexes the first baseband signal and the original baseband signal between the RRU and the BBU into a second baseband signal; the transmission rate of the second baseband signal is greater than the original Baseband signal transmission rate; and, And a sending module, configured to carry the second baseband signal on the baseband radio frequency interface, and transmit the data between the RRU and the BBU.
本发明的另一个方面提供一种基站收发装置, 包括:  Another aspect of the present invention provides a base transceiver apparatus, including:
接收模块, 用于接收来自基带射频接口的第二基带信号; 所述第二基带信 号复用有对客户端设备的业务信号进行转换后而获得的第一基带信号, 以及 RRU和 BBU之间的原有基带信号; 所述客户端设备是所述 RRU和所述 BBU所 属的拉远系统的外部设备;所述第二基带信号的传输速率大于所述原有基带信 号的传输速率;  a receiving module, configured to receive a second baseband signal from the baseband radio frequency interface; the second baseband signal is multiplexed with a first baseband signal obtained by converting a service signal of the client device, and between the RRU and the BBU The original baseband signal; the client device is an external device of the RRU and the remote system to which the BBU belongs; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal;
分离模块, 用于对所述第二基带信号进行分离, 获得第一基带信号和原有 基带信号, 并将所述原有基带信号传递给所述 RRU或所述 BBU; 和,  a separating module, configured to separate the second baseband signal, obtain a first baseband signal and an original baseband signal, and transmit the original baseband signal to the RRU or the BBU;
还原模块, 用于将所述第一基带信号还原成业务信号, 并传递给所述客户 端设备。  And a restoration module, configured to restore the first baseband signal to a service signal and deliver the signal to the client device.
本发明的另一个方面提供一种基带射频接口承载传输的系统, 包括 BBU 和 RRU;  Another aspect of the present invention provides a baseband radio frequency interface bearer transmission system, including a BBU and an RRU;
在所述 BBU侧配置有基站数据处理控制装置,在所述 RRU侧配置有基站收 发装置;  a base station data processing control device is disposed on the BBU side, and a base station transceiver device is disposed on the RRU side;
或者,在所述 RRU侧配置有基站数据处理控制装置,在所述 BBU侧配置有 基站收发装置;  Alternatively, a base station data processing control device is disposed on the RRU side, and a base station transceiver device is disposed on the BBU side;
或者,在所述 BBU侧配置有基站数据处理控制装置和基站收发装置,在所 述 RRU侧配置有基站数据处理控制装置和基站收发装置。  Alternatively, a base station data processing control device and a base transceiver station are disposed on the BBU side, and a base station data processing control device and a base transceiver device are disposed on the RRU side.
本发明实施例通过将拉远系统外部的客户端设备的业务信号转换为基带 信号, 再与 RRU和 BBU之间的原有基带信号, 一起复用为高速的基带信号中, 从而实现在 RRU和 BBU之间的单一的物理介质上同时传输原有基带信号及客 户端设备的业务信号。本发明能够在不新增物理资源的情况下,在基带链路中 提供高带宽的、低成本的信息传输服务;而且通过检测 RRU侧或 BBU侧的信号, 就能判断出传输线路是否发生故障, 容易监控。  In the embodiment of the present invention, the service signal of the client device outside the remote system is converted into a baseband signal, and then the original baseband signal between the RRU and the BBU is multiplexed into a high-speed baseband signal, thereby realizing the RRU and The original baseband signal and the service signal of the client device are simultaneously transmitted on a single physical medium between the BBUs. The present invention can provide a high-bandwidth, low-cost information transmission service in a baseband link without adding physical resources; and by detecting a signal on the RRU side or the BBU side, it can determine whether the transmission line is faulty. , easy to monitor.
附图说明 DRAWINGS
为了更清楚地说明本发明实施例或现有技术中的技术方案,下面将对实施 例中所需要使用的附图作简单地介绍, 显而易见地, 下面描述中的附图仅仅是 本发明的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的 前提下, 还可以根据这些附图获得其他的附图。 In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings to be used in the embodiments will be briefly described below. Obviously, the drawings in the following description are only some of the present invention. Embodiments, for those of ordinary skill in the art, without creative labor Further drawings can also be obtained from these drawings.
图 1是现有技术的通过波分技术实现 RRU和 BBU之间的传输共享的示意 图;  1 is a schematic diagram of the prior art implementing transmission sharing between an RRU and a BBU by using a wavelength division technique;
图 2是本发明实施例中一种基带射频接口承载传输的方法的流程示意图; 图 3是本发明实施例中一种以太网信号转换为基带信号的示意图; 图 4是本发明实施例中另一种以太网信号转换为基带信号的示意图; 图 5是本发明实施例中又一种以太网信号转换为基带信号的示意图; 图 6是本发明实施例中另一种基带射频接口承载传输的方法的流程示意 图;  2 is a schematic flowchart of a method for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention; FIG. 3 is a schematic diagram of converting an Ethernet signal into a baseband signal according to an embodiment of the present invention; FIG. 5 is a schematic diagram of another Ethernet signal converted to a baseband signal according to an embodiment of the present invention; FIG. 6 is another baseband radio frequency interface bearer transmission according to an embodiment of the present invention; Schematic diagram of the process;
图 7是本发明实施例中一种基站数据处理控制装置的结构示意图; 图 8是本发明实施例中一种基站收发装置的结构示意图;  7 is a schematic structural diagram of a base station data processing control apparatus according to an embodiment of the present invention; FIG. 8 is a schematic structural diagram of a base station transceiver apparatus according to an embodiment of the present invention;
图 9是本发明实施例中一种基带射频接口承载传输的系统的结构示意图; 图 10是本发明实施例中另一种基带射频接口承载传输的系统的结构示意 图;  9 is a schematic structural diagram of a system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention; FIG. 10 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention;
图 11是本发明实施例中又一种基带射频接口承载传输的系统的结构示意 图。  FIG. 11 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention.
具体实施方式 detailed description
下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清 楚、 完整地描述, 显然, 所描述的实施例仅仅是本发明一部分实施例, 而不是 全部的实施例。基于本发明中的实施例, 本领域普通技术人员在没有作出创造 性劳动前提下所获得的所有其他实施例, 都属于本发明保护的范围。  BRIEF DESCRIPTION OF THE DRAWINGS The technical solutions in the embodiments of the present invention will be described in detail below with reference to the accompanying drawings. All other embodiments obtained by a person of ordinary skill in the art based on the embodiments of the present invention without creative work are within the scope of the present invention.
参见图 2, 是本发明实施例中一种基带射频接口承载传输的方法的流程示 意图。 本实施例提供的基带射频接口承载传输的方法, 包括以下步骤:  Referring to FIG. 2, it is a schematic flowchart of a method for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention. The method for carrying and transmitting a baseband radio frequency interface provided by this embodiment includes the following steps:
521 , 将客户端设备的业务信号转换为第一基带信号; 所述客户端设备是 射频拉远模块 RRU和室内基带处理单元 BBU所属的拉远系统的外部设备。  521: Convert the service signal of the client device into a first baseband signal; the client device is an external device of the remote system of the radio remote module RRU and the indoor baseband processing unit BBU.
522, 将所述第一基带信号, 以及所述 RRU和所述 BBU之间的原有基带 信号, 复用为第二基带信号; 所述第二基带信号的传输速率大于所述原有基带 信号的传输速率。  522. The first baseband signal, and the original baseband signal between the RRU and the BBU, are multiplexed into a second baseband signal; the second baseband signal has a transmission rate greater than the original baseband signal. Transmission rate.
523 , 在基带射频接口上承载所述第二基带信号, 通过所述 RRU和所述 BBU之间的线路进行传输。 其中,客户端设备是 RRU和 BBU所属的拉远系统之外的设备,需要共享 RRU和 BBU之间的物理线路进行业务数据的传输。 例如, 所述客户端设备为 分布式基站外部接入的设备、 视频监控设备等。 523. The second baseband signal is carried on a baseband radio frequency interface, and is transmitted through a line between the RRU and the BBU. The client device is a device other than the remote system to which the RRU and the BBU belong, and needs to share the physical line between the RRU and the BBU to transmit service data. For example, the client device is a device externally accessed by a distributed base station, a video monitoring device, or the like.
所述客户端设备的业务信号可以为同步信号, 或者异步信号。 其中, 异步 信号包括但不限于 Ethernet (以太网)信号和 ATM ( Asynchronous Transfer Mode, 异步传输模式)信号。  The service signal of the client device may be a synchronization signal or an asynchronous signal. Among them, asynchronous signals include, but are not limited to, Ethernet (Ethernet) signals and ATM (Asynchronous Transfer Mode) signals.
