Laser transmission circuits, laser transmission assemblies, and electronic measuring instruments

The laser transmission circuit corrects low-frequency errors in real time, enabling stable laser transmission to electronic measuring instruments by using an analog emission and receiving unit with a digital feedback pathway, addressing the instability of laser signal transmission.

JP2026071299APending Publication Date: 2026-04-28SHENZHEN MICSIG TECH CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
SHENZHEN MICSIG TECH CO LTD
Filing Date
2026-02-03
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Laser signal transmission is highly susceptible to environmental and component factors, leading to significant errors in analog signals due to unstable operation, which hampers the use of lasers for analog signal transmission in electronic measuring instruments.

Method used

A laser transmission circuit with an analog emission unit, analog receiving unit, and a digital feedback pathway is employed to convert and correct low-frequency components in real time, ensuring the output analog signal is unaffected by influencing factors, thereby enabling linear laser transmission.

Benefits of technology

The proposed solution corrects abnormal low-frequency components in real time, resulting in a stable output analog signal, allowing for accurate laser transmission to electronic measuring instruments like oscilloscopes, enhancing signal transmission diversity and display accuracy.

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Abstract

We provide laser transmission circuits, laser transmission assemblies, and electronic measuring instruments that eliminate errors that occur in analog signals during the transmission of laser signals. [Solution] The laser transmission circuit includes an analog emission unit 10 that converts an input analog signal into an analog laser signal and emits it, an analog receiving unit 20 that converts the analog laser signal into an analog electrical signal and outputs it, and a digital feedback pathway 30 whose input is connected to the output of the analog receiving unit 20 and whose output is connected to the input of the analog emission unit 10. The digital feedback pathway 30 receives an analog electrical signal from the analog receiving unit 20, converts the analog electrical signal into a digital signal and transmits it, and the digital feedback pathway 30 further converts the transmitted digital signal into a low-frequency analog signal and outputs it to the input of the analog emission unit 10.
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Description

Technical Field

[0001] (Cross - reference to Related Applications) This application claims the priority of a Chinese patent application filed with the Chinese Patent Office on June 27, 2022, with application number 202210738947.7 and invention title "Laser Transmission Circuit, Laser Transmission Assembly and Electronic Measuring Device", and the priority of a Chinese patent application filed with the Chinese Patent Office on June 27, 2022, with application number 202210739100.0 and invention title "Laser Transmission Circuit, Laser Transmission Assembly and Electronic Measuring Device", and incorporates all of their contents herein by reference.

[0002] This application relates to the technical field of laser signal transmission, particularly to laser transmission circuits, laser transmission assemblies and electronic measuring devices.

Background Art

[0003] Currently, the transmission of laser signals is usually realized using laser diodes. However, since the transmission of laser signals is extremely susceptible to environmental factors or the operating state factors of components and is unstable, the error generated in the analog signal during the transmission of laser signals is relatively large.

Summary of the Invention

Problems to be Solved by the Invention

[0004] The objective of this application is to solve the problem of generating errors in analog signals during the transmission of laser signals.

Means for Solving the Problems

[0005] This application proposes a laser transmission circuit, and the laser transmission circuit An analog emission unit that is used to input an input analog signal to an input terminal, convert the input analog signal into a corresponding analog laser signal, and then emit it. An analog receiving unit used to receive the analog laser signal transmitted by the analog emission unit, convert the analog laser signal into an analog electrical signal, and then use that as the output signal of the laser transmission circuit, The input terminal is connected to the output terminal of the analog receiving unit, and the output terminal is connected to the feedback input terminal of the analog transmission unit, and the digital feedback pathway is included, The aforementioned digital feedback pathway receives the analog electrical signal output by the analog receiving unit, converts the input analog electrical signal into a corresponding digital signal, and then transmits it. The digital feedback pathway is further used to convert the transmitted digital signal into a corresponding low-frequency analog signal and output it to the feedback input terminal of the analog firing unit.

