WO2017096623A1 - 一种光网络单元发射功率控制方法、装置及光网络单元 - Google Patents
一种光网络单元发射功率控制方法、装置及光网络单元 Download PDFInfo
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- 238000010586 diagram Methods 0.000 description 11
- 230000006870 function Effects 0.000 description 11
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/29—Repeaters
- H04B10/291—Repeaters in which processing or amplification is carried out without conversion of the main signal from optical form
- H04B10/293—Signal power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B10/00—Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
- H04B10/29—Repeaters
- H04B10/291—Repeaters in which processing or amplification is carried out without conversion of the main signal from optical form
- H04B10/293—Signal power control
- H04B10/2933—Signal power control considering the whole optical path
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J14/00—Optical multiplex systems
- H04J14/02—Wavelength-division multiplex systems
- H04J14/0221—Power control, e.g. to keep the total optical power constant
Definitions
- Embodiments of the present invention relate to the field of communications technologies, and, more particularly, to an optical network unit transmit power control method, apparatus, and optical network unit.
- a PON Passive Optical Network
- OLT Optical Line Terminal
- ODN Optical Distribution Network
- ONU Optical Network Unit
- Terminal optical network terminal
- the OLT provides a network-side interface for the PON system, providing voice, data, and video access services for home and business users.
- the ONU provides a user-side interface for the PON system.
- the ODN is a PON-based FTTH.
- the Fiber To The Home (fiber to the home) optical cable network provides an optical transmission channel between the OLT and the ONU.
- the ODN is usually a point-to-multipoint structure, that is, one OLT can connect multiple ONUs through the ODN. If the ONU directly provides the user port function, such as the Ethernet user port for personal computer access, it is called ONT.
- the OLT will emit light with a fixed transmitted optical power. After the downstream light passes through the ODN connected in series on the optical fiber line, there will be different degrees. The attenuation of the optical power at the end of the ONU will be different. Therefore, the fixed optical power of the OLT is usually set relatively large to ensure that the ONU farthest from the OLT can also receive the optical signal from the OLT. By default, ONU emits optical signals with maximum transmit power to ensure that the OLT can also receive optical signals from ONUs.
- the power management method for ONUs is defined in ITU-T G.987.3 and defines three power management modes: "Doze mode”, "Cyclic sleep mode” and "vigilant sleep”. (Watchful sleep mode).
- the ONU adopting the above three power management modes realizes energy saving by periodically turning off and turning on the transmitter or the receiver when the user interface is idle. Moreover, the ONU needs to periodically communicate with the OLT to ensure state synchronization, and the ONU cannot independently implement energy saving control. .
- the uplink transmit optical power of the ONU is a fixed and large value, which not only increases the energy consumption, but also when the line attenuation is small, the optical signal of the larger power emitted by the ONT easily exceeds the OLT optical module.
- the sensitivity range causes packet loss and affects normal traffic transmission.
- the present application provides a method, a device, and an optical network unit for controlling the transmission power of an optical network unit, so as to dynamically adjust the uplink optical power of the optical network unit and reduce energy consumption.
- an embodiment of the present application provides a method for controlling a transmit power of an optical network unit, where the method includes: acquiring passive optical network identification information; and acquiring, by the passive optical network identification information, a light emitter of the optical line terminal. Transmitting power and minimum sensitivity of the optical receiver of the optical line terminal; acquiring received power of the optical receiver of the optical network unit; transmitting power according to the optical transmitter of the optical line terminal and the optical network unit The received power of the optical receiver calculates the line attenuation; the transmit power of the optical transmitter of the optical network unit is adjusted according to the line attenuation and the minimum sensitivity of the optical receiver of the optical line termination.
- the power loss of the passive optical network system can be reduced by dynamically adjusting the transmit power of the optical transmitter based on the line attenuation and the minimum sensitivity of the optical receiver.
- the passive optical network identifier can be obtained by parsing the physical layer operation management and maintenance PLOAM message. information.
- the physical synchronization block of the downlink physical frame can be used to obtain passive Optical network identification information.