在一个可选的实施方式中, 所述第一基带信号为通用公共无线接口 CPRI 格式的基带信号, 所述原有基带信号为 CPRI格式的基带信号, 所述第二基带 信号为 CPRI格式的基带信号, 所述基带射频接口为 CPRI接口。  In an optional implementation manner, the first baseband signal is a baseband signal in a CPRI format of a common public radio interface, the original baseband signal is a baseband signal in a CPRI format, and the second baseband signal is a baseband in a CPRI format. Signal, the baseband radio frequency interface is a CPRI interface.
在另一个可选的实施方式中, 所述第一基带信号为开放基站架构协议 In another optional implementation manner, the first baseband signal is an open base station architecture protocol.
OBSAI格式的基带信号, 所述原有基带信号为 OBSAI格式的基带信号, 所述 第二基带信号为 OBSAI格式的基带信号, 所述基带射频接口为 OBSAI接口。 The baseband signal in the OBSAI format, the original baseband signal is a baseband signal in an OBSAI format, the second baseband signal is a baseband signal in an OBSAI format, and the baseband radio frequency interface is an OBSAI interface.
需要说明的是, 上述步骤 S21〜S23可以由 RRU内置的或者外置的基站数 据处理控制装置执行, 或者由 BBU内置的或者外置的基站数据处理控制装置 执行, 或者由客户端设备内置的或者外置的基站数据处理控制装置执行。 下面结合图 3〜图 5 ,仅以客户端设备的业务信号为以太网信号,原有基带 信号、 第一基带信号和第二基带信号均为 CPRI信号为例, 对上述步骤 S21中 的将业务信号转换为基带信号的方法进行详细说明。  It should be noted that the foregoing steps S21 to S23 may be performed by the RRU built-in or external base station data processing control device, or by the BBU built-in or external base station data processing control device, or built in by the client device or The external base station data processing control device executes. As shown in FIG. 3 to FIG. 5, only the service signal of the client device is an Ethernet signal, and the original baseband signal, the first baseband signal, and the second baseband signal are both CPRI signals, and the service in the above step S21 is taken as an example. A method of converting a signal into a baseband signal will be described in detail.
在一个可选的实施方式中, 在步骤 S21 , 所述将客户端设备的业务信号 转换为第一基带信号, 包括: 将客户端设备的以太网信号经过 4B/5B编码后, 映射到 CPRI报文的空口用户面数据区域中,生成 CPRI格式的第一基带信号。  In an optional implementation manner, in step S21, the converting the service signal of the client device into the first baseband signal includes: mapping the Ethernet signal of the client device to the CPRI report after being encoded by the 4B/5B In the air interface user plane data area of the text, a first baseband signal in a CPRI format is generated.
具体的, 如图 3所示, 常用的以太网报文( Ethernet packet ) 的格式包括: Preamble (前导码)、 SFD ( Start Frame Delimiter,帧定界标识)、 DA ( Destination Address, 目的 MAC地址)、 SA ( Source Address , 源 MAC地址)、 L/T ( Length or Type , 长度或者类型)、 Data/Padding (数据 /填充)、 FCS ( Frame Check Sequence, 帧校马全顺序)和 Extension (尾扩展)。  Specifically, as shown in FIG. 3, the format of a commonly used Ethernet packet includes: Preamble, SFD (Start Frame Delimiter), and DA (Destination Address). , SA (Source Address), L/T (Length or Type), Data/Padding, FCS (Frame Check Sequence), and Extension (tail extension) ).
4B/5B编码的英文全称为 Encoding ( decoding ) of 4bit data to ( from ) five-bit code-groups„ :¾口图 3所示, SSD的英文全称为 Start-of- Stream delimiter , 即流起始定界符; ESD的英文全称为 End-of-Stream delimiter , 即流终止定界 符; Idle为空闲码, 一般为 11111。 其中, SSD和 ESD—共占用两个 code (码 字), 共 lO bit; Idle占用两个 code, 为 10 bit。 4B/5B encoding in English is called Encoding (decoding) of 4bit data to (from ) five-bit code-groups „ : 3⁄4 port shown in Figure 3, SSD English full name is Start-of-Stream delimiter, that is, stream start Delimiter; ESD English is called End-of-Stream delimiter, that is, flow termination and delimitation Idle is an idle code, usually 11111. Among them, SSD and ESD—take up two codes (codewords) for a total of 10 bits; Idle occupies two codes, which is 10 bits.
在本实施例中, 对以太网>¾文进行 4B/5B编码后, 将转换后的 5Bit数据 流直接映射到 CPRI报文的空口用户面数据区域( IQ Data Block ) 中, 能够获 得 CPRI格式的基带信号。 其中, 空口用户面数据区域的数据, 是数字化的基 带数据。 在另一个可选的实施方式中, 在步骤 S21 , 所述将客户端设备的业务信号 转换为第一基带信号, 包括: 将客户端设备的以太网信号封装到通用封装协议 GFP信号中, 再对所述 GFP信号进行转换, 生成 CPRI格式的第一基带信号。  In this embodiment, after performing 4B/5B encoding on the Ethernet>3⁄4 text, the converted 5Bit data stream is directly mapped into the air interface user data area ( IQ Data Block) of the CPRI message, and the CPRI format can be obtained. Baseband signal. The data of the air interface user plane data area is digitized baseband data. In another optional implementation, in step S21, the converting the service signal of the client device to the first baseband signal comprises: encapsulating the Ethernet signal of the client device into a general-purpose encapsulation protocol GFP signal, and then The GFP signal is converted to generate a first baseband signal in CPRI format.
具体的, :¾口图 4所示, GFP ( Generic Framing Procedure, 通用去:] "装十办议) 报文包括:核头( Core Header )、净荷头( Payload Header )、以太网报文( Ethernet packet )和循环冗余校验码 ( Cyclic Redundancy Check, 简称 CRC )。  Specifically, the 3⁄4 port is shown in Figure 4. The GFP (Generic Framing Procedure) message contains: Core Header, Payload Header, and Ethernet Packet. (Ethernet packet) and Cyclic Redundancy Check (CRC).
其中, GFP报文的前 4个字节是核头, 首两字节指示 GFP报文长度, 后 两字节是前两字节的校验。 在核头之后是净荷头, 所述净荷头包括: 净荷类型 标识( Payload Type Identifier,简称 PTI )、净荷校验指示( Payload FCS Indicator, 简称 PFI )、 扩展头标识( Extension Header Identifier, 简称 EHI )、 用户净荷标 识( User Payload Identifier, 简称 UPI )、 类型头错误校验 ( Type Header Error Control )和扩展头 ( Extension Header )。  The first four bytes of the GFP packet are the kernel header, the first two bytes indicate the length of the GFP packet, and the last two bytes are the first two bytes of the check. After the kernel header is a payload header, the payload header includes: a Payload Type Identifier (PTI), a Payload FCS Indicator (PFI), and an Extension Header Identifier. , referred to as EHI), User Payload Identifier (UPI), Type Header Error Control, and Extension Header.
在本实施例中, 在将以太网信号封装到 GFP信号时, 直接将以太网报文 封装在 GFP 净荷中; 且在用户净荷标识中指示 0x1 , 表示以太网净荷。 GFP 报文的其他字段按照 GFP协议生成。 其中, 以太网报文与图 3所示的通用的 以太网报文的结构相同, 即以太网报文是从 DA开始, 到 Extension结束。  In this embodiment, when the Ethernet signal is encapsulated into the GFP signal, the Ethernet packet is directly encapsulated in the GFP payload; and 0x1 is indicated in the user payload identifier, indicating the Ethernet payload. The other fields of the GFP message are generated according to the GFP protocol. The Ethernet packet has the same structure as the general Ethernet packet shown in Figure 3, that is, the Ethernet packet starts from the DA and ends at the Extension.
将以太网信号封装到 GFP信号之后, 再对封装后的 GFP信号进行 CPRI 的封装, 获得 CPRI格式的基带信号。  After the Ethernet signal is encapsulated into the GFP signal, the encapsulated GFP signal is encapsulated by CPRI to obtain a baseband signal in the CPRI format.