[0006] Preferably, the analog firing unit is A drive feedback module having an input terminal connected to the input terminal of the analog firing unit and a first feedback input terminal connected to the output terminal of the digital feedback pathway, The present invention includes a laser emission module, the first terminal of which is connected to the output terminal of the drive feedback module and the second terminal of which a first default reference voltage is input, or the first terminal of which is connected to the positive output terminal of the drive feedback module and the second terminal of which is connected to the negative output terminal of the drive feedback module.

[0007] Preferably, the laser emission module includes a laser light-emitting diode and a first resistor.

[0008] The first resistor has one end connected to the first terminal of the laser emission module and the other end connected to the second terminal of the laser emission module via the laser light-emitting diode. Alternatively, the first terminal of the laser light-emitting diode is connected to the first terminal of the laser emission module, and the other terminal of the laser light-emitting diode is connected to the second terminal of the laser emission module via the first resistor.

[0009] Preferably, the connection point between the laser light-emitting diode and the first resistor is terminal F.

[0010] The drive feedback module includes a second feedback input terminal, and the second feedback input terminal of the drive feedback module is connected to the F terminal or the output terminal of the drive feedback module.

[0011] Preferably, the drive feedback module includes a first amplification circuit, a high-frequency feedback pathway, and a low-frequency feedback pathway. The first amplification circuit has a first input terminal connected to the input terminal of the drive feedback module, an output terminal connected to the output terminal of the drive feedback module, a first input terminal of the low-frequency feedback pathway connected to the first feedback input terminal of the drive feedback module, an input terminal of the high-frequency feedback pathway connected to the second feedback input terminal of the drive feedback module, and the output terminals of the high-frequency feedback pathway and the low-frequency feedback pathway are respectively connected to the second input terminal of the first amplification circuit.

[0012] Preferably, the first amplification circuit includes a first operational amplifier. The first amplification circuit has one first input terminal, the non-inverting input terminal or inverting input terminal of the first operational amplifier is the first input terminal of the first amplification circuit, the inverting input terminal of the first operational amplifier is the second input terminal of the first amplification circuit, and the input analog signal, which is a single-ended signal, is input to the non-inverting input terminal or inverting input terminal of the first operational amplifier via the second resistor.

[0013] Alternatively, the first amplification circuit has two first input terminals, the non-inverting input terminal and the inverting input terminal of the first operational amplifier are the two first input terminals of the first amplification circuit, the inverting input terminal of the first operational amplifier is the second input terminal of the first amplification circuit, the input analog signal which is a differential signal is input to the non-inverting input terminal and the inverting input terminal of the first operational amplifier via a third resistor and a fourth resistor, respectively, and a second default reference voltage is further input to the non-inverting input terminal of the first operational amplifier via a fifth resistor.

[0014] Preferably, the high-frequency feedback pathway includes a first capacitor whose ends are connected to the input and output terminals of the high-frequency feedback pathway, respectively.

[0015] Preferably, the low-frequency feedback pathway further has a second input terminal, the second input terminal of the low-frequency feedback pathway is connected to a second feedback input terminal of the drive feedback module.

[0016] The low-frequency feedback pathway includes a single-pole double-throw switch and a sixth resistor.

[0017] The first input terminal of the single-pole double-throw switch is connected to the first input terminal of the low-frequency feedback pathway so that the low-frequency analog signal is input to it, the second input terminal of the single-pole double-throw switch is connected to the second input terminal of the low-frequency feedback pathway, and the sixth resistor has one end connected to the output terminal of the single-pole double-throw switch and the other end connected to the output terminal of the low-frequency feedback pathway.

[0018] Preferably, the analog receiving unit includes a second amplification circuit, a laser photodetector diode, and a seventh resistor, wherein the output terminal of the second amplification circuit is connected to the output terminal of the analog receiving unit. The laser light receiving diode has a third predetermined reference voltage input to its first terminal, its second terminal is connected to one end of the seventh resistor and the first input terminal of the second amplifier circuit respectively, and a fourth predetermined reference voltage is input to the other end of the seventh resistor.

