WO2020042165A1 - 信息传输方法、光线路终端、光网络单元及通信*** - Google Patents
信息传输方法、光线路终端、光网络单元及通信*** Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/27—Arrangements for networking
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
- H04Q11/0067—Provisions for optical access or distribution networks, e.g. Gigabit Ethernet Passive Optical Network (GE-PON), ATM-based Passive Optical Network (A-PON), PON-Ring
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/07—Arrangements for monitoring or testing transmission systems; Arrangements for fault measurement of transmission systems
- H04B10/075—Arrangements for monitoring or testing transmission systems; Arrangements for fault measurement of transmission systems using an in-service signal
- H04B10/079—Arrangements for monitoring or testing transmission systems; Arrangements for fault measurement of transmission systems using an in-service signal using measurements of the data signal
- H04B10/0795—Performance monitoring; Measurement of transmission parameters
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/25—Arrangements specific to fibre transmission
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/25—Arrangements specific to fibre transmission
- H04B10/2589—Bidirectional transmission
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J3/00—Time-division multiplex systems
- H04J3/02—Details
- H04J3/06—Synchronising arrangements
- H04J3/0635—Clock or time synchronisation in a network
- H04J3/0682—Clock or time synchronisation in a network by delay compensation, e.g. by compensation of propagation delay or variations thereof, by ranging
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
- H04Q2011/0064—Arbitration, scheduling or medium access control aspects
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04Q—SELECTING
- H04Q11/00—Selecting arrangements for multiplex systems
- H04Q11/0001—Selecting arrangements for multiplex systems using optical switching
- H04Q11/0062—Network aspects
- H04Q2011/0086—Network resource allocation, dimensioning or optimisation
Definitions
- the embodiments of the present application relate to communication technologies, and in particular, to an information transmission method, an optical line terminal, an optical network unit, and a communication system.
- a passive optical network is a single-fiber bidirectional optical access network using a point-to-multipoint structure.
- the PON system is mainly composed of an optical line terminal (OLT), an optical network unit (ONU), and an optical distribution network (ODN).
- OLT is a central office equipment
- the ONU is a user-side equipment
- the ODN provides an optical channel between the OLT and the ONU.
- the OLT can be connected to the front-end switch, convert the digital signal of the front-end switch into an optical signal, and can control, manage, and measure the ONU.
- the ONU can receive broadcast data sent by the OLT in the downlink direction and send user-side data to the ONU in the uplink direction.
- Multiple ONUs connected to one OLT perform uplink services in a time-sharing manner in the uplink direction. Before the ONU performs uplink services to the OLT, it must first register with the OLT and establish a controllable connection with the OLT.
- the OLT reserves a time period every certain period. During this time period, ONUs that are already online are not allowed to perform uplink services. Only ONUs that are not online are allowed to send serial numbers (SN) or send Ranging information for registration.
- SN serial numbers
- the prior art method may cause the delay of the uplink service of the ONU that is already online to increase.
- the embodiments of the present application provide an information transmission method, an optical line terminal, an optical network unit, and a communication system, which are used to solve the problem that the uplink service delay of the ONU caused by the uplink service is not allowed within a certain period of time in the prior art. problem.
- the first aspect of the embodiments of the present application provides an information transmission method, which is applied to an OLT, and the method includes:
- the OLT allocates an identifier to the first ONU through the first channel, and performs ranging on the first ONU to obtain ranging information of the first channel. After the OLT negotiates with the first ONU and determines to use dual channels for information transmission, the OLT performs data transmission of the first service with the first ONU through the second channel.
- identification allocation and ranging are performed through the first channel, and first service data transmission is performed through the second channel, so that service data with higher delay requirements no longer cause a large delay, thereby ensuring the performance of these services. Perform normally.
- the method before the OLT performs data transmission of the first service with the first ONU through the second channel, the method further includes:
- the OLT negotiates with the first ONU to determine whether to use dual channels for information transmission.
- the OLT negotiates with the first ONU to determine whether to use dual channels for information transmission, including:
- the OLT Receiving, by the OLT, dual-channel support capability information sent by the first ONU, where the dual-channel support capability information includes a type of a first channel and a type of a second channel supported by the first ONU;
- the OLT determines whether to use the dual channel for information transmission according to the dual channel support capability information sent by the first ONU and the dual channel support capability of the OLT.
- the method further includes:
- the OLT sends dual-channel configuration information to the first ONU.
- the dual-channel configuration information includes the type of the first channel and the type of the second channel selected by the OLT.
- the method before the OLT performs data transmission of the first service with the first ONU through the second channel, the method further includes:
- the channel path delay difference includes at least one of a difference in transmission delay of the OLT circuit, a difference in transmission delay of the ONU circuit, and a difference in transmission delay of optical paths caused by different wavelengths.
- the OLT performing data transmission of the first service with the first ONU through the second channel includes:
- the OLT performs data transmission of the first service with the first ONU through the second channel according to the ranging information of the second channel and an identifier allocated to the first ONU.
- the OLT may also perform data of the second service with the first ONU through the first channel or the second channel.
- the delay of the first service is lower than the preset delay, and the delay of the second service is greater than or equal to the preset delay.
- the transmission delay supported by the first channel is greater than the transmission delay supported by the second channel.
- the method further includes:
- the OLT performs authentication management and transmission configuration on the first ONU through the first channel or the second channel.
- a second aspect of the embodiments of the present application provides an information transmission method, which is applied to an ONU.
- the method includes:
- the ONU obtains the identifier and performs the ranging through the first channel to obtain the ranging information of the first channel. After the ONU and the OLT negotiate and determine to use the dual channel for information transmission, the ONU performs the first channel communication with the OLT through the second channel. Data transmission for a service.
- identification acquisition and ranging are performed through the first channel, and first service data transmission is performed through the second channel, so that service data with high delay requirements no longer cause a large delay, thereby ensuring the performance of these services. Perform normally.
- the method before the ONU performs data transmission of the first service with the OLT through the second channel, the method further includes:
- the ONU negotiates with the OLT to determine whether to use dual channels for information transmission.
- the ONU negotiates with the OLT to determine whether to use dual channels for information transmission, including:
- the ONU Sending, by the ONU, dual channel support capability information to the OLT, where the dual channel support capability information includes a type of a first channel and a type of a second channel supported by the ONU;
- the ONU receives the dual-channel configuration information sent by the OLT, and the dual-channel configuration information includes a type of the first channel and a type of the second channel selected by the OLT.
