WO2022127924A1 - 选择时钟源的方法及装置 - Google Patents
选择时钟源的方法及装置 Download PDFInfo
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- WO2022127924A1 WO2022127924A1 PCT/CN2021/139372 CN2021139372W WO2022127924A1 WO 2022127924 A1 WO2022127924 A1 WO 2022127924A1 CN 2021139372 W CN2021139372 W CN 2021139372W WO 2022127924 A1 WO2022127924 A1 WO 2022127924A1
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- 238000012545 processing Methods 0.000 claims description 39
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- 238000012423 maintenance Methods 0.000 abstract description 7
- 238000004891 communication Methods 0.000 abstract description 6
- 230000001360 synchronised effect Effects 0.000 description 13
- 230000003287 optical effect Effects 0.000 description 8
- 238000010586 diagram Methods 0.000 description 6
- 230000008569 process Effects 0.000 description 6
- 238000004590 computer program Methods 0.000 description 3
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W56/00—Synchronisation arrangements
- H04W56/001—Synchronization between nodes
- H04W56/0015—Synchronization between nodes one node acting as a reference for the others
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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
- H04J3/0638—Clock or time synchronisation among nodes; Internode synchronisation
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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
- H04J3/0638—Clock or time synchronisation among nodes; Internode synchronisation
- H04J3/0641—Change of the master or reference, e.g. take-over or failure of the master
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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
- H04J3/0638—Clock or time synchronisation among nodes; Internode synchronisation
- H04J3/0658—Clock or time synchronisation among packet nodes
-
- 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
- H04J3/0638—Clock or time synchronisation among nodes; Internode synchronisation
- H04J3/0658—Clock or time synchronisation among packet nodes
- H04J3/0661—Clock or time synchronisation among packet nodes using timestamps
- H04J3/0667—Bidirectional timestamps, e.g. NTP or PTP for compensation of clock drift and for compensation of propagation delays
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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
- H04J3/0685—Clock or time synchronisation in a node; Intranode synchronisation
- H04J3/0688—Change of the master or reference, e.g. take-over or failure of the master
Definitions
- the present application relates to the field of communications, and in particular, to a method and apparatus for selecting a clock source.
- 5G networks include multiple clock sources, each of which is of different quality.
- the network elements in the 5G network will select a clock source and synchronize with the selected clock source.
- NEs select a high-quality clock source and synchronize with the clock source.
- the clock source may fail, causing the network element to reselect another clock source with a lower quality and synchronize with the other clock source.
- the O&M personnel can only manually trigger the NE to synchronize with the clock source. As a result, the NE cannot automatically select a high-quality clock source for synchronization, resulting in low O&M efficiency.
- the present application provides a method and device for selecting a clock source, so as to realize automatic selection of a clock source with high quality and improve operation and maintenance efficiency.
- the technical solution is as follows:
- the present application provides a method for selecting a clock source.
- a first network device obtains synchronization deviation data with a second network device through a first port in a clock synchronization failure state.
- the first network device determines, based on the synchronization deviation data, whether to refer to the clock information received by the first port when selecting a clock source.
- the first network device since the first network device automatically obtains the time offset between the first network device and the second network device through the first port in the clock synchronization failure state, the clock input signal received by the first port is determined based on the time offset return to normal. When it is determined to return to normal, the first network device refers to the clock information received by the first port when selecting the clock source. In this way, after the failure of the second network device communicating with the first port, the clock source or the link connected to the first port is repaired, the first network device automatically detects the situation, and when selecting the clock source The port is used as a reference object, so that a high-quality clock source is selected in a timely and automatic manner for synchronization, and the operation and maintenance efficiency is improved.
- the first network device when the synchronization deviation data is smaller than the deviation threshold, the first network device refers to the clock information received by the first port when selecting the clock source.
- the synchronization deviation data is less than the deviation threshold, it means that the clock input signal received by the first port is back to normal, and the first network device refers to the clock information received by the first port when selecting a clock source, and timely and automatically selects a clock source with high quality. Synchronization to improve operation and maintenance efficiency.
- the port attribute of the first port includes flag information, where the flag information is used to indicate that the first port is in a clock synchronization failure state.
- the first network device sets the flag information to indicate that the first port is in a normal state of clock synchronization.
- the first network device when the first port is in a normal state of clock synchronization, the first network device only refers to the clock information received by the first port when selecting a clock source, so the first network device sets the flag information to indicate that the first port is in The clock is synchronized to the normal state, thereby ensuring that the first network device will refer to the clock information received by the first port when selecting the clock source.
- the first network device obtains synchronization data with the second network device through the first port, and the state of the first port is the first state.
- the first network device acquires synchronization deviation data with the second network device based on the synchronization data. Since the state of the first port is the first state, the synchronization data can be acquired through the first port, and the synchronization deviation data can be acquired accurately.
- the first state includes a slave state, a master master state, a monitor monitor state, or a passive passive state. This ensures that the synchronization data between the first network device and the second network device can be obtained through the first port.
- the first network device sets the state of the first port to the first state. This ensures that the synchronization data between the first network device and the second network device can be obtained through the first port.
- the first network device periodically sets the state of the first port to a first state, where the first state includes a Slave state, a Monitor state, or a Passive state.
- the synchronization data is acquired only when the state of the first port becomes the first state, so that the first network device does not need to acquire synchronization data through the first port in real time, thereby reducing the occupation of network resources and computing resources of the first network device.
- the first network device controls the clock of the first network device not to adjust according to the clock input signal of the first port. In this way, before the clock input signal received by the first port returns to normal, the clock of the first network device is prevented from being adjusted based on the clock input signal, resulting in a synchronization error.
