COMMUNICATION SYSTEM, OPTICAL TRANSCEIVER, COMMUNICATION SYSTEM CONTROL METHOD, AND OPTICAL TRANSCEIVER CONTROL METHOD

The communication system and optical transceiver design addresses communication errors by using fixed bit pattern signals to measure and adjust optical power levels, ensuring reliable operation through bit error rate feedback mechanisms.

JP7758321B2Active Publication Date: 2025-10-22SUMITOMO ELECTRIC DEVICE INNOVATIONS
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Patent Information

Application Number
JP2021104741
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-24
Publication Date
2025-10-22
Estimated Expiration
2041-06-24

AI Technical Summary

Technical Problem

Existing optical transceivers face challenges in adjusting transmission and reception characteristics when communication errors occur, preventing effective feedback and adjustment of optical power and amplitude levels.

Method used

A communication system and optical transceiver design that includes mechanisms for generating and transmitting fixed bit pattern signals to measure bit error rates, allowing for the adjustment of optical power levels even in the presence of communication errors, using a first and second optical transceiver with control units to regulate signal processing and transmission.

Benefits of technology

Enables automatic recovery from communication errors by adjusting optical power levels based on bit error rate measurements, ensuring reliable transmission and reception characteristics.

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Abstract

To provide a communication system which enables transmission / reception characteristics of optical transceivers to be adjusted even in a case where communication errors occur in both the optical transceivers mutually transmitting / receiving optical signals, the optical transceiver and control methods therefor.SOLUTION: A first optical transceiver comprises: a transmission signal processing unit 12 for generating a multi-value pulse amplitude modulation signal including a fixed bit pattern; a first optical transmission unit for transmitting the multi-value pulse amplitude modulation signal as an optical transmission signal; a first optical reception unit for receiving an optical adjustment signal from a second optical transceiver; and a first control unit. The second optical transceiver comprises: a second optical reception unit for receiving the optical transmission signal; a reception signal processing unit 14 for measuring a bit error rate of the fixed bit pattern included in the optical transmission signal; a second optical transmission unit for transmitting an optical adjustment signal including information of the bit error rate; and a second control unit. The first control unit adjusts optical power of each level of the optical transmission signal by controlling the transmission signal processing unit based on the bit error rate included in the optical adjustment signal.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present disclosure relates to a communication system, an optical transceiver, a control method for a communication system, and a control method for an optical transceiver. [Background technology]

[0002] In an optical transmission system that transmits and receives multilevel optical signals, a method is known in which an optical receiver detects the extinction ratio, which is the ratio between the minimum and maximum levels of optical power, and feeds back the detection result to an optical transmitter to adjust the optical power (see, for example, Patent Document 1).

[0003] In an optical transmitting device that transmits a multi-level optical signal, a method is known in which the amplitude of each level of the input electrical signal is set based on the relationship between the input electrical signal and the light emission intensity of a laser element so that the difference in light emission intensity between each level of the optical signal is a predetermined ratio (see, for example, Patent Document 2). [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2008-113386 [Patent Document 2] Japanese Patent Application Laid-Open No. 2007-216681 Summary of the Invention [Problem to be solved by the invention]

[0005] However, if a communication error occurs in at least one of the optical transceivers that transmit and receive optical signals to and from each other, and if the information obtained by the optical receiver of the optical transceiver in which the communication error occurred cannot be fed back to the other optical transceiver, it is not possible to adjust the optical power of the multi-level optical signal, etc., and the amplitude of each level.

[0006] Therefore, an object of the present disclosure is to make it possible to adjust the transmission and reception characteristics of optical transceivers that mutually transmit and receive optical signals even when a communication error occurs in the optical transceivers. [Means for solving the problem]

[0007] A communication system according to the present disclosure includes a first optical transceiver and a second optical transceiver that communicates with the first optical transceiver, the first optical transceiver including a transmission signal processing unit that generates a multilevel pulse amplitude modulation signal including a fixed bit pattern, a first optical transmitting unit that converts the multilevel pulse amplitude modulation signal into an optical transmission signal and transmits the optical transmission signal, and a second optical transceiver that transmits the optical transmission signal. , which is slower than the optical transmission signal a first optical receiving unit that receives an optical adjustment signal and regenerates an adjustment signal from the optical adjustment signal; and a first control unit that controls the transmission signal processing unit, the first optical transmitting unit, and the first optical receiving unit, wherein the second optical transceiver includes a second optical receiving unit that receives the optical transmission signal and converts the received optical transmission signal into a reception signal; a reception signal processing unit that measures a bit error rate of the reception signal related to the fixed bit pattern; and a second optical transceiver that outputs the adjustment signal including measurement information of the bit error rate. A signal slower than the optical transmission signal a second optical transmitting unit that converts the regenerated adjustment signal into the optical adjustment signal and transmits the optical adjustment signal; and a second control unit that controls the second optical receiving unit, the received signal processing unit, and the second optical transmitting unit, wherein the first control unit extracts measurement information of the bit error rate from the regenerated adjustment signal, and controls the transmission signal processing unit based on the extracted measurement information of the bit error rate to adjust the optical power of each level of the optical transmission signal. [Effects of the Invention]

[0008] According to the present disclosure, even when a communication error occurs in an optical transceiver that transmits and receives optical signals, the transmission and reception characteristics of the optical transceiver can be adjusted. [Brief explanation of the drawings]

[0009] [Figure 1]FIG. 1 is a block diagram illustrating an example of a communication system including an optical transceiver according to the first embodiment. [Figure 2] FIG. 2 is a flow diagram showing an example of an operation when communication is performed between optical transceivers in the communication system of FIG. [Figure 3] FIG. 3 is a flow diagram showing a continuation of the operation of FIG. [Figure 4] FIG. 4 is a flow diagram showing a continuation of the operation of FIG. [Figure 5] FIG. 5 is an explanatory diagram showing examples of eye patterns of a PAM4 signal and an NRZ signal. [Figure 6] FIG. 6 is an explanatory diagram showing the operation of the communication system when high-speed PAM optical signals are transmitted and received between optical transceivers in communication state A of FIG. [Figure 7] FIG. 7 is an explanatory diagram showing the transmission of various signals in communication state B of FIGS. [Figure 8] FIG. 8 is an explanatory diagram showing the transmission of various signals in communication state C of FIG. [Figure 9] FIG. 9 is an explanatory diagram showing the transmission of various signals in communication state D of FIG. [Figure 10] FIG. 10 is a flowchart showing an example of an operation when communication is performed between optical transceivers in the second embodiment. [Figure 11] FIG. 11 is a flow diagram showing a continuation of the operation of FIG. [Figure 12] FIG. 12 is a flow diagram showing a continuation of the operation of FIG. DETAILED DESCRIPTION OF THE INVENTION

[0010] [Description of the embodiments of the present disclosure] First, embodiments of the present disclosure will be listed and described.

[0011] [1] A communication system according to one aspect of the present disclosure includes a first optical transceiver and a second optical transceiver that communicates with the first optical transceiver. The first optical transceiver includes a transmission signal processing unit that generates a multilevel pulse amplitude modulation signal including a fixed bit pattern, a first optical transmitting unit that converts the multilevel pulse amplitude modulation signal into an optical transmission signal and transmits the optical transmission signal, a first optical receiving unit that receives an optical adjustment signal transmitted from the second optical transceiver and regenerates an adjustment signal from the optical adjustment signal, and a first control unit that controls the transmission signal processing unit, the first optical transmitting unit, and the first optical receiving unit. comprises a second optical receiving unit that receives the optical transmission signal and converts the received optical transmission signal into a reception signal, a reception signal processing unit that measures the bit error rate of the reception signal related to the fixed bit pattern, a second optical transmitting unit that converts the adjustment signal including the bit error rate measurement information into the optical adjustment signal and transmits the optical adjustment signal, and a second control unit that controls the second optical receiving unit, the reception signal processing unit, and the second optical transmitting unit, wherein the first control unit extracts the bit error rate measurement information from the regenerated adjustment signal, and controls the transmission signal processing unit based on the extracted bit error rate measurement information to adjust the optical power of each level of the optical transmission signal.

[0012] In this communication system, when a communication error occurs between optical transceivers, a fixed bit pattern bit error rate is transmitted and received as an optical adjustment signal, and the optical power of each level of the optical transmission signal is adjusted, thereby automatically recovering from the communication error state.