[0019] Alternatively, the laser light receiving diode has a third predetermined reference voltage input to its first terminal, its second terminal is connected to one end of the seventh resistor and the first input terminal of the second amplifier circuit respectively, the other end of the seventh resistor is connected to the output terminal of the second amplifier circuit, and a fourth predetermined reference voltage is input to the second input terminal of the second amplifier circuit.

[0020] Alternatively, the laser light receiving diode has a third predetermined reference voltage input to its first terminal, its second terminal is connected to one end of the seventh resistor, a fourth predetermined reference voltage is input to the other end of the seventh resistor, and the first input terminal and the second input terminal of the second amplifier circuit are connected to both ends of the seventh resistor respectively.

[0021] Preferably, the digital feedback pathway includes a first low-pass filter unit whose input terminal is connected to the input terminal of the digital feedback pathway and is used to output the analog electrical signal after low-pass filtering; a first processing unit whose input terminal is connected to the output terminal of the first low-pass filter unit and is used to output the analog electrical signal after low-pass filtering after converting it into a digital signal; and a second processing unit whose output terminal is connected to the output terminal of the digital feedback pathway, receives the digital signal emitted by the first processing unit, converts the digital signal into a low-frequency analog signal, and then outputs it to the output terminal of the digital feedback pathway.

[0022] Preferably, the first processing unit includes an analog / digital conversion module, a first processor, and a digital emission module, and the second processing unit includes a digital reception module, a second processor, and a digital / analog conversion module. The analog / digital conversion module has an input terminal connected to the input terminal of the first processing unit, an output terminal connected to the input terminal of the first processor, the output terminal of the first processor is connected to the input terminal of the digital emission module, and the digital emission module is used to emit a digital signal. The digital reception module is used to receive the digital signal emitted by the digital emission module, the output terminal of the digital reception module is connected to the input terminal of the second processor, the output terminal of the second processor is connected to the input terminal of the digital / analog conversion module, and the output terminal of the digital / analog conversion module is connected to the output terminal of the second processing unit.

[0023] Preferably, the digital emission module is a laser diode, and the digital reception module is a laser photodiode. Alternatively, the digital emission module is a wireless emission circuit, and the digital reception module is a wireless reception circuit. Alternatively, the digital emission module is an optical coupling unit, and the digital reception module is a main controller. Alternatively, the digital emission module is a main controller, and the digital reception module is an optical coupling unit.

[0024] Preferably, the digital feedback pathway further includes a second low-pass filter unit. The second low-pass filter unit has an input terminal connected to the output terminal of the second processing unit and an output terminal connected to the output terminal of the digital feedback pathway. The second low-pass filter unit is used to low-pass filter the low-frequency analog signal output by the second processing unit and then output it to the analog transmission unit.

[0025] This application proposes a laser transmission circuit, the laser transmission circuit being, An analog emission unit is used to emit an analog laser signal corresponding to the input analog signal of the laser transmission circuit, and the input analog signal of the laser transmission circuit is input to the input terminal. The input analog signal of the laser transmission circuit is input to the input terminal, and a digital emission unit is used to emit a digital signal corresponding to the low-frequency component in the input analog signal. The system includes a receiving unit used to receive the analog laser signal output by the analog emission unit and the digital signal output by the digital emission unit, and to generate corresponding analog and digital electrical signals. The receiving unit is further used to correct the generated analog electrical signal according to the generated digital electrical signal and to output the corrected analog electrical signal.

[0026] Preferably, the analog firing unit is A drive module whose input terminal is connected to the input terminal of the analog firing unit, The present invention includes a laser emitting module, the first terminal of which is connected to the output terminal of the drive module, and the second terminal of which is connected to the negative output terminal of the drive module, such that a first predetermined voltage is input to the second terminal, or a differential signal output by the drive module is input to the second terminal.

[0027] Preferably, the laser emission module includes a laser light-emitting diode and a first resistor. The first resistor has one end connected to the first terminal of the laser emission module and the other end connected to the second terminal of the laser emission module via the laser light-emitting diode. Alternatively, the first terminal of the laser light-emitting diode is connected to the first terminal of the laser emission module, and the other terminal of the laser light-emitting diode is connected to the second terminal of the laser emission module via the first resistor.