- the first network device receives a synchronization Sync message sent by the second network device, and the Sync message includes the sending time T1 when the second network device sends the Sync message, and determines the reception of the Sync message. time T2.
- the first network device sends a delay request Delay_Req message to the second network device, and determines the sending time T3 for sending the Delay_Req message.
- the first network device receives the delay response Delay_Resp message sent by the second network device, and the Delay_Resp message includes the receiving time T4 when the second network device receives the Delay_Req message, wherein the synchronization data includes T1, T2, T3, and T4. of multiple.
- the synchronization offset data includes a time offset between the first network device and the second network device.
- the first network device receives the first physical clock signal sent by the second network device through the first port.
- the first network device obtains a frequency deviation from the second network device according to the first physical clock signal and the second physical clock signal, where the second physical clock signal is a local signal of the first network device.
- the frequency deviation is the synchronization deviation data, so it can be determined whether the physical clock signal received by the first port returns to normal based on the frequency deviation.
- the first network device controls the clock of the first network device not to be adjusted according to the first physical clock signal. In this way, before the physical clock signal received by the first port returns to normal, the clock of the first network device is prevented from being adjusted based on the physical clock signal received by the first port, resulting in a synchronization error.
- the present application provides an apparatus for selecting a clock source, for performing the method performed by the first network device in the first aspect or any possible implementation manner of the first aspect.
- the apparatus includes a unit for performing the first aspect or the method performed by the first network device in any possible implementation manner of the first aspect.
- the present application provides an apparatus for selecting a clock source, the apparatus including a transceiver, a processor and a memory.
- the transceiver, the processor and the memory may be connected through an internal connection.
- the memory is used to store a program
- the processor is used to execute the program in the memory and cooperate with the transceiver, so that the apparatus completes the first aspect or any possible implementation of the first aspect by the first network device. method of execution.
- the present application provides a computer program product, the computer program product includes a program stored in a computer-readable storage medium, and the program is loaded through a device to implement the first aspect or any of the first aspects. possible implementation methods.
- the present application provides a computer-readable storage medium for storing a program, where the program is loaded by a device to execute the first aspect or the method for any possible implementation manner of the first aspect.
- FIG. 1 is a schematic diagram of a network architecture provided by an embodiment of the present application.
- FIG. 2 is a schematic structural diagram of a first network device provided by an embodiment of the present application.
- FIG. 3 is a flowchart of a method for selecting a clock source provided by an embodiment of the present application.
- FIG. 4 is a flowchart of another method for selecting a clock source provided by an embodiment of the present application.
- FIG. 5 is a schematic diagram of a first physical clock signal and a second physical clock signal provided by an embodiment of the present application
- FIG. 6 is a schematic structural diagram of an apparatus for selecting a clock source provided by an embodiment of the present application.
- FIG. 7 is a schematic structural diagram of another apparatus for selecting a clock source provided by an embodiment of the present application.
- Synchronization deviation data used to describe the deviation between the first network device and the second network device, including the time deviation between the first network device and the second network device, or between the first network device and the second network device frequency deviation.
- Deviation threshold including time deviation threshold or frequency deviation threshold.
- the first port is a port on the first network device that communicates with the second network device.
- the first state is the state in which the first port is in.
- the first port can send a delay request (delay request, Delay Req) message to the second network device, and/or receive the second network device.
- a delay response (delay response, Delay Resp) message sent in response to the Delay Req message.
- the present application provides a network architecture 100, including:
- the first network device includes at least one port, and each second network device communicates with one port in the first network device.
- Each second network device is used to transmit data, the data including clock information, time and/or physical clock signal, and the like.
- the clock information includes information such as the clock level, which is used to indicate the quality of the clock source.
- the clock information is clock information carried in an announcement (Announce) packet sent by the second network device or clock information carried in a synchronization status message (synchronization status message, SSM) packet.
- Announce announcement
- SSM synchronization status message
- the time is the time sent by the second network device, including the time carried by the synchronization (Sync) message sent by the second network device and the time carried by the Delay Resp message sent by the second network device.
- Sync synchronization
- the second network device is directly connected to the first network device, or the link between the second network device and the first network device passes through at least one other network device, but each other network device The device transparently transmits the packets between the first network device and the second network device.
- the second network device may be a clock source, or a network device through which the link between the first network device and a clock source passes.
- the first network device may receive clock information through each port included in the first network device, and perform an operation of selecting a clock source according to the clock information received by each port.
- the first network device will select a port after performing the operation of selecting the clock source.
- the selected port is called the first port
- the second network device that communicates with the first port is called the first port.
- the quality of the clock source indicated by the clock information received by the first port may be the highest.
- the state of the first port is a slave state, and the first network device receives a clock input signal through the first port in the slave state.
- the clock input signal may include the time or physical clock signal sent by the second network device 1, etc.
- the clock of the first network device is adjusted based on the clock input signal, so that the time of the clock of the first network device is synchronized with the time of the clock of the second network device 1, or the frequency of the clock of the first network device is synchronized with that of the second network device
- the frequency of device 1's clock is synchronized.
- the time sent by the second network device 1 includes the time carried by the Sync packet sent by the second network device 1 and the second network device 1.
- the time carried in the sent Delay Resp packet.
- the first network device adjusts the clock of the first network device based on the time sent by the second network device 1 , so that the time of the clock of the first network device is synchronized with the time of the clock of the second network device 1 .
- the first network device receives the first Sync packet sent by the second network device 1 through the first port, wherein the second network device 1 periodically or irregularly sends the Sync packet, and the first Sync packet is the second network device 1
- the first Sync message includes the sending time Ta when the second network device 1 sends the first Sync message.