[0013] [2] An optical transceiver according to one aspect of the present disclosure is an optical transceiver that communicates with a counterpart optical transceiver via an optical fiber, and includes an optical receiver that receives, from the counterpart optical transceiver, a first optical adjustment signal that includes a first optical transmission signal and measurement information on a bit error rate measured by the counterpart optical transceiver, converts the received first optical transmission signal into a first received signal, and regenerates the first adjustment signal from the received first optical adjustment signal; a received signal processor that measures the bit error rate of the first received signal related to a fixed bit pattern; a transmitted signal processor that generates a multilevel pulse amplitude modulated signal including the fixed bit pattern; and a transmitted signal processor that converts the multilevel pulse amplitude modulated signal into a second optical transmission signal. an optical transmitting unit that converts the first adjustment signal into a second optical transmission signal, transmits the second optical transmission signal to the opposing optical transceiver, converts a second adjustment signal including measurement information of the bit error rate measured by the receiving signal processing unit into a second optical adjustment signal, and transmits the second optical adjustment signal to the opposing optical transceiver; and a control unit that controls the optical receiving unit, the receiving signal processing unit, the transmitting signal processing unit, and the optical transmitting unit, wherein the control unit extracts the measurement information of the bit error rate measured by the opposing optical transceiver from the first adjustment signal recovered by the optical receiving unit, and controls the transmitting signal processing unit based on the extracted measurement information of the bit error rate to adjust the optical power of each level of the second optical transmission signal.

[0014] In this optical transceiver, when a communication error occurs between optical transceivers, a fixed bit pattern bit error rate is transmitted and received as an optical adjustment signal, and the optical power of each level of the optical transmission signal is adjusted, thereby automatically recovering from the communication error state.

[0015] [3] A control method for a communication system according to one aspect of the present disclosure is a control method for a communication system including a first optical transceiver and a second optical transceiver communicating opposite to the first optical transceiver, wherein the first optical transceiver generates a multi-level pulse amplitude modulation signal including a fixed bit pattern, converts the multi-level pulse amplitude modulation signal into an optical transmission signal, transmits the optical transmission signal, receives an optical adjustment signal transmitted from the second optical transceiver, and regenerates the adjustment signal from the optical adjustment signal, the second optical transceiver receives the optical transmission signal, converts the received optical transmission signal into a received signal, measures a bit error rate (BER) of the received signal related to the fixed bit pattern, converts the adjustment signal including the bit error rate measurement information into the optical adjustment signal, and transmits the optical adjustment signal, the first optical transceiver extracts the bit error rate measurement information from the regenerated adjustment signal, and adjusts the optical power of each level of the optical transmission signal to be transmitted to the second optical transceiver based on the extracted bit error rate measurement information.

[0016] In this communication system control method, when a communication error occurs between optical transceivers, a fixed bit pattern bit error rate is transmitted and received as an optical adjustment signal, and the optical power of each level of the optical transmission signal is adjusted, thereby automatically recovering from the communication error state.

[0017] [4] A control method for an optical transceiver according to one aspect of the present disclosure is a control method for an optical transceiver that communicates with a counterpart optical transceiver via an optical fiber, comprising: receiving, from the counterpart optical transceiver, a first optical adjustment signal including a first optical transmission signal and measurement information of a bit error rate measured by the counterpart optical transceiver; converting the received first optical transmission signal into a first received signal; regenerating the first adjustment signal from the received first optical adjustment signal; measuring the bit error rate of the first received signal related to a fixed bit pattern; generating a multi-level pulse amplitude modulated signal including the fixed bit pattern; converting the multi-level pulse amplitude modulated signal into a second optical transmission signal; transmitting the second optical transmission signal to the counterpart optical transceiver; converting the second adjustment signal into a second optical adjustment signal including the measurement information of the measured bit error rate; transmitting the second optical adjustment signal to the counterpart optical transceiver; extracting the measurement information of the bit error rate measured by the counterpart optical transceiver from the regenerated first adjustment signal; and adjusting the optical power of each level of the second optical transmission signal based on the extracted measurement information of the bit error rate.

[0018] In this optical transceiver control method, when a communication error occurs between optical transceivers, a fixed bit pattern bit error rate is transmitted and received as an optical adjustment signal, and the optical power of each level of the optical transmission signal is adjusted, thereby automatically recovering from the communication error state.

[0019] [Details of the embodiments of the present disclosure] Specific examples of communication systems including optical transceivers according to the present disclosure are described below with reference to the drawings. The present invention is not limited to these examples, but is defined by the claims, and all modifications within the meaning and scope of the claims are intended to be included. In the following description, identical or corresponding elements are designated by the same reference numerals, and their description may be omitted. A signal line indicated by a single arrow may be composed of multiple lines.

[0020] [First embodiment] [Configuration of communication system] Fig. 1 is a block diagram showing an example of a communication system including optical transceivers according to a first embodiment. The communication system 1000 shown in Fig. 1 includes a pair of optical transceivers 100 that transmit and receive optical signals via two optical fibers 50a and 50b, and a host board 200 to which each optical transceiver 100 is connected. For example, the optical fiber 50a transmits an optical signal from one of the pair of optical transceivers to the other, and the optical fiber 50b transmits an optical signal from the other of the pair of optical transceivers to one of the pair of optical transceivers.

[0021] In Figure 1, the symbols in parentheses attached to the signal lines indicated by arrows have the following meanings: The symbol HE indicates that a high-speed electrical signal is being transmitted, and the symbol LE indicates that a low-speed electrical signal is being transmitted. For example, the bit rate (transmission rate) of a high-speed electrical signal is greater than the bit rate of a low-speed electrical signal. The symbol HO indicates that a high-speed optical signal is being transmitted, and the symbol LO indicates that a low-speed optical signal is being transmitted.

[0022] For example, the bit rate of a high-speed optical signal is higher than the bit rate of a low-speed optical signal. The bit rate of a high-speed optical signal is, for example, 50 Gbit / s or more per channel, which corresponds to an optical signal having a single wavelength (single optical signal). Depending on the operating state of the optical transceiver 100, high-speed or low-speed optical signals are transmitted through the optical fibers 50a and 50b. For example, when no communication errors occur, high-speed optical signals are transmitted.

[0023] Although not particularly limited, for example, the bit rate of the low-speed electrical signal is 1 / 1000 or less of the bit rate of the high-speed electrical signal. The bit rate of the low-speed optical signal is 1 / 1000 or less of the bit rate of the high-speed optical signal. For example, the bit rate of the high-speed electrical signal is 50 Gbit / s or more. The operating states of the optical transceiver 100 are described in Figures 2 to 9.

[0024] Hereinafter, one and the other of the pair of optical transceivers 100 will also be referred to as optical transceiver A and optical transceiver B, respectively. The host board 200 connected to optical transceiver A will also be referred to as host board A, and the host board 200 connected to optical transceiver B will also be referred to as host board B. Optical transceivers A and B have, for example, the same circuit configuration. However, if optical transceivers A and B have equivalent performance and equivalent functions, the circuit configurations of optical transceivers A and B may be different from each other.

[0025] The optical transceiver 100 is connected to a communication device such as a host board 200 that transmits and receives electrical signals. The optical transceiver 100 is, for example, a pluggable optical transceiver, and has an outer shape that allows it to be inserted into a cage (not shown) mounted on the host board 200. The optical transceiver 100 converts high-speed electrical signals received from the host board into high-speed optical signals and outputs the high-speed optical signals to an optical fiber 50a (or 50b) via, for example, an optical connector (not shown). The output high-speed optical signals are transmitted to the opposing optical transceiver 100 via the optical fiber 50a (or 50b).

[0026] The optical transceiver 100 also has the function of converting a high-speed optical signal received from the optical fiber 50b (or 50a) via an optical connector (not shown) into a high-speed electrical signal and transmitting it to the host board 200. The optical fiber 50a (or 50b) does not necessarily have to be a single cable. Although not shown, the communication system 1000 may be configured to include devices such as optical amplifiers and optical switches, wavelength division multiplexing filters, etc., along the two optical fibers 50a and 50b.

[0027] The optical transceiver 100 includes a transmission signal processing section 12, a reception signal processing section 14, an optical transmitter 20, an optical receiver 30, and a control section 40. For example, the transmission signal processing section 12 and the reception signal processing section 14 are included in a semiconductor integrated circuit device 10 such as a DSP (Digital Signal Processor) or an ASIC (Application Specific Integrated Circuit). For example, the control section 40 is included in a single-chip CPU (Central Processing Unit). In this case, the functions of the control section 40 may be implemented by a control program executed by the CPU.

[0028] The transmission signal processing unit 12 converts the digital high-speed electrical signal received from the host board 200 into a high-speed electrical signal, for example, by a PAM (Pulse Amplitude Modulation) method. A PAM4 signal having four amplitude levels is an example of a multi-level pulse amplitude modulation signal. A PAM4 signal is, for example, a signal whose voltage transitions between four levels, from level 0 to level 3. The voltage at level n (n is an integer from 1 to 3) is greater than the voltage at level n-1.

[0029] The transmission signal processing unit 12 further encodes the encoded data received by the high-speed electrical signal from the host board 200 using a method such as KP4-FEC (Forward Error Correction). The transmission signal processing unit 12 outputs the generated high-speed electrical signal to the optical transmitter 20. The encoding of the high-speed electrical signal by the transmission signal processing unit 12 may be performed by the host board 200.