[0028] Preferably, the first terminal of the laser light-emitting diode is connected to the first terminal of the laser emission module, and the other terminal of the laser light-emitting diode is connected to the second terminal of the laser emission module via the first resistor, wherein the connection point between the laser light-emitting diode and the first resistor is terminal F, and the drive module includes a first amplification circuit having a non-inverting input terminal and an inverting input terminal.

[0029] The input analog signal is a single-ended signal, and the input analog signal is input to the non-inverting input terminal or inverting input terminal of the first amplifier circuit via a third resistor, and the second input terminal of the first amplifier circuit is further connected to the output terminal or F terminal of the first amplifier circuit via a fourth resistor. Alternatively, if the input analog signal is a differential signal, the first amplification circuit receives the input analog signal at the non-inverting input terminal via a fifth resistor and at the inverting input terminal via a sixth resistor, and a reference voltage is input at the non-inverting input terminal via a seventh resistor.

[0030] Preferably, the digital launch unit includes a first low-pass filter unit, a first main control unit, and a digital launch module, wherein the input terminal of the first low-pass filter unit is an input terminal of the digital launch unit, and the output terminal of the first low-pass filter unit is connected to a controlled terminal of the digital launch module via the first main control unit.

[0031] Preferably, the first main control unit includes a first main controller and a first analog-to-digital conversion module, and the first low-pass filter unit is connected to the controlled terminal of the digital launch module via the first main controller and the first analog-to-digital conversion module.

[0032] Preferably, the receiving unit is An analog receiving unit used to receive the analog laser signal and output the analog electrical signal, A digital receiving unit used to receive the aforementioned digital signal and output the aforementioned digital electrical signal, The signal processing unit includes a first input terminal and a second input terminal connected to the output terminal of the analog receiving unit and the output terminal of the digital receiving unit, respectively, and is used to perform signal processing on the input analog electrical signal and the digital electrical signal, and then output a low-frequency correction signal to the feedback terminal of the analog receiving unit. The analog receiving unit is further used to correct the low-frequency operating point in accordance with the received low-frequency correction signal and to output an analog electrical signal corresponding to the corrected low-frequency operating point.

[0033] Preferably, the analog receiving unit includes a laser photodiode, a second resistor, and a second amplification circuit. The laser photodetector diode has a second predetermined voltage input to its first pole, the second pole is connected to the first input terminal of the second amplification circuit, and a third predetermined voltage is further input to the second pole via the second resistor; the second amplification circuit has a second input terminal which is the feedback terminal of the analog receiving unit, and an output terminal which is the output terminal of the analog receiving unit. Alternatively, the laser photodetector diode has a first pole to which a fourth predetermined voltage is input, a second pole to which is connected to the second input terminal of the second amplification circuit, and the second pole to which is further connected to the input terminal of the second amplification circuit via the second resistor, wherein the first input terminal of the second amplification circuit is the feedback terminal of the analog receiving unit, and the output terminal is the output terminal of the analog receiving unit.

[0034] Preferably, the signal processing unit includes a second low-pass filter unit, a second main control unit, and a comparator circuit. The second low-pass filter unit has an input terminal connected to the first input terminal of the signal processing unit and an output terminal connected to the first input terminal of the comparator circuit. The second main control unit has an input terminal connected to the second input terminal of the signal processing unit and an output terminal connected to the second input terminal of the comparator circuit, and the output terminal of the comparator circuit is connected to the feedback terminal of the analog receiver unit.

[0035] Preferably, the comparison circuit includes a third amplification circuit, wherein the third amplification circuit has a non-inverting input terminal which is the first input terminal of the comparison circuit and a second input terminal which is the second input terminal of the comparison circuit, or the third amplification circuit has a second input terminal which is the first input terminal of the comparison circuit and a non-inverting input terminal which is the second input terminal of the third amplification circuit. The signal processing unit further includes a capacitor circuit connected between the first input terminal and the output terminal of the comparison circuit.