- the first network device obtains the reception time Tb for receiving the first Sync message, sends the first Delay Req message to the second network device 1 through the first port, and obtains the sending time Tc for sending the first Delay Req message.
- the first network device receives, through the first port, the first Delay Resp message sent by the second network device 1 in response to the first Delay Req message, and the first Delay Resp message includes the second network device 1 receiving the first Delay Req message The reception time Td.
- the first network device calculates the time offset between the first network device and the second network device 1 based on Ta, Tb, Tc and/or Td, and adjusts the clock of the first network device based on the time offset.
- the first network device adjusts the clock of the first network device based on the physical clock signal, so that the clock of the first network device is The frequency is synchronized with the frequency of the clock of the second network device 1 .
- the first network device includes port 1 and port 2
- the at least one second network device includes second network device 1 and second network device 2
- the second network device 1 communicates with port 1
- the second network device 2 communicates with port 2
- the first network device receives clock information 1 sent by the second network device 1 through port 1 and clock information 2 sent by the second network device 2 through port 2, and performs a clock source selection operation based on the clock information 1 and the clock information 2. Assuming that port 1 is selected after the clock source selection operation is performed, the state of port 1 is the slave state, and the first network device receives a clock input signal through port 1.
- the clock input signal can be the time or physical clock sent by the second network device 1.
- the clock of the first network device is adjusted based on the clock input signal, so that the time of the clock of the first network device is synchronized with the time of the clock of the second network device 1, or the frequency of the clock of the first network device is equal to that of the second network device 1.
- the frequency of the clock of the second network device 1 is synchronized.
- the clock input signal received by the first interface may jump, causing the first network device to add tag information to the port attribute of the first port, where the tag information is used to indicate that the first port is in a clock synchronization failure state.
- the first network device performs an operation of selecting a clock source from other ports except the first port to re-select a port.
- the selected port is called the second port, and will be referred to as the second port.
- the second network device in communication is called the second network device 2, the state of the second port is the Slave state, and the state of the first port becomes the non-Slave state.
- the first network device receives a clock input signal through the second port, where the clock input signal includes a time or physical clock signal sent by the second network device 2, and adjusts the clock of the first network device based on the received clock input signal.
- the marking information is a packet timing signal fail (packet timing signal fail, PTSF) marking.
- packet timing signal fail packet timing signal fail
- the so-called hopping of the clock input signal refers to: when the clock input signal is the time sent by the second network device 1, the first network device obtains the difference between the first network device and the second network device according to the time sent by the second network device 1.
- the time deviation between the two network devices 1 exceeds the time deviation threshold; in the case that the clock input signal is the physical clock signal sent by the second network device 1, the phase of the physical clock signal received by the first port is the same as that received last time.
- the phase difference between the phases of the physical clock signals exceeds a phase difference threshold.
- first network device there may be various structures of the first network device, and an example of the first network device is listed next.
- FIG. 2 an embodiment of the present application provides a first network device.
- the first network device is only an example, and other examples are not listed one by one.
- the first network device includes a main control board and at least one interface board, the main control board communicates with each interface board, each interface board includes a plurality of ports, and each port in the interface board communicates with a second network device, the first The second network device sends data to the first network device, where the data includes clock information and/or physical clock signals and the like.
- each port on the interface board can receive clock information, and the first network device performs an operation of selecting a clock source based on the clock information received by each port on the interface board, One port is selected as the first port, and the interface board sends the physical clock signal received by the first port to the main control board.
- the main control board can receive the physical clock signal sent by each interface board, select an optimal physical clock signal from the received physical clock signals, and adjust the clock of the first network device based on the optimal physical clock signal.
- the first network device includes a main control board, an interface board 1 and an interface board 2, the main control board communicates with the interface board 1 and the interface board 2 respectively, the interface board 1 includes a port 1 and a port 2, and the interface Board 2 includes port 3 and port 4. Port 1 and port 2 of interface board 1 communicate with second network device 1 and second network device 2 respectively, and port 3 and port 4 of interface board 2 communicate with second network device 3 and second network device 4 respectively.
- the port 1 of the interface board 1 receives the clock information 1 sent by the second network device 1
- the port 2 of the interface board 1 receives the clock information 2 sent by the second network device 2
- the first network device performs an operation of selecting a clock source based on the clock information 1 and the clock information 2 .
- port 1 is selected, so that the interface board 1 sends the physical clock signal received by port 1 to the main control board.
- the port 3 of the interface board 2 receives the clock information 3 sent by the second network device 3
- the port 4 of the interface board 2 receives the clock information 4 sent by the second network device 4
- the first network device performs an operation of selecting a clock source based on the clock information 3 and the clock information 4 .
- the interface board 2 sends the physical clock signal received by port 3 to the main control board.
- the main control board receives the physical clock signal sent by interface board 1 and the physical clock signal sent by interface board 2, selects an optimal physical clock signal from the two received physical clock signals, and the main control board adjusts according to the optimal physical clock signal The clock of the first network device.
- the phase of the physical clock signal received by the first interface on the interface board may jump, causing the first network device to add label information to the port attribute of the first port, where the label information is used for Indicates that the first port is in a clock synchronization failure state.
- the first network device performs a clock source selection operation on other ports on the interface board except the first port to re-select a port.
- the selected port is called the second port, and the interface board
- the physical clock signal received by the second port is sent to the main control board, so that the main control board adjusts the clock of the first network device based on the physical clock signal sent by each interface board.
- the reason for the jump of the clock input signal received by the first port may be that the second network device 1 communicating with the first port is faulty, or the connection between the first port and the second network device 1 may be faulty.
- the link has failed, or, in the case where the second network device 1 is a network device through which the link between the first port and a clock source passes, the reason may be that the clock source has failed.