[0030] The optical transmitter 20 includes, for example, a laser diode driver and a laser diode. The optical transmitter 20 converts the high-speed electrical signal HE received from the transmission signal processing unit 12 or the low-speed electrical signal LE received from the control unit 40 into an optical signal. The high-speed optical signal HO corresponds to the optical signal converted from the high-speed electrical signal HE. The low-speed optical signal LO corresponds to the optical signal converted from the low-speed electrical signal LE. The optical transmitter 20 converts only one of the high-speed electrical signal HE or the low-speed electrical signal LE into an optical signal, and the control unit 40 determines which one to convert.

[0031] For example, when the optical transmitter 20 converts the high-speed electrical signal HE into an optical signal, the control unit 40 does not transmit the low-speed electrical signal LE to the optical transmitter 20. When the optical transmitter 20 converts the low-speed electrical signal LE into an optical signal, the control unit 40 instructs the transmission signal processing unit 12 in advance to stop transmitting the high-speed electrical signal HE, and the transmission signal processing unit 12 does not transmit the high-speed electrical signal HE to the optical transmitter 20.

[0032] The optical transmitter 20 outputs a high-speed optical signal HO or a low-speed optical signal LO to the optical fiber 50a (or 50b). For example, the high-speed optical signal output from the optical transmitter 20 is a PAM4 signal. The optical transmitter 20 may generate a plurality of optical signals (single optical signal) having different wavelengths, multiplex the plurality of optical signals into one WDM optical signal (wavelength division multiplexed signal), and output the same to the optical fiber 50a (or 50b). In the following description, a case will be described in which the optical signal to be transmitted is a single optical signal having a single wavelength.

[0033] For example, the modulation speed of the low-speed optical signal LO is 1 MBaud or less, which is 1 / 1000 or less of the modulation speed of the high-speed optical signal HO. For example, the low-speed optical signal is an NRZ (Non-Return-to-Zero) signal. An NRZ signal can be generated by binary amplitude modulation. Hereinafter, the high-speed optical signal HO using the PAM method will also be referred to as a high-speed PAM optical signal, and the low-speed optical signal LO using NRZ will also be referred to as a low-speed NRZ optical signal. For example, the modulation speed of the high-speed optical signal HO is 25 GBaud or more. The high-speed optical signal HO, which contains information transmitted by the high-speed electrical signal HE, is an example of an optical transmission signal. The low-speed optical signal LO is an example of an optical adjustment signal.

[0034] The low-speed electrical signal LE is converted into the low-speed optical signal LO by varying the bias current supplied to the laser diode in accordance with the voltage of the low-speed electrical signal LE. For example, when the bias current is changed to a value smaller than the threshold current of the laser diode, the low-speed optical signal LO assumes a "0" state with a relatively low optical power, whereas when the bias current is changed to a value larger than the threshold current, the low-speed optical signal LO assumes a "1" state with a relatively high optical power. In this way, by varying the bias current between two values, binary amplitude modulation is performed, and the low-speed optical signal LO can be generated. The optical transmitter 20 is an example of a first optical transmitter and a second optical transmitter.

[0035] The optical receiver 30 includes, for example, a photoelectric conversion element such as a photodiode and an amplifier such as a transimpedance amplifier. The optical receiver 30 receives a high-speed optical signal HO or a low-speed optical signal LO via an optical fiber 50a (or 50b) and converts the received high-speed optical signal HO or low-speed optical signal LO into a current signal (photocurrent). For example, the high-speed optical signal received by the optical receiver 30 is a PAM4 signal.

[0036] The optical receiver 30 may separate one WDM optical signal (wavelength division multiplexed signal) received from the optical fiber 50a (or 50b) into multiple optical signals (single optical signals) having different wavelengths, and convert each of the multiple single optical signals into a current signal by a photoelectric conversion element. In the following explanation, we will explain the case where the received optical signal is a single optical signal having a single wavelength.

[0037] The optical receiver 30 amplifies the weak current signal obtained by the conversion, outputs a high-speed electrical signal HE converted from the high-speed optical signal HO to the received signal processing unit 14, and outputs a low-speed electrical signal LE converted from the low-speed optical signal LO to the control unit 40. For example, the high-speed electrical signal HE is the output of a transimpedance amplifier, and the low-speed electrical signal LE is the output of a current monitor circuit composed of discrete components. The low-speed electrical signal LE may be generated using the current monitor function of the transimpedance amplifier. The high-speed electrical signal HE is an example of a received signal. The high-speed electrical signal HE may also be a differential signal consisting of a pair of complementary signals.

[0038] When the optical receiver 30 receives the low-speed optical signal LO, the control unit 40 recognizes the clock of the low-speed electrical signal LE and receives the low-speed electrical signal LE. When the optical receiver 30 receives the high-speed optical signal HO, the low-speed electrical signal LE is a constant value, and the control unit 40 does not receive the low-speed electrical signal LE. Therefore, the control unit 40 can determine that the optical receiver 30 is receiving the high-speed optical signal HO when it is not receiving the low-speed electrical signal LE, and can determine that the optical receiver 30 is receiving the low-speed optical signal LO when it is receiving the low-speed electrical signal LE.

[0039] The control unit 40 extracts information contained in the low-speed electrical signal LE, for example, by converting the analog low-speed electrical signal LE output from the optical receiver 30 into a digital signal. The extracted information is stored in a memory in the control unit 40 as digital data, or is used in a logic circuit for control. The low-speed electrical signal LE contained in the current signal is an example of an adjustment signal. The optical receiver 30 is an example of a first optical receiving unit and a second optical receiving unit.

[0040] The voltage of the analog electrical signal output from the optical receiver 30 varies depending on, for example, the intensity (optical power) of the received optical signal. The optical receiver 30 may output a digital electrical signal instead of an analog electrical signal. In this case, the digital electrical signal is, for example, a pulse signal whose voltage transitions between fixed levels 0 and 1.

[0041] The received signal processing unit 14 converts the analog high-speed electrical signal HE received from the optical receiver 30 into a digital high-speed electrical signal HE. The received signal processing unit 14 demodulates the converted digital high-speed electrical signal HE by performing error correction using FEC, and outputs the demodulated signal to the host board 200 as a received data signal. The received signal processing unit 14 also determines the occurrence of a frame loss, for example, when an error correction of the high-speed electrical signal HE causes an abnormality in the reception of a communication frame. An abnormality in the reception of a communication frame occurs, for example, when the communication frame cannot be synchronized. For example, when the header of a communication frame cannot be detected, the communication frame cannot be synchronized. Furthermore, when a communication frame has a checksum for data stored in the payload, a data error detected by the checksum can also be considered an abnormality in reception.

[0042] The received signal processing unit 14 outputs information indicating whether a frame loss has occurred to the control unit 40 as information indicating whether a communication error has occurred. Note that error correction of the high-speed electrical signal HE may be performed by the host board 200. In this case, the information indicating whether a frame loss has occurred is transmitted from the host board 200 to the control unit 40. Communication between the host board 200 and the control unit 40 is performed, for example, via a serial communication bus or a dedicated signal line.

[0043] The control unit 40 controls the operation of the optical transceivers 100 when the communication system 1000 is in a high-speed communication mode in which high-speed optical signals HO are transmitted between the optical transceivers 100. Furthermore, when the control unit 40 detects a communication error between the optical transceivers 100 based on information indicating a frame loss from the received signal processing unit 14, the control unit 40 transitions the operating mode from the high-speed communication mode to an adjustment mode. The control unit 40 then adjusts the characteristics of the high-speed optical signals HO transmitted from the optical transceivers 100 to eliminate the communication error. Examples of the operation of the control unit 40 in the high-speed communication mode and the adjustment mode are described with reference to FIGS. 2 to 9.

[0044] [Operation sequence of optical transceivers A and B] 2 to 4 are flow diagrams illustrating an example of the operation when communication is performed between opposing optical transceivers 100 in the communication system 1000 of FIG. 1. That is, FIGS. 2 to 4 illustrate an example of a control method for the communication system 1000 and an example of a control method for the optical transceiver 100. In FIGS. 2 to 4, for example, the left flow illustrates the operation of optical transceiver A, and the right flow illustrates the operation of optical transceiver B. The operation of each optical transceiver A, B may be performed by, for example, the respective control units 40 executing control programs. The control unit 40 may be, for example, a microcontroller, and the control program may be, for example, firmware stored in the memory of the microcontroller. Note that the control unit 40 may be configured to include multiple microcontrollers, multiple logic ICs, etc.