- the method before the ONU performs data transmission of the first service with the OLT through the second channel, the method further includes:
- the channel path delay difference includes at least one of a difference in transmission delay of the OLT circuit, a difference in transmission delay of the ONU circuit, and a difference in transmission delay of the optical path caused by different wavelengths.
- the ONU performing data transmission of the first service with the OLT through the second channel includes:
- the ONU performs data transmission of the first service with the OLT through the second channel according to the ranging information of the second channel and the acquired identifier.
- the method further includes:
- the ONU performs data transmission of a second service with the OLT through the first channel or the second channel.
- the delay of the first service is lower than the preset delay, and the delay of the second service is greater than or equal to the preset delay.
- the transmission delay supported by the first channel is greater than the transmission delay supported by the second channel.
- a third aspect of the embodiments of the present application provides an information transmission device.
- the device may be an OLT, or may be a device capable of supporting the OLT to perform a corresponding function performed by the OLT in the first aspect.
- a device or a chip system the device may include a processing module and a receiving module, and these modules may perform the corresponding functions performed by the OLT in the first aspect, for example:
- a processing module configured to allocate an identifier to the first ONU through the first channel, and perform ranging on the first ONU to obtain ranging information of the first channel;
- the receiving module is configured to perform data transmission of the first service with the first ONU through the second channel after the OLT negotiates with the first ONU and determines to use dual channels for information transmission.
- the fourth aspect of the embodiments of the present application provides an information transmission device.
- the device may be an ONU or a device capable of supporting the ONU to perform a corresponding function performed by the ONU in the second aspect.
- the device may be an ONU.
- a device or a chip system the device may include a processing module and a sending module, and these modules may perform the corresponding functions performed by the OLT in the second aspect, for example:
- a processing module configured to obtain an identifier and perform ranging through a first channel to obtain ranging information of the first channel
- a sending module is configured to perform data transmission of the first service with the OLT through the second channel after the ONU and the OLT negotiate and determine to use dual channels for information transmission.
- a fifth aspect of the embodiments of the present application provides an OLT, where the OLT includes a processor, and is configured to implement a function of the OLT in the method described in the first aspect.
- the OLT may further include a memory for storing program instructions and data.
- the memory is coupled to the processor, and the processor may call and execute a program instruction stored in the memory to implement the function of the OLT in the method described in the first aspect.
- the OLT may further include a communication interface, and the communication interface is used for the OLT to communicate with other devices. Exemplarily, the other device is an ONT.
- the OLT includes:
- Memory for storing program instructions
- a processor configured to implement the method described in the first aspect.
- a sixth aspect of the embodiments of the present application provides an ONU, where the ONU includes a processor, and is configured to implement the functions of the ONU in the method described in the second aspect.
- the ONU may further include a memory for storing program instructions and data.
- the memory is coupled to the processor, and the processor may call and execute program instructions stored in the memory, for implementing the functions of the ONU in the method described in the second aspect.
- the ONU may further include a communication interface, and the communication interface is used for the ONU to communicate with other devices.
- the other device is an OLT.
- the ONU includes:
- Memory for storing program instructions
- a processor configured to implement the method described in the second aspect.
- a seventh aspect of the embodiments of the present application provides a communication system, where the system includes the OLT according to the fifth aspect and the ONU according to the sixth aspect.
- An eighth aspect of the embodiments of the present application provides a computer program product, where the computer program product includes computer program code, and when the computer program code is executed by a computer, causes the computer to execute the foregoing first aspect or the second aspect Methods.
- a ninth aspect of the embodiments of the present application provides a computer-readable storage medium.
- the computer storage medium stores computer instructions, and when the computer instructions are executed by a computer, the computer is caused to execute the foregoing first aspect or the second aspect. The method described.
- FIG. 1 is a schematic diagram of a PON network architecture
- Figure 2 is a schematic diagram of the ONU registration process
- FIG. 3 is a system architecture diagram of the information transmission method provided by this application.
- FIG. 4 is another system architecture diagram of the information transmission method provided by the present application.
- FIG. 6 is a module structural diagram of an information transmission device according to an embodiment of the present application.
- FIG. 7 is a module structural diagram of an information transmission device according to an embodiment of the present application.
- FIG. 8 is a module structural diagram of another information transmission device according to an embodiment of the present application.
- FIG. 9 is a module structural diagram of another information transmission device according to an embodiment of the present application.
- FIG. 10 is a physical block diagram of an OLT 1000 according to an embodiment of the present application.
- FIG. 11 is a physical block diagram of an ONU2000 provided by an embodiment of the present application.
- PON is a single-fiber bidirectional optical access network using a point-to-multipoint structure. Compared with a traditional point-to-point, light-to-roadside switch, and other networks, PON reduces transmission costs and avoids access-side failure points. Increased advantages, therefore, PON is considered as the development direction of the access network.
- FIG. 1 is a schematic diagram of the PON network architecture.
- the PON system is mainly composed of OLT, ONU, and ODN.
- the OLT is a central office equipment
- the ONU is a user-side equipment
- the ODN provides an optical channel between the OLT and the ONU.
- the OLT can be connected to various front-end networks, such as the Internet, a public switched telephone network (PSTN), a public television antenna system (community antenna television, CATV), a streaming media network, and a monitoring network.
- PSTN public switched telephone network
- CATV public television antenna system
- the OLT converts the digital signal of the front-end network into an optical signal and transmits it to the ONU via the ODN.
- ODN is an optical transmission medium between the OLT and the ONU, and can complete the power distribution of optical signals.
- the ONU receives service data broadcast by the OLT in the downlink direction, and sends user-side service data to the ONU in the uplink direction.
- the ONU may first register with the OLT before performing business data interaction with the OLT.
- the registration process of the ONU can be divided into an SN acquisition phase, a ranging phase, an authentication phase, and an operation phase.
- Figure 2 is a schematic diagram of the ONU registration process.
- the OLT obtains the SN of the ONU by broadcasting the SN Request message.
- the ONU to be registered can feedback the SN Response message to the OLT.
- the OLT assigns the corresponding ONUID to each acquired SN according to the feedback from the ONU, and sends the assigned ONUID to the ONU through the Assign ONU_ID message.
- the ONUID has a one-to-one correspondence with the SN.
- the ONUID can be used to distinguish between different ONUs when the OLT and the ONU exchange messages, and to display them on the ONU side.
- the OLT sends a ranging request message to the ONU.
- the OLT sends a ranging response message to the OLT.
- the OLT performs ONU ranging according to the time interval between sending the ranging request message and receiving the ranging message.