- the technician can repair the fault that occurs. After the technician repairs the fault, the first network device performs the clock source selection operation through any of the following embodiments, and when selecting the clock source, the first port receives the clock information. As the reference object for selecting the clock source.
- the above-mentioned first network device may be a network element, for example, may be a switch, a router, a base station, a gateway, an optical transport network (optical transport network, OTN), an optical line terminal (optical line terminal, OLT) or an optical network unit (optical network unit, ONU) and other equipment.
- a network element for example, may be a switch, a router, a base station, a gateway, an optical transport network (optical transport network, OTN), an optical line terminal (optical line terminal, OLT) or an optical network unit (optical network unit, ONU) and other equipment.
- an embodiment of the present application provides a method for selecting a clock source, and the method can be applied to the network architecture 100 shown in FIG. 1 , including:
- Step 301 The first network device obtains the time offset from the second network device 1 through the first port in the clock synchronization failure state.
- step 301 the first network device acquires the time offset through the following operations from 3011 to 3012.
- the operations of 3011 to 3012 are:
- the first network device obtains synchronization data with the second network device through the first port, and the state of the first port is the first state.
- the first network device When the first network device detects that the clock input signal received by the first port jumps, the first network device may set the state of the first port as the first state, and the state of the first port remains unchanged as the first state.
- the first state includes a master (Master) state, a monitor (Monitor) state or a passive (Passive) state. In this way, the first network device can obtain synchronization data with the second network device in real time through the first port in the first state. or,
- the first network device When the first network device detects that the clock input signal received by the first port jumps, the first network device sets the state of the first port to the Master state, and then the first network device may periodically set the state of the first port is the first state.
- the first state includes the Slave state, the Monitor state or the Passive state. In this way, the first network device can periodically acquire synchronization data with the second network device through the first port in the first state. In this way, the burden of the first network device can be reduced, and the occupation of network resources and computing resources of the first network device can be reduced.
- the first network device when the first network device detects that the clock input signal received by the first port jumps, the first network device may perform a clock source selection operation and re-select the second port.
- the state is Slave state.
- the first network device adjusts the clock of the first network device based on a clock input signal received by the second port, the clock input signal including a time or physical clock signal sent by the second network device 2 in communication with the second port.
- the first network device adds tag information to the port attribute of port 1, the The flag information is used to flag that port 1 is in a clock synchronization failure state.
- the first network device performs an operation of selecting a clock source and selects port 2, the state of port 2 becomes the Slave state, and the first network device adjusts the clock of the first network device based on the clock input signal received by port 2.
- the first network device obtains synchronization data with the second network device 1 through the following operations (1) to (3).
- the operations (1) to (3) are:
- the first network device receives the second Sync message sent by the second network device 1, the second Sync message includes the sending time T1 when the second network device 1 sends the second Sync message, and determines to receive the second Sync message The receiving time T2 of the text.
- the second network device 1 periodically or irregularly sends a Sync message, and the second Sync message is a Sync message currently sent by the second network device 1 .
- the first network device may receive the second Sync packet sent by the second network device 1 through the first port.
- the first network device sends the second Delay_Req message to the second network device 1, and determines the sending time T3 for sending the second Delay_Req message.
- the first network device sends a second Delay_Req message to the second network device 1 through the first port in the first state.
- the first state includes a Master state, a Monitor state, or a Passive state.
- the Master state is different from the Master state defined by the current standard, and the first port in the Master state can send a second Delay_Req packet to the second network device 1 and receive a response from the second network device 1
- the second Delay_Req message is the second Delay_Resp message sent.
- the first state is the Monitor state or the Passive state
- the first port in the Monitor state or the Passive state can send the second Delay_Req message to the second network device 1 and receive the second Delay_Req message in response to the second network device 1, The second Delay_Resp message sent.
- the first state includes a Slave state, a Monitor state or a Passive state.
- the first network device detects that the clock input signal received by the first port jumps, the first network device sets the state of the first port to the Master state, and the first port in the Master state cannot send signals to the second port.
- the network device 1 sends the second Delay_Req message, and receives the second Delay_Resp message sent by the second network device 1 in response to the second Delay_Req message.
- the state of the first port needs to be set to the first state, and then the operation (2) can be performed.
- the state of the second port of the first network device may still be the Slave state, and the first network device still receives data based on the second port.
- the clock input signal adjusts the clock of the first network device.
- the first state is the Slave state, that is, when the first network device sets the state of the first port to the Slave state
- the state of the second port may not be the Slave state.
- the first network device needs to control that the clock of the first network device is not adjusted according to the clock input signal received by the first port. Therefore, it is avoided that the clock of the first network device is synchronized with the second network device 1, resulting in that the time offset between the first network device and the second network device 1 cannot be accurately acquired.
- the first network device receives the second Delay_Resp message sent by the second network device 1, and the second Delay_Resp message includes the receiving time T4 when the second network device 1 receives the second Delay_Req message.
- the first network device receives the second Delay_Resp message sent by the second network device 1 through the first port, wherein the synchronization data includes multiples of T1, T2, T3 and T4.
- the first network device acquires the time offset from the second network device 1 based on the synchronization data.
- the time offset is equal to [(T2-T1)-(T4-T3)]/2, or the time offset is equal to T4-T3-delay, or the time offset is equal to T4-T3.
- the delay is the time delay between the first network device and the second network device 1 , and is determined based on the link length between the first network device and the second network device 1 .
- the link length may be configured to the first network device in advance.
- the link may be fiber optic or the like.
- Step 302 Based on the time offset, the first network device determines whether to refer to the clock information received by the first port when selecting the clock source.