[0045] When optical transceivers A and B are activated, they transition to communication state A. For example, if optical transceiver A is a pluggable optical transceiver, it receives power from host board A when inserted into a cage mounted on host board A and activates. Similarly to optical transceiver A, if optical transceiver B is a pluggable optical transceiver, it receives power from host board B when inserted into a cage mounted on host board B and activates.

[0046] When each of the optical transceivers A and B is started, the control unit 40 executes a predetermined program to perform initialization, etc., and prepares the optical transmitter 20, optical receiver 30, transmission signal processing unit 12, and reception signal processing unit 14 for their respective operations. When the optical transceivers A and B are ready to transmit and receive the high-speed optical signal HO, the control unit 40 is ready to communicate with the host boards A and B.

[0047] Communication state A is a state in which communication using high-speed PAM optical signals is performed between optical transceivers A and B after they are started. In steps S100 and S200 of communication state A, optical transceivers A and B set the levels of the PAM4 signals output by their transmission signal processing units 12 based on characteristic data of their own optical transmitters 20. The amplitude of each level is set by each control unit 40 outputting amplitude information indicating the amplitude to its own transmission signal processing unit 12. Communication between the control unit 40 and the transmission signal processing unit 12 is performed, for example, via a serial communication bus. Note that the levels of the PAM4 signals may be set during the initial setting described above.

[0048] After the levels of the PAM4 signal are set, optical transceivers A and B communicate with each other using high-speed PAM optical signals in steps S102 and S202. The high-speed PAM optical signal communication is performed in full duplex using two optical fibers 50a and 50b. The control of the transmission and reception of the high-speed PAM optical signal in steps S102 and S202 is repeated as long as no communication error occurs. Note that regardless of a communication error, for example, host board A may send a command to optical transceiver A to stop communication using the high-speed PAM optical signal, thereby stopping the transmission and reception of the high-speed PAM optical signal. Similarly, host board B may send a command to optical transceiver B to stop communication using the high-speed PAM optical signal, thereby stopping the transmission and reception of the high-speed PAM optical signal.

[0049] If either optical transceiver A or B detects a communication error in step S104 or step S204, the process proceeds to step S106 or S206, respectively. For example, a communication error in a PAM4 signal can be detected by error correction using KP4-FEC. For example, the control unit 40 detects the communication error by receiving information about the occurrence of a frame loss from the received signal processing unit 14.

[0050] For example, optical transceiver B, which detects a communication error, transitions its operating mode from communication state A (high-speed communication mode) to communication state B. Communication state B is included in an adjustment mode for adjusting the level of the PAM4 signal. The transmission signal processing unit 12 of optical transceiver B stops transmitting the high-speed electrical signal HE in response to an instruction from the control unit 40. Then, optical transceiver B transmits a low-speed NRZ optical signal by modulating the laser current of the optical transmitter 20 at a low speed using the low-speed electrical signal LE via the control unit 40, and notifies optical transceiver A of the occurrence of the communication error.

[0051] The optical transceiver A detects the occurrence of a communication error in the optical transceiver B by having the control unit 40 monitor the low-speed electrical signal LE from the optical receiver 30. For example, the optical transceiver B transmits specific binary data indicating the occurrence of a communication error in a low-speed NRZ optical signal, and the optical transceiver A detects the occurrence of a communication error by detecting that the specific binary data is included in the received low-speed NRZ optical signal. In other words, the optical transceiver A recognizes that it is necessary to adjust the levels of the PAM4 signal generated by its own transmission signal processing unit 12, and transitions its operating mode from communication state A to communication state B.

[0052] The transition from communication state A to communication state B is completed, for example, when optical transceiver A (or B), which first detected a communication error, starts transmitting a low-speed NRZ optical signal, and optical transceiver B (or A), which received the low-speed NRZ optical signal, detects information indicating the occurrence of a communication error contained in the low-speed NRZ optical signal and also starts transmitting a low-speed NRZ optical signal.

[0053] In communication state B, optical transceivers A and B determine the measurement conditions and other settings used to adjust the levels of the PAM4 signal. In communication state B, optical transceivers A and B transmit and receive signals to each other using low-speed NRZ optical signals. Because the modulation speed of the low-speed NRZ signal is significantly slower than that of the high-speed PAM optical signal, even if a communication error occurs in the high-speed PAM optical signal, the bit error rate is relatively small, ensuring reliable communication between optical transceivers A and B.

[0054] For example, the modulation speed of the low-speed NRZ signal is set to 1 / 1000 or less of the modulation speed of the high-speed PAM optical signal. Furthermore, when the amplitude of the low-speed NRZ signal (the difference between level 1 and level 0) is the same as the amplitude of the high-speed PAM optical signal (the difference between level 3 and level 0), the eye opening of the low-speed NRZ signal is approximately three times larger than that of the high-speed PAM optical signal. This widening of the eye opening also significantly improves the error rate. As a result, when optical transceivers A and B transition to communication state B, they can mutually exchange information about the occurrence of communication errors and how to adjust each level of the PAM4 signal.

[0055] If host board A does not want optical transceiver A to transition from communication state A to communication state B, it notifies optical transceiver A of the prohibition of transition to communication state B when optical transceiver A starts up. In this case, optical transceiver A remains in communication state A even if it receives a low-speed NRZ optical signal indicating a communication error from optical transceiver B. Optical transceiver B can confirm that optical transceiver A does not respond to the adjustment of the amplitude of the PAM4 signal by, for example, not detecting a low-speed NRZ optical signal within a predetermined time after transmitting the low-speed NRZ optical signal.

[0056] Similarly, if host board B does not want optical transceiver B to transition from communication state A to communication state B, it notifies optical transceiver B at startup that transition to communication state B is prohibited. In this case, even if optical transceiver B receives a low-speed NRZ optical signal indicating a communication error from optical transceiver A, it does not transmit a low-speed NRZ optical signal itself and remains in communication state A. By not detecting a low-speed NRZ optical signal for a predetermined time after transmitting the low-speed NRZ optical signal, optical transceiver A can confirm that optical transceiver B is not responding to the adjustment of the amplitude of the PAM4 signal.

[0057] In steps S106 and S206, the optical transceivers A and B communicate low-speed NRZ optical signals with each other by modulating the laser current of each optical transmitter 20 at a low speed using each control unit 40. Communication using low-speed NRZ optical signals can be performed in full duplex using two optical fibers 50a and 50b. The optical transceivers A and B then determine the order in which to adjust the levels of the PAM4 signals.

[0058] For example, the order of adjustment may be determined based on the magnitude of the value of unique information such as the serial number (production number) of the optical transceivers A and B. For example, if the serial number of the optical transceiver A is smaller than the serial number of the optical transceiver B, the adjustment of the level of the PAM4 signal of the optical transceiver A is performed before the adjustment of the level of the PAM4 signal of the optical transceiver B.

[0059] Before starting adjustment of the PAM4 signal level in adjustment mode, optical transceivers A and B check the type of pattern used to measure the bit error rate (BER), such as PRBSQ (Pseudorandom Binary Sequence Quaternary) or SSPRQ (Short Stress Pattern Random Quaternary), and information about the BER measurement time. For example, PRBS15Q may be used as the pattern, and 5 seconds may be set as the BER measurement time. Note that instead of pseudorandom number data such as PRBSQ, a bit string with a specific pattern may be used instead. The PRBSQ pattern is an example of a fixed bit pattern.

[0060] The information used in the adjustment mode is stored, for example, in the memory of the control unit 40. If the specifications of the fixed bit pattern are predetermined, information about the specifications may be stored, for example, in the memory of the control unit 40 of each of the optical transceivers A and B. In this case, the fixed bit pattern becomes known to the optical transceivers A and B, and confirmation of the specifications of the fixed bit pattern between the optical transceivers A and B in the communication state B can be omitted.

[0061] After determining the measurement conditions, the optical transceivers A and B transition from communication state B to communication state C shown in Figure 3. In communication state C, an adjustment operation is performed to improve interoperability with the optical transceiver B by adjusting the levels of the PAM4 signal generated by the transmission signal processing unit 12 of the optical transceiver A. In communication state C, the optical transceiver A transmits a high-speed PAM optical signal and receives a low-speed NRZ optical signal, while the optical transceiver B receives a high-speed PAM optical signal and transmits a low-speed NRZ optical signal.

[0062] Note that when the optical transmitter 20 converts the high-speed PAM4 electrical signal into a high-speed PAM optical signal, if the conversion characteristics are nonlinear, the ratios of the amplitude between level 0 and level 1, the amplitude between level 1 and level 2, and the amplitude between level 2 and level 3 of the high-speed PAM optical signal will be different from the ratios of the amplitude between level 0 and level 1, the amplitude between level 1 and level 2, and the amplitude between level 2 and level 3 of the high-speed PAM4 electrical signal.