- the message sends ranging information to the ONU.
- the OLT mainly performs authentication management.
- the authentication management method can be SN authentication, password authentication, and so on. In FIG. 2, password authentication is taken as an example.
- the OLT sends a PWD Request message to the ONU, and the ONU sends a PWD Response message to the OLT, and the password information is carried in the message.
- the OLT can determine that a specific ONU is online and then enters the operational phase.
- the OLT performs ONU management and control interface (OMCI) configuration recovery and OMCI management, such as establishing service flows and encryption. After completing these management and control processes, business data exchanges between ONU and OLT.
- OMCI ONU management and control interface
- multiple ONUs connected to the OLT send uplink service data to the OLT in a time division multiplexed manner.
- the OLT can reserve a time period every certain period. During this time period, ONUs that are already online are not allowed to perform uplink services, and ONUs that are not online are only allowed to send SNs or send measurements. Distance information for registration.
- the above-mentioned SN acquisition phase shown in FIG. 2 may be referred to as “SN windowing”
- the above-mentioned ranging phase shown in FIG. 2 may be referred to as “ranging windowing”.
- the durations of the "SN window opening” and “ranging window opening” may be the same or different. Take “SN Opening Window” as an example, assuming that the "SN Opening Window” time is 2 frames, that is, 250 microseconds, within this 250 microsecond time, the OLT only allows ONUs that are not online to send SNs, but not other The online ONU sends uplink service data. That is, for other ONUs already online, the maximum service delay will exceed 250 microseconds.
- the delay requirement is generally less than 20 milliseconds. Therefore, the above 250 microsecond delay will not affect these services.
- the delay requirements are high, and the delay allocated on the access network may only be 150 microseconds. Therefore, if the above method is used, the delay requirements of these services cannot be met, which may cause these services to be abnormal.
- the technical solution of this application aims to solve the above problems.
- FIG. 3 is a system architecture diagram of the information transmission method provided by this application. As shown in FIG. 3, the method involves an OLT and an ONU.
- the optical module of the OLT supports two-wavelength demultiplexing.
- the optical module demultiplexes the two-wavelength optical signals and converts them into electrical signals.
- the signals are sent to two PON MAC modules, which respectively frame and analyze the two types of electrical signals, so as to support two transmission channels with different rates.
- the first PON MAC module implements a Gigabit-Capable PON (GPON) channel
- the second PON MAC module implements a 10G GPON (XG-PON) channel.
- the ONU side also includes two PON MAC modules.
- the two PON MAC modules perform framing and analysis processing on two types of electrical signals, respectively, so as to support transmission channels of two different rates.
- the rates of the two transmission channels are the same as the rates of the two transmission channels on the OLT side.
- the first PON MAC module of the ONU implements the GPON channel at the same rate as the first channel of the OLT
- the second PON MAC module of the ONU implements the XG-PON channel at the same rate as the second channel of the OLT. the same.
- FIG. 4 is another system architecture diagram of the information transmission method provided in this application. As shown in FIG. 4, the method involves an OLT and an ONU.
- the two PON MAC modules perform framing and analysis on two types of electrical signals, respectively, so as to realize two transmission channels with different rates.
- the first PON MAC module implements a GPON channel
- the second PON MAC module implements an XG-PON channel.
- the ONU side On the ONU side, it includes a PON MAC module, which supports different speed transmission channels in different periods.
- the one PON MAC module implements the GPON channel in the SN acquisition phase and the ranging phase, and implements the XG-PON channel in other phases of the registration process and in the uplink service process.
- FIG. 3 and FIG. 4 only show the architecture between the OLT and the ONU, but the ODN is still used as the optical between the OLT and the ONU.
- the specific connection and implementation method of the transmission medium reference may be made to the description corresponding to FIG. 1 above, and details are not described herein again.
- the two channels implemented by the OLT and ONU are hereinafter referred to as the first channel and the second channel, respectively, where the transmission delay of the first channel is greater than the second channel, that is, the first channel has a high delay.
- the second channel is a low-latency channel.
- FIG. 5 is an interaction flowchart of the information transmission method provided by this application. As shown in FIG. 5, the interaction process of the method is:
- S501, the OLT, and the ONU acquire and assign an ONUID through the SN through the first channel.
- the specific execution process of this step is the SN acquisition phase execution process described in the corresponding description in FIG. 2 above.
- the OLT broadcasts the SN Request message and sends the Assign ONU_ID message to the ONU through the first channel.
- One channel feeds back the SN Response message to the OLT.
- the OLT and the ONU perform ranging through the first channel.
- the specific execution process of this step is the execution process of the ranging phase described in the corresponding description in FIG. 2 above, that is, in this application, the OLT sends a ranging request message and a ranging time message to the ONU through the first channel, and the ONU passes the first The channel feeds back the ranging response message to the OLT.
- the OLT negotiates with the ONU to determine whether to use dual channels for information transmission.
- the OLT and ONU can negotiate through the following process.
- the ONU reports the dual-channel support capability of the ONU to the OLT.
- the ONU may report the dual-channel support capability of the ONU through an extended physical layer operation management and maintenance message (Physical Layer OAM, PLOAM).
- PLOAM Physical Layer OAM
- the extended PLOAM message may be an Ext_dual_channel_ONU_Ability message, and the structure of the message may be as shown in Table 1 below.
- the above XGS-PON is 10G GPON
- the XGS-PON is a symmetric mode (the downlink rate and the uplink rate are the same)
- the above XG-PON is an asymmetric mode (the downlink rate and the uplink rate are different)
- the above TWDM-PON is based on Time-division and wavelength-division multiplexed PON (PON).
- the above-mentioned EPON is an Ethernet passive optical network (ethernet PON).
- the ONU uses the third, fourth, and fifth bytes in the Ext_dual_channel_ONU_Ability message to identify the dual-channel support capability of the ONU.
- the OLT determines whether to use the dual channel for information transmission according to the dual channel support capability of the ONU and the dual channel support capability of the OLT.
- the OLT may determine to use the dual channel for information transmission, and at the same time, the OLT determines the type of the first channel and the type of the second channel. Further, the OLT sends the dual channel configuration information to the ONU through the following S5033 process.
- the first channel supported by the ONU may be determined The type of the channel matches the type of the first channel supported by the OLT.
- the type matching method of the second channel may also be performed with reference to the foregoing method, and details are not described again.
- the OLT determines not to use the dual channel for transmission. Then, the OLT and the ONU still perform information transmission on a single channel in the existing manner.
