WO2015079537A1 - Système de pon, olt et procédé de récupération de leurs lignes à grande vitesse - Google Patents

Système de pon, olt et procédé de récupération de leurs lignes à grande vitesse Download PDF

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Publication number
WO2015079537A1
WO2015079537A1 PCT/JP2013/082074 JP2013082074W WO2015079537A1 WO 2015079537 A1 WO2015079537 A1 WO 2015079537A1 JP 2013082074 W JP2013082074 W JP 2013082074W WO 2015079537 A1 WO2015079537 A1 WO 2015079537A1
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onu
sequence
mpcp
olt
mode operation
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PCT/JP2013/082074
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English (en)
Japanese (ja)
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盛友 大杉
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三菱電機株式会社
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Priority to JP2015550270A priority Critical patent/JP5955473B2/ja
Priority to PCT/JP2013/082074 priority patent/WO2015079537A1/fr
Publication of WO2015079537A1 publication Critical patent/WO2015079537A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/44Star or tree networks

Definitions

  • the present invention relates to a PON (Passive Optical Network) system that is an optical communication network including a station side device (hereinafter referred to as OLT: Optical Line Terminal) and a plurality of subscriber side devices (hereinafter referred to as ONU: Optical Network Unit).
  • OLT Optical Line Terminal
  • ONU Optical Network Unit
  • the present invention relates to a PON system, an OLT, and a high-speed line restoration processing method for restoring a line capable of data communication between the OLT and all ONUs at high speed.
  • optical communication is performed by connecting one OLT and a plurality of ONUs with a passive optical branching device such as an optical star coupler.
  • the control of the PON system is standardized by IEEE802.3.
  • a downstream signal from the OLT to the ONU is transmitted to the optical branch via one trunk optical fiber, branched by the optical branch, and then transmitted to all ONUs via the branch optical fiber.
  • the upstream signal from the ONU to the OLT is transmitted from each ONU to each optical branching unit via each branch optical fiber, and is transmitted from the optical branching unit to one OLT via one trunk optical fiber.
  • the upstream signal from the ONU to the OLT when a plurality of ONUs transmit signals at the same time, interference between the signals transmitted from each ONU occurs, and the signals cannot be received correctly on the OLT side.
  • the upstream signal transmitted from each ONU to the OLT needs to be transmitted in a time division manner within a limited transmission band. Therefore, an identifier called LLID (Logical Link ID), which is a unique number for identifying each ONU, is assigned to each ONU in advance, and signal transmission timing is notified to each ONU using the LLID.
  • LLID Logical Link ID
  • the downstream signal transmitted from the OLT to each ONU the signal transmitted from one trunk optical fiber is branched by the optical branching unit and transmitted to all ONUs.
  • Each ONU reads the LLID accommodated in the received signal, and takes in the signal if the LLID matches the LLID assigned to itself, and discards the signal if the LLID does not match.
  • IEEE 802.3 defines a procedure for assigning the LLID to each ONU.
  • the OLT always transmits a DiscoveryGate signal to all ONUs in a broadcast manner at a constant cycle in preparation for discovery of a new ONU.
  • the DiscoveryGate signal is a signal that notifies the transmission timing of the signal to an ONU to which no LLID is assigned (hereinafter referred to as a link unestablished ONU).
  • the ONU has a specification in which no signal is transmitted from the ONU side unless a Gate (DiscoveryGate, GrantGate, etc.) signal is received from the OLT.
  • the link unestablished ONU that has received the DiscoveryGate signal transmits a RegisterRequest signal to request a link, that is, grant an LLID.
  • a Register signal is transmitted from the OLT to the link-unestablished ONU, and an LLID is assigned.
  • the OLT individually notifies the corresponding ONU of a GrantGate signal including the assigned LLID by a unicast method.
  • the GrantGate signal notifies the uplink transmission band and the uplink transmission timing while checking the degree of data communication with other ONUs.
  • the ONU receives the GrantGate signal, the ONU transmits a RegisterAck signal at the instructed uplink transmission timing, and notifies the OLT that the LLID has been given by the Register signal.
  • the OLT associates and manages the LLID assigned to the ONU and the ONU-specific MAC (Media Access Control) address.
  • MPCP Multi-Point Control Protocol
  • the procedure for establishing this MPCP link is hereinafter referred to as an MPCP discovery sequence.
  • the ONU that has established the MPCP link by the MPCP discovery sequence can perform data communication with the OLT.