[0063] First, in step S108, optical transceiver A stops slow modulation of the laser current and starts transmitting a high-speed PAM optical signal containing a fixed bit pattern to optical transceiver B. For example, at this time, transceiver A sets each level of the high-speed PAM optical signal to the initial values ​​determined in steps S106 and S206. The control unit 40 of optical transceiver B detects that optical transceiver A has transitioned from communication state B to communication state C, for example, by not receiving the low-speed electrical signal LE. Alternatively, optical transceiver A may transmit specific binary data in a low-speed NRZ optical signal in communication state B to indicate the start of transmission of a high-speed PAM optical signal in the training mode, and optical transceiver B may transition to communication state C by detecting the specific binary data in the received low-speed NRZ optical signal.

[0064] When optical transceiver B detects that optical transceiver A has transitioned from communication state B to communication state C, it transmits, for example, specific binary data indicating the transition to communication state C via a low-speed NRZ optical signal. Then, in step S208, optical transceiver B starts detecting the bit error rate of the high-speed PAM optical signal containing a fixed bit pattern such as PRBSQ received from optical transceiver A. The control unit 40 of optical transceiver A can detect the specific binary data indicating the transition of optical transceiver B to communication state C in the received low-speed NRZ optical signal, thereby confirming that optical transceiver B has transitioned from communication state B to communication state C.

[0065] The specifications of the fixed bit pattern have already been confirmed between optical transceivers A and B in steps S106 and S206 of communication state B in Figure 2. Therefore, optical transceiver B can correctly calculate the bit error rate of the received fixed bit pattern.

[0066] For example, the bit error rate is detected in step S208 each time transceiver A changes the level of the high-speed PAM optical signal. Next, in step S210, optical transceiver B transmits BER information indicating the bit error rate to optical transceiver A using a low-speed NRZ optical signal. Steps S208 and S210 are repeated as optical transceiver A changes the level of the high-speed PAM optical signal and transmits the high-speed PAM optical signal. Then, when optical transceiver B no longer receives the high-speed PAM optical signal from optical transceiver A, it transitions its operating state from communication state C to communication state B.

[0067] In step S110, optical transceiver A receives BER information contained in the low-speed NRZ optical signal from optical transceiver B. At this time, optical transceiver A may continue transmitting the high-speed PAM optical signal in step S108 until receiving the BER information contained in the low-speed NRZ optical signal from optical transceiver B. This ensures that BER information is received reliably for the high-speed PAM optical signal transmitted at different levels. Next, in step S112, optical transceiver A determines whether adjustment of the PAM4 signal is complete.

[0068] For example, optical transceiver A determines that adjustment is complete if the bit errors corresponding to the bit error rate indicated by the BER information can be corrected by KP4-FEC or the like. For example, with KP4-FEC, when errors are statistically random, the BER value is 2.4 × 10 -4 If the BER of the data before encoding by KP4-FEC is less than 1×10 -12 Therefore, for example, when transmitting data encoded by KP4-FEC, the BER value received from optical transceiver B is 2.4 × 10 -4If it is equal to or less than this, optical transceiver A completes the adjustment.

[0069] If the adjustment is complete, the optical transceiver A transitions its operating state from communication state C to communication state B. If the adjustment is not complete, the optical transceiver A performs step S114.

[0070] In step S114, optical transceiver A adjusts the levels of the PAM4 signal and returns the process to step S108. Then, the optical transceiver A transmits a high-speed PAM optical signal containing a fixed bit pattern to optical transceiver B, the optical transceiver B detects the bit error rate (step S208), transmits information about the bit error rate as a low-speed NRZ optical signal (step S210), and the optical transceiver A determines whether adjustment of the levels of the high-speed PAM optical signal is complete (steps S110 and S112). The adjustment of the levels will be described later with reference to FIG. 5.

[0071] In step S116 of communication state B in Fig. 3, optical transceiver A notifies optical transceiver B of the completion of the adjustment of each level by using a low-speed NRZ optical signal, and transitions from communication state B in Fig. 3 to communication state D (Fig. 4). In step S212 of communication state B in Fig. 3, optical transceiver B confirms that the adjustment of each level by optical transceiver A has been completed based on the reception of the low-speed NRZ optical signal, and transitions from communication state B in Fig. 3 to communication state D (Fig. 4).

[0072] 4, an operation is performed to adjust the levels of the PAM4 signal generated by the transmission signal processing unit 12 of the optical transceiver B. Therefore, in communication state D, the processing flow of the optical transceiver A is the same as the processing flow of the optical transceiver B in communication state C in FIG. 3, and the processing flow of the optical transceiver B is the same as the processing flow of the optical transceiver A in communication state C in FIG.

[0073] In step S214, optical transceiver B stops the slow modulation of the laser current and starts transmitting a high-speed PAM optical signal containing a fixed bit pattern to optical transceiver A. For example, at this time, transceiver B sets each level of the high-speed PAM optical signal to the initial values ​​determined in steps S106 and S206. The control unit 40 of optical transceiver A detects that optical transceiver B has transitioned from communication state B to communication state D, for example, by not receiving the low-speed electrical signal LE. Alternatively, optical transceiver B may transmit specific binary data in a low-speed NRZ optical signal in communication state B to indicate the start of transmission of a high-speed PAM optical signal in the training mode, and optical transceiver A may transition to communication state D by detecting the specific binary data in the received low-speed NRZ optical signal.

[0074] In step S118, optical transceiver A detects the bit error rate of the high-speed PAM optical signal containing a fixed bit pattern such as PRBSQ received from optical transceiver B. The bit error rate is detected, for example, each time transceiver B changes the level of the high-speed PAM optical signal in step S118. Next, in step S120, optical transceiver A transmits BER information indicating the bit error rate to optical transceiver B using a low-speed NRZ optical signal. Steps S118 and S120 are repeated as optical transceiver B changes the level of the high-speed PAM optical signal and transmits the high-speed PAM optical signal. Then, when optical transceiver A stops receiving the high-speed PAM optical signal from optical transceiver B, it transitions its operating state from communication state D to communication state B.

[0075] In step S216, optical transceiver B receives the BER information contained in the low-speed NRZ optical signal from optical transceiver A. At this time, optical transceiver B may continue transmitting the high-speed PAM optical signal in step S214 until receiving the BER information contained in the low-speed NRZ optical signal from optical transceiver A. This allows optical transceiver B to reliably receive BER information for the high-speed PAM optical signal transmitted at different levels.

[0076] Next, in step S218, if the optical transceiver B determines that the adjustment of each level of the PAM4 signal is complete, it transitions its operating state from communication state D to communication state B. This determination is made similarly to step S112, when the BER value received from the optical transceiver A is equal to or greater than a predetermined value (e.g., 2.4×10 -4 ) The adjustment may be considered complete when: If the adjustment of each level is not complete, optical transceiver B performs step S220.

[0077] In step S220, optical transceiver B adjusts the levels of the PAM4 signal, and the process returns to step S214. Then, the optical transceiver B transmits a high-speed PAM optical signal containing a fixed bit pattern to optical transceiver A (step S214), the optical transceiver A detects the bit error rate (step S118), transmits information about the bit error rate as a low-speed NRZ optical signal (step S120), and the optical transceiver B determines whether adjustment of the levels of the high-speed PAM optical signal is complete (steps S216 and S218). The adjustment of the levels will be described later with reference to FIG. 5.

[0078] In step S222 of communication state B in Fig. 4, the optical transceiver B notifies the optical transceiver A of the completion of the output amplitude adjustment by using a low-speed NRZ optical signal, and the process returns to step S202 in Fig. 2. In step S122 of communication state B in Fig. 4, the optical transceiver A confirms that the optical transceiver B has completed the adjustment of each level based on the reception of the low-speed NRZ optical signal, and the process returns to step S102 in Fig. 2.

[0079] After the adjustment of each level in transceivers A and B is completed, communication using high-speed PAM optical signals between optical transceivers A and B is resumed. As described above, the transition from communication state A to communication state C is made via communication state B. The transition from communication state C to communication state D is made via communication state B. The transition from communication state D to communication state A is made via communication state B.

[0080] The order of the operations in communication states C and B shown in Fig. 3 and the operations in communication states D and B shown in Fig. 4 may be interchanged. The order of the operations in Fig. 3 and Fig. 4 is determined by the processing in steps S106 and S206 in communication state B in Fig. 2.

[0081] [PAM4 signal and NRZ signal waveform examples] 5 is an explanatory diagram showing examples of the eye pattern of a PAM4 signal and the eye pattern of an NRZ signal. A PAM4 signal can take four values, from level 0 to level 3. For example, in the case of a high-speed optical signal HO, the PAM4 signal can take four values ​​for intensity (optical power). In the case of a high-speed electrical signal, the PAM4 signal can take four values ​​for voltage, for example. In multilevel modulation, if the amount of noise at each level is the same in the high-speed electrical signal HE output by the optical receiver 30, the bit error rate is minimized when the amplitude between each level is equal.