[0036] Preferably, the signal processing unit is The system includes a third low-pass filter unit, the output terminal of the comparison circuit being connected to the feedback terminal of the analog receiving unit via the third low-pass filter unit.

[0037] Preferably, the second main control unit is The system includes a second main controller and a first digital-to-analog conversion module, wherein the second main controller has an input terminal which is the input terminal of the second main control unit and an output terminal which is connected to the input terminal of the first digital-to-analog conversion module, and the output terminal of the first digital-to-analog conversion module is connected to the output terminal of the second main control unit.

[0038] Preferably, the signal processing unit includes a fourth low-pass filter unit and a third main control unit. The fourth low-pass filter unit has an input terminal connected to the first input terminal of the signal processing unit and an output terminal connected to the first input terminal of the third main control unit, and the third main control unit has a second input terminal connected to the second input terminal of the signal processing unit and an output terminal connected to the output terminal of the signal processing unit.

[0039] Preferably, the third main control unit is The system includes a second analog-to-digital conversion module, a third main controller, and a second digital-to-analog conversion module, wherein the third main controller is connected to the output terminal of the digital receiving unit, and further connected to the output terminal of the fourth low-pass filter unit via the second analog-to-digital conversion module, and connected to the feedback terminal of the analog receiving unit via the second digital-to-analog conversion module.

[0040] Preferably, the digital emission module is a laser emitter, and the digital receiving unit is a laser receiver. Alternatively, the digital transmission module is a wireless transmission circuit, and the digital receiving unit is a wireless receiving unit. Alternatively, the digital transmission module is an optical coupling unit, and the digital reception unit is a main controller. Alternatively, the digital transmission module is the main controller, and the digital reception unit is the optical coupling unit.

[0041] The present invention further proposes a laser transmission assembly including a laser transmission circuit as described in any one of the above items.

[0042] This application further proposes an electronic measuring device that includes a laser transmission circuit as described in any one of the above paragraphs, or an electronic measuring device that includes a laser transmission assembly as described above. Preferably, the electronic measuring instrument is an oscilloscope.

[0043] (Beneficial effects) According to the present invention, abnormal low-frequency components in the output analog signal can be corrected in real time to become standard low-frequency components unaffected by the aforementioned influencing factors. Since the intermediate-frequency and high-frequency components themselves are unaffected, the corrected output analog signal can be considered as if it had not been affected by the aforementioned influencing factors during laser transmission. Therefore, linear laser transmission of analog signals is realized, and the problem of errors occurring in the analog signal during laser signal transmission due to the aforementioned influencing factors is solved. Furthermore, according to the present invention, it becomes possible to adopt a method of transmitting analog signals using lasers to electronic measuring instruments such as oscilloscopes, overcoming the difficulties in transmitting analog signals using lasers in the electronic measuring industry, increasing the diversity of analog signal transmission, and also being advantageous in improving the display accuracy of electronic measuring instruments for analog signals. [Brief explanation of the drawing]