  • a Report signal for declaring the amount of data to be transmitted upstream is returned from the ONU, and the OLT permits the transmission so that upstream data communication is possible.
  • an OAM discovery sequence a procedure for establishing an OAM (Operation Administration and Maintenance) link (hereinafter referred to as an OAM discovery sequence) for enabling remote control and setting from the OLT to the ONU, and data communication between the OLT and the ONU.
  • encryption sequence a procedure for encrypting a signal
  • authentication sequence a procedure for permitting data communication only to the authenticated ONU
  • An OLT to which a plurality of ONUs are connected continuously processes each of the above-described sequences for an ONU that has established an MPCP link, and at the same time, transmits a DiscoveryGate signal at a fixed period to MPCP discovery sequence for other link-unestablished ONUs Process.
  • the OLT repeats such parallel processing and enables data communication of all connected ONUs.
  • the trunk optical fiber or branch optical fiber between the OLT and the ONU is cut, or when the power of the ONU is turned off, the response from the ONU to the Gate (Discovery Gate, Grant Gate, etc.) signal transmitted from the OLT is received. From the absence, it is detected on the OLT side that the MPCP link with the ONU is broken.
  • Gate Discovery Gate, Grant Gate, etc.
  • the instantaneous interruption when the main optical fiber or branch optical fiber is recovered immediately after a momentary break (hereinafter referred to as an instantaneous interruption), or when the ONU power supply is instantaneously recovered (hereinafter referred to as an instantaneous interruption), the instantaneous interruption or instantaneous In the case where the stop time is a certain time or less, there is a function (hereinafter referred to as a holdover function) for maintaining the MPCP link in the OLT and the ONU.
  • a holdover function for maintaining the MPCP link in the OLT and the ONU.
  • the latest information (encryption password, communication settings, etc.) regarding the communication state is updated and stored, and the restoration procedure is performed by using the stored information when the line is restored. There is a method of speeding up by omitting a part of (see, for example, Patent Document 1).
  • the transmission of the DiscoveryGate signal from the OLT has a fixed period, even if the MPCP discovery sequence of a certain ONU is completed, other link unestablished ONUs must wait for the DiscoveryGate signal until the next period (for example, MPCP discovery).
  • the time required for the sequence is about 17 milliseconds, and the cycle for transmitting the DiscoveryGate signal from the OLT is about 100 milliseconds).
  • the present invention has been made to solve the above-described problems, and an object thereof is to provide a PON system, an OLT, and a high-speed line restoration processing method capable of restoring a line at high speed.
  • the PON system according to the present invention is an PON system including an OLT and a plurality of ONUs connected to the OLT.
  • the OLT is an OAM discovery sequence for establishing an OAM link and encryption for encrypting a signal for each ONU.
  • An ONU management unit that manages information indicating whether or not an authentication sequence that permits a sequence and data communication is necessary, and a first mode operation unit that processes an MPCP discovery sequence that establishes an MPCP link for an ONU that has not yet been established
  • a second mode operation unit that continuously processes the MPCP discovery sequence for all ONUs, and then processes a necessary sequence for each ONU based on information managed by the ONU management unit, Based on the information managed by the management unit, the first and second mode operation units It is obtained by a mode change unit for operating one Chi.
  • the PON system is a PON system including an OLT and a plurality of ONUs connected to the OLT.
  • the OLT encrypts an OAM discovery sequence and a signal for establishing an OAM link for each ONU.
  • An ONU management unit that manages information indicating whether an encryption sequence and an authentication sequence that permits data communication are necessary, and a first mode that processes an MPCP discovery sequence that establishes an MPCP link for an ONU that has not yet been established Information that is managed by the ONU management unit, a third mode operation unit that processes the MPCP discovery sequence for each operation unit, and processes a necessary sequence based on information managed by the ONU management unit Mode for operating one of the first and third mode operation units based on It is obtained by a transfer unit.
  • the PON system is a PON system including an OLT and a plurality of ONUs connected to the OLT.
  • the OLT encrypts an OAM discovery sequence and a signal for establishing an OAM link for each ONU.
  • the first mode operation unit for processing the MPCP discovery sequence for establishing the MPCP link and the MPCP discovery sequence for all the ONUs are processed continuously, and then specified based on information managed by the ONU management unit 4th to process the necessary sequence when the event occurs
  • a mode operation part based on the information managed by the ONU management unit, in which a mode transition section for operating the one of the mode operation part of the first and fourth.