- the transmit power and the optical distribution network type of the optical transmitter of the optical line terminal may be acquired according to the passive optical network identification information. And obtaining a minimum sensitivity of the optical receiver of the optical line terminal according to the optical distribution network type.
- an embodiment of the present application provides an optical network unit transmission power control apparatus, the apparatus having the function of implementing the method in any one of the foregoing first aspect or the first aspect.
- the functions can be implemented in hardware or through hardware. Perform the appropriate software implementation.
- the hardware or software includes one or more modules corresponding to the functions described above.
- the device includes: a first acquiring unit, configured to acquire the passive optical network identification information; and a second acquiring unit, configured to acquire the optical transmitter of the optical line terminal according to the passive optical network identification information.
- a minimum sensitivity of the optical receiver of the optical line terminal a third obtaining unit, configured to acquire a received power of the optical receiver of the optical network unit; and a calculating unit, configured to be used according to the optical line terminal
- the transmission power of the optical transmitter and the received power of the optical receiver of the optical network unit calculate the attenuation of the line; the adjusting unit is configured to adjust the light according to the line attenuation and the minimum sensitivity of the optical receiver of the optical line terminal The transmit power of the optical transmitter of the network unit.
- an embodiment of the present application provides an optical network unit, where the optical network unit has a function of implementing the method in any one of the foregoing first aspect or the first aspect.
- the functions may be implemented by hardware or by corresponding software implemented by hardware.
- the hardware or software includes one or more modules corresponding to the functions described above.
- the optical network unit includes: a processor, a light emitter, a memory, and a bus; wherein the processor, the light emitter, and the memory are interconnected by the bus; And storing the instruction or the data; the processor is coupled to the memory, and the processor is configured to implement the following function in any one of the foregoing first aspect or the foregoing aspect: acquiring passive optical network identification information; Obtaining, according to the passive optical network identification information, a transmit power of an optical transmitter of the optical line terminal and a minimum sensitivity of the optical receiver of the optical line terminal; acquiring a received power of the optical receiver of the optical network unit; Determining the attenuation of the transmission power of the optical transmitter of the optical line terminal and the received power of the optical receiver of the optical network unit; adjusting the light according to the line attenuation and the minimum sensitivity of the optical receiver of the optical line termination The transmit power of the optical transmitter of the network unit; the optical transmitter for transmitting the adjusted optical transmitter of the optical network unit Of the emitted light signal
- the method, the device and the optical network unit of the embodiments of the present invention can dynamically adjust the uplink optical power of the optical network unit to reduce power consumption.
- FIG. 1 is a schematic diagram of a topology structure commonly used in existing passive optical networks
- FIG. 2 is a flowchart of a method for controlling transmission power of an optical network unit according to an embodiment of the present invention
- FIG. 3 is a schematic structural diagram of a PON-ID block
- 5 is a schematic structural diagram of a downlink physical frame of an XG-PON
- FIG. 6 is a schematic diagram of physical configuration of an ODN
- FIG. 7 is a schematic diagram of optical transmission loss in a passive optical network
- FIG. 8 is a block diagram showing the composition of an optical network unit transmission power control apparatus according to an embodiment of the present invention.
- FIG. 9 is a schematic structural diagram of an optical network unit according to an embodiment of the present invention.
- FIG. 2 is a flowchart of a method for controlling transmission power of an optical network unit according to an embodiment of the present invention. The method can be applied to the GPON or the XG-PON, which is not limited in the embodiment of the present invention. Please refer to FIG. 2, including the following steps:
- Step 101 Obtain passive optical network identification information.
- Passive Optical Network Identification (PON-ID) information includes the PON port identification and the transmit power of the optical network. See Figure 3, which is the PON-ID structure defined by the G987.3 standard.
- the PIT field is composed of an RE flag bit, an ODN class, and four reserved bits.
- the RE flag is used to indicate whether the TOL (Transmit Optical Level) field contains the transmit power of the OLT.
- the PON-ID information is obtained by parsing the downlink PLOAM message, and the PLOAM message is a physical layer OAM (operation, administration and maintenance operation, management, and maintenance) message.