[0044] [Figure 1] This is a schematic module diagram of the first embodiment of the present application. [Figure 2A] This is a schematic module diagram of an analog firing circuit according to the first embodiment of the present application. [Figure 2B] This is a schematic module diagram of an analog firing circuit according to the first embodiment of the present application. [Figure 3A] This is a schematic circuit diagram of an analog firing unit according to the first embodiment of the present application. [Figure 3B]This is a schematic circuit diagram of an analog firing unit according to the first embodiment of the present application. [Figure 3C] This is a schematic circuit diagram of an analog firing unit according to the first embodiment of the present application. [Figure 3D] This is a schematic circuit diagram of an analog firing unit according to the first embodiment of the present application. [Figure 3E] This is a schematic circuit diagram of an analog firing unit according to the first embodiment of the present application. [Figure 3F] This is a schematic circuit diagram of an analog firing unit according to the first embodiment of the present application. [Figure 4A] This is a schematic circuit diagram of a drive feedback module according to the first embodiment of the present application. [Figure 4B] This is a schematic circuit diagram of a drive feedback module according to the first embodiment of the present application. [Figure 4C] This is a schematic circuit diagram of a drive feedback module according to the first embodiment of the present application. [Figure 4D] This is a schematic circuit diagram of a drive feedback module according to the first embodiment of the present application. [Figure 5] This is a schematic circuit diagram of a high-frequency feedback pathway according to the first embodiment of the present application. [Figure 6] This is a schematic circuit diagram of a low-frequency feedback pathway according to the first embodiment of the present application. [Figure 7A] This is a schematic circuit diagram of an analog receiving unit according to the first embodiment of the present application. [Figure 7B] This is a schematic circuit diagram of an analog receiving unit according to the first embodiment of the present application. [Figure 8A] This is a schematic circuit diagram of an analog receiving unit according to the first embodiment of the present application. [Figure 8B] This is a schematic circuit diagram of an analog receiving unit according to the first embodiment of the present application. [Figure 8C] This is a schematic circuit diagram of an analog receiving unit according to the first embodiment of the present application. [Figure 8D]This is a schematic circuit diagram of an analog receiving unit according to the first embodiment of the present application. [Figure 9] This is another schematic module diagram of the first embodiment of the present application. [Figure 10] This is a schematic module diagram of the second embodiment of the present application. [Figure 11A] This is a schematic module diagram of an analog firing unit according to a second embodiment of the present application. [Figure 11B] This is a schematic module diagram of an analog firing unit according to a second embodiment of the present application. [Figure 12A] This is a schematic circuit diagram of an analog firing unit according to a second embodiment of the present application. [Figure 12B] This is a schematic circuit diagram of an analog firing unit according to a second embodiment of the present application. [Figure 12C] This is a schematic circuit diagram of an analog firing unit according to a second embodiment of the present application. [Figure 12D] This is a schematic circuit diagram of an analog firing unit according to a second embodiment of the present application. [Figure 12E] This is a schematic circuit diagram of an analog firing unit according to a second embodiment of the present application. [Figure 12F] This is a schematic circuit diagram of an analog firing unit according to a second embodiment of the present application. [Figure 13A] This is a schematic circuit diagram of a drive module according to a second embodiment of the present application. [Figure 13B] This is a schematic circuit diagram of a drive module according to a second embodiment of the present application. [Figure 13C] This is a schematic circuit diagram of a drive module according to a second embodiment of the present application. [Figure 13D] This is a schematic circuit diagram of a drive module according to a second embodiment of the present application. [Figure 13E] This is a schematic circuit diagram of a drive module according to a second embodiment of the present application. [Figure 13F] This is a schematic circuit diagram of a drive module according to a second embodiment of the present application. [Figure 14] This is another schematic module diagram of the second embodiment of the present application. [Figure 15A] These are four schematic circuit diagrams of an analog receiving unit according to a second embodiment of the present application. [Figure 15B] These are four schematic circuit diagrams of an analog receiving unit according to a second embodiment of the present application. [Figure 15C] These are four schematic circuit diagrams of an analog receiving unit according to a second embodiment of the present application. [Figure 15D] These are four schematic circuit diagrams of an analog receiving unit according to a second embodiment of the present application. [Figure 16A] These are schematic module diagrams of three types of signal processing units according to the second embodiment of the present application. [Figure 16B] These are schematic module diagrams of three types of signal processing units according to the second embodiment of the present application. [Figure 16C] These are schematic module diagrams of three types of signal processing units according to the second embodiment of the present application. [Modes for carrying out the invention]

[0045] The following describes the technical proposal in the embodiments of this application clearly and completely, in conjunction with the drawings of the embodiments. It is clear that the embodiments described are not all embodiments of this application, but only a selection of embodiments. All other embodiments that can be obtained by a person skilled in the art without creative work based on the embodiments of this application are within the scope of protection of this application.

[0046] Furthermore, in the embodiments of this application, descriptions such as "first," "second," etc., are used solely for explanatory purposes and should not be understood as indicating or implying their relative importance, or implicitly specifying the number of technical features to be presented. For this reason, features limited to "first" and "second" may explicitly or implicitly include at least one such feature. Also, the technical ideas of each embodiment can be combined with each other as long as they can be realized by a person skilled in the art. If a combination of technical ideas results in a contradiction or is not feasible, it should be understood that such a combination of technical ideas does not exist and is not within the scope for which this application seeks protection.