  • the high-speed line recovery processing method is a high-speed line recovery processing method by a PON system including an OLT and a plurality of ONUs connected to the OLT.
  • the OLT is controlled by the ONU management unit for each ONU.
  • An ONU management step for managing information indicating whether or not an OAM discovery sequence for establishing an OAM link, an encryption sequence for encrypting a signal, and an authentication sequence for permitting data communication is necessary, and a link by a first mode operation unit
  • the high-speed line recovery processing method is a high-speed line recovery processing method by a PON system including an OLT and a plurality of ONUs connected to the OLT.
  • the OLT is controlled by the ONU management unit for each ONU.
  • An ONU management step for managing information indicating whether or not an OAM discovery sequence for establishing an OAM link, an encryption sequence for encrypting a signal, and an authentication sequence for permitting data communication is necessary, and a link by a first mode operation unit
  • the first mode operation step for processing the MPCP discovery sequence for establishing the MPCP link for the unestablished ONU and the third mode operation unit process the MPCP discovery sequence for each ONU, and the ONU management unit Process the required sequence based on managed information 3 and mode operation steps, the mode transition section, based on the information managed by the ONU management unit, and has a mode transition operating the one of the mode operation part of the first and third.
  • the high-speed line recovery processing method is a high-speed line recovery processing method by a PON system including an OLT and a plurality of ONUs connected to the OLT.
  • the OLT is controlled by the ONU management unit for each ONU.
  • the line can be restored at high speed.
  • FIG. 1 is a block diagram showing a configuration of a PON system according to Embodiment 1 of the present invention.
  • an OLT 1 is connected to an optical branching device 3 through a single trunk optical fiber 4, and a plurality of ONUs 2 are connected via branch optical fibers 5 branched by the optical branching device 3. It is connected to the.
  • the OLT 1 includes an ONU management unit 11, a PON control unit 12, and an optical transmission / reception unit 13.
  • the ONU management unit 11 manages the ONU management table.
  • FIG. 2 is a diagram illustrating an example of an ONU management table managed by the ONU management unit 11.
  • the ONU management table requires processing for each of the OAM discovery sequence (OAM), the encryption sequence (encryption), and the authentication sequence (authentication) using a unique MAC address for each ONU 2 as a key.
  • OAM OAM discovery sequence
  • Encryption encryption sequence
  • authentication sequence authentication
  • the ONU management unit 11 manages the MPCP link, the LLID number assigned to the ONU 2, the OAM link, the encryption, and the authentication status.
  • the ONU management unit 11 manages the state of the MPCP link of each ONU 2, so when the MPCP link is not established in all the managed ONUs 2, the MPCP link of all the ONUs 2 is disconnected (hereinafter, all the ONU links are disconnected). ) To the PON control unit 12. Further, when the MPCP link is established in all ONUs 2 to be managed and all the sequences required by each ONU 2 are completed, the PON control unit 12 is notified that the lines of all ONUs 2 have been restored (hereinafter referred to as all ONU line restoration). It also has a function to do.
  • the PON control unit 12 performs communication control with the ONU 2. At this time, the PON control unit 12 establishes the MPCP link by the MPCP discovery sequence with the PON control unit 21 on the ONU 2 side according to the information of the ONU management table managed by the ONU management unit 11, and the OAM by the OAM discovery sequence. Handles link establishment, encryption sequence and authentication sequence.
  • the PON control unit 12 includes a first mode operation unit 121, a second mode operation unit 122, and a mode transition unit 123.
  • the first mode operation unit 121 operates in a steady mode for processing the MPCP discovery sequence for the link unestablished ONU 2.
  • the second mode operation unit 122 continuously processes the MPCP discovery sequence for all the ONUs 2, and then processes the necessary sequences based on the ONU management table managed by the ONU management unit 11 for each ONU 2. It operates in the MPCP link establishment priority mode.
  • the mode transition unit 123 transitions the state of the PON control unit 12 so that one of the first and second mode operation units 121 and 122 is operated based on the ONU management table managed by the ONU management unit 11. is there.
  • FIG. 3 is a diagram showing the state transition of the PON control unit 12. As shown in FIG. 3, the PON control unit 12 has two operation modes: a steady mode and an MPCP link establishment priority mode.