- the first network device determines that the clock input signal received by the first port is back to normal, that is, the clock input signal no longer has jump phenomenon, and refers to the first port when selecting the clock source Received clock information.
- the first network device may perform a clock source selection operation based on clock information received by the first port and clock information received by other ports on the first network device. That is, the clock information received by the first port is referred to when the clock source is selected. After the operation of selecting the clock source is performed, a port will be selected, and the state of the selected port will become the Slave state. The first network device adjusts the clock of the first network device based on the clock input signal received by the selected port.
- the first network device since the port attribute of the first port includes flag information, when the time deviation is less than the time deviation threshold, the first network device further sets the flag information to indicate that the first port is in a normal state of clock synchronization.
- the first network device can automatically obtain the time offset between the first network device and the second network device through the first port in a clock synchronization failure state, it can be determined based on the time offset that the first port receives
- the first network device can automatically detect the situation, and select the clock source.
- the first port is used as a reference object, so that a high-quality clock source is selected in a timely and automatic manner for synchronization, and the operation and maintenance efficiency is improved.
- the first network device controls the clock of the first network device to no longer adjust according to the clock input signal received by the first port, thereby avoiding the first network device's clock.
- the clock is synchronized with the second network device 1, so that the time offset between the first network device and the second network device 1 cannot be accurately obtained, thus improving the accuracy of determining that the clock input signal received by the first port is back to normal.
- an embodiment of the present application provides a method for selecting a clock source.
- the method can be applied to the network architecture 100 shown in the foregoing FIG. 2 , and the execution subject may be the first network device shown in the foregoing FIG. 2 , including :
- Step 401 The first network device obtains the frequency deviation with the second network device 1 through the first port in the clock synchronization failure state, and the first port is located on an interface board of the first network device.
- the first network device may perform a clock source selection operation to remove the first network device from the interface board.
- the second port is re-selected from the ports other than the port.
- the interface board sends the physical clock signal received by the second port to the main control board of the first network device.
- the so-called jump of the physical clock signal means that the phase difference between the phase of the physical clock signal received by the first port and the phase of the physical clock signal received by the first port last time exceeds the phase difference threshold.
- the interface board may periodically send the physical clock signal received by the first port to the main control board of the first network device.
- the physical clock signal received by the first port is referred to as the first physical clock signal
- the first physical clock signal is sent by the second network device 1 that communicates with the first port.
- the interface board stops sending the physical clock signal received by the second port to the main control board of the first network device.
- the main control board of the first network device receives the first physical clock signal, and obtains the frequency deviation between the first network device and the second network device 1 according to the first physical clock signal and the second physical clock signal.
- the second physical clock signal is a signal local to the first network device.
- the operation of acquiring the frequency deviation between the first network device and the second network device 1 is:
- the first physical clock signal includes a plurality of consecutive first signals
- the second physical clock signal includes a plurality of consecutive second signals
- each first signal corresponds to a second signal.
- the first network device selects two adjacent first signals from the first physical clock signals.
- the two first signals are referred to as the first signal 1 and the first signal 2
- the first signal 1 is earlier than the first signal 2
- the second physical clock signal includes the second signal corresponding to the first signal 1 1 and the second signal 2 corresponding to the first signal 2.
- the first network device obtains the first phase difference between the first signal 1 and the second signal 1 as X
- the interface board 1 sends the physical clock signal received by the port 1 to the main control board, and at the same time the interface board 1 also detects the port 1 Received physical clock signal.
- the first network device may perform a clock source selection operation, and reselect a port from other ports on the interface board 1 except port 1 2.
- the interface board 1 sends the physical clock signal received by the port 2 to the main control board of the first network device.
- the interface board 1 may periodically send the physical clock signal received by the port 1 to the main control board of the first network device.
- the first physical clock signal is a physical clock signal received by the port 1 and sent by the second network device 1 .
- the interface board 1 stops sending the physical clock signal received by the port 2 to the main control board of the first network device.
- the main control board of the first network device receives the first physical clock signal, and calculates the frequency deviation between the first network device and the second network device 1 according to the first physical clock signal and the local second physical clock signal.
- the first network device controls the clock of the first network device not to adjust according to the first physical clock signal. Therefore, it is avoided that the clock of the first network device is synchronized with the second network device 1 communicating with the first port, resulting in the inability to accurately calculate the frequency deviation between the first network device and the second network device 1.
- Step 402 Based on the frequency deviation, the first network device determines whether to refer to the clock information received by the first port when selecting the clock source.
- the first network device determines that the first physical clock signal received by the first port is back to normal, that is, the frequency of the first physical clock signal no longer has a hopping phenomenon, and the When selecting the clock source on the interface board, refer to the clock information received by the first port.
- the first network device may perform an operation of selecting a clock source based on clock information received by the first port and clock information received by other ports on the interface board. That is, the clock information received by the first port is referred to when the clock source is selected.
- a port is selected, and the interface board sends the physical clock signal received by the selected port to the main control board of the first network device.
- the main control board of the first network device selects an optimal physical clock signal from the physical clock signals sent by each interface board in the first network device, and adjusts the clock of the first network device based on the optimal physical clock signal.
- the first network device sets the flag information to indicate that the first port is in a normal state of clock synchronization.
- the first network device can automatically obtain the frequency deviation between the first network device and the second network device 1 through the first port in a clock synchronization failure state
- the first port can be determined based on the frequency deviation
- the received physical clock signal returns to normal, that is, the physical clock signal no longer has jump phenomenon, and the clock information received by the first port is referred to when selecting the clock source.
- the first network device can automatically detect the situation, and select the clock source.
- the first port is used as a reference object, so that a high-quality clock source can be selected in time for synchronization, thereby improving operation and maintenance efficiency.