- OAM operation, administration and maintenance operation, management, and maintenance
- the format of the PLOAM message is shown in FIG. 4, where ONU- When the ID is 0xFF, it indicates that the PLOAM message is a broadcast message, and the Message-ID field defines various types of PLOAM messages, including Upstream_Overhead, Assign_ONU-ID, and Ranging_Time.
- the Data field is related to the payload of the GTC message, and the CRC is the frame check sequence. . Referring to Table 1, the PON-ID PLOAM message includes three structures: PON-ID type (1 byte), PON identification (7 bytes), and TOL (2 bytes).
- the PON-ID is obtained by analyzing the passive optical network identification block (PON-ID) in the downlink physical synchronization block of the downlink physical frame.
- the downlink physical frame of the OLT is of a fixed length, and the downlink rate is 9.95328 Gbit/s.
- the physical frame has a frame length of 155520 bytes and a transmission interval of 125 ⁇ s.
- the downlink physical frame structure is as shown in FIG. 5, and includes a 24-byte physical sync block (PSBd) and a physical frame payload of 155496 bytes.
- Step 102 Acquire the transmit power of the optical transmitter of the optical line terminal and the minimum sensitivity of the optical receiver of the optical line terminal according to the passive optical network identification information.
- the transmit power of the OLT is obtained by parsing the TOL field in the PON-ID.
- four optical power budget specifications are defined in ITU-T G.987 to meet the application requirements of different ODN levels. These four specifications include N1, N2, E1 and E2, and the N2 level is divided into N2a and The N2b and E2 grades are divided into E2a and E2b, wherein the loss range of the N1 type is 14 to 29 dB, the N2 type is 16 to 31 dB, the E1 type is 18 to 33 dB, and the E2 type is 20 to 35 dB.
- the corresponding relationship between the ODN category field and the ODN category in the PIT field in the PON-ID is as shown in Table 2.
- an ODN provides one or several optical channels between an OLT and a plurality of ONUs.
- FIG. 6 defines the following optical interfaces: O rd , O ru is between the ONU and the ODN
- the reference point R/S is used for the optical interfaces in the uplink and downlink directions, respectively.
- O ld , O lu is an optical interface for the uplink and downlink directions at the reference point R/S between the OLT and the ODN, respectively.
- G.984 specifies optical interface parameters, all of which are worst-case values and are considered to be consistent throughout the standard operating conditions (ie, temperature and humidity). They also include aging effects.
- G.984.2 specifies the minimum sensitivity and minimum overload of each optical power budget level of the optical interface O lu of the OLT receiver in the GPON system at the uplink rates of 155 Mbit/s, 622 Mbit/s, and 1244 Mbit/s.
- Table 3 shows the minimum sensitivity and minimum overload of each optical power budget level of the optical interface O lu of the OLT receiver when the uplink rate is 1244 Mbit/s in G.984.2.
- the minimum sensitivity is defined as the lowest acceptable value of the average received power at point R to obtain 10 -10 BER.
- the minimum overload is the maximum acceptable value for the average power received at point R to obtain 10 -10 BER.
- the ONU may store the minimum sensitivity and the minimum overload corresponding to the optical power budget levels of the optical interfaces O lu of the OLT receivers at each uplink rate locally, by parsing the PON-IDs.
- the ODN category field obtains the optical power budget level, and then queries the locally stored minimum sensitivity corresponding to the optical power budget level.
- Step 103 Acquire the received power of the optical receiver of the optical network unit.
- the SFF-8472 protocol specifies that two I2C slave addresses, A0H and A2H, are set in the EEPROM, and each slave address can access 256 bytes of data.
- A0H is used to store some specific information of the optical module, such as module type, serial number, production date, wavelength, transmission distance and some specific information of the manufacturer; and monitored temperature, working voltage, bias current, and emitted optical power
- the data such as the received optical power, after the optical module detects through the internal circuit, the digital measurement result and the corresponding calibration constant are obtained according to a specific algorithm, and the real-time measurement result is stored in a specific byte of the A2H address.