  • the steady mode is an operation mode in a state where the PON system is stably operated. Then, the DiscoveryGate signal is transmitted at a constant period, and the MPCP discovery sequence for the newly connected link unestablished ONU 2 can be started.
  • the MPCP link establishment priority mode restores all ONU2 lines at once, such as after a momentary disconnection of the trunk optical fiber 4 that has been able to maintain the MPCP link with the holdover function, after all instantaneous power interruptions of all ONU power supplies, etc. This is an operation mode.
  • the mode transition unit 123 transitions to the MPCP link establishment priority mode when receiving a notification of all ONU link disconnections from the ONU management unit 11.
  • the mode transition unit 123 transitions to the steady mode.
  • the optical transmission / reception unit 13 performs optical communication with the optical transmission / reception unit 22 of the ONU 2.
  • the ONU 2 includes a PON control unit 21 and an optical transmission / reception unit 22. Note that the ONU 2 may be generally used.
  • the PON control unit 21 performs communication control with the OLT 1.
  • the optical transmission / reception unit 22 performs optical communication with the optical transmission / reception unit 13 of the OLT 1.
  • the operation of the PON system configured as described above will be described.
  • the operation of the entire PON system in the MPCP link establishment priority mode of the PON control unit 12 will be described with reference to FIG.
  • the ONU management table managed by the ONU management unit 11 is as shown in FIG.
  • the mode transition unit 123 of the PON control unit 12 detects all ONU link disconnections by notification from the ONU management unit 11. Then, transition to the MPCP link establishment priority mode is made. Then, the second mode operation unit 122 sequentially processes the MPCP discovery sequence for all the plurality of connected ONUs 2.
  • the second mode operation unit 122 first starts the MPCP discovery sequence for ONU # 1.
  • the registration contents of ONU # 1 do not require the processing of the OAM discovery sequence, the encryption sequence, and the authentication sequence. Therefore, ONU # 1 recovers the line when the MPCP discovery sequence is completed and the MPCP link is established, and data communication becomes possible.
  • the second mode operation unit 122 starts the MPCP discovery sequence for the next ONU # 2 without waiting for a fixed time interval in the conventional PON system. Thereafter, the second mode operation unit 122 processes the MPCP discovery sequence one after another until all the ONUs 2 that are similarly connected establish the MPCP link.
  • the second mode operation unit 122 processes a necessary sequence based on the ONU management table managed by the ONU management unit 11.
  • the second mode operation unit 122 processes the OAM discovery sequence for the ONU # 2 after all the ONUs 2 have established the MPCP link.
  • the ONU # 2 recovers the line when the OAM link is established, and data communication becomes possible.
  • the registration contents of ONU # 3 do not require the OAM discovery sequence process, and require the encryption sequence and the authentication sequence. Therefore, the second mode operation unit 122 processes the encryption sequence and the authentication sequence for the ONU # 3 after the line recovery of the ONU # 2. Then, the ONU # 3 recovers the line when data encryption and authentication are completed, and data communication becomes possible.
  • the second mode operation unit 122 similarly restores all the ONU 2 lines by sequentially processing the necessary sequences for each ONU 2 and enables data communication of all the ONUs 2.
  • the mode transition unit 123 receives the all ONU line restoration notification from the ONU management unit 11 and transitions to the steady mode.
  • the estimated time required for each sequence is approximately 17 milliseconds for the MPCP discovery sequence, approximately 130 milliseconds for the OAM discovery sequence, approximately 100 milliseconds or more for the encryption sequence, and approximately 40 milliseconds for the authentication sequence. Milliseconds.
  • the line restoration time can be shortened by the time of the sequence not performed with respect to the line restoration time in the conventional configuration.
  • the processing is performed in order from ONU # 1, but actually, among the plurality of ONUs 2 connected to OLT 1, which ONU 2 processes the sequence first is determined at random. .
  • FIG. 5 shows a flowchart of the PON control unit 12 in the MPCP link establishment priority mode.
  • the ONU management unit 11 manages the ONU management table (ONU management step).
  • the mode transition unit 123 detects all ONU link disconnections by the notification from the ONU management unit 11 and transitions to the MPCP link establishment priority mode.
  • the second mode operation unit 122 processes the MPCP discovery sequence for the link unestablished ONU 2 as long as there is a link unestablished ONU 2, and prioritizes establishing MPCP links for all ONUs 2. (Steps ST502 and 503, second mode operation step).