[0082] That is, the bit error rate is minimized when the voltage difference (amplitude) between level 1 and level 0, the voltage difference (amplitude) between level 2 and level 1, and the voltage difference (amplitude) between level 3 and level 2 are all the same. In this state, the eye openings of the three eye patterns aligned in the amplitude direction at the center of the PAM4 signal waveform in Figure 5 are approximately the same size. However, if the amount of noise at each level is different, the bit error rate will be minimized when the amplitudes between the levels are not equal.

[0083] However, even if the amplitudes of the levels of the high-speed electrical signal HE output from the transmitting signal processing unit 12 of the optical transceiver A are uniform, the amplitudes of the levels of the high-speed electrical signal HE input to the receiving signal processing unit 14 of the optical transceiver B may not be uniform. This situation is called poor linearity of the multi-level modulation, and occurs due to at least one of the characteristics of the optical transmitter 20 of the optical transceiver A, the transmission characteristics of the optical fiber 50a, and the characteristics of the optical receiver 30 of the optical transceiver B.

[0084] For example, if the amplitude between level 0 and level 3 of the PAM4 signal is the same as the amplitude between level 0 and level 1 of the NRZ signal, the aperture of the PAM4 signal between each level from level 0 to level 3 is smaller than the aperture of the NRZ signal. For this reason, while the PAM4 signal can transmit a larger amount of information than the NRZ signal, it is susceptible to degradation of linearity in the received signal processing unit 14, depending on, for example, variations in the optical or electrical characteristics of the optical receiver 30.

[0085] The BER calculated by the reception signal processing unit 14 that processes the PAM4 signal can be improved by adjusting each level of the PAM4 signal in the transmission signal processing unit 12. For this reason, as explained in communication state C in Fig. 3 and communication state D in Fig. 4, in the transmission signal processing unit 12 that generates a PAM4 signal as a high-speed electrical signal HE, each level of the PAM4 signal is adjusted so that the BER on the receiving side is reduced.

[0086] 3, the control unit 40 of the optical transceiver A monitors the BER detected by the optical transceiver B while keeping levels 0 and 3 constant, and adjusts level 1 so that the BER detected by the optical transceiver B is smaller than before the adjustment. After that, the control unit 40 of the optical transceiver A monitors the BER detected by the optical transceiver B while keeping levels 0 and 3 constant, and adjusts the output amplitude of level 2 so that the BER detected by the optical transceiver B is smaller than before the adjustment.

[0087] Similarly, in communication state D in FIG. 4, the control unit 40 of optical transceiver B sequentially adjusts the amplitudes of levels 1 and 2 so that the BER detected by optical transceiver A is minimized. Note that the control units 40 of optical transceivers A and B may sequentially adjust both levels 1 and 2 while monitoring the BER. For example, the true minimum BER may not coincide with either the minimum value found for level 1 while level 2 is fixed, or the minimum value found for level 2 while level 1 is fixed. The minimum BER may be found, for example, using an algorithm for an optimization problem involving two parameters.

[0088] [Examples of operation in each communication state] 6 is an explanatory diagram showing the operation of the communication system 1000 when transmitting and receiving high-speed PAM optical signals between optical transceivers A and B in communication state A of FIG. 2. The signal lines indicated by thick arrows show examples of signal transmission paths when transmitting and receiving high-speed PAM optical signals between optical transceivers A and B. Since the operations of optical transceivers A and B are similar, the following describes the operation of optical transceiver A.

[0089] The transmission signal processing unit 12 encodes the high-speed electrical signal received from the host board A and converts it into, for example, a PAM4 signal. The transmission signal processing unit 12 outputs the converted PAM4 signal as a high-speed electrical signal HE to the optical transmitter 20. The optical transmitter 20 converts the high-speed electrical signal HE received from the transmission signal processing unit 12 into a high-speed optical signal HO and outputs the converted high-speed optical signal to the optical fiber 50a.

[0090] The optical transmitter 20 may have, for example, a laser diode, and generate a high-speed optical signal HO by varying a drive current (modulation current) of the laser diode using a high-speed electrical signal HE. The optical transmitter may also have, for example, a light source that generates continuous wave light (CW light) and an optical modulator connected to the light source, and generate the high-speed optical signal HO from the CW light by driving the optical modulator using the high-speed electrical signal HE.

[0091] On the other hand, the optical receiver 30 receives the high-speed optical signal HO via the optical fiber 50a, converts the received high-speed optical signal HO into a current signal (optical current), amplifies the converted current signal, and outputs it as an analog high-speed electrical signal HE to the received signal processing unit 14. The high-speed electrical signal HE output from the optical receiver 30 is, for example, an electrical signal converted from a current signal.

[0092] The received signal processing unit 14 converts the analog high-speed electrical signal HE received from the optical receiver 30 into a digital high-speed electrical signal, and after performing, for example, error correction, outputs it to the host board 200. In this way, the information contained in the high-speed electrical signal input from host board A to optical transceiver A is regenerated by optical transceiver B and transmitted to host board B. The information transmitted from host board A to host board B is a collection of binary data, and bit errors occur when the logical value of a bit is inverted during transmission.

[0093] Furthermore, the received signal processing unit 14 determines whether or not a frame loss has occurred during error correction, and outputs the result as information indicating whether or not a communication error has occurred to the control unit 40. The error correction may be performed on the host board 200, in which case the host board 200 transmits information indicating whether or not a frame loss has occurred to the control unit 40.

[0094] When the control unit 40 detects a communication error between the optical transceivers 100 based on the received BER information, it transitions from communication state A to communication state B as shown in FIG. 2. For example, when a frame loss occurs, the control unit 40 stores a value indicating that the optical transceiver 100 is in adjustment mode at a specific address in memory and enters adjustment mode. The host board B can determine that the optical transceiver B is in adjustment mode by accessing the specific address and checking the stored value. The control unit 40 executes a processing program to be executed in adjustment mode to control the optical transceiver B. Note that the adjustment mode here refers to any of communication states B, C, or D.

[0095] 7 is an explanatory diagram showing the transmission of various signals in communication state B of FIGS. 2, 3, and 4. The signal lines indicated by thick arrows show examples of signal transmission paths in communication state B. Since the operations of optical transceivers A and B are similar, the following describes the operation of optical transceiver A.

[0096] The control unit 40 of the optical transceiver A outputs a low-speed electrical signal (NRZ signal) indicating information to be transmitted to the optical transceiver B to the optical transmitter 20. The optical transmitter 20 converts the low-speed electrical signal from the control unit 40 into an analog signal and modulates a laser current (drive current) according to the converted analog signal. The optical transmitter 20 generates a low-speed optical signal using the modulated laser current and transmits the generated low-speed optical signal to the optical transceiver B. For example, a low-speed NRZ optical signal can be generated by increasing or decreasing the laser current relative to the threshold current of the laser diode. Note that the conversion of the low-speed electrical signal to an analog signal may be performed outside the optical transmitter 20 (for example, inside the control unit 40). For example, the control unit 40 may include a digital-to-analog converter (DAC) that generates the analog low-speed electrical signal.

[0097] The optical receiver 30 of the optical transceiver A converts the low-speed NRZ optical signal received from the optical transceiver B into a low-speed electrical signal LE, and outputs the converted low-speed electrical signal LE to the control unit 40.

[0098] 8 is an explanatory diagram showing the transmission of various signals in communication state C in FIG. 3. Signal lines indicated by thick arrows show examples of paths along which signals are transmitted in communication state C.

[0099] In optical transceiver A, the control unit 40 causes the transmission signal processing unit 12 to generate a PAM4 signal containing a fixed bit pattern such as PRBSQ. At this time, for example, levels 0 to 3 of the PAM4 signal are set to values ​​that were set before transmission. The transmission signal processing unit 12 outputs the generated PAM4 signal containing the fixed bit pattern as a high-speed electrical signal HE to the optical transmitter 20. The optical transmitter 20 converts the high-speed electrical signal HE containing the fixed bit pattern received from the transmission signal processing unit 12 into a high-speed optical signal HO (high-speed PAM optical signal) and transmits the converted high-speed optical signal HO to the optical transceiver B.

[0100] In optical transceiver B, optical receiver 30 receives the high-speed PAM optical signal containing a fixed bit pattern from optical transceiver A as a high-speed optical signal HO. The optical receiver 30 converts the received fixed bit pattern into a high-speed electrical signal HE and outputs it to the received signal processing unit 14.

[0101] In the optical transceiver B, the received signal processing unit 14 calculates the BER of the high-speed electrical signal HE based on the fixed bit pattern, and outputs BER information indicating the calculated BER as a low-speed electrical signal to the control unit 40. Note that the BER information is transmitted from the received signal processing unit 14 to the control unit 40 via, for example, an SPI (Serial Peripheral Interface) or an I / O (Interface). 2 Alternatively, the communication may be performed via a serial communication bus such as an Inter-Integrated Circuit (C).