[0047] First example: This application proposes a laser transmission circuit. In linear transmission of laser signals, it is usually necessary to use two types of laser diodes: a laser light-emitting diode D1 and a laser photodetector D2. The laser light-emitting diode D1 is optically connected to the laser photodetector D2 either directly or via an optical fiber, and can output an analog signal of the corresponding laser form, i.e., an analog laser signal, to the laser photodetector D2 in response to the input analog electrical signal. However, in actual use, factors such as the laser light-emitting diode, the transmission environment, and the laser photodetector all affect the transmission of the analog signal in the overall analog transmission pathway. As a result, errors exist in the output analog laser signal due to low-frequency components in the analog electrical signal, and furthermore, an offset exists in the low-frequency components of the analog electrical signal obtained by reconstruction by the laser photodetector D2 in the analog receiving unit 20. Thus, in the case of electronic equipment, especially electronic measuring instruments with multiple signal transmission stages such as oscilloscopes, the offsets of low-frequency components generated at each signal transmission stage are sequentially superimposed, resulting in extremely low accuracy of the final obtained analog electrical signal. This is precisely the problem that prevents the current electronic measuring industry from using lasers for analog signal transmission. Furthermore, the sources of influence on the laser light-emitting diode and the laser photodetector include, but are not limited to, their own operating temperature and the jitter of the equipment used. Sources of influence in the transmission environment include, but are not limited to, ambient temperature, ambient light, ambient humidity, and the jitter of the transmission optical fiber. In the following explanation, these sources of influence will be collectively referred to as influencing factors.

[0048] To address the above problem, referring to Figure 1, in the first embodiment of the present application, the laser transmission circuit is: An analog emission unit 10 is used to receive an input analog signal at an input terminal, convert the input analog signal into a corresponding analog laser signal, and then emit it. An analog receiving unit 20 is used to receive the analog laser signal transmitted by the analog emission unit 10, convert the analog laser signal into an analog electrical signal, and then use that as the output signal of the laser transmission circuit. The input terminal is connected to the output terminal of the analog receiving unit 20, and the output terminal is connected to the feedback input terminal of the analog transmitting unit 10, including a digital feedback pathway 30. The digital feedback pathway 30 receives the analog electrical signal output by the analog receiving unit 20, converts the input analog electrical signal into a corresponding digital signal, and then transmits it. The digital feedback pathway 30 is further used to convert the transmitted digital signal into a corresponding low-frequency analog signal S1 and output it to the feedback input terminal of the analog emission unit 10.

[0049] In this embodiment, the input terminal of the analog emission unit 10 may be connected to the input terminal of the laser transmission circuit to receive analog electrical signals awaiting transmission, i.e., input analog signals. In addition, the laser light-emitting diode D1 can be driven in response to the input analog signal to output a laser-type analog signal, i.e., an analog laser signal, which can be received by the analog receiving unit 20. The analog laser signal output by the analog emission unit 10 contains all the signal components of the input analog signal.

[0050] The analog receiving unit 20 receives an analog laser signal, converts the received analog laser signal into an analog signal (i.e., an analog electrical signal), and then outputs it as the output signal of the laser transmission circuit, thereby achieving the restoration and output of the analog laser signal. For simplicity, the "output signal of the laser transmission circuit" will be referred to as the "output analog signal" below. The output analog signal has three signal components: low-frequency components, intermediate-frequency components, and high-frequency components. In the signal transmission process, the low-frequency component in the output analog signal is susceptible to the above-mentioned influencing factors.