  • the second mode operation unit 122 for all ONUs 2 connected, if the registration content does not require all of the OAM discovery sequence, encryption sequence, and authentication sequence (step ST504 'YES'), MPCP of all ONUs 2
  • the mode transition unit 123 transitions to the steady mode because all ONUs are restored when the link is established (step ST512, mode transition step).
  • the second mode operation unit 122 is required for each ONU when any or all of the OAM discovery sequence, the encryption sequence, and the authentication sequence are required in the registration contents of at least one connected ONU 2.
  • are sequentially processed steps ST504 to 511, second mode operation step).
  • the line transition of all the ONUs 2 is performed, so that the mode transition unit 123 transitions to the steady mode (step ST512).
  • FIG. 6 a flowchart in the steady mode of the PON control unit 12 is shown in FIG.
  • the mode transition unit 123 detects the recovery of all ONU lines by notification from the ONU management unit 11 and transitions to the steady mode (step ST601, mode (Transition step)
  • the first mode operation unit 121 confirms whether there is a link unestablished ONU 2 by transmitting a DiscoveryGate signal at regular intervals (step ST602).
  • step ST602 when the first mode operation unit 121 determines that the link unestablished ONU 2 is newly connected, the ONU 2 continues to process the MPCP discovery sequence because the ONU 2 responds to the Discovery Request signal with the Register Request signal ( Steps ST603 to 609, first mode operation step).
  • Steps ST603 to 609 first mode operation step.
  • a necessary sequence is processed according to the contents registered in the ONU management unit 11 to enable data communication to the newly connected ONU 2. This operation is repeated at regular intervals (step ST610). However, when any ONU link disconnection notification is received from the ONU management unit 11 at any timing, the mode transits to the MPCP link establishment priority mode.
  • each sequence of the OAM discovery sequence, the encryption sequence, and the authentication sequence is required for each ONU 2, and after continuously processing the MPCP discovery sequence, Since it is configured to process only the necessary sequence for each ONU 2, it is possible to reduce the time for the ONU 2 that has not established the link to wait for the Discovery Gate signal by continuously processing the MPCP discovery sequence, and to omit unnecessary sequences. Since the time spent for the sequence can be reduced, the time required for restoration can be shortened when the lines of all ONUs 2 are restored at a time.
  • FIG. 7 is a block diagram showing the configuration of the PON system according to Embodiment 2 of the present invention.
  • the PON system according to Embodiment 2 shown in FIG. 7 is obtained by changing the second mode operation unit 122 of the PON system according to Embodiment 1 shown in FIG. 1 to a third mode operation unit 124.
  • Other configurations are the same, and only the different parts are described with the same reference numerals.
  • the third mode operation unit 124 operates in the line recovery mode for each ONU 2 that processes the MPCP discovery sequence for each ONU 2 and processes a necessary sequence based on information managed by the ONU management unit 11. .
  • FIG. 8 is a diagram showing the state transition of the PON control unit 12. As shown in FIG. 8, the PON control unit 12 has two operation modes: a steady mode and a line recovery mode for each ONU.
  • the steady mode is the same as in the first embodiment.
  • the ONU line recovery mode recovers all ONU2 lines at once, such as after a momentary disconnection of the trunk optical fiber 4 that has been able to maintain the MPCP link with the holdover function, or after all instantaneous power interruptions of all ONU power supplies. This is an operation mode.
  • the mode transition unit 123 transitions to the ONU-per-line recovery mode.
  • the mode transition unit 123 sends a Register Request signal from the PON control unit 21 of any ONU 2 to the DiscoveryGate signal transmitted by the PON control unit 12 of the OLT 1.
  • it transits to the steady mode.
  • the operation of the PON system configured as described above will be described with reference to FIG.
  • the ONU management table managed by the ONU management unit 11 is as shown in FIG.
  • the mode transition unit 123 of the PON control unit 12 detects all ONU link disconnections by notification from the ONU management unit 11. Then, transition to the ONU line recovery mode is made.
  • the third mode operation unit 124 processes an MPCP discovery sequence and a necessary sequence based on the ONU management table in order from ONU # 1 of the plurality of connected ONUs 2.
  • the third mode operation unit 124 first starts an MPCP discovery sequence for ONU # 1 and a necessary sequence based on the ONU management table.
  • the registration contents of ONU # 1 do not require the processing of the OAM discovery sequence, the encryption sequence, and the authentication sequence. Therefore, ONU # 1 recovers the line when the MPCP discovery sequence is completed and the MPCP link is established, and data communication becomes possible.