- the OLT sends dual-channel configuration information to the ONU.
- the above dual-channel configuration information is used to identify whether the OLT uses dual channels for information transmission, and the specific types of the first channel and the second channel.
- the OLT may send the above dual-channel configuration information to the ONU through the extended PLOAM.
- the extended PLOAM message may be an Ext_dual_channel_config message, and the structure of the message may be as shown in Table 2 below.
- the ONU uses the 3rd, 4th, and 5th bytes in the Ext_dual_channel_config message to identify whether to use the dual channel and the types of the first channel and the second channel.
- the above-mentioned Ext_dual_channel_config message may not include the parameter corresponding to byte 3. Specifically, if the OLT determines to use dual channels for information transmission, it sends an Ext_dual_channel_config message containing the first channel type and the second channel type. If the OLT determines that it does not use dual channels for message transmission, it does not send the Ext_dual_channel_config message. Therefore, as long as the ONU After receiving the Ext_dual_channel_config message, it can be determined to use dual channels. Furthermore, the ONU then learns the type of the first channel and the type of the second channel according to the first channel type and the second channel type contained in the Ext_dual_channel_config message.
- the OLT and ONU continue to perform authentication and operation phase interactions according to the procedures of the following embodiments. If dual channels are not used, the OLT and ONU still perform information transmission on the single channel in the existing manner, without performing the following steps, and the specific implementation process will not be repeated in this embodiment of the present application.
- the OLT synchronizes the ONUID and the ranging information from the first channel to the second channel.
- the OLT includes two PON MAC modules, and the two PON MAC modules implement the first channel and the second channel, respectively. It can be known from the above steps that the OLT and the ONU perform SN acquisition and allocation of ONUID through the first channel, and perform ranging. Therefore, the first PON MAC module used to implement the first channel can obtain the ONUID and ranging information and use it to implement The second PON MAC module of the second channel does not know the ONUID and ranging information. Therefore, in this step, the OLT synchronizes the ONUID and ranging information from the first channel to the second channel.
- the first PON MAC module may directly send the ONUID and ranging information to the PON MAC module, or, It may be that the second PON MAC module sends a request to the first PON MAC module, and the first PON MAC module sends the ONUID and ranging information to the second PON MAC module, which is not limited in this application.
- the second channel of the OLT After the second channel of the OLT obtains the ONUID, it can carry the correct ONUID in the downstream message, and identify the ONU that sent the message according to the ONUID.
- the second channel of the OLT After the second channel of the OLT obtains the ranging information, it can calculate the ranging information corresponding to the second channel according to the following formula (1).
- EQD_xgs1 EQD_g1 + ⁇ EQD1 (1)
- EQD_xgs1 is the ranging information of the second channel
- EQD_g1 is the ranging information of the first channel
- ⁇ EQD1 is used to identify the path delay difference between the optical module of the OLT to the first channel and the second channel.
- ⁇ EQD1 may include one or more of ⁇ EQD_olt, ⁇ EQD_onu, and ⁇ EQD_fibre.
- ⁇ EQD_olt is the difference in transmission delay of the OLT circuit.
- ⁇ EQD_onu is the difference of the transmission delay of the ONU circuit.
- ⁇ EQD_onu may be reported by the ONU to the OLT through the seventh to tenth bytes in the Ext_dual_channel_ONU_Ability message shown in Table 1 above.
- ⁇ EQD_fibre is the difference between the propagation delays of the optical paths caused by different wavelengths.
- ⁇ EQD1 includes one of ⁇ EQD_olt, ⁇ EQD_onu, and ⁇ EQD_fibre, the value of ⁇ EQD1 is equal to the value of one of the items.
- EQD_xgs1 EQD_g1 + ⁇ EQD_olt
- ⁇ EQD1 includes multiple items of ⁇ EQD_olt, ⁇ EQD_onu and ⁇ EQD_fibre, the value of ⁇ EQD1 is equal to the sum of the values of the multiple items.
- EQD_xgs1 EQD_g1 + ⁇ EQD_olt + ⁇ EQD_onu
- EQD_xgs1 EQD_g1 + ⁇ EQD_olt + ⁇ EQD_onu + ⁇ EQD_fibre.
- the OLT After obtaining the ranging information corresponding to the second channel, the OLT performs service data transmission according to the ranging information and the ONUID obtained above.
- the ONU synchronizes the ONUID and the ranging information from the first channel to the second channel, and determines the ranging information of the second channel according to the synchronized ranging information.
- the internal structure of the ONU is the structure shown in FIG. 3 above, that is, the ONU includes two PON MAC modules
- information can be synchronized according to the method of this step.
- the internal structure of the ONU is the structure shown in Figure 4 above, that is, the ONU includes a PON MAC module
- the ONU does not need to perform this step.
- the PON MAC module is used to implement the second channel, the ONUID obtained is directly used. And ranging information.
- the first PON MAC module is used to implement the first channel
- the second PON MAC module is used to implement the second channel.
- the first PON MAC module may directly send the ONUID and ranging information to the PON MAC module, or it may be the second PON
- the MAC module sends a request to the first PON MAC module
- the first PON MAC module sends the ONUID and ranging information to the second PON MAC module, which is not limited in this application.
- the second channel of the ONU can filter the downstream broadcast message of the OLT according to the ONUID after acquiring the ONUID, and carry the correct ONUID in the uplink message.
- the ranging information corresponding to the second channel may be calculated according to the foregoing formula (2).
- EQD_xgs2 EQD_g2 + ⁇ EQD2 (2)
- EQD_xgs2 is the ranging information of the second channel
- EQD_g2 is the ranging information of the first channel
- ⁇ EQD2 is used to identify the path delay difference between the optical module of the ONT to the first channel and the second channel.
- ⁇ EQD2 may include one or more of ⁇ EQD_olt, ⁇ EQD_onu, and ⁇ EQD_fibre.
- ⁇ EQD_olt is the difference in transmission delay of the OLT circuit.
- the value of ⁇ EQD_olt may be sent by the OLT to the ONU through the 7-10th byte in the Ext_dual_channel_config message shown in Table 2 above.
- ⁇ EQD_onu is the difference of the transmission delay of the ONU circuit
- ⁇ EQD_fibre is the difference of the transmission delay of the optical path caused by different wavelengths.
- ⁇ EQD2 includes one of ⁇ EQD_olt, ⁇ EQD_onu, and ⁇ EQD_fibre, the value of ⁇ EQD2 is equal to the value of one of the items.