需要说明的是, 图 4所示的 "GFP-F" 是通用封装协议中, 将客户帧封装 到通用封装帧的其中一种方式。 在又一个可选的实施方式中, 在步骤 S21 , 所述将客户端设备的业务信号 转换为第一基带信号, 包括: 根据 HDLC ( High-Level Data Link Control, 高 级数据链路控制)协议, 将客户端设备的以太网信号封装到 CPRI报文的空口 用户面数据区域中, 生成 CPRI格式的第一基带信号。 It should be noted that the "GFP-F" shown in FIG. 4 is one of the methods of encapsulating a client frame into a general-purpose encapsulation frame in a general encapsulation protocol. In still another optional implementation, in step S21, the converting the service signal of the client device to the first baseband signal includes: according to HDLC (High-Level Data Link Control, high) The data link control protocol encapsulates the Ethernet signal of the client device into the air interface user plane data area of the CPRI message to generate a first baseband signal in the CPRI format.
需要说明的是, 本实施例除了可以按照 HDLC协议封装以太网信号, 还 可以按照其他的一系列类 HDLC协议( HDLC-Link协议)封装以太网信号, 例如 PPP (点到点)、 LAPS ( Link Access Protocol-SDH, 链^妻入协议 -SDH ) 等相关链路适配协议; 其中, SDH的全称为 Synchronous Digital Hierarchy, 即 同步数字体系。  It should be noted that, in this embodiment, in addition to the Ethernet signal can be encapsulated according to the HDLC protocol, Ethernet signals such as PPP (Point to Point) and LAPS (Link) can be encapsulated according to other series of HDLC-like protocols (HDLC-Link protocol). Access Protocol-SDH, Link-Incoming Protocol-SDH) and other related link adaptation protocols; Among them, SDH is called Synchronous Digital Hierarchy, which is a synchronous digital system.
如图 5所示, HDLC-Link协议的主要特征是使用 0x7E作为定帧字节, 确 定报文长度。 对于原有报文内的 0x7E使用 0x7D5E字节代替。  As shown in Figure 5, the main feature of the HDLC-Link protocol is to use 0x7E as the framing byte to determine the message length. Use 0x7D5E bytes instead of 0x7E in the original message.
在本实施例中, 以太网报文与图 3所示的通用的以太网报文的结构相同, 即以太网报文是从 DA开始, 到 Extension结束。 本发明能够利用基带射频 CPRI或 OBSAI带内的未使用的带宽, 提供高 带宽、 易监控、 低成本的信息传输服务, 下面以基带信号为 CPRI信号为例进 行说明。  In this embodiment, the Ethernet packet has the same structure as the general Ethernet packet shown in FIG. 3, that is, the Ethernet packet starts from the DA and ends at the Extension. The present invention can provide high bandwidth, easy to monitor, and low cost information transmission services by utilizing unused bandwidth in the baseband radio frequency CPRI or OBSAI band. The following uses the baseband signal as the CPRI signal as an example.
一般来说, CPRI信号为下述 7种信号中的一种:  In general, the CPRI signal is one of the following seven signals:
CPRI线速率选项 1 614.4Mbits;  CPRI line rate option 1 614.4Mbits;
CPRI线速率选项 2 1228.8Mbits(2*614.4Mbits)  CPRI line rate option 2 1228.8Mbits (2*614.4Mbits)
CPRI线速率选项 3 2457.6Mbits(4*614.4Mbits)  CPRI line rate option 3 2457.6Mbits (4*614.4Mbits)
CPRI线速率选项 4 3072.0Mbits(5*614.4Mbits)  CPRI line rate option 4 3072.0Mbits (5*614.4Mbits)
CPRI线速率选项 5 4915.2Mbits(8*614.4Mbits)  CPRI line rate option 5 4915.2Mbits (8*614.4Mbits)
CPRI线速率选项 6 6144.0Mbits( 10*614.4Mbits);  CPRI line rate option 6 6144.0 Mbits (10*614.4 Mbits);
CPRI线速率选项 Ί 9830.4Mbits(16*614.4Mbits)。  CPRI line rate option Ί 9830.4Mbits (16*614.4Mbits).
假设 RRU和 BBU之间的原有基带信号(原空口信号 )的传输速率要求为 2457.6Mbits。 而传输线路上 CPRI能够提供 4915.2Mbits的传输速率。 如果仅 传输原空口信号, 即传输线路实际上只使用了 2457.6Mbits, 那么剩下的部分 就是基带射频 CPRI带内的未使用的带宽。 相对于传输速率为 4915.2Mbits的 基带信号来说, 传输速率为 2457.6Mbits的基带信号就是低速的基带信号。  Assume that the transmission rate of the original baseband signal (original air interface signal) between the RRU and the BBU is 2457.6 Mbits. On the transmission line, CPRI can provide a transmission rate of 4915.2 Mbits. If only the original air interface signal is transmitted, that is, the transmission line actually uses only 2457.6 Mbits, then the remaining part is the unused bandwidth in the baseband radio frequency CPRI band. The baseband signal with a transmission rate of 2457.6 Mbits is a low-speed baseband signal relative to a baseband signal with a transmission rate of 4915.2 Mbits.
本实施例将客户端设备的业务信号转换为基带信号, 再与所述 RRU 和 BBU之间的低速的原有基带信号( 2457.6Mbits ), 一起复用为高速的基带信号 ( 4915.2Mbits的数据), 然后在 4915.2Mbits的传输线路上传输, 从而能够利 用基带射频 CPRI带内的未使用的带宽, 提供高带宽、 易监控、 低成本的信息 传输服务。在不新增物理资源的情况下, 实现在单一的物理介质上同时传输原 有基带信号, 以及客户端设备的业务信号。 参见图 6, 是本发明实施例中另一种基带射频接口承载传输的方法的流程 示意图。 本实施例提供的基带射频接口承载传输的方法, 包括以下步骤: In this embodiment, the service signal of the client device is converted into a baseband signal, and then the low-speed original baseband signal (2457.6 Mbits) between the RRU and the BBU is multiplexed into a high-speed baseband signal. (4915.2 Mbits of data), then transmitted over the 4915.2 Mbits transmission line, enabling the use of unused bandwidth within the baseband radio frequency CPRI band to provide high bandwidth, easy to monitor, low cost information transmission services. The original baseband signal and the service signal of the client device are simultaneously transmitted on a single physical medium without adding physical resources. FIG. 6 is a schematic flowchart diagram of another method for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention. The method for carrying and transmitting a baseband radio frequency interface provided by this embodiment includes the following steps:
561 , 接收来自基带射频接口的第二基带信号; 所述第二基带信号复用有 对客户端设备的业务信号进行转换后而获得的第一基带信号, 以及 RRU 和 BBU之间的原有基带信号; 所述客户端设备是所述 RRU和所述 BBU所属的 拉远系统的外部设备;所述第二基带信号的传输速率大于所述原有基带信号的 传输速率。  561. Receive a second baseband signal from a baseband radio frequency interface. The second baseband signal is multiplexed with a first baseband signal obtained by converting a service signal of the client device, and an original baseband between the RRU and the BBU. The client device is an external device of the RRU and the remote system to which the BBU belongs; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal.
562,对所述第二基带信号进行分离,获得第一基带信号和原有基带信号, 并将所述原有基带信号传递给所述 RRU或所述 BBU。  562. Separate the second baseband signal, obtain a first baseband signal and an original baseband signal, and transmit the original baseband signal to the RRU or the BBU.
S63 , 将所述第一基带信号还原成业务信号, 并传递给所述客户端设备。 其中,客户端设备是 RRU和 BBU所属的拉远系统之外的设备,需要共享 RRU和 BBU之间的物理线路进行业务数据的传输。 例如, 所述客户端设备为 分布式基站外部接入的设备、 视频监控设备等。  S63. Restore the first baseband signal to a service signal and transmit the signal to the client device. The client device is a device other than the remote system to which the RRU and the BBU belong, and needs to share the physical line between the RRU and the BBU to transmit service data. For example, the client device is a device externally accessed by a distributed base station, a video monitoring device, or the like.
所述客户端设备的业务信号可以为同步信号, 或者异步信号。 其中, 异步 信号包括但不限于 Ethernet (以太网)信号和 ATM ( Asynchronous Transfer Mode, 异步传输模式)信号。  The service signal of the client device may be a synchronization signal or an asynchronous signal. Among them, asynchronous signals include, but are not limited to, Ethernet (Ethernet) signals and ATM (Asynchronous Transfer Mode) signals.