[0102] The control unit 40 outputs a low-speed electrical signal LE to the optical transmitter 20 based on the BER information from the received signal processing unit 14. The laser current of the optical transmitter 20 is modulated with the low-speed electrical signal LE, thereby transmitting a low-speed optical signal LO including the BER information to the optical transceiver A.

[0103] In optical transceiver A, optical receiver 30 receives a low-speed optical signal LO containing BER information from optical transceiver B. The optical receiver 30 converts the received low-speed optical signal LO into a low-speed electrical signal LE and outputs it to control unit 40. Based on the BER information contained in the low-speed electrical signal LE, control unit 40 determines whether the bit error causing the communication error can be corrected by KP4-FEC or the like.

[0104] In the optical transceiver A, if the BER is smaller than a predetermined value (threshold), the control unit 40 completes the amplitude adjustment in the communication state C. On the other hand, if the bit error is larger than the threshold, the control unit 40 adjusts, for example, either level 1 or level 2 of the PAM4 signal transmitted from the transmission signal processing unit 12, or both. The threshold is set as a BER value that can be corrected by KP4-FEC or the like. At this time, the communication between the control unit 40 and the transmission signal processing unit 12 is performed, for example, via SPI or I / O. 2 This may be done via a serial communication bus such as C.

[0105] The transmission signal processing unit 12 outputs a PAM4 signal, which includes a fixed bit pattern such as a PRBSQ pattern and has its levels adjusted, as a high-speed electrical signal HE to the optical transmitter 20. The optical transmitter 20 converts the high-speed electrical signal HE into a high-speed optical signal HO and transmits the high-speed optical signal including the fixed bit pattern to the optical transceiver B.

[0106] Then, optical transceiver A repeatedly adjusts the levels of the PAM4 signal and transmits a fixed bit pattern, and optical transceiver B repeatedly measures the BER and transmits BER information until the BER falls below the threshold.

[0107] Fig. 9 is an explanatory diagram showing the transmission of various signals in communication state D in Fig. 4. The operation shown in Fig. 9 is the same as the operation when optical transceiver A and optical transceiver B are swapped in Fig. 8. That is, in Fig. 9, optical transceiver B repeatedly adjusts the levels of the PAM4 signal and transmits a fixed bit pattern, and optical transceiver A measures the BER and transmits BER information until the BER becomes equal to or less than a predetermined value (threshold).

[0108] As described above, in the first embodiment, when a communication error occurs during communication of a high-speed PAM optical signal between optical transceivers A and B, the system can automatically return from the communication error state to a state where high-speed communication is possible with a BER equal to or less than a predetermined value (threshold value) without the intervention of control by host boards A and B. In other words, even when a communication error occurs between optical transceivers A and B that mutually transmit and receive high-speed PAM optical signals, the system can transition to adjustment mode, making it possible to adjust the transmission and reception characteristics of optical transceivers A and B. Furthermore, by adjusting each level of the PAM4 signal so that the BER value is equal to or less than the threshold value, the system can return to the high-speed communication mode and communicate the high-speed PAM optical signal.

[0109] In the adjustment mode, various information generated by the control unit 40 for recovering from a communication error state can be transmitted and received between the optical transceivers A and B using low-speed optical signals without the need for the intervention of the host boards A and B. Because the modulation speed of the low-speed optical signals is slower than the modulation speed of the high-speed optical signals, for example, even in a situation where a communication error occurs with the high-speed optical signals, BER information can be transmitted and received between the optical transceivers A and B without error. This allows the communication system 1000 to recover from the communication error state.

[0110] Second Embodiment [Operation sequence of optical transceivers A and B] 10 to 12 are flow diagrams showing an example of the operation when communication is performed between optical transceivers A and B in the second embodiment. The same steps as those in FIGS. 2 to 4 are assigned the same step numbers, and detailed descriptions are omitted. The configurations of the optical transceivers A and B that perform the processes shown in FIGS. 10 to 12 and the configuration of the communication system including the optical transceivers A and B are the same as the configurations of the optical transceivers A and B and the communication system 1000 in FIG. 1.

[0111] In optical transceivers A and B for long-distance transmission, a photodetector such as an avalanche photodiode or semiconductor optical amplifier with an amplifying effect is installed in the optical receiver 30 to compensate for the decrease in received power due to long-distance transmission. On the other hand, when the optical transceiver 100 for long-distance transmission is used over a short distance, the decrease in received power is small. Therefore, when the received signal is amplified by the optical receiver 30, the signal-to-noise ratio tends to deteriorate, which may cause communication errors during reception processing in the received signal processing unit 14.

[0112] In this embodiment, even when the transmission distance is relatively short and the receiving power of the receiving optical transceiver (e.g., optical transceiver B) is high, the occurrence of communication errors can be suppressed by appropriately adjusting the transmitting power of the transmitting optical transceiver (e.g., optical transceiver A). Therefore, even when the transmission distance is unknown in advance, the receiving power can be adjusted by adjusting the transmitting power between the opposing optical transceivers according to the transmission distance of the communication system 1000.

[0113] In communication state A of FIG. 10, steps S100A and S200A are performed instead of steps S100 and S200 of FIG. 2. In steps S100A and S200A, optical transceivers A and B set the power (transmission power) to be output by optical transmitter 20 assuming the maximum transmission distance of communication system 1000. The transmission power of each optical transmitter 20 is set by each control unit 40. For example, information on transmission power for the maximum transmission distance is pre-stored in memory in each control unit. Each control unit 40 may read the information on transmission power from its respective memory and set it. Other operations in communication state A are the same as those in communication state A of FIG. 2.

[0114] The operation of communication state B in FIG. 10 is similar to that of communication state B in FIG. 2, except that instead of exchanging information required to adjust each level of the PAM4 signal, information required to adjust the power of the optical transmitter 20 is exchanged. The modulation rate of the low-speed NRZ signal is significantly slower than that of the high-speed PAM optical signal. Furthermore, when the amplitude of the low-speed NRZ signal (the difference between level 1 and level 0) is the same as the amplitude of the high-speed PAM optical signal (the difference between level 3 and level 0), the eye opening of the low-speed NRZ signal is approximately three times larger than that of the high-speed PAM optical signal. These effects improve the signal-to-noise ratio. As a result, when optical transceivers A and B transition to communication state B, they can mutually exchange information regarding the occurrence of communication errors and the method for adjusting the transmission power of the PAM4 signal. After step S106, optical transceiver A proceeds to step S108 in FIG. 11. After step S206, optical transceiver B proceeds to step S208A in FIG. 11.

[0115] In communication state C in Fig. 11, steps S208A, S210A, S110A, S112A, and S114A are performed instead of steps S208, S210, S110, S112, and S114 in Fig. 3. Other operations in communication state C are similar to those in communication state C in Fig. 3.

[0116] In step S208A, the control unit 40 of the optical transceiver B detects the reception power of the high-speed PAM optical signal containing a fixed bit pattern that the optical receiver 30 receives from the optical transceiver A. That is, in this embodiment, the control unit 40 of the transceiver B shown in FIG. 8 detects the reception power of the optical receiver 30 instead of receiving BER information from the received signal processing unit 14. Note that, for example, the control unit 40 can calculate the reception power from the photocurrent output by the optical receiver 30 in response to the received high-speed PAM optical signal. Alternatively, the optical receiver 30 can detect the reception power of the high-speed PAM optical signal and transmit information about the detected reception power to the control unit 40.

[0117] In step S210A, the control unit 40 of the optical transceiver B transmits information indicating the detected reception power to the optical transceiver A using a low-speed NRZ optical signal. Steps S208A and S210A are repeated as the optical transceiver A changes the transmission power of the high-speed PAM optical signal and transmits the high-speed PAM optical signal. Then, when the optical transceiver B stops receiving the high-speed PAM optical signal from the optical transceiver A, the optical transceiver B transitions its operating state from communication state C to communication state B.

[0118] In step S110A, optical transceiver A receives information indicating the reception power included in the low-speed NRZ optical signal received from optical transceiver B. At this time, optical transceiver A may continue transmitting the high-speed PAM optical signal in step S108 until receiving the reception power information included in the low-speed NRZ optical signal from optical transceiver B. This allows optical transceiver A to reliably receive the reception power information for the high-speed PAM optical signal transmitted at different levels.

[0119] Next, in step S112A, optical transceiver A determines whether the adjustment of the transmission power of optical transmitter 20 is complete. If the adjustment is complete, optical transceiver A transitions its operating state from communication state C to communication state B (step S116). If the adjustment is not complete, optical transceiver A performs step S114A. For example, optical transceiver A determines that the adjustment is complete if the received optical power at optical transceiver B is within a predetermined range. If the received optical power at optical transceiver B is outside the predetermined range, optical transceiver A continues the adjustment.