  • the third mode operation unit 124 does not wait for a certain period of time in the conventional PON system and waits for the MPCP discovery sequence for the next ONU # 2. Then, a necessary sequence based on the ONU management table is started.
  • the third mode operation unit 124 processes the OAM discovery sequence for ONU # 2 after ONU # 2 establishes the MPCP link.
  • the ONU # 2 recovers the line when the OAM link is established, and data communication becomes possible.
  • the third mode operation unit 124 starts an MPCP discovery sequence for the ONU # 3 and a necessary sequence based on the ONU management table.
  • the registration content of ONU # 3 does not require the processing of the OAM discovery sequence, and requires the processing of the encryption sequence and the authentication sequence. Therefore, the third mode operation unit 124 processes the encryption sequence and the authentication sequence for the ONU # 3 after the ONU # 3 establishes the MPCP link. Then, the ONU # 3 recovers the line when data encryption and authentication are completed, and data communication becomes possible.
  • the third mode operation unit 124 similarly processes the MPCP discovery sequence and the necessary sequence for each ONU 2 one after another, thereby restoring the line of all ONUs 2 and enabling data communication of all ONUs 2. Thereafter, the mode transition unit 123 receives the all ONU line restoration notification from the ONU management unit 11 and transitions to the steady mode.
  • FIG. 10 shows a flowchart in the ONU line recovery mode of the PON control unit 12.
  • the ONU management unit 11 manages the ONU management table (ONU management step).
  • the mode transition unit 123 detects all ONU link disconnections by the notification from the ONU management unit 11 and transitions to the ONU line recovery mode.
  • the third mode operation unit 124 processes the MPCP discovery sequence and the necessary sequence for the link unestablished ONU for each ONU 2 as long as there is an ONU 2 whose line has not been restored.
  • the line is restored (steps ST1002 to 1009, third mode operation step).
  • the mode transition unit 123 transitions to the steady mode (step ST1010, mode transition step).
  • the MPCP discovery sequence and the ONU management are managed for each ONU 2. Since it is configured to process the required sequence based on the table, the MPCP discovery sequence for another link unestablished ONU 2 can be processed immediately after the line recovery of a certain ONU 2, thereby reducing the time that the link unestablished ONU 2 waits for the DiscoveryGate signal. In addition, by omitting unnecessary sequences, the time spent on the sequences can be reduced, so that the time required for restoration can be shortened when the lines of all ONUs 2 are restored at a time.
  • the first embodiment there is an effect of preferentially restoring the line of the ONU 2 that does not require each sequence after the establishment of the MPCP link.
  • the second embodiment whether or not each sequence after the establishment of the MPCP link is necessary is determined. All ONUs 2 can be restored equally regardless of the line.
  • Embodiment 3 The establishment of the OAM link in the PON system is necessary when a remote setting / control event for the ONU 2 occurs. However, it is not necessary to process the OAM discovery sequence while no remote configuration / control event occurs. Further, since downlink data is transmitted by broadcast as a topological feature of the PON system, in order to ensure confidentiality of communication, it is necessary to encrypt the downlink data so that only the destination ONU 2 can decrypt it. Therefore, it is necessary to always encrypt the downlink data so that when the downlink data addressed to a certain ONU 2 is generated, the ONU 2 can decrypt it. However, it is not necessary to process the encryption sequence while no downlink data is generated.
  • the purpose of authenticating the ONU 2 is mainly whether or not transmission of upstream data is permitted. Therefore, it is not necessary to process the authentication sequence while uplink data is not generated.
  • the OAM discovery sequence, the encryption sequence, and the authentication sequence after the establishment of the MPCP link can be postponed until a necessary event occurs.
  • a configuration in consideration of the above will be described.
  • FIG. 11 is a block diagram showing a configuration of a PON system according to Embodiment 3 of the present invention.
  • the PON system of the third embodiment shown in FIG. 11 adds a monitoring control terminal 6 to the PON system according to the first embodiment shown in FIG. 1, adds a data buffer 14 and a downlink data monitoring unit 15 to the OLT 1, and
  • the second mode operation unit 122 of the PON control unit 12 is changed to a fourth mode operation unit 125 by adding a data buffer 23 to the PON control unit 12.
  • Other configurations are the same, and only the different parts are described with the same reference numerals.
  • the supervisory control terminal 6 performs setting or control for the ONU 2 remotely.