在一个可选的实施方式中, 所述第一基带信号为通用公共无线接口 CPRI 格式的基带信号, 所述原有基带信号为 CPRI格式的基带信号, 所述第二基带 信号为 CPRI格式的基带信号, 所述基带射频接口为 CPRI接口。  In an optional implementation manner, the first baseband signal is a baseband signal in a CPRI format of a common public radio interface, the original baseband signal is a baseband signal in a CPRI format, and the second baseband signal is a baseband in a CPRI format. Signal, the baseband radio frequency interface is a CPRI interface.
当所述客户端设备的业务信号为以太网信号时,所述第一基带信号是将所 述客户端设备的以太网信号经过 4B/5B编码后, 映射到 CPRI 文的空口用户 面数据区域中, 而生成的 CPRI格式的基带信号;  When the service signal of the client device is an Ethernet signal, the first baseband signal is mapped to the air interface user plane data area of the CPRI file after the Ethernet signal of the client device is encoded by 4B/5B. And generating a baseband signal in the CPRI format;
或者,所述第一基带信号是将所述客户端设备的以太网信号封装到通用封 装协议 GFP信号中, 再对所述 GFP信号进行转换, 而生成的 CPRI格式的基 带信号; 或者, 所述第一基带信号是根据高级数据链路控制 HDLC协议, 将所述 客户端设备的以太网信号封装到 CPRI报文的空口用户面数据区域中, 而生成 的 CPRI格式的基带信号。 Or the first baseband signal is a baseband signal in a CPRI format generated by encapsulating an Ethernet signal of the client device into a general encapsulation protocol GFP signal and then converting the GFP signal; Alternatively, the first baseband signal is a baseband signal of a CPRI format generated by encapsulating an Ethernet signal of the client device into an air interface user plane data area of a CPRI message according to an advanced data link control HDLC protocol.
在另一个可选的实施方式中, 所述第一基带信号为开放基站架构协议 OBSAI格式的基带信号, 所述原有基带信号为 OBSAI格式的基带信号, 所述 第二基带信号为 OBSAI格式的基带信号, 所述基带射频接口为 OBSAI接口。  In another optional implementation manner, the first baseband signal is a baseband signal in an open base station architecture protocol OBSAI format, the original baseband signal is a baseband signal in an OBSAI format, and the second baseband signal is in an OBSAI format. The baseband signal, the baseband radio frequency interface is an OBSAI interface.
需要说明的是, 上述步骤 S61〜S63可以由 RRU内置的或者外置的基站数 据处理控制装置执行, 或者由 BBU内置的或者外置的基站数据处理控制装置 执行, 或者由客户端设备内置的或者外置的基站数据处理控制装置执行。 参见图 7, 是本发明实施例中一种基站数据处理控制装置的结构示意图。 本实施例提供的基站数据处理控制装置(Radio Equipment Control, 简称 REC ), 能够实施上述图 2的实施例中的基带射频接口承载传输的方法。 所述 基站数据处理控制装置包括转换模块 71、复用模块 72和发送模块 73, 具体如 下:  It should be noted that the above steps S61 to S63 may be performed by the RRU built-in or external base station data processing control device, or by the BBU built-in or external base station data processing control device, or built in by the client device or The external base station data processing control device executes. FIG. 7 is a schematic structural diagram of a base station data processing control apparatus according to an embodiment of the present invention. The base station data processing control device (Radio Equipment Control, REC for short) provided in this embodiment can implement the baseband radio frequency interface bearer transmission method in the foregoing embodiment of FIG. 2. The base station data processing control apparatus includes a conversion module 71, a multiplexing module 72, and a transmitting module 73, as follows:
转换模块 71 , 用于将客户端设备的业务信号转换为第一基带信号; 所述 客户端设备是射频拉远模块 RRU和室内基带处理单元 BBU所属的拉远系统的 外部设备。  The conversion module 71 is configured to convert the service signal of the client device into the first baseband signal; the client device is an external device of the remote system of the radio remote module RRU and the indoor baseband processing unit BBU.
复用模块 72, 用于将所述第一基带信号, 以及所述 RRU和所述 BBU之 间的原有基带信号, 复用为第二基带信号; 所述第二基带信号的传输速率大于 所述原有基带信号的传输速率。  The multiplexing module 72 is configured to multiplex the first baseband signal and the original baseband signal between the RRU and the BBU into a second baseband signal; the second baseband signal has a higher transmission rate than the The transmission rate of the original baseband signal is described.
发送模块 73 , 用于在基带射频接口上承载所述第二基带信号, 通过所述 RRU和所述 BBU之间的线路进行传输。  The sending module 73 is configured to carry the second baseband signal on the baseband radio frequency interface, and transmit the data between the RRU and the BBU.
其中,客户端设备是 RRU和 BBU所属的拉远系统之外的设备,需要共享 RRU和 BBU之间的物理线路进行业务数据的传输。 例如, 所述客户端设备为 分布式基站外部接入的设备、 视频监控设备等。  The client device is a device other than the remote system to which the RRU and the BBU belong, and needs to share the physical line between the RRU and the BBU to transmit service data. For example, the client device is a device externally accessed by a distributed base station, a video monitoring device, or the like.
所述客户端设备的业务信号可以为同步信号, 或者异步信号。 其中, 异步 信号包括但不限于 Ethernet (以太网)信号和 ATM ( Asynchronous Transfer Mode, 异步传输模式)信号。  The service signal of the client device may be a synchronization signal or an asynchronous signal. Among them, asynchronous signals include, but are not limited to, Ethernet (Ethernet) signals and ATM (Asynchronous Transfer Mode) signals.
在一个可选的实施方式中, 所述第一基带信号为通用公共无线接口 CPRI 格式的基带信号, 所述原有基带信号为 CPRI格式的基带信号, 所述第二基带 信号为 CPRI格式的基带信号, 所述基带射频接口为 CPRI接口。 In an optional implementation manner, the first baseband signal is a general public radio interface CPRI The baseband signal of the format, the original baseband signal is a baseband signal in a CPRI format, the second baseband signal is a baseband signal in a CPRI format, and the baseband radio frequency interface is a CPRI interface.
当所述客户端设备的业务信号为以太网信号时, 所述转换模块 71将客户 端设备的以太网信号经过 4B/5B编码后, 映射到 CPRI 文的空口用户面数据 区域中, 生成 CPRI格式的第一基带信号;  When the service signal of the client device is an Ethernet signal, the conversion module 71 performs the 4B/5B encoding on the Ethernet signal of the client device, and then maps the data to the air interface user plane data area of the CPRI file to generate a CPRI format. First baseband signal;
或者, 所述转换模块 71将客户端设备的以太网信号封装到通用封装协议 GFP信号中, 再对所述 GFP信号进行转换, 生成 CPRI格式的第一基带信号; 或者, 所述转换模块 71根据高级数据链路控制 HDLC协议, 将客户端设 备的以太网信号封装到 CPRI报文的空口用户面数据区域中, 生成 CPRI格式 的第一基带信号。  Alternatively, the conversion module 71 encapsulates the Ethernet signal of the client device into a general-purpose encapsulation protocol GFP signal, and then converts the GFP signal to generate a first baseband signal in a CPRI format; or, the conversion module 71 is configured according to The advanced data link controls the HDLC protocol, and encapsulates the Ethernet signal of the client device into the air interface user plane data area of the CPRI message to generate a first baseband signal in the CPRI format.
在另一个可选的实施方式中, 所述第一基带信号为开放基站架构协议 In another optional implementation manner, the first baseband signal is an open base station architecture protocol.
OBSAI格式的基带信号, 所述原有基带信号为 OBSAI格式的基带信号, 所述 第二基带信号为 OBSAI格式的基带信号, 所述基带射频接口为 OBSAI接口。 参见图 8, 是本发明实施例中一种基站收发装置的结构示意图。 The baseband signal in the OBSAI format, the original baseband signal is a baseband signal in an OBSAI format, the second baseband signal is a baseband signal in an OBSAI format, and the baseband radio frequency interface is an OBSAI interface. FIG. 8 is a schematic structural diagram of a base transceiver apparatus according to an embodiment of the present invention.