- the first network device also controls the clock of the first network device not to be adjusted according to the first physical clock signal, thereby avoiding synchronization between the clock of the first network device and the second network device 1 communicating with the first port, resulting in inaccurate
- the frequency deviation between the first network device and the second network device 1 is calculated accurately, so that the accuracy of determining that the physical clock signal received by the first port is back to normal can be improved.
- an embodiment of the present application provides an apparatus 600 for selecting a clock source, and the apparatus 600 may be deployed on the first network device provided in any of the foregoing embodiments.
- the apparatus 600 is deployed on the first network device in the network architecture 100 shown in FIG. 1 or FIG. 2 , or is deployed on the first network device in the method shown in FIG. 3 , or is deployed on the first network device shown in FIG. 4 . on the first network device showing the method.
- the apparatus 600 includes:
- a processing unit 601 configured to acquire synchronization deviation data between the apparatus 600 and the second network device through the first port in a clock synchronization failure state;
- the processing unit 601 is further configured to determine, based on the synchronization deviation data, whether to refer to the clock information received by the first port when selecting the clock source.
- the synchronization deviation data acquired by the processing unit 601 may be time deviation or frequency deviation.
- the relevant content in step 301 of the embodiment shown in FIG. 3 and details are not described herein again.
- the frequency deviation by the processing unit 601 reference may be made to the relevant content in step 401 of the embodiment shown in FIG. 4, and details are not described herein again.
- the processing unit 601 is configured to refer to the clock information received by the first port when selecting the clock source when the synchronization deviation data is less than the deviation threshold.
- the detailed implementation process of the processing unit 601 referring to the clock information received by the first port when selecting the clock source may refer to step 302 in the embodiment shown in FIG. 3 or referring to step 402 in the embodiment shown in FIG. 4 .
- the related content will not be described in detail here.
- the port attribute of the first port includes flag information, where the flag information is used to indicate that the first port is in a clock synchronization failure state,
- the processing unit 601 is further configured to set the flag information to indicate that the first port is in a normal state of clock synchronization when the synchronization deviation data is smaller than the deviation threshold.
- processing unit 601 is used for:
- synchronization deviation data with the second network device is acquired.
- the first state includes a slave state, a master master state, a monitor monitor state, or a passive passive state.
- processing unit 601 is further configured to set the state of the first port to the first state.
- processing unit 601 is used for:
- the processing unit 601 is configured to control the clock of the apparatus 600 not to adjust according to the clock input signal of the first port when the first state is the Slave state.
- the apparatus 600 further includes: a first receiving unit 602 and a sending unit 603,
- the first receiving unit 602 is configured to receive a synchronous Sync message sent by the second network device, where the Sync message includes a sending time T1 when the second network device sends the Sync message;
- a processing unit 601, configured to determine the reception time T2 for receiving the Sync message
- a sending unit 603, configured to send a delay request Delay_Req message to the second network device
- the processing unit 601 is further configured to determine the sending time T3 for sending the Delay_Req message;
- the first receiving unit 602 is further configured to receive a delay response Delay_Resp message sent by the second network device, where the Delay_Resp message includes the receiving time T4 when the second network device receives the Delay_Req message, wherein the synchronization data includes T1, T2, and T3 and multiple in T4.
- the synchronization deviation data includes the time deviation between the apparatus 600 and the second network device.
- the apparatus 600 further includes: a second receiving unit 604,
- the second receiving unit 604 is configured to receive, through the first port, the first physical clock signal sent by the second network device;
- the processing unit 601 is configured to obtain a frequency deviation from the second network device according to the first physical clock signal and the second physical clock signal, where the second physical clock signal is a local signal of the apparatus 600 .
- the processing unit 601 is further configured to control the clock of the apparatus 600 not to be adjusted according to the first physical clock signal.
- the processing unit automatically obtains the synchronization deviation data between the first network device and the second network device through the first port in the clock synchronization failure state, and determines the clock received by the first port based on the synchronization deviation data Whether the input signal is back to normal.
- the processing unit refers to the clock information received by the first port when selecting the clock source.
- the processing unit automatically detects the situation, and uses the first port as the clock source when selecting the clock source. Reference objects, so as to timely and automatically select a high-quality clock source for synchronization and improve operation and maintenance efficiency.
- an embodiment of the present application provides a schematic diagram of an apparatus 700 for selecting a clock source.
- the apparatus 700 may be the first network device in any of the foregoing embodiments.
- the apparatus 700 is the first network device in the network architecture 100 shown in FIG. 1 or FIG. 2 , or the first network device in the method shown in FIG. 3 , or the first network device in the method shown in FIG. 4 .
- the apparatus 700 includes at least one processor 701 , internal connections 702 , memory 703 and at least one transceiver 704 .
- the apparatus 700 is an apparatus with a hardware structure, and can be used to implement the functional modules in the apparatus 600 described in FIG. 6 .
- the processing unit 601 in the apparatus 600 shown in FIG. 6 can be implemented by calling the code in the memory 703 by the at least one processor 701, and the first receiving unit in the apparatus 600 shown in FIG. 6 can be implemented.
- 602 , the sending unit 603 and the second receiving unit 604 can be implemented by the transceiver 704 .
- the apparatus 700 may also be used to implement the function of the first network device in any of the foregoing embodiments.
- processor 701 may be a general-purpose central processing unit (central processing unit, CPU), network processor (network processor, NP), microprocessor, application-specific integrated circuit (application-specific integrated circuit, ASIC) , or one or more integrated circuits used to control the execution of the program of this application.
- CPU central processing unit
- NP network processor
- ASIC application-specific integrated circuit
- the internal connection 702 described above may include a path to transfer information between the aforementioned components.