- the SFF-8472 protocol specifies the type of digital diagnostic correction, including internal and external corrections.
- the correction type is identified by 92 bytes of A0h.
- the monitored value can be calibrated to an absolute value and the monitored value is calibrated according to the manufacturer's specified operating temperature and voltage.
- the received optical power is expressed in mW, represented by a 16-bit unsigned integer (0 to 65535), 1LSB is equal to 0.1 uW, and the entire range is 0 to 6.5535 mW (-40 dBm to +8.2 dBm).
- the monitored value is unprocessed A/D conversion data. This monitor value must be converted to the actual value by reading the calibration constant within 56 to 95 bytes of the A2h address in the EEPROM. Calibration is effective over the range of operating temperatures and voltages given by the manufacturer.
- the received power Rx_PWR of the optical receiver of the optical network unit can be obtained by:
- Rx_PWR is 0.1uW as the smallest unit, and the value ranges from 0 to 6.5mW.
- Table 5 shows the value of Rx_PWR(4-0) (address A2h, 56 ⁇ 95 bytes), and Rx_PWR AD is a 16-bit unsigned integer. Its value is stored in the A2H address 68H, which occupies two bytes and can be read through the 12C bus.
- Step 104 Calculate the line attenuation according to the transmit power of the optical transmitter of the optical line terminal and the received power of the optical receiver of the optical network unit.
- the line attenuation is recorded as LINE_ATT, and the transmission power of the optical transmitter of the OLT and the received power of the optical receiver are respectively recorded as OLT_TX_PWR and OLT_RX_PWR, and the optical transmitter of the ONU
- the transmit power and the received power of the optical receiver are recorded as ONU_TX_PWR and ONU_RX_PWR, respectively.
- Step 105 Adjust the transmit power of the optical transmitter of the optical network unit according to the line attenuation and the minimum sensitivity of the optical receiver of the optical line termination.
- the line attenuation and the minimum sensitivity of the optical receiver of the optical line termination are summed as the transmission of the optical transmitter of the optical network unit Power ONU_TX_PWR:
- ONU_TX_PWR LINE_ATT+OLT_MIN_SEN
- ONU_TX_PWR LINE_ATT+OLT_MIN_SEN+ ⁇ P
- the transmit power of the optical transmitter of the optical network unit should enable the OLT PON port to stably receive the optical signal transmitted by the ONU.
- the added power margin ⁇ P is an empirical value, typically 2 to 3 decibels.
- FIG. 8 is a structural block diagram of a transmission power control apparatus for an optical network unit according to an embodiment of the present invention.
- the apparatus includes:
- the first obtaining unit 21 is configured to obtain passive optical network identification information.
- a second acquiring unit 22 configured to acquire, according to the passive optical network identification information, a transmit power of the optical transmitter of the optical line terminal and a minimum sensitivity of the optical receiver of the optical line terminal;
- the third obtaining unit 23 is configured to acquire the received power of the optical receiver of the optical network unit
- the calculating unit 24 is configured to calculate a line attenuation according to a transmit power of the optical transmitter of the optical line terminal and a received power of the optical receiver of the optical network unit;
- the adjusting unit 25 is configured to adjust a transmit power of the optical transmitter of the optical network unit according to the line attenuation and a minimum sensitivity of the optical receiver of the optical line terminal.
- the first acquiring unit 21 is specifically configured to: if the passive optical network is a Gigabit passive optical network (GPON), obtain the passive optical network identification information by analyzing the physical layer operation management and maintenance PLOAM message.
- GPON Gigabit passive optical network
- the first acquiring unit 21 is specifically configured to: if the passive optical network is a ten-gigabit passive optical network XG-PON, obtain passive optical network identification information by parsing a physical synchronization block of the downlink physical frame.
- the second obtaining unit 22 further includes: a first obtaining module 31, configured to The passive optical network identification information acquires the transmit power of the optical transmitter of the optical line terminal; the second obtaining module 32 is configured to obtain the optical distribution network type according to the passive optical network identification information; and the third obtaining module 33, Acquiring a minimum sensitivity of the optical receiver of the optical line terminal according to the optical distribution network type.