本实施例提供的基站收发装置(Radio Equipment, 简称 RE ), 能够实施上 述图 6的实施例中的基带射频接口承载传输的方法。所述基站收发装置包括接 收模块 81、 分离模块 82和还原模块 83 , 具体如下:  The base station transceiver device (Radio Equipment, RE for short) provided in this embodiment can implement the method for baseband radio frequency interface bearer transmission in the embodiment of FIG. 6. The base transceiver device includes a receiving module 81, a separating module 82, and a restoring module 83, as follows:
接收模块 81 , 用于接收来自基带射频接口的第二基带信号; 所述第二基 带信号复用有对客户端设备的业务信号进行转换后而获得的第一基带信号,以 及 RRU和 BBU之间的原有基带信号;所述客户端设备是所述 RRU和所述 BBU 所属的拉远系统的外部设备;所述第二基带信号的传输速率大于所述原有基带 信号的传输速率。  The receiving module 81 is configured to receive a second baseband signal from the baseband radio frequency interface; the second baseband signal is multiplexed with a first baseband signal obtained by converting a service signal of the client device, and between the RRU and the BBU The original baseband signal; the client device is an external device of the RRU and the remote system to which the BBU belongs; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal.
分离模块 82, 用于对所述第二基带信号进行分离, 获得第一基带信号和 原有基带信号, 并将所述原有基带信号传递给所述 RRU或所述 BBU。  The separating module 82 is configured to separate the second baseband signal, obtain a first baseband signal and an original baseband signal, and transmit the original baseband signal to the RRU or the BBU.
还原模块 83 , 用于将所述第一基带信号还原成业务信号, 并传递给所述 客户端设备。  The restoration module 83 is configured to restore the first baseband signal to a service signal and transmit the signal to the client device.
所述客户端设备的业务信号可以为同步信号, 或者异步信号。 其中, 异步 信号包括但不限于 Ethernet (以太网)信号和 ATM ( Asynchronous Transfer Mode, 异步传输模式)信号。 在一个可选的实施方式中, 所述第一基带信号为通用公共无线接口 CPRI 格式的基带信号, 所述原有基带信号为 CPRI格式的基带信号, 所述第二基带 信号为 CPRI格式的基带信号, 所述基带射频接口为 CPRI接口。 The service signal of the client device may be a synchronization signal or an asynchronous signal. Among them, asynchronous signals include, but are not limited to, Ethernet (ATM) signals and ATM (Asynchronous Transfer Mode) signals. In an optional implementation manner, the first baseband signal is a baseband signal in a CPRI format of a common public radio interface, the original baseband signal is a baseband signal in a CPRI format, and the second baseband signal is a baseband in a CPRI format. Signal, the baseband radio frequency interface is a CPRI interface.
当所述客户端设备的业务信号为以太网信号时,所述第一基带信号是将所 述客户端设备的以太网信号经过 4B/5B编码后, 映射到 CPRI报文的空口用户 面数据区域中, 而生成的 CPRI格式的基带信号;  When the service signal of the client device is an Ethernet signal, the first baseband signal is an air interface user plane data area that is mapped to a CPRI message after the Ethernet signal of the client device is encoded by 4B/5B. Medium, and the baseband signal of the generated CPRI format;
或者,所述第一基带信号是将所述客户端设备的以太网信号封装到通用封 装协议 GFP信号中, 再对所述 GFP信号进行转换, 而生成的 CPRI格式的基 带信号;  Alternatively, the first baseband signal is a baseband signal in a CPRI format generated by encapsulating an Ethernet signal of the client device into a general-package protocol GFP signal and then converting the GFP signal;
或者, 所述第一基带信号是根据高级数据链路控制 HDLC协议, 将所述 客户端设备的以太网信号封装到 CPRI报文的空口用户面数据区域中, 而生成 的 CPRI格式的基带信号。  Alternatively, the first baseband signal is a baseband signal in a CPRI format generated by encapsulating an Ethernet signal of the client device into an air interface user plane data area of a CPRI message according to an advanced data link control HDLC protocol.
在另一个可选的实施方式中, 所述第一基带信号为开放基站架构协议 OBSAI格式的基带信号, 所述原有基带信号为 OBSAI格式的基带信号, 所述 第二基带信号为 OBSAI格式的基带信号, 所述基带射频接口为 OBSAI接口。 参见图 9, 是本发明实施例中一种基带射频接口承载传输的系统的结构示 意图。本实施例提供的基带射频接口承载传输的系统, 包括室内基带处理单元 91 (以下简称 BBU )和射频拉远模块 92 (以下简称 RRU )。  In another optional implementation manner, the first baseband signal is a baseband signal in an open base station architecture protocol OBSAI format, the original baseband signal is a baseband signal in an OBSAI format, and the second baseband signal is in an OBSAI format. The baseband signal, the baseband radio frequency interface is an OBSAI interface. Referring to FIG. 9, FIG. 9 is a schematic structural diagram of a system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention. The baseband radio frequency interface bearer transmission system provided in this embodiment includes an indoor baseband processing unit 91 (hereinafter referred to as BBU) and a radio remote module 92 (hereinafter referred to as RRU).
其中, BBU侧配置有上述图 Ί的实施例中的基站数据处理控制装置 93(以 下简称 REC ), 在 RRU侧配置有上述图 8的实施例中的基站收发装置 94 (以 下简称 RE )。  The base station data processing control device 93 (hereinafter referred to as REC) in the above-described embodiment is disposed on the BBU side, and the base transceiver station 94 (hereinafter referred to as RE) in the above-described embodiment of Fig. 8 is disposed on the RRU side.
本实施例仅以在 BBU附近设置有第一客户端设备 95 ,在 RRU附近设置 有第二客户端设备 96,且第一客户端设备 95需要通过 BBU和 RRU之间的线 路发送业务信号到第二客户端设备 96为例, 对基带射频接口承载传输的方法 进行说明。  In this embodiment, only the first client device 95 is disposed near the BBU, and the second client device 96 is disposed near the RRU, and the first client device 95 needs to send a service signal to the line between the BBU and the RRU. The second client device 96 is taken as an example to describe a method for carrying and transmitting a baseband radio frequency interface.
在信号从 REC传输到 RE的方向上, 在 REC中, 将来自第一客户端设备 95的业务信号转化为第一基带信号; 然后将所述第一基带信号, 以及 BBU到 RRU 方向上的低速的原有基带信号, 一起复用为高速的第二基带信号, 再通 过 BBU和 RRU之间的光纤线路, 将高速的第二基带信号传递到 RE近端。 RE接收高速的第二基带信号, 并对所述高速的第二基带信号进行分离, 获得原有基带信号和第一基带信号。 然后将原有基带信号传送给 RRU, 由原 有的无线模块进行处理。 并且, 将第一基带信号还原为业务信号, 并传送给第 二客户端设备 96。 参见图 10 , 是本发明实施例中另一种基带射频接口承载传输的系统的结 构示意图。本实施例提供的基带射频接口承载传输的系统, 包括室内基带处理 单元 101 (以下简称 BBU )和射频拉远模块 102 (以下简称 RRU )。 Transmitting the traffic signal from the first client device 95 into a first baseband signal in the REC in the direction in which the signal is transmitted from the REC to the RE; then the first baseband signal, and the low speed in the BBU to RRU direction The original baseband signals are multiplexed together into a high-speed second baseband signal, and the high-speed second baseband signal is transmitted to the RE near-end through the optical fiber line between the BBU and the RRU. The RE receives the high speed second baseband signal and separates the high speed second baseband signal to obtain the original baseband signal and the first baseband signal. The original baseband signal is then transmitted to the RRU for processing by the original wireless module. And, the first baseband signal is restored to a traffic signal and transmitted to the second client device 96. FIG. 10 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention. The baseband radio frequency interface bearer transmission system provided in this embodiment includes an indoor baseband processing unit 101 (hereinafter referred to as BBU) and a radio remote module 102 (hereinafter referred to as RRU).
其中, BBU侧配置有上述图 8的实施例中的基站收发装置 103 (以下简称 RE ),在 RRU侧配置有上述图 7的实施例中的基站数据处理控制装置 104 (以 下简称 REC )。  The base station transceiver 103 (hereinafter referred to as RE) in the above-described embodiment of Fig. 8 is disposed on the BBU side, and the base station data processing control device 104 (hereinafter referred to as REC) in the above-described embodiment of Fig. 7 is disposed on the RRU side.
本实施例仅以在 BBU附近设置有第一客户端设备 105 , 在 RRU附近设 置有第二客户端设备 106,且第二客户端设备 106需要通过 BBU和 RRU之间 的线路发送业务信号到第一客户端设备 105为例,对基带射频接口承载传输的 方法进行说明。  In this embodiment, only the first client device 105 is disposed in the vicinity of the BBU, and the second client device 106 is disposed in the vicinity of the RRU, and the second client device 106 needs to send a service signal to the line through the line between the BBU and the RRU. A client device 105 is taken as an example to describe a method for carrying and transmitting a baseband radio frequency interface.