- EQD_xgs 2 EQD_g2 + ⁇ EQD_olt
- ⁇ EQD2 includes multiple items of ⁇ EQD_olt, ⁇ EQD_onu, and ⁇ EQD_fibre, the value of ⁇ EQD2 is equal to the sum of the values of the multiple items.
- EQD_xgs2 EQD_g2 + ⁇ EQD_olt + ⁇ EQD_onu
- EQD_xgs2 EQD_g2 + ⁇ EQD_olt + ⁇ EQD_onu + ⁇ EQD_fibre
- the first channel and the second channel are respectively tested online, so that ⁇ EQD_onu is obtained according to the difference in test results, and then ⁇ EQD_onu is fixed as a software variable in the ONT software program.
- the ranging information corresponding to the second channel is determined according to the parameters included in the ⁇ EQD. For example, assuming that ⁇ EQD includes only ⁇ EQD_onu, ⁇ EQD_onu and EQD_g2 synchronized from the first channel can be directly added to obtain the ranging information corresponding to the second channel.
- the ONU can perform service data transmission with the OLT according to the ranging information and the obtained ONUID.
- the ONU can obtain the absolute transmission time of the uplink optical signal according to the relative authorization time indicated in the bandwidth authorization information sent by the OLT during the operation phase and the ranging information corresponding to the second channel. Further, the ONU sends uplink service data on the second channel according to the absolute transmission time, and carries the ONUID in the uplink service data.
- step S505 may also be performed before the above step S504, and the execution order of S504 and S505 is not limited in this application.
- the OLT and the ONU perform authentication management through the first channel or the second channel.
- This step is used to perform the authentication phase in the corresponding description in FIG. 2.
- the OLT performs authentication management by interacting with the ONU.
- the OLT and the ONU may perform authentication through the second channel.
- the OLT sends a PWD Request message to the ONU through the second channel, and the ONU sends a PWD Response message to the OLT through the second channel, and the password information is carried in the message.
- the ONU can use the structure shown in FIG. 4 above.
- the ONU can be switched from the first channel to the second channel through a changeover switch.
- the transfer switch may have two values of "1" and "0".
- the value of the transfer switch is "0", which means that the ONU currently implements the first channel, that is, the ONU PON MAC module
- the electrical signals are processed according to the delay corresponding to the first channel.
- the ONU switches the value of the transfer switch to "1".
- the PON MAC module of the ONU processes the electrical signal according to the delay corresponding to the second channel, thereby achieving the first Conversion from one channel to the second channel.
- the OLT and the ONU may perform authentication through the first channel.
- the OLT and ONU are still authenticated through the first channel.
- the OLT sends a PWD Request message to the ONU through the first channel, and the ONU feeds the PWD Response message to the OLT through the first channel, and the password information is carried in the message.
- this step can also be performed before the above steps S504 or S505, that is, the authentication can be performed through the first channel first, and then S504 is performed. Or S505 synchronizes ONUID and ranging information.
- the OLT and the ONU may determine to use the second channel or the first channel for authentication through a pre-negotiation method, or may be pre-configured to use the second channel or the first channel for authentication, or the OLT and the ONU may also be fixedly used. Authentication is performed on the second or first channel.
- the OLT and the ONU may negotiate through an extended PLOAM message or an extended OMCI message.
- the OLT and the ONU perform OMCI configuration recovery and OMCI management through the first channel or the second channel.
- the process of this step can be regarded as the transmission configuration.
- This step is used to perform OMCI configuration recovery and OMCI management in the operation phase described in the corresponding description in FIG. 2 above. After entering the operation phase, first perform OMCI configuration recovery and OMCI management.
- the OLT and the ONU can perform OMCI configuration recovery and OMCI management through the second channel.
- the ONU implements the first channel before performing this step, then in this step, the ONU needs to first implement the first channel from Switch to implement the second channel.
- the description in step S505 for the specific execution process, reference may be made to the description in step S505, and details are not described herein again.
- the OLT and the ONU may perform authentication through the first channel.
- the OLT and ONU still perform OMCI configuration recovery and OMCI management through the first channel.
- this step can also be performed before the above steps S504 or S505, that is, the OMCI configuration recovery and OMCI can be performed through the first channel first. Management, and then execute S504 or S505 to synchronize ONUID and ranging information.
- the OLT and the ONU can determine through pre-negotiation to use the second channel or the first channel for OMCI configuration recovery and OMCI management, or can be pre-configured to use the second or first channel for OMCI configuration recovery and OMCI management Or, the OLT and ONU can also use the second channel or the first channel to perform OMCI configuration recovery and OMCI management.
- the OLT and the ONU may negotiate through an extended PLOAM message or an extended OMCI message.
- the OLT and the ONU perform service data interaction through a second channel or a dual channel.
- the OLT and the ONU perform service data interaction through dual channels means that the OLT and the ONU use the first channel and the second channel to perform service data interaction at the same time.
- the OLT and the ONU may use any of the following two methods to perform service data interaction.
- the OLT and the ONU exchange service data through the second channel, that is, the uplink service data of the ONU is sent to the OLT through the second channel, and the OLT sends the downlink service data to the ONU through the second channel.
- the OLT when the OLT sends downlink data to the ONU through the second channel, it can perform downlink data
- the corresponding data packet carries the ONUID that was synchronized to.
- the OLT confirms the ONU that sends uplink data on the second channel through the synchronized ONUID.
- the ONU On the ONU side, after completing ONUID and ranging information synchronization through the above steps S504-S505, in this step, in the uplink direction, when the ONU sends uplink data to the OLT through the second channel, it can be in the data packet corresponding to the uplink data It carries the synchronized ONUID, and the absolute sending time of the uplink data can be determined based on the synchronized ranging information.
- the ONU can filter the downlink broadcast messages of the OLT on the second channel according to the synchronized ONUID.
- the OLT and ONU exchange service data through the second channel and the first channel
- the OLT and the ONU can use the first channel and the second channel for service data interaction at the same time.
- the services that the OLT and ONU interact with may include multiple types, and each type has different requirements for the transmission delay, and optionally, the transmission channel of the service may be determined according to the delay requirements of the service.
- service data with service delay requirements less than a preset threshold may be transmitted on the second channel, and service data with service delay requirements greater than a preset threshold may be transmitted on the first channel.