- FIG. 9 is a schematic structural diagram of an optical network unit according to an embodiment of the present disclosure.
- the optical network unit includes:
- the processor 901, the optical transmitter 902, and the memory 903 are interconnected by a bus 904;
- the memory 903 is configured to store instructions or data
- the processor 901 is configured to: acquire passive optical network identification information; acquire, according to the passive optical network identification information, a transmit power of the optical transmitter of the optical line terminal and a minimum sensitivity of the optical receiver of the optical line terminal; Receive power of the optical receiver of the network unit; calculating line attenuation according to the transmit power of the optical transmitter of the optical line terminal and the received power of the optical receiver of the optical network unit; according to the line attenuation and the optical line The minimum sensitivity of the optical receiver of the terminal adjusts the transmit power of the optical transmitter of the optical network unit;
- the light emitter 902 is configured to emit an optical signal with the transmitted power of the light emitter of the adjusted optical network unit.
- the processor 901 is specifically configured to: if the passive optical network is a Gigabit passive optical network GPON, obtain the passive optical network identification information by analyzing the physical layer operation management and maintenance PLOAM message.
- the processor 901 is specifically configured to: if the passive optical network is an XG-PON, parse the physical synchronization block of the downlink physical frame to obtain the passive optical network identification information.
- the processor 901 is specifically configured to:
- the optical network unit of the embodiment of the invention can dynamically adjust the uplink transmission of the optical network unit Optical power, reducing energy consumption.
- the processor for performing the above optical network unit of the present invention may be a central processing unit (CPU), a general purpose processor, a digital signal processor (DSP), an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) or Other programmable logic devices, transistor logic devices, hardware components, or any combination thereof. It is possible to implement or carry out the various illustrative logical blocks, modules and circuits described in connection with the present disclosure.
- the processor may also be a combination of computing functions, for example, including one or more microprocessor combinations, a combination of a DSP and a microprocessor, and the like.
- the steps of a method or algorithm described in connection with the present disclosure may be implemented in a hardware, or may be implemented by a processor executing software instructions.
- the software instructions may be comprised of corresponding software modules that may be stored in RAM memory, flash memory, ROM memory, EPROM memory, EEPROM memory, registers, hard disk, removable hard disk, CD-ROM, or any other form of storage well known in the art.
- An exemplary storage medium is coupled to the processor to enable the processor to read information from, and write information to, the storage medium.
- the storage medium can also be an integral part of the processor.
- the processor and the storage medium can be located in an ASIC. Additionally, the ASIC can be located in the user equipment.
- the processor and the storage medium may also reside as discrete components in the user equipment.
- the functions described herein can be implemented in hardware, software, firmware, or any combination thereof.
- the functions may be stored in a computer readable medium or transmitted as one or more instructions or code on a computer readable medium.
- Computer readable media includes both computer storage media and communication media including any medium that facilitates transfer of a computer program from one location to another.
- a storage medium may be any available media that can be accessed by a general purpose or special purpose computer.