在信号从 REC传输到 RE的方向上, 在 REC中, 将来自第二客户端设备 106 的业务信号转化为第一基带信号; 然后将所述第一基带信号, 以及 RRU 到 BBU方向上的低速的原有基带信号, 一起复用为高速的第二基带信号, 再 通过 BBU和 RRU之间的光纤线路, 将高速的第二基带信号传递到 RE近端。  Transmitting the traffic signal from the second client device 106 to the first baseband signal in the REC in the direction in which the signal is transmitted from the REC to the RE; then the first baseband signal, and the RRU to the low speed in the BBU direction The original baseband signals are multiplexed together into a high-speed second baseband signal, and the high-speed second baseband signal is transmitted to the RE near-end through the optical fiber line between the BBU and the RRU.
RE接收高速的第二基带信号, 并对所述高速的第二基带信号进行分离, 获得原有基带信号和第一基带信号, 然后将原有基带信号传送给 BBU, 并且 将第一基带信号还原为业务信号, 并传送给第一客户端设备 105。 参见图 11 , 是本发明实施例中又一种基带射频接口承载传输的系统的结 构示意图。本实施例提供的基带射频接口承载传输的系统, 包括室内基带处理 单元 111 (以下简称 BBU )和射频拉远模块 112 (以下简称 RRU )。  The RE receives the high-speed second baseband signal, and separates the high-speed second baseband signal to obtain the original baseband signal and the first baseband signal, and then transmits the original baseband signal to the BBU, and restores the first baseband signal. It is a service signal and is transmitted to the first client device 105. Referring to FIG. 11, FIG. 11 is a schematic structural diagram of another system for carrying and transmitting a baseband radio frequency interface according to an embodiment of the present invention. The baseband radio frequency interface bearer transmission system provided in this embodiment includes an indoor baseband processing unit 111 (hereinafter referred to as BBU) and a radio remote module 112 (hereinafter referred to as RRU).
其中, BBU侧配置有上述图 Ί的实施例中的基站数据处理控制装置和上 述图 8的实施例中的基站收发装置; 而且, RRU侧同样配置有上述图 7的实 施例中的基站数据处理控制装置和上述图 8的实施例中的基站收发装置。  The BBU side is configured with the base station data processing control apparatus in the above-described embodiment and the base station transceiver apparatus in the above-described embodiment of FIG. 8. Further, the RRU side is also configured with the base station data processing in the above-described embodiment of FIG. The control device and the base transceiver device in the above-described embodiment of FIG.
本实施例仅以在 BBU附近设置有第一客户端设备 113 ,在 RRU附近设置 有第二客户端设备 114为例, 对基带射频接口承载传输的方法进行说明。 In this embodiment, only the first client device 113 is disposed near the BBU, and is set near the RRU. A second client device 114 is taken as an example to describe a method for carrying and transmitting a baseband radio frequency interface.
本实施例能够实现双向数据传输, 在下行方向上, 将第一客户端设备 113 到第二客户端设备 114的业务信号, 复用在基带信号中进行传输, 其传输方法 与上述图 9的实施例相同; 在上行方向上, 将第二客户端设备 114到第一客户 端设备 113 的业务信号, 复用在基带信号中进行传输, 其传输方法与上述图 10的实施例相同, 在此不予贅述。  In this embodiment, the bidirectional data transmission can be implemented, and the service signals of the first client device 113 to the second client device 114 are multiplexed in the baseband signal for transmission in the downlink direction, and the transmission method thereof is the same as the embodiment of FIG. 9 described above. In the uplink direction, the service signal of the second client device 114 to the first client device 113 is multiplexed in the baseband signal for transmission, and the transmission method is the same as the embodiment of FIG. 10 described above, and is not allowed here. Narration.
需要说明的是的, 在 BBU侧配置基站数据处理控制装置时, 所述基站数 据处理控制装置可以设置在 BBU内部, 也可以设置在 BBU外部。 在 BBU侧 配置基站收发装置时, 所述基站收发装置可以设置在 BBU内部, 也可以设置 在 BBU外部。在 RRU侧配置基站数据处理控制装置时,所述基站数据处理控 制装置可以设置在 RRU内部, 也可以设置在 RRU外部。 在 RRU侧配置基站 收发装置时, 所述基站收发装置可以设置在 RRU 内部, 也可以设置在 RRU 外部。  It should be noted that, when the base station data processing control device is disposed on the BBU side, the base station data processing control device may be provided inside the BBU or may be provided outside the BBU. When the base transceiver device is configured on the BBU side, the base transceiver device may be disposed inside the BBU or external to the BBU. When the base station data processing control device is configured on the RRU side, the base station data processing control device may be disposed inside the RRU or may be disposed outside the RRU. When the base transceiver device is configured on the RRU side, the base transceiver device may be disposed inside the RRU or external to the RRU.
本发明实施例提供的基带射频接口承载传输的系统,由于用于处理基带信 号和业务信号的单元配置在 BBU侧和 RRU侧 ,因此通过检测 RRU侧或 BBU 侧的信号, 就能判断出传输线路是否发生故障 (例如判断 RRU与 MUX设备 之间的光纤是否中断), 故障隔离及定位性好, 容易监控。 本发明实施例提供的基带射频接口承载传输的方法、装置和系统,通过将 拉远系统外部的客户端设备的业务信号转换为基带信号, 再与 RRU和 BBU 之间的原有基带信号,一起复用到高速的基带信号中,从而实现在 RRU和 BBU 之间的单一的物理介质上同时传输原有基带信号及客户端设备的业务信号。本 发明能够在不新增物理资源的情况下, 在基带链路中提供高带宽的、低成本的 信息传输服务; 而且通过检测 RRU侧或 BBU侧的信号,就能判断出传输线路 是否发生故障, 容易监控。 本领域普通技术人员可以理解实现上述实施例方法中的全部或部分流程, 是可以通过计算机程序来指令相关的硬件来完成,所述的程序可存储于一计算 机可读取存储介质中,该程序在执行时,可包括如上述各方法的实施例的流程。 其中,所述的存储介质可为磁碟、光盘、只读存储记忆体( Read-Only Memory, ROM )或随机存储记忆体(Random Access Memory, RAM )等。 以上所述是本发明的优选实施方式,应当指出, 对于本技术领域的普通技 术人员来说, 在不脱离本发明原理的前提下, 还可以做出若干改进和润饰, 这 些改进和润饰也视为本发明的保护范围。 The baseband radio frequency interface bearer transmission system provided by the embodiment of the present invention, since the unit for processing the baseband signal and the service signal is disposed on the BBU side and the RRU side, the transmission line can be determined by detecting the signal on the RRU side or the BBU side. Whether a fault occurs (for example, whether the fiber between the RRU and the MUX device is interrupted), fault isolation and positioning are good, and it is easy to monitor. The method, device and system for carrying and transmitting a baseband radio frequency interface provided by an embodiment of the present invention, by converting a service signal of a client device external to the remote system into a baseband signal, and then combining the original baseband signal between the RRU and the BBU It is multiplexed into the high-speed baseband signal to simultaneously transmit the original baseband signal and the service signal of the client device on a single physical medium between the RRU and the BBU. The present invention can provide a high-bandwidth, low-cost information transmission service in a baseband link without adding physical resources. Moreover, by detecting signals on the RRU side or the BBU side, it can be determined whether the transmission line is faulty. , easy to monitor. A person skilled in the art can understand that all or part of the process of implementing the above embodiment method can be completed by a computer program to instruct related hardware, and the program can be stored in a computer readable storage medium, the program When executed, the flow of an embodiment of the methods as described above may be included. The storage medium may be a magnetic disk, an optical disk, or a read-only memory (Read-Only Memory, ROM) or random access memory (RAM). The above is a preferred embodiment of the present invention, and it should be noted that those skilled in the art can also make several improvements and retouchings without departing from the principles of the present invention. These improvements and retouchings are also considered. It is the scope of protection of the present invention.