  • the data buffer 14 accumulates downlink data for each ONU 2.
  • the data is discarded by accumulating the downlink data whose transmission is suspended until the encryption sequence with the ONU 2 is completed.
  • the downlink data monitoring unit 15 monitors data stored in the data buffer 14 and notifies the ONU management unit 11 of the generation of downlink data for each ONU 2.
  • the data buffer 23 stores upstream data of the ONU 2.
  • the upstream data of the ONU 2 is generated for the first time after all the ONU links are disconnected, the upstream data whose transmission is suspended until the authentication sequence with the ONU 2 is completed is stored, thereby avoiding the discarding of the data.
  • the PON control unit 12 of the OLT 1 has a function of notifying the ONU management unit 11 of upstream data generation for each ONU 2 from the content of the Report signal notified from the ONU 2. .
  • the ONU management unit 11 of the OLT 1 manages the presence / absence of remote setting / control, the presence / absence of downstream data, and the presence / absence of upstream data for each ONU 2.
  • FIG. 12 an example of the ONU management table managed by the ONU management unit 11 is shown in FIG.
  • the ONU management table shown in FIG. 12 in addition to the information managed in the ONU management table in the first embodiment shown in FIG. 2, information indicating whether or not an event requiring processing of various sequences has occurred for each ONU 2. (Remote setting / control occurrence, downlink data occurrence, uplink data occurrence presence / absence) are managed.
  • the fourth mode operation unit 125 continuously processes the MPCP discovery sequence for all the ONUs 2 and then a sequence necessary when a specific event occurs based on information managed by the ONU management unit 11 It operates in the sequential line recovery mode for processing.
  • FIG. 13 is a diagram showing state transition of the PON control unit 12. As shown in FIG. 13, the PON control unit 12 has two operation modes: a steady mode and a sequential line restoration mode.
  • the steady mode is the same as in the first embodiment.
  • the sequential line restoration mode is an operation mode in which the lines of all ONUs 2 are restored at a time.
  • the mode transition unit 123 sequentially transitions to the line recovery mode when receiving a notification of all ONU link disconnections from the ONU management unit 11.
  • the mode transition unit 123 transitions to the steady mode when receiving an all ONU line recovery notification from the ONU management unit 11.
  • the operation of the PON system configured as described above will be described.
  • the operation of the entire PON system in the sequential line restoration mode of the PON control unit 12 will be described with reference to FIG.
  • the ONU management table managed by the ONU management unit 11 is as shown in FIG.
  • the mode transition unit 123 of the PON control unit 12 detects all ONU link disconnections by notification from the ONU management unit 11.
  • the fourth mode operation unit 125 sequentially processes the MPCP discovery sequence for all the plurality of connected ONUs 2.
  • the fourth mode operation unit 125 first starts an MPCP discovery sequence for ONU # 1.
  • the registration contents of ONU # 1 do not require processing of the OAM discovery sequence, the encryption sequence, and the authentication sequence. Therefore, ONU # 1 recovers the line when the MPCP discovery sequence is completed and the MPCP link is established, and data communication becomes possible. Thereafter, the fourth mode operation unit 125 processes the MPCP discovery sequence one after another until all the ONUs 2 that are similarly connected establish the MPCP link.
  • the fourth mode operation unit 125 processes a necessary sequence for the ONU 2 in which an event such as remote setting / control, downstream data generation, or upstream data generation has occurred. For example, when downlink data occurs in ONU # 3, an encryption sequence for ONU # 3 is processed, and when uplink data occurs in ONU # 3, an authentication sequence for ONU # 3 is processed.
  • ONU # 3 requires processing of an encryption sequence and an authentication sequence. Therefore, ONU # 3 recovers the line when the authentication sequence is completed.
  • the fourth mode operation unit 125 restores the lines of all ONUs 2 by processing the necessary sequences one after another every time an event occurs for each ONU 2 and enables data communication of all ONUs 2. Thereafter, the mode transition unit 123 receives the all ONU line restoration notification from the ONU management unit 11 and transitions to the steady mode.
  • FIG. 15 shows a flowchart in the sequential line restoration mode of the PON control unit 12 by the PON system.
  • the ONU management unit 11 manages the ONU management table (ONU management step).
  • the mode transition unit 123 detects the disconnection of all ONU links by the notification from the ONU management unit 11, and transitions to the sequential line recovery mode.