- the internal connection 702 is a single board or a bus or the like.
- the above transceiver 704 is used to communicate with other devices or communication networks.
- the above-mentioned memory 703 may be a read-only memory (read-only memory, ROM) or other types of static storage devices that can store static information and instructions, a random access memory (random access memory, RAM) or other types of storage devices that can store information and instructions.
- types of dynamic storage devices which can also be electrically erasable programmable read-only memory (EEPROM), compact disc read-only memory (CD-ROM), or other optical storage, CD-ROM storage (including compact discs, laser discs, compact discs, digital versatile discs, Blu-ray discs, etc.), magnetic disk storage media or other magnetic storage devices, or capable of carrying or storing desired program code in the form of instructions or data structures and capable of being accessed by Any other medium accessed by the computer without limitation.
- the memory can exist independently and be connected to the processor through a bus.
- the memory can also be integrated with the processor.
- the memory 703 is used for storing the application program code for executing the solution of the present application, and the execution is controlled by the processor 701 .
- the processor 701 is configured to execute the application program code stored in the memory 703, and cooperate with at least one transceiver 704, so that the apparatus 700 realizes the functions in the method of the present patent.
- the processor 701 may include one or more CPUs, such as CPU0 and CPU1 in FIG. 7 .
- the apparatus 700 may include multiple processors, such as the processor 701 and the processor 707 in FIG. 7 .
- processors may be a single-core (single-CPU) processor or a multi-core (multi-CPU) processor.
- a processor herein may refer to one or more devices, circuits, and/or processing cores for processing data (eg, computer program instructions).
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Abstract
Description
Claims (26)
- 一种选择时钟源的方法,其特征在于,所述方法包括:第一网络设备通过处于时钟同步故障状态的第一端口,获取与第二网络设备之间的同步偏差数据;所述第一网络设备基于所述同步偏差数据,确定在选择时钟源时是否参考所述第一端口收到的时钟信息。
- 如权利要求1所述的方法,其特征在于,所述第一网络设备基于所述同步偏差数据,确定在选择时钟源时是否参考所述第一端口收到的时钟信息,包括:在所述同步偏差数据小于偏差阈值时,所述第一网络设备在选择时钟源时参考所述第一端口收到的时钟信息。
- 如权利要求1或2所述的方法,其特征在于,所述第一端口的端口属性包括标记信息,所述标记信息用于指示所述第一端口处于时钟同步故障状态,所述方法还包括:在所述同步偏差数据小于偏差阈值时,所述第一网络设备设置所述标记信息用于指示所述第一端口处于时钟同步正常状态。
- 如权利要求1至3任一项所述的方法,其特征在于,所述第一网络设备获取与第二网络设备之间的同步偏差数据,包括:所述第一网络设备通过所述第一端口,获取与所述第二网络设备之间的同步数据,所述第一端口的状态为第一状态;所述第一网络设备基于所述同步数据,获取与所述第二网络设备之间的同步偏差数据。
- 如权利要求1至4任一项所述的方法,其特征在于,所述第一状态包括从Slave状态、主Master状态、监控Monitor状态或被动Passive状态。
- 如权利要求1至4任一项所述的方法,其特征在于,所述方法还包括:所述第一网络设备将所述第一端口的状态设置为第一状态。
- 如权利要求6所述的方法,其特征在于,所述第一网络设备将所述第一端口的状态设置为第一状态,包括:所述第一网络设备周期性地将所述第一端口的状态设置为所述第一状态,所述第一状态包括Slave状态、Monitor状态或Passive状态。
- 如权利要求4至7任一项所述的方法,其特征在于,所述方法还包括:当所述第一状态为Slave状态时,所述第一网络设备控制所述第一网络设备的时钟不根据所述第一端口的时钟输入信号进行调整。
- 如权利要求4所述的方法,其特征在于,所述第一网络设备通过所述第一端口,获取与所述第二网络设备之间的同步数据,包括:所述第一网络设备接收所述第二网络设备发送的同步Sync报文,所述Sync报文包括所述第二网络设备发送所述Sync报文的发送时间T1,确定接收所述Sync报文的接收时间T2;所述第一网络设备向所述第二网络设备发送时延请求Delay_Req报文,确定发送所述Delay_Req报文的发送时间T3;所述第一网络设备接收所述第二网络设备发送的时延响应Delay_Resp报文,所述Delay_Resp报文包括所述第二网络设备接收所述Delay_Req报文的接收时间T4,其中,所述同步数据包括T1、T2、T3和T4中的多个。