[0120] In step S114A, the control unit 40 of the optical transceiver A adjusts the transmission power of the optical transmitter 20 and returns the process to step S108. For example, the control unit 40 reduces the transmission power of the high-speed optical signal HO transmitted from the optical transmitter 20 by lowering the laser current (drive current) of the laser diode that generates the high-speed optical signal HO in the optical transmitter 20. Then, the optical transceiver A transmits the high-speed optical signal HO containing the fixed bit pattern to the optical transceiver B, the optical transceiver B detects the received power, and the optical transceiver A determines whether the adjustment of the transmission power has been completed.

[0121] The operation of communication state B in Figure 11 is the same as the operation of communication state B in Figure 3, except that instead of transmitting and receiving a notification of completion of output amplitude adjustment, a notification of completion of power adjustment of optical transmitter 20 is transmitted and received. After step S116, optical transceiver A proceeds to step S118A in Figure 12. After step S212, optical transceiver B proceeds to step S214 in Figure 12.

[0122] In communication state D in Fig. 12, steps S118A, S120A, S216A, S218A, and S220A are performed instead of steps S118, S120, S216, S218, and S220 in Fig. 3. Other operations in communication state D are similar to those in communication state D in Fig. 4.

[0123] In communication state D in Fig. 12, the transmission power of the optical transmitter 20 of the optical transceiver B is adjusted based on the reception power of the high-speed PAM optical signal received by the optical receiver 30 of the optical transceiver A. Therefore, in communication state D, the process flow of the optical transceiver A is the same as the process flow of the optical transceiver B in communication state C in Fig. 11, and the process flow of the optical transceiver B is the same as the process flow of the optical transceiver A in communication state C in Fig. 11.

[0124] The operation of communication state B in Figure 12 is the same as the operation of communication state B in Figure 4, except that instead of transmitting and receiving notifications of completion of adjustment of each level of the high-speed PAM4 optical signal, notifications of completion of adjustment of the transmission power of the optical transmitter 20 are transmitted and received. After step S122, the optical transceiver A returns the process to step S102 in Figure 10. After step S222, the optical transceiver B returns the process to step S202 in Figure 10.

[0125] As described above, in the second embodiment, similarly to the first embodiment described above, even if a communication error occurs between optical transceivers A and B that transmit and receive optical signals to and from each other, the transmission and reception characteristics of the optical transceivers A and B can be adjusted. For example, even if the transmission distance is relatively short and the received optical power is high, the occurrence of a communication error can be suppressed by adjusting the transmission power on the transmitting side and appropriately adjusting the received power. In other words, even if the transmission distance is unknown in advance, the received power can be adjusted according to the transmission distance of the communication system 1000.

[0126] Although the embodiments of the present disclosure have been described above, the present disclosure is not limited to the above embodiments. Various changes, modifications, substitutions, additions, deletions, and combinations are possible within the scope of the claims. These changes also naturally fall within the technical scope of the present disclosure. [Explanation of symbols]

[0127] 10. Semiconductor integrated circuit device 12 Transmission signal processing section 14 Received signal processing section 20 Optical transmitter 30 Optical receiver 40 Control Unit 50a, 50b optical fiber 100 Optical Transceiver 200 host board 1000 Communication Systems HE High Speed ​​Electrical Signal HO high speed optical signal LE Low Speed ​​Electrical Signal LO low speed optical signal

Claims

1. A communication system comprising a first optical transceiver and a second optical transceiver that communicates with the first optical transceiver, The first optical transceiver a transmission signal processing unit that generates a multi-level pulse amplitude modulation signal including a fixed bit pattern; a first optical transmitter that converts the multilevel pulse amplitude modulation signal into an optical transmission signal and transmits the optical transmission signal; a first optical receiving unit that receives an optical adjustment signal transmitted from the second optical transceiver and having a speed lower than that of the optical transmission signal, and regenerates an adjustment signal from the optical adjustment signal; a first control unit that controls the transmission signal processing unit, the first optical transmitting unit, and the first optical receiving unit; Equipped with The second optical transceiver a second optical receiving unit that receives the optical transmission signal and converts the received optical transmission signal into a received signal; a received signal processing unit for measuring a bit error rate of the received signal with respect to the fixed bit pattern; a second optical transmitter that converts the adjustment signal including the bit error rate measurement information into an optical adjustment signal having a speed lower than that of the optical transmission signal, and transmits the optical adjustment signal; a second control unit that controls the second optical receiving unit, the received signal processing unit, and the second optical transmitting unit; Equipped with the first control unit extracts the bit error rate measurement information from the recovered adjustment signal, and controls the transmission signal processing unit based on the extracted bit error rate measurement information to adjust the optical power of each level of the optical transmission signal. Communication system.

2. The second optical transmitter transmits the optical adjustment signal independently of the optical transmission signal. The communication system of claim 1 .

3. The measurement of the bit error rate by the receiving signal processing unit, the transmission of the optical adjustment signal including the measurement information of the bit error rate by the second optical transmitting unit, the reception of the optical adjustment signal by the first optical receiving unit, and the adjustment of the optical power by the first control unit are performed when a communication error occurs.

3. The communication system according to claim 1 or 2.

4. An optical transceiver that communicates with an opposing optical transceiver via an optical fiber, an optical receiving unit that receives, from the opposing optical transceiver, a first optical adjustment signal having a speed slower than the first optical transmission signal, the first optical adjustment signal including the first optical transmission signal and measurement information of a bit error rate measured by the opposing optical transceiver, converts the received first optical transmission signal into a first received signal, and regenerates the first adjustment signal from the received first optical adjustment signal; a received signal processing unit for measuring a bit error rate of the first received signal with respect to a fixed bit pattern; a transmission signal processing unit that generates a multi-level pulse amplitude modulation signal including the fixed bit pattern; an optical transmitting unit that converts the multilevel pulse amplitude modulation signal into a second optical transmission signal, transmits the second optical transmission signal to the opposing optical transceiver, converts a second adjustment signal containing measurement information of the bit error rate measured by the receiving signal processing unit into a second optical adjustment signal slower than the second optical transmission signal, and transmits the second optical adjustment signal to the opposing optical transceiver; a control unit that controls the optical receiving unit, the reception signal processing unit, the transmission signal processing unit, and the optical transmitting unit; Equipped with the control unit extracts measurement information of a bit error rate measured by the opposing optical transceiver from the first adjustment signal recovered by the optical receiving unit, and controls the transmission signal processing unit based on the extracted measurement information of the bit error rate to adjust the optical power of each level of the second optical transmission signal. Optical transceiver.

5. 1. A control method for a communication system including a first optical transceiver and a second optical transceiver that communicates with the first optical transceiver via an optical fiber, comprising: The first optical transceiver generating a multi-level pulse amplitude modulated signal including a fixed bit pattern; converting the multi-level pulse amplitude modulation signal into an optical transmission signal, and transmitting the optical transmission signal; receiving an optical adjustment signal transmitted from the second optical transceiver and having a speed lower than that of the optical transmission signal, and regenerating an adjustment signal from the optical adjustment signal; The second optical transceiver receiving the optical transmission signal and converting the received optical transmission signal into a received signal; measuring a bit error rate of the received signal for the fixed bit pattern; converting the adjustment signal including the bit error rate measurement information into an optical adjustment signal having a speed lower than that of the optical transmission signal, and transmitting the optical adjustment signal; the first optical transceiver extracts the bit error rate measurement information from the recovered adjustment signal, and adjusts the optical power of each level of the optical transmission signal to be transmitted to the second optical transceiver based on the extracted bit error rate measurement information. A method for controlling a communication system.

6. A method for controlling an optical transceiver communicating with an opposing optical transceiver, comprising: receiving, from the opposing optical transceiver, a first optical adjustment signal having a speed lower than that of the first optical transmission signal, the first optical adjustment signal including the first optical transmission signal and measurement information of a bit error rate measured by the opposing optical transceiver; converting the received first optical transmission signal into a first received signal; and regenerating the first adjustment signal from the received first optical adjustment signal; measuring a bit error rate of the first received signal for a fixed bit pattern; generating a multi-level pulse amplitude modulation signal including the fixed bit pattern; converting the multi-level pulse amplitude modulation signal into a second optical transmission signal, transmitting the second optical transmission signal to the opposing optical transceiver, converting a second adjustment signal including measurement information of the measured bit error rate into a second optical adjustment signal slower than the second optical transmission signal, and transmitting the second optical adjustment signal to the opposing optical transceiver; extracting measurement information of a bit error rate measured by the opposing optical transceiver from the recovered first adjustment signal, and adjusting the optical power of each level of the second optical transmission signal based on the extracted measurement information of the bit error rate; A method for controlling an optical transceiver.

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