- the OLT may determine the mapping relationship between the service and the transmission channel in advance, and notify the ONU of the mapping relationship between the service and the transmission channel. Furthermore, in this step, when the OLT sends downlink service data, it can determine whether to use the second channel or the first channel to transmit the service through the mapping relationship between the service and the transmission channel. When the ONU sends downlink service data, it can also determine whether to use the second channel or the first channel to transmit the service through the mapping relationship between the service and the transmission channel.
- the transmission channel corresponding to the service may be determined according to whether the delay requirement of the service is greater than a preset threshold, or the service and the transmission channel may be directly obtained based on artificial configuration information. Mapping relationship.
- the ONU implements the first channel before performing this step, then in this step, the ONU needs to first implement the first channel from Switch to implement the second channel.
- the description in step S505 for the specific execution process, reference may be made to the description in step S505, and details are not described herein again.
- the SN acquisition and ranging process is performed through the first channel with a large transmission delay, and the service data transmission that requires a high delay is performed through a second channel with a small transmission delay, so that Service data with high delay requirements no longer cause large delays, thereby ensuring the normal execution of these services.
- FIG. 6 is a module structure diagram of an information transmission device according to an embodiment of the present application.
- the device may be an OLT or an apparatus capable of supporting the OLT to implement the function of the OLT in the method provided in the embodiment of the present application, such as the apparatus. It can be a device or a chip system in the OLT.
- the apparatus includes a processing module 601 and a receiving module 602.
- the processing module 601 is configured to allocate an identifier to the first ONU through the first channel, and perform ranging on the first ONU to obtain ranging information of the first channel.
- the receiving module 602 is configured to perform data transmission of a first service with the first ONU through a second channel after the OLT negotiates with the first ONU to determine that information is transmitted using two channels.
- processing module 601 is further configured to:
- the receiving module 602 is further configured to:
- the dual-channel support capability information includes a type of a first channel and a type of a second channel supported by the ONU.
- the processing module 601 is further configured to determine whether to use the dual channel for information transmission according to the dual channel support capability information sent by the ONU and the dual channel support capability of the OLT.
- FIG. 7 is a module structure diagram of an information transmission device according to an embodiment of the present application. As shown in FIG. 7, the above device further includes:
- the sending module 603 is configured to send dual-channel configuration information to the ONU, where the dual-channel configuration information includes a type of the first channel and a type of the second channel selected by the OLT.
- the processing module 601 is further configured to determine the ranging information of the second channel according to the ranging information of the first channel and the delay difference of the path of the channel.
- the channel path delay difference includes at least one of a difference in transmission delay of the OLT circuit, a difference in transmission delay of the ONU circuit, and a difference in transmission delay of the optical path caused by different wavelengths.
- processing module 601 is further configured to:
- data transmission of the first service is performed with the first ONU through the second channel.
- the receiving module 602 is further configured to perform data transmission of a second service with the first ONU through the first channel or the second channel.
- the delay of the first service is lower than the preset delay, and the delay of the second service is greater than or equal to the preset delay.
- the transmission delay supported by the first channel is greater than the transmission delay supported by the second channel.
- the processing module 601 is further configured to perform authentication management and transmission configuration on the first ONU through the first channel or the second channel.
- FIG. 8 is a module structure diagram of another information transmission device according to an embodiment of the present application.
- the device may be an ONU or an apparatus capable of supporting the ONU to implement the functions of the ONU in the method provided in the embodiment of the present application.
- the device may be a device or a chip system in the ONU.
- the apparatus includes: a processing module 801 and a sending module 802.
- the processing module 801 is configured to obtain an identifier and perform ranging through a first channel to obtain ranging information of the first channel.
- the sending module 802 is configured to perform data transmission of the first service with the OLT through the second channel after the ONU and the OLT negotiate and determine to use dual channels for information transmission.
- processing module 801 is further configured to:
- the sending module 802 is further configured to:
- the dual channel support capability information includes the type of the first channel and the type of the second channel supported by the ONU.
- FIG. 9 is a module structure diagram of another information transmission device according to an embodiment of the present application. As shown in FIG. 9, the above device further includes:
- the receiving module 803 is configured to receive dual-channel configuration information sent by the OLT, where the dual-channel configuration information includes a type of a first channel and a type of a second channel selected by the OLT.
- processing module 801 is further configured to:
- the ranging information of the second channel is determined according to the ranging information of the first channel and the delay difference of the path of the channel.
- the channel path delay difference includes at least one of a difference in transmission delay of the OLT circuit, a difference in transmission delay of the ONU circuit, and a difference in transmission delay of the optical path caused by different wavelengths.
- processing module 801 is further configured to:
- data transmission of the first service is performed with the OLT through the second channel.
- the sending module 802 is further configured to perform data transmission of a second service with the OLT through the first channel or the second channel.
- the delay of the first service is lower than the preset delay, and the delay of the second service is greater than or equal to the preset delay.
- the transmission delay supported by the first channel is greater than the transmission delay supported by the second channel.
- the division of the modules in the embodiments of the present application is schematic and is only a logical function division. In actual implementation, there may be another division manner.
- the functional modules in the embodiments of the present application may be integrated into one process In the device, it can also exist separately physically, or two or more modules can be integrated into one module.
- the above integrated modules may be implemented in the form of hardware or software functional modules.
- an OLT 1000 provided in an embodiment of the present application is used to implement the functions of the OLT in the foregoing method.
- the OLT 1000 includes at least one processor 1020, and is configured to implement functions of the OLT in the method provided in the embodiment of the present application.
- the processor 1020 may allocate an identifier to the first ONU through the first channel, and perform ranging on the first ONU to obtain the ranging information of the first channel.
- the processor 1020 may allocate an identifier to the first ONU through the first channel, and perform ranging on the first ONU to obtain the ranging information of the first channel.
- the OLT 1000 may further include at least one memory 1030 for storing program instructions and / or data.
- the memory 1030 and the processor 1020 are coupled.
- the coupling in the embodiments of the present application is an indirect coupling or communication connection between devices, units or modules, and may be electrical, mechanical or other forms for information exchange between devices, units or modules.
- the processor 1020 may cooperate with the memory 1030.
- the processor 1020 may execute program instructions stored in the memory 1030. At least one of the at least one memory may be included in a processor.
- the OLT 1000 may further include a communication interface 1010 for communicating with other devices through a transmission medium, so as to communicate with a device in the ONU2000 or other devices.
- the communication interface may be any form of interface capable of communication, such as a module, a circuit, a bus, or a combination thereof.
- the communication interface 1010 may be a transceiver.