Claims

权 利 要 求 Rights request
1、 一种基带射频接口承载传输的方法, 其特征在于, 包括: 1. A baseband radio frequency interface bearer transmission method, which is characterized by including:
将客户端设备的业务信号转换为第一基带信号;所述客户端设备是射频拉 远模块 RRU和室内基带处理单元 BBU所属的拉远系统的外部设备; Convert the service signal of the client device into the first baseband signal; the client device is an external device of the remote system to which the radio frequency remote module RRU and the indoor baseband processing unit BBU belong;
将所述第一基带信号, 以及所述 RRU和所述 BBU之间的原有基带信号, 复用为第二基带信号;所述第二基带信号的传输速率大于所述原有基带信号的 传输速率; The first baseband signal and the original baseband signal between the RRU and the BBU are multiplexed into a second baseband signal; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal rate;
在基带射频接口上承载所述第二基带信号, 通过所述 RRU 和所述 BBU 之间的线路进行传输。 The second baseband signal is carried on the baseband radio frequency interface and transmitted through the line between the RRU and the BBU.
2、 如权利要求 1所述的基带射频接口承载传输的方法, 其特征在于, 所 述第一基带信号为通用公共无线接口 CPRI格式的基带信号, 所述原有基带信 号为 CPRI格式的基带信号, 所述第二基带信号为 CPRI格式的基带信号, 所 述基带射频接口为 CPRI接口。 2. The method of baseband radio frequency interface bearer transmission according to claim 1, characterized in that, the first baseband signal is a baseband signal in a common public radio interface CPRI format, and the original baseband signal is a baseband signal in a CPRI format. , the second baseband signal is a CPRI format baseband signal, and the baseband radio frequency interface is a CPRI interface.
3、 如权利要求 1所述的基带射频接口承载传输的方法, 其特征在于, 所 述第一基带信号为开放基站架构协议 OBSAI格式的基带信号, 所述原有基带 信号为 OBSAI格式的基带信号,所述第二基带信号为 OBSAI格式的基带信号, 所述基带射频接口为 OBSAI接口。 3. The baseband radio frequency interface bearer transmission method according to claim 1, wherein the first baseband signal is a baseband signal in the OBSAI format of the Open Base Station Architecture Protocol, and the original baseband signal is a baseband signal in the OBSAI format. , the second baseband signal is a baseband signal in OBSAI format, and the baseband radio frequency interface is an OBSAI interface.
4、 如权利要求 2所述的基带射频接口承载传输的方法, 其特征在于, 所 述客户端设备的业务信号为以太网信号; 4. The baseband radio frequency interface bearer transmission method according to claim 2, characterized in that the service signal of the client device is an Ethernet signal;
所述将客户端设备的业务信号转换为第一基带信号, 包括: Converting the service signal of the client device into the first baseband signal includes:
将客户端设备的以太网信号经过 4B/5B编码后, 映射到 CPRI报文的空口 用户面数据区域中, 生成 CPRI格式的第一基带信号; After 4B/5B encoding, the Ethernet signal of the client device is mapped to the air interface user plane data area of the CPRI message to generate the first baseband signal in CPRI format;
或者, 将客户端设备的以太网信号封装到通用封装协议 GFP信号中, 再 对所述 GFP信号进行转换, 生成 CPRI格式的第一基带信号; Or, encapsulate the Ethernet signal of the client device into a universal encapsulation protocol GFP signal, and then convert the GFP signal to generate a first baseband signal in CPRI format;
或者, 根据高级数据链路控制 HDLC协议, 将客户端设备的以太网信号 封装到 CPRI报文的空口用户面数据区域中,生成 CPRI格式的第一基带信号。 Alternatively, according to the Advanced Data Link Control HDLC protocol, the Ethernet signal of the client device is encapsulated into the air interface user plane data area of the CPRI message to generate the first baseband signal in CPRI format.
5、 一种基带射频接口承载传输的方法, 其特征在于, 包括: 5. A baseband radio frequency interface bearer transmission method, characterized by including:
接收来自基带射频接口的第二基带信号;所述第二基带信号复用有对客户 端设备的业务信号进行转换后而获得的第一基带信号,以及 RRU和 BBU之间 的原有基带信号;所述客户端设备是所述 RRU和所述 BBU所属的拉远系统的 外部设备; 所述第二基带信号的传输速率大于所述原有基带信号的传输速率; 对所述第二基带信号进行分离,获得所述第一基带信号和所述原有基带信 号, 并将所述原有基带信号传递给所述 RRU或所述 BBU; Receive a second baseband signal from the baseband radio frequency interface; the second baseband signal multiplexes the first baseband signal obtained by converting the service signal of the client device, and the original baseband signal between the RRU and the BBU; The client device is of the remote system to which the RRU and the BBU belong. External device; The transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal; Separate the second baseband signal to obtain the first baseband signal and the original baseband signal, and The original baseband signal is transmitted to the RRU or the BBU;
将所述第一基带信号还原成所述业务信号, 并传递给所述客户端设备。 The first baseband signal is restored to the service signal and transmitted to the client device.
6、 如权利要求 5所述的基带射频接口承载传输的方法, 其特征在于, 所 述第一基带信号为通用公共无线接口 CPRI格式的基带信号, 所述原有基带信 号为 CPRI格式的基带信号, 所述第二基带信号为 CPRI格式的基带信号, 所 述基带射频接口为 CPRI接口。 6. The baseband radio frequency interface bearer transmission method according to claim 5, wherein the first baseband signal is a baseband signal in a CPRI format of a common public radio interface, and the original baseband signal is a baseband signal in a CPRI format. , the second baseband signal is a CPRI format baseband signal, and the baseband radio frequency interface is a CPRI interface.
7、 如权利要求 5所述的基带射频接口承载传输的方法, 其特征在于, 所 述第一基带信号为开放基站架构协议 OBSAI格式的基带信号, 所述原有基带 信号为 OBSAI格式的基带信号,所述第二基带信号为 OBSAI格式的基带信号, 所述基带射频接口为 OBSAI接口。 7. The method of baseband radio frequency interface bearer transmission according to claim 5, wherein the first baseband signal is a baseband signal in the OBSAI format of the Open Base Station Architecture Protocol, and the original baseband signal is a baseband signal in the OBSAI format. , the second baseband signal is a baseband signal in OBSAI format, and the baseband radio frequency interface is an OBSAI interface.
8、 如权利要求 6所述的基带射频接口承载传输的方法, 其特征在于, 所 述客户端设备的业务信号为以太网信号; 8. The baseband radio frequency interface bearer transmission method according to claim 6, characterized in that the service signal of the client device is an Ethernet signal;
所述第一基带信号是将所述客户端设备的以太网信号经过 4B/5B编码后, 映射到 CPRI报文的空口用户面数据区域中,而生成的 CPRI格式的基带信号; 或者,所述第一基带信号是将所述客户端设备的以太网信号封装到通用封 装协议 GFP信号中, 再对所述 GFP信号进行转换, 而生成的 CPRI格式的基 带信号; The first baseband signal is a CPRI format baseband signal generated by mapping the Ethernet signal of the client device to the air interface user plane data area of the CPRI message after 4B/5B encoding; or, the The first baseband signal is a baseband signal in CPRI format generated by encapsulating the Ethernet signal of the client device into a universal encapsulation protocol GFP signal, and then converting the GFP signal;
或者, 所述第一基带信号是根据高级数据链路控制 HDLC协议, 将所述 客户端设备的以太网信号封装到 CPRI报文的空口用户面数据区域中, 而生成 的 CPRI格式的基带信号。 Alternatively, the first baseband signal is a CPRI format baseband signal generated by encapsulating the Ethernet signal of the client device into the air interface user plane data area of the CPRI message according to the Advanced Data Link Control HDLC protocol.
9、 一种基站数据处理控制装置, 其特征在于, 包括: 9. A base station data processing control device, characterized in that it includes:
转换模块, 用于将客户端设备的业务信号转换为第一基带信号; 所述客户 端设备是射频拉远模块 RRU和室内基带处理单元 BBU所属的拉远系统的外部 设备; The conversion module is used to convert the service signal of the client device into the first baseband signal; the client device is an external device of the remote system to which the radio frequency remote module RRU and the indoor baseband processing unit BBU belong;
复用模块,用于将所述第一基带信号, 以及所述 RRU和所述 BBU之间的 原有基带信号, 复用为第二基带信号; 所述第二基带信号的传输速率大于所述 原有基带信号的传输速率; 和, A multiplexing module, configured to multiplex the first baseband signal and the original baseband signal between the RRU and the BBU into a second baseband signal; the transmission rate of the second baseband signal is greater than the The transmission rate of the original baseband signal; and,
发送模块,用于在基带射频接口上承载所述第二基带信号,通过所述 RRU 和所述 BBU之间的线路进行传输。 A sending module, configured to carry the second baseband signal on the baseband radio frequency interface through the RRU and the BBU for transmission.