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Abstract
Description
地址 | 字节 | 名称 |
56-59 | 4 | Rx_PWR(4) |
60-63 | 4 | Rx_PWR(3) |
64-67 | 4 | Rx_PWR(2) |
68-71 | 4 | Rx_PWR(1) |
72-75 | 4 | Rx_PWR(0) |
Claims (12)
- 一种光网络单元发射功率控制方法,其特征在于,包括:获取无源光网络标识信息;根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率和所述光线路终端的光接收器的最小灵敏度;获取所述光网络单元的光接收器的接收功率;根据所述光线路终端的光发射器的发射功率和所述光网络单元的光接收器的接收功率计算线路衰减;根据所述线路衰减和所述光线路终端的光接收器的最小灵敏度调整所述光网络单元的光发射器的发射功率。
- 如权利要求1所述的方法,其特征在于,所述获取无源光网络标识信息,包括:若无源光网络为吉比特无源光网络GPON,则通过解析物理层操作管理维护PLOAM消息获取无源光网络标识信息。
- 如权利要求1所述的方法,其特征在于,所述获取无源光网络标识信息,包括:若无源光网络为十吉比特无源光网络XG-PON,则通过解析下行物理帧的物理同步块获取无源光网络标识信息。
- 如权利要求1至3任一所述的方法,其特征在于,所述根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率和所述光线路终端的光接收器的最小灵敏度,包括:根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率;根据所述无源光网络标识信息获取光分配网络类型;根据所述光分配网络类型获取所述光线路终端的光接收器的最小灵敏度。
- 一种光网络单元发射功率控制装置,其特征在于,包括:第一获取单元,用于获取无源光网络标识信息;;第二获取单元,用于根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率和所述光线路终端的光接收器的最小灵敏 度;第三获取单元,用于获取所述光网络单元的光接收器的接收功率;计算单元,用于根据所述光线路终端的光发射器的发射功率和所述光网络单元的光接收器的接收功率计算线路衰减;调整单元,用于根据所述线路衰减和所述光线路终端的光接收器的最小灵敏度调整所述光网络单元的光发射器的发射功率。
- 如权利要求5所述的装置,其特征在于,所述第一获取单元具体用于:若无源光网络为吉比特无源光网络GPON,则通过解析物理层操作管理维护PLOAM消息获取无源光网络标识信息。
- 如权利要求5所述的装置,其特征在于,所述第一获取单元具体用于:若无源光网络为十吉比特无源光网络XG-PON,则通过解析下行物理帧的物理同步块获取无源光网络标识信息。
- 如权利要求5至7任一所述的装置,其特征在于,所述第二获取单元包括:第一获取模块,用于根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率;第二获取模块,用于根据所述无源光网络标识信息获取光分配网络类型;第三获取模块,用于根据所述光分配网络类型获取所述光线路终端的光接收器的最小灵敏度。
- 一种光网络单元,其特征在于,包括:处理器,光发射器,存储器和总线;其中所述处理器、所述光发射器和所述存储器通过所述总线互联;所述存储器,用于存储指令或数据;所述处理器用于:获取无源光网络标识信息;根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率和所述光线路终端的光接收器的最小灵敏度;获取所述光网络单元的光接收器的接收功率;根据所述光线路终端的光发射器的发射功率和所述光网络单元 的光接收器的接收功率计算线路衰减;根据所述线路衰减和所述光线路终端的光接收器的最小灵敏度调整所述光网络单元的光发射器的发射功率;光发射器,用于以调整后的所述光网络单元的光发射器的发射功率发射光信号。
- 如权利要求9所述的光网络单元,其特征在于,所述获取无源光网络标识信息,包括:若无源光网络为吉比特无源光网络GPON,则通过解析物理层操作管理维护PLOAM消息获取无源光网络标识信息。
- 如权利要求9所述的光网络单元,其特征在于,所述获取无源光网络标识信息,包括:若无源光网络为十吉比特无源光网络XG-PON,则通过解析下行物理帧的物理同步块获取无源光网络标识信息。
- 如权利要求9至11任一所述的光网络单元,其特征在于,所述根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率和所述光线路终端的光接收器的最小灵敏度,包括:根据所述无源光网络标识信息获取光线路终端的光发射器的发射功率;根据所述无源光网络标识信息获取光分配网络类型;根据所述光分配网络类型获取所述光线路终端的光接收器的最小灵敏度。
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MX2018007113A MX2018007113A (es) | 2015-12-11 | 2015-12-11 | Método y aparato para controlar potencia de transmisión de unidad de red óptica y la unidad de red óptica. |
CN201580085276.7A CN108370272B (zh) | 2015-12-11 | 2015-12-11 | 一种光网络单元发射功率控制方法、装置及光网络单元 |
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CN115278407A (zh) * | 2021-04-30 | 2022-11-01 | 中国移动通信集团山西有限公司 | 无源光网络的拓扑结构的确定方法及装置 |
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EP3379745B1 (en) | 2020-03-25 |
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