  • the fourth mode operation unit 125 processes the MPCP discovery sequence for the ONU 2 as long as there is an unestablished link ONU 2 and establishes the MPCP links of all ONUs 2 (steps ST 1502 and 1503). , Fourth mode operation step).
  • step ST1504 'YES' If all the processing of the OAM discovery sequence, encryption sequence, and authentication sequence is unnecessary for all connected ONUs 2 (step ST1504 'YES'), the MPCP links of all ONUs 2 are established. At this point, since all ONUs are restored, the mode transition unit 123 transitions to the steady mode (step ST1518, mode transition step).
  • any or all of the OAM discovery sequence, encryption sequence, and authentication sequence are required in the registration contents of at least one connected ONU 2, remote setting / control, downstream data generation, upstream data generation, etc.
  • Necessary sequences are sequentially processed for the ONU 2 in which the event has occurred (steps ST1504 to 1517, fourth mode operation step). After that, when the sequence required for all ONUs 2 is completed, the line transition of all ONUs 2 is performed, so that the mode transition unit 123 transitions to the steady mode (step ST1518, mode transition step).
  • the third embodiment whether or not each sequence of the OAM discovery sequence, the encryption sequence, and the authentication sequence is necessary for each ONU 2 and whether or not an event requiring the sequence has occurred is managed. Since the MPCP discovery sequence is continuously processed with respect to the ONU 2 and then the necessary sequence is processed when a specific event occurs based on the information managed by the ONU management unit 11, In addition to the effect of the first embodiment, the time until the line recovery of the ONU 2 where the event has occurred earlier can be further shortened by postponing the various sequences until the event that requires processing occurs.
  • the PON system according to the present invention can restore a line at high speed, and is particularly suitable for a PON system that restores a line capable of data communication between the OLT and all ONUs at a high speed. Suitable for use.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Small-Scale Networks (AREA)

Abstract

L'invention concerne un OLT (1) comportant: une unité (11) de gestion d'ONU qui gère des informations indiquant si une séquence de découverte d'OAM, une séquence cryptée et une séquence d'authentification sont nécessaires à chaque ONU d'une pluralité d'ONU (2); une unité (121) de fonctionnement en premier mode qui traite des séquences de découverte MPCP en vue d'établir des liaisons MPCP vers des ONU (2) vers lesquelles aucune liaison n'a été établie; une unité (122) de fonctionnement en deuxième mode qui traite successivement des séquences de découverte MPCP pour l'ensemble des ONU (2), puis traite, sur la base des informations gérées par l'unité (11) de gestion d'ONU, les séquences nécessaires à chacune des ONU (2); et une unité (123) de transition de mode qui, sur la base des informations gérées par l'unité (11) de gestion d'ONU, fait fonctionner une des unités (121, 122) de fonctionnement en premier et deuxième mode.
PCT/JP2013/082074 2013-11-28 2013-11-28 Système de pon, olt et procédé de récupération de leurs lignes à grande vitesse WO2015079537A1 (fr)

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JP2015550270A JP5955473B2 (ja) 2013-11-28 2013-11-28 Ponシステム、olt及びその高速回線復旧処理方法
PCT/JP2013/082074 WO2015079537A1 (fr) 2013-11-28 2013-11-28 Système de pon, olt et procédé de récupération de leurs lignes à grande vitesse

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN107919917A (zh) * 2017-12-29 2018-04-17 武汉长光科技有限公司 一种阻止非法onu注册上线的方法

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006319491A (ja) * 2005-05-11 2006-11-24 Hitachi Communication Technologies Ltd Atm−ponシステムおよびonu自動接続方法
JP2013175835A (ja) * 2012-02-23 2013-09-05 Of Networks:Kk 光通信ネットワークシステム、子局通信装置、親局通信装置、及び制御方法

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2006319491A (ja) * 2005-05-11 2006-11-24 Hitachi Communication Technologies Ltd Atm−ponシステムおよびonu自動接続方法
JP2013175835A (ja) * 2012-02-23 2013-09-05 Of Networks:Kk 光通信ネットワークシステム、子局通信装置、親局通信装置、及び制御方法

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN107919917A (zh) * 2017-12-29 2018-04-17 武汉长光科技有限公司 一种阻止非法onu注册上线的方法
CN107919917B (zh) * 2017-12-29 2020-09-29 武汉长光科技有限公司 一种阻止非法onu注册上线的方法

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