- the processor 1020 uses the communication interface 1010 to send and receive data, and is used to implement the method performed by the OLT described in the foregoing method embodiment.
- the specific connection medium between the communication interface 1010, the processor 1020, and the memory 1030 is not limited in the embodiment of the present application.
- the memory 1030, the processor 1020, and the communication interface 1010 are connected by a bus 1040 in FIG. 10, and the bus is indicated by a thick line in FIG. It is not limited.
- the bus can be divided into an address bus, a data bus, a control bus, and the like. For ease of representation, only a thick line is used in FIG. 10, but it does not mean that there is only one bus or one type of bus.
- the ONU2000 provided by this embodiment of the present application is used to implement the functions of the ONU in the foregoing method.
- the ONU2000 includes at least one processor 2020, and is configured to implement the functions of the ONU in the method provided in the embodiments of the present application.
- the processor 2020 may obtain the identifier and perform ranging through the first channel to obtain the ranging information of the first channel.
- the ONU2000 may further include at least one memory 2030 for storing program instructions and / or data.
- the memory 2030 and the processor 2020 are coupled.
- the coupling in the embodiments of the present application is an indirect coupling or communication connection between devices, units or modules, and may be electrical, mechanical or other forms for information exchange between devices, units or modules.
- the processor 2020 may cooperate with the memory 2030.
- the processor 2020 may execute program instructions stored in the memory 2030. At least one of the at least one memory may be included in a processor.
- the ONU2000 may further include a communication interface 2010 for communicating with other devices through a transmission medium, and thus for communicating with a device in the OLT1000 or other devices.
- the communication interface may be any form of interface capable of communication, such as a module, a circuit, a bus, or a combination thereof.
- the communication interface 2010 may be a transceiver.
- the processor 2020 uses the communication interface 2010 to send and receive data, and is used to implement the method performed by the ONU described in the foregoing method embodiment.
- the embodiments of the present application are not limited to a specific connection medium between the communication interface 2010, the processor 2020, and the memory 2030.
- the memory 2030, the processor 2020, and the communication interface 2010 are connected by a bus 2040 in FIG. 11.
- the bus is indicated by a thick line in FIG. It is not limited.
- the bus can be divided into an address bus, a data bus, a control bus, and the like. For ease of representation, only one thick line is used in FIG. 11, but it does not mean that there is only one bus or one type of bus.
- the processor may be a general-purpose processor, a digital signal processor, an application specific integrated circuit, a field programmable gate array or other programmable logic device, a discrete gate or transistor logic device, or a discrete hardware component, which may implement or The disclosed methods, steps and logic block diagrams in the embodiments of the present application are executed.
- a general-purpose processor may be a microprocessor or any conventional processor. The steps of the method disclosed in combination with the embodiments of the present application may be directly implemented by a hardware processor, or may be performed by a combination of hardware and software modules in the processor.
- the memory may be a non-volatile memory, such as a hard disk (HDD) or a solid-state drive (SSD), etc., or a volatile memory (volatile memory), such as Random-access memory (RAM).
- the memory is any other medium that can be used to carry or store desired program code in the form of instructions or data structures and can be accessed by a computer, but is not limited thereto.
- the memory in the embodiment of the present application may also be a circuit or any other device capable of implementing a storage function, for storing program instructions and / or data.
- the methods provided in the embodiments of the present application may be implemented in whole or in part by software, hardware, firmware, or any combination thereof.
- software When implemented in software, it may be implemented in whole or in part in the form of a computer program product.
- the computer program product includes one or more computer instructions.