10、 如权利要求 9所述的基站数据处理控制装置, 其特征在于, 所述第一 基带信号为通用公共无线接口 CPRI格式的基带信号, 所述原有基带信号为 CPRI格式的基带信号, 所述第二基带信号为 CPRI格式的基带信号, 所述基 带射频接口为 CPRI接口。 10. The base station data processing and control device according to claim 9, wherein the first baseband signal is a baseband signal in a CPRI format, and the original baseband signal is a baseband signal in a CPRI format, so The second baseband signal is a CPRI format baseband signal, and the baseband radio frequency interface is a CPRI interface.
11、 如权利要求 9所述的基站数据处理控制装置, 其特征在于, 所述第一 基带信号为开放基站架构协议 OBSAI格式的基带信号, 所述原有基带信号为 OBSAI格式的基带信号, 所述第二基带信号为 OBSAI格式的基带信号, 所述 基带射频接口为 OBSAI接口。 11. The base station data processing and control device according to claim 9, wherein the first baseband signal is a baseband signal in the OBSAI format of the Open Base Station Architecture Protocol, and the original baseband signal is a baseband signal in the OBSAI format, so The second baseband signal is a baseband signal in an OBSAI format, and the baseband radio frequency interface is an OBSAI interface.
12、 如权利要求 10所述的基站数据处理控制装置, 其特征在于, 所述客 户端设备的业务信号为以太网信号; 12. The base station data processing control device according to claim 10, wherein the service signal of the client device is an Ethernet signal;
所述转换模块将客户端设备的以太网信号经过 4B/5B 编码后, 映射到 CPRI报文的空口用户面数据区域中, 生成 CPRI格式的第一基带信号; The conversion module maps the Ethernet signal of the client device to the air interface user plane data area of the CPRI message after 4B/5B encoding, and generates the first baseband signal in CPRI format;
或者,所述转换模块将客户端设备的以太网信号封装到通用封装协议 GFP 信号中, 再对所述 GFP信号进行转换, 生成 CPRI格式的第一基带信号; Alternatively, the conversion module encapsulates the Ethernet signal of the client device into a universal encapsulation protocol GFP signal, and then converts the GFP signal to generate a first baseband signal in CPRI format;
或者, 所述转换模块根据高级数据链路控制 HDLC协议, 将客户端设备 的以太网信号封装到 CPRI报文的空口用户面数据区域中, 生成 CPRI格式的 第一基带信号。 Alternatively, the conversion module encapsulates the Ethernet signal of the client device into the air interface user plane data area of the CPRI message according to the Advanced Data Link Control HDLC protocol, and generates the first baseband signal in CPRI format.
13、 一种基站收发装置, 其特征在于, 包括: 13. A base station transceiver device, characterized in that it includes:
接收模块, 用于接收来自基带射频接口的第二基带信号; 所述第二基带信 号复用有对客户端设备的业务信号进行转换后而获得的第一基带信号, 以及 RRU和 BBU之间的原有基带信号; 所述客户端设备是所述 RRU和所述 BBU 所属的拉远系统的外部设备;所述第二基带信号的传输速率大于所述原有基带 信号的传输速率; A receiving module, configured to receive a second baseband signal from the baseband radio frequency interface; the second baseband signal multiplexes the first baseband signal obtained by converting the service signal of the client device, and the signal between the RRU and the BBU. The original baseband signal; the client device is an external device of the remote system to which the RRU and the BBU belong; the transmission rate of the second baseband signal is greater than the transmission rate of the original baseband signal;
分离模块, 用于对所述第二基带信号进行分离, 获得所述第一基带信号和 所述原有基带信号,并将所述原有基带信号传递给所述 RRU或所述 BBU;和, 还原模块, 用于将所述第一基带信号还原成所述业务信号, 并传递给所述 客户端设备。 A separation module, used to separate the second baseband signal, obtain the first baseband signal and the original baseband signal, and transfer the original baseband signal to the RRU or the BBU; and, A restoration module, configured to restore the first baseband signal into the service signal and transmit it to the client device.
14、 如权利要求 13所述的基站收发装置, 其特征在于, 所述第一基带信 号为通用公共无线接口 CPRI格式的基带信号, 所述原有基带信号为 CPRI格 式的基带信号, 所述第二基带信号为 CPRI格式的基带信号, 所述基带射频接 口为 CPRI接口。 14. The base transceiver device of claim 13, wherein the first baseband signal is a baseband signal in a CPRI format, and the original baseband signal is in a CPRI format. The second baseband signal is a CPRI format baseband signal, and the baseband radio frequency interface is a CPRI interface.
15、 如权利要求 13所述的基站收发装置, 其特征在于, 所述第一基带信 号为开放基站架构协议 OBSAI格式的基带信号, 所述原有基带信号为 OBSAI 格式的基带信号, 所述第二基带信号为 OBSAI格式的基带信号, 所述基带射 频接口为 OBSAI接口。 15. The base station transceiver device according to claim 13, wherein the first baseband signal is a baseband signal in the Open Base Station Architecture Protocol OBSAI format, the original baseband signal is a baseband signal in the OBSAI format, and the first baseband signal is a baseband signal in the OBSAI format. The second baseband signal is a baseband signal in an OBSAI format, and the baseband radio frequency interface is an OBSAI interface.
16、 如权利要求 14所述的基站收发装置, 其特征在于, 所述客户端设备 的业务信号为以太网信号; 16. The base station transceiver device according to claim 14, wherein the service signal of the client device is an Ethernet signal;
所述第一基带信号是将所述客户端设备的以太网信号经过 4B/5B编码后, 映射到 CPRI报文的空口用户面数据区域中,而生成的 CPRI格式的基带信号; 或者,所述第一基带信号是将所述客户端设备的以太网信号封装到通用封 装协议 GFP信号中, 再对所述 GFP信号进行转换, 而生成的 CPRI格式的基 带信号; The first baseband signal is a CPRI format baseband signal generated by mapping the Ethernet signal of the client device to the air interface user plane data area of the CPRI message after 4B/5B encoding; or, the The first baseband signal is a baseband signal in CPRI format generated by encapsulating the Ethernet signal of the client device into a universal encapsulation protocol GFP signal, and then converting the GFP signal;
或者, 所述第一基带信号是根据高级数据链路控制 HDLC协议, 将所述 客户端设备的以太网信号封装到 CPRI报文的空口用户面数据区域中, 而生成 的 CPRI格式的基带信号。 Alternatively, the first baseband signal is a CPRI format baseband signal generated by encapsulating the Ethernet signal of the client device into the air interface user plane data area of the CPRI message according to the Advanced Data Link Control HDLC protocol.
17、 一种基带射频接口承载传输的系统, 其特征在于, 包括射频拉远模块 RRU和室内基带处理单元 BBU; 在所述 BBU侧配置有如权利要求 9〜12任一 项所述的基站数据处理控制装置, 在所述 RRU侧配置有如权利要求 13〜16任 一项所述的基站收发装置; 17. A system for carrying transmission at a baseband radio frequency interface, characterized in that it includes a remote radio frequency module RRU and an indoor baseband processing unit BBU; the BBU side is configured with a base station data processing device as described in any one of claims 9 to 12 A control device configured with a base station transceiver device as described in any one of claims 13 to 16 on the RRU side;
或者,在所述 RRU侧配置有如权利要求 9〜12任一项所述的基站数据处理 控制装置, 在所述 BBU侧配置有如权利要求 13〜16任一项所述的基站收发装 置; Alternatively, the base station data processing control device as described in any one of claims 9 to 12 is configured on the RRU side, and the base station transceiver device as described in any one of claims 13 to 16 is configured on the BBU side;
或者,在所述 BBU侧配置有如权利要求 9〜12任一项所述的基站数据处理 控制装置, 以及如权利要求 13〜16任一项所述的基站收发装置; 在所述 RRU 侧配置有如权利要求 9〜12任一项所述的基站数据处理控制装置, 以及如权利 要求 13〜16任一项所述的基站收发装置。 Alternatively, the BBU side is configured with a base station data processing control device as described in any one of claims 9 to 12, and a base station transceiver device as described in any one of claims 13 to 16; and the RRU side is configured with as follows The base station data processing control device according to any one of claims 9 to 12, and the base station transceiver device according to any one of claims 13 to 16.
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