- 如权利要求1至9任一项所述的方法,其特征在于,所述同步偏差数据包括所述第一网络设备与所述第二网络设备之间的时间偏差。
- 如权利要求1或2所述的方法,其特征在于,所述第一网络设备获取与所述第二网络设备之间的同步数据,包括:所述第一网络设备通过所述第一端口,接收所述第二网络设备发送的第一物理时钟信号;所述第一网络设备获取与第二网络设备之间的同步偏差数据,包括:所述第一网络设备根据所述第一物理时钟信号和第二物理时钟信号,获取与所述第二网络设备之间的频率偏差,所述第二物理时钟信号是所述第一网络设备本地的信号。
- 如权利要求11所述的方法,其特征在于,所述方法还包括:所述第一网络设备控制所述第一网络设备的时钟不根据所述第一物理时钟信号进行调整。
- 一种选择时钟源的装置,其特征在于,所述装置包括:处理单元,用于通过处于时钟同步故障状态的第一端口,获取所述装置与第二网络设备之间的同步偏差数据;所述处理单元,还用于基于所述同步偏差数据,确定在选择时钟源时是否参考所述第一端口收到的时钟信息。
- 如权利要求13所述的装置,其特征在于,所述处理单元,用于在所述同步偏差数据小于偏差阈值时,在选择时钟源时参考所述第一端口收到的时钟信息。
- 如权利要求13或14所述的装置,其特征在于,所述第一端口的端口属性包括标记信息,所述标记信息用于指示所述第一端口处于时钟同步故障状态,所述处理单元,还用于在所述同步偏差数据小于偏差阈值时,设置所述标记信息用于指示所述第一端口处于时钟同步正常状态。
- 如权利要求13至15任一项所述的装置,其特征在于,所述处理单元,用于:通过所述第一端口,获取与所述第二网络设备之间的同步数据,所述第一端口的状态为第一状态;基于所述同步数据,获取与所述第二网络设备之间的同步偏差数据。
- 如权利要求13至16任一项所述的装置,其特征在于,所述第一状态包括从Slave状态、主Master状态、监控Monitor状态或被动Passive状态。
- 如权利要求17至16任一项所述的装置,其特征在于,所述处理单元,还用于将所述第一端口的状态设置为第一状态。
- 如权利要求18所述的装置,其特征在于,所述处理单元,用于:周期性地将所述第一端口的状态设置为所述第一状态,所述第一状态包括Slave状态、Monitor状态或Passive状态。
- 如权利要求16至19任一项所述的装置,其特征在于,所述处理单元,用于当所述第一状态为Slave状态时,控制所述装置的时钟不根据所述第一端口的时钟输入信号进行调整。
- 如权利要求16所述的装置,其特征在于,所述装置还包括:第一接收单元和发送单元,所述第一接收单元,用于接收所述第二网络设备发送的同步Sync报文,所述Sync报文包括所述第二网络设备发送所述Sync报文的发送时间T1;所述处理单元,用于确定接收所述Sync报文的接收时间T2;所述发送单元,用于向所述第二网络设备发送时延请求Delay_Req报文;所述处理单元,还用于确定发送所述Delay_Req报文的发送时间T3;所述第一接收单元,还用于接收所述第二网络设备发送的时延响应Delay_Resp报文,所述Delay_Resp报文包括所述第二网络设备接收所述Delay_Req报文的接收时间T4,其中,所述同步数据包括T1、T2、T3和T4中的多个。
- 如权利要求13至21任一项所述的装置,其特征在于,所述同步偏差数据包括所述装置与所述第二网络设备之间的时间偏差。
- 如权利要求13或14所述的装置,其特征在于,所述装置还包括:第二接收单元,所述第二接收单元,用于通过所述第一端口,接收所述第二网络设备发送的第一物理时钟信号;所述处理单元,用于根据所述第一物理时钟信号和第二物理时钟信号,获取与所述第二网络设备之间的频率偏差,所述第二物理时钟信号是所述装置本地的信号。
- 如权利要求23所述的装置,其特征在于,所述处理单元,还用于控制所述装置的时钟不根据所述第一物理时钟信号进行调整。
- 一种选择时钟源的装置,其特征在于,所述装置包括存储器、处理器及存储在所述存储器上的程序,所述处理器执行所述程序时,使得所述装置实现权利要求1-12任一项所述的方法。
- 一种计算机存储介质,其特征在于,其上存储有程序,所述程序被设备执行时,实现权利要求1-12任一项所述的方法。
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Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN102006135A (zh) * | 2010-12-03 | 2011-04-06 | 北京华环电子股份有限公司 | 一种选择同步时钟源的方法及装置 |
CN102263630A (zh) * | 2011-07-21 | 2011-11-30 | 中兴通讯股份有限公司 | 一种时钟源的选择方法 |
JP2013207526A (ja) * | 2012-03-28 | 2013-10-07 | Nippon Telegr & Teleph Corp <Ntt> | クロック供給方法およびクロック供給装置 |
CN104579534A (zh) * | 2014-12-31 | 2015-04-29 | 北京东土科技股份有限公司 | 一种sdh网络中的时钟同步方法及系统 |
CN105024798A (zh) * | 2014-04-28 | 2015-11-04 | 中兴通讯股份有限公司 | 一种时间同步的方法及装置 |
WO2020135279A1 (zh) * | 2018-12-29 | 2020-07-02 | 华为技术有限公司 | 时钟同步方法、装置和存储介质 |
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Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN102006135A (zh) * | 2010-12-03 | 2011-04-06 | 北京华环电子股份有限公司 | 一种选择同步时钟源的方法及装置 |
CN102263630A (zh) * | 2011-07-21 | 2011-11-30 | 中兴通讯股份有限公司 | 一种时钟源的选择方法 |
JP2013207526A (ja) * | 2012-03-28 | 2013-10-07 | Nippon Telegr & Teleph Corp <Ntt> | クロック供給方法およびクロック供給装置 |
CN105024798A (zh) * | 2014-04-28 | 2015-11-04 | 中兴通讯股份有限公司 | 一种时间同步的方法及装置 |
CN104579534A (zh) * | 2014-12-31 | 2015-04-29 | 北京东土科技股份有限公司 | 一种sdh网络中的时钟同步方法及系统 |
WO2020135279A1 (zh) * | 2018-12-29 | 2020-07-02 | 华为技术有限公司 | 时钟同步方法、装置和存储介质 |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN117495350A (zh) * | 2023-11-06 | 2024-02-02 | 烟台持久钟表有限公司 | 一种基于钟联网的时钟运维方法、系统、设备和存储介质 |
CN117495350B (zh) * | 2023-11-06 | 2024-05-24 | 烟台持久钟表有限公司 | 一种基于钟联网的时钟运维方法、系统、设备和存储介质 |
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