- the computer program instructions When the computer program instructions are loaded and executed on a computer, the processes or functions according to the embodiments of the present invention are wholly or partially generated.
- the computer may be a general-purpose computer, a special-purpose computer, a computer network, a network device, a user equipment, or another programmable device.
- the computer instructions may be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium, for example, the computer instructions may be from a website site, computer, server, or data center Transmission to another website site, computer, server, or data center through wired (such as coaxial cable, optical fiber, digital subscriber line (DSL), or wireless) (such as infrared, wireless, microwave, etc.).
- the computer-readable storage medium may be any available medium that can be accessed by a computer or a data storage device such as a server, a data center, and the like that includes one or more available medium integration.
- the usable medium may be a magnetic medium (for example, a floppy disk, a hard disk, a magnetic tape), an optical medium (for example, a digital video disc (DVD), or a semiconductor medium (for example, an SSD), or the like.
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Abstract
Description
Claims (30)
- 一种信息传输方法,应用于光线路终端OLT,其特征在于,所述方法包括:所述OLT通过第一通道为第一光网络单元ONU分配标识,并对所述第一ONU进行测距,得到所述第一通道的测距信息;所述OLT与所述第一ONU协商确定使用双通道进行信息传输后,所述OLT通过第二通道与所述第一ONU进行第一业务的数据传输。
- 根据权利要求1所述的方法,其特征在于,所述OLT通过第二通道与所述第一ONU进行第一业务的数据传输之前,还包括:所述OLT与所述第一ONU协商确定是否使用双通道进行信息传输。
- 根据权利要求2所述的方法,其特征在于,所述OLT与所述第一ONU协商确定是否使用双通道进行信息传输,包括:所述OLT接收所述第一ONU发送的双通道支持能力信息,所述双通道支持能力信息中包括所述第一ONU所支持的第一通道的类型以及第二通道的类型;所述OLT根据所述第一ONU发送的双通道支持能力信息以及所述OLT的双通道支持能力确定是否使用双通道进行信息传输。
- 根据权利要求2或3所述的方法,其特征在于,所述OLT与所述第一ONU协商确定使用双通道进行信息传输之后,还包括:所述OLT向所述第一ONU发送双通道配置信息,所述双通道配置信息中包括所述OLT所选择的第一通道的类型以及第二通道的类型。
- 根据权利要求1-4任一项所述的方法,其特征在于,所述OLT通过第二通道与所述第一ONU进行第一业务的数据传输之前,还包括:所述OLT根据所述第一通道的测距信息以及通道路径时延差异,确定所述第二通道的测距信息;其中,所述通道路径时延差异包括OLT电路传输时延的差值、ONU电路传输时延的差值以及不同波长引起的光路传输时延的差值中的至少一种。
- 根据权利要求5所述的方法,其特征在于,所述OLT通过第二通道与所述第一ONU进行第一业务的数据传输,包括:所述OLT根据所述第二通道的测距信息以及为所述第一ONU分配的标识,通过所述第二通道与所述第一ONU进行第一业务的数据传输。
- 根据权利要求1-6任一项所述的方法,其特征在于,所述方法还包括:所述OLT通过所述第一通道或所述第二通道与所述第一ONU进行第二业务的数据传输。
- 根据权利要求7所述的方法,其特征在于,所述第一业务的时延低于预设时延,所述第二业务的时延大于或等于预设时延。
- 一种信息传输方法,应用于光网络单元ONU,其特征在于,所述方法包括:所述ONU通过第一通道获取标识以及进行测距,得到所述第一通道的测距信息;所述ONU与光线路终端OLT协商确定使用双通道进行信息传输后,所述ONU通过第二通道与所述OLT进行第一业务的数据传输。
- 根据权利要求9所述的方法,其特征在于,所述ONU通过第二通道与所述OLT 进行第一业务的数据传输之前,还包括:所述ONU与所述OLT协商确定是否使用双通道进行信息传输。
- 根据权利要求10所述的方法,其特征在于,所述ONU与所述OLT协商确定是否使用双通道进行信息传输,包括:所述ONU向所述OLT发送双通道支持能力信息,所述双通道支持能力信息中包括所述ONU所支持的第一通道的类型以及第二通道的类型;所述ONU接收所述OLT发送的双通道配置信息,所述双通道配置信息中包括所述OLT所选择的第一通道的类型以及第二通道的类型。
- 根据权利要求9-11任一项所述的方法,其特征在于,所述ONU通过第二通道与所述OLT进行第一业务的数据传输之前,还包括:所述ONU根据所述第一通道的测距信息以及通道路径时延差异,确定所述第二通道的测距信息;其中,所述通道路径时延差异包括OLT电路传输时延的差值、ONU电路传输时延的差值以及不同波长引起的光路传输时延的差值中的至少一种。
- 根据权利要求12所述的方法,其特征在于,所述ONU通过第二通道与所述OLT进行第一业务的数据传输,包括:所述ONU根据所述第二通道的测距信息以及获取到的标识,通过所述第二通道与所述OLT进行第一业务的数据传输。
- 根据权利要求9-13任一项所述的方法,其特征在于,所述方法还包括:所述ONU通过所述第一通道或所述第二通道与所述OLT进行第二业务的数据传输。
- 一种光线路终端OLT,其特征在于,所述OLT包括存储器和处理器;所述处理器用于与所述存储器耦合,读取并执行所述存储器中存储的指令,以执行如下方法:通过第一通道为第一光网络单元ONU分配标识,并对所述第一ONU进行测距,得到所述第一通道的测距信息;与所述ONU协商确定使用双通道进行信息传输后,通过第二通道与所述第一ONU进行的第一业务的数据传输。
- 根据权利要求15所述的OLT,其特征在于,所述处理器还用于执行:与所述ONU协商确定是否使用双通道进行信息传输。
- 根据权利要求16所述的OLT,其特征在于,所述处理器具体用于执行:接收所述第一ONU发送的双通道支持能力信息,所述双通道支持能力信息中包括所述第一ONU所支持的第一通道的类型以及第二通道的类型;根据所述第一ONU发送的双通道支持能力信息以及所述OLT的双通道支持能力确定是否使用双通道进行信息传输。
- 根据权利要求16或17所述的OLT,其特征在于,所述处理器还用于执行:向所述第一ONU发送双通道配置信息,所述双通道配置信息中包括所述OLT所选择的第一通道的类型以及第二通道的类型。
- 根据权利要求15-18任一项所述的OLT,其特征在于,所述处理器还用于执行:根据所述第一通道的测距信息以及通道路径时延差异,确定所述第二通道的测距信息;其中,所述通道路径时延差异包括OLT电路传输时延的差值、ONU电路传输时延的差值以及不同波长引起的光路传输时延的差值中的至少一种。
- 根据权利要求19所述的OLT,其特征在于,所述处理器具体还用于执行:根据所述第二通道的测距信息以及为所述第一ONU分配的标识,通过所述第二通道与所述第一ONU进行第一业务的数据传输。
- 根据权利要求15-20任一项所述的OLT,其特征在于,所述处理器还用于执行:通过所述第一通道或所述第二通道与所述第一ONU进行第二业务的数据传输。
- 一种光网络单元ONU,其特征在于,所述ONU包括存储器和处理器;所述处理器用于与所述存储器耦合,读取并执行所述存储器中存储的指令,以执行如下方法:通过第一通道获取标识以及进行测距,得到所述第一通道的测距信息;与光线路终端OLT协商确定使用双通道进行信息传输后,通过第二通道与所述OLT进行第一业务的数据传输。
- 根据权利要求22所述的ONU,其特征在于,所述处理器还用于执行:与所述OLT协商确定是否使用双通道进行信息传输。
- 根据权利要求23所述的ONU,其特征在于,所述处理器具体用于执行:向所述OLT发送双通道支持能力信息,所述双通道支持能力信息中包括所述ONU所支持的第一通道的类型以及第二通道的类型;接收所述OLT发送的双通道配置信息,所述双通道配置信息中包括所述OLT所选择的第一通道的类型以及第二通道的类型。
- 根据权利要求22-24任一项所述的ONU,其特征在于,所述处理器还用于执行:根据所述第一通道的测距信息以及通道路径时延差异,确定所述第二通道的测距信息;其中,所述通道路径时延差异包括OLT电路传输时延的差值、ONU电路传输时延的差值以及不同波长引起的光路传输时延的差值中的至少一种。
- 根据权利要求25所述的ONU,其特征在于,所述处理器具体还用于执行:根据所述第二通道的测距信息以及获取到的标识,通过所述第二通道与所述OLT进行第一业务的数据传输。
- 根据权利要求22-26任一项所述的ONU,其特征在于,所述处理器还用于执行:通过所述第一通道或所述第二通道与所述OLT进行第二业务的数据传输。
- 一种通信***,其特征在于,包括权利要求15-21任一项所述的光线路终端OLT和权利要求22-27任一项所述的光网络单元ONU。
- 一种计算机程序产品,其特征在于,所述计算机程序产品包括计算机程序代码,当所述计算机程序代码被计算机执行时,使得所述计算机执行权利要求1-8任一项所述的方法,或者使得所述计算机执行权利要求9-14任一项所述的方法。
- 一种计算机可读存储介质,其特征在于,所述计算机存储介质存储有计算机指令,当所述计算机指令被计算机执行时,使得所述计算机执行权利要求1-8任一项所述的方法,或者使得所述计算机执行权利要求9-14任一项所述的方法的指令。
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