[0051] The digital feedback pathway 30 can be divided into a digital filter transmission pathway and a digital reception feedback pathway. Here, the digital filter transmission pathway receives the output analog signal, separates the low-frequency components therein, and transmits the separated low-frequency components as a digital signal of the corresponding format so that they are received by the digital reception feedback pathway. The digital reception feedback pathway can receive the digital signal of the corresponding format transmitted by the digital filter transmission pathway, convert the digital signal of the corresponding format into an analog electrical signal, i.e., a low-frequency analog signal S1, and output it to the feedback input terminal of the analog transmission unit 10. Of course, the digital filter transmission pathway may also be configured to transmit all signal components of the output analog signal as a digital signal of the corresponding format. The digital reception feedback pathway is used to receive the digital signal of the corresponding format transmitted by the digital filter transmission pathway, convert the digital signal of the corresponding format into an analog electrical signal, separate the low-frequency components therein to obtain the low-frequency analog signal S1. Furthermore, since the operation of the digital filter transmission pathway to transmit a digital signal of the corresponding format and the operation of the digital reception feedback pathway to convert the received digital signal into a low-frequency analog signal S1 are both less affected by the above-mentioned influencing factors, the low-frequency analog signal S1 input to the feedback input terminal of the analog transmission unit 10 can be represented as a low-frequency component affected by the above-mentioned influencing factors. Since the low-frequency component in the input analog signal is a standard low-frequency component unaffected by the above-mentioned influencing factors, the analog transmission unit 10 uses the low-frequency analog signal S1 input to the feedback input terminal to adjust the drive electrical signal used to drive the operation of the laser light-emitting diode within the analog transmission unit 10, so that the laser light-emitting diode can transmit the corresponding analog laser signal based on the adjusted drive electrical signal until the abnormal low-frequency component corresponding to the low-frequency analog signal S1 recovers to a standard low-frequency component, that is, until the low-frequency component in the output analog signal is restored to a standard low-frequency component.

[0052] By repeating this process, abnormal low-frequency components in the output analog signal can be corrected in real time to become standard low-frequency components unaffected by the aforementioned influencing factors. Since the intermediate-frequency and high-frequency components themselves are unaffected, the corrected output analog signal can be considered as if it had not been affected by the aforementioned influencing factors during laser transmission. This enables linear laser transmission of analog signals and solves the problem of errors occurring in analog signals during laser signal transmission due to the influence of the aforementioned influencing factors. Furthermore, according to the present invention, it becomes possible to use lasers to transmit analog signals to electronic measuring instruments such as oscilloscopes, overcoming the difficulties in transmitting analog signals using lasers in the electronic measuring industry, increasing the diversity of analog signal transmission, and also being advantageous in improving the display accuracy of electronic measuring instruments for analog signals.

[0053] Referring to Figure 2, in the first embodiment of the present application, the analog firing unit 10 is A drive feedback module 11 has an input terminal connected to the input terminal of the analog firing unit 10, and a first feedback input terminal connected to the output terminal of the digital feedback pathway 30, The system includes a laser emission module 12, the first terminal of which is connected to the output terminal of the drive feedback module 11 and the second terminal of which a first default reference voltage Ref1 is input, or the first terminal of which is connected to the positive output terminal of the drive feedback module 11 and the second terminal of which is connected to the negative output terminal of the drive feedback module 11.

[0054] In this embodiment, the first feedback input terminal of the drive feedback module 11 is the same as the feedback input terminal of the analog emission unit 10. The drive feedback module 11 drives the laser emission module 12 to emit an analog laser signal by calculating and amplifying the input analog signal and outputting it to the laser emission module 12. In this specification, two methods of driving the laser emission module 12 by the drive feedback module 11 are provided. Specifically, the first driving method can be seen in Figure 2A, in which the drive feedback module 11 outputs a single-ended signal (Vout) to the first terminal of the laser emission module 12, so that the laser emission module 12 can emit a corresponding analog laser signal based on the single-ended signals (Vout) input to both ends and a first default reference voltage Ref1. Specifically, the second driving method can be seen in Figure 2B, in which the drive feedback module 11 outputs differential signals (Vout1 and Vout2) to both terminals of the laser emission module 12, so that the laser emission module 12 can emit a corresponding analog laser signal in response to the differential signals (Vout1 and Vout2) input to both ends.

[0055] The drive feedback module 11 can also correct its low-frequency operating point in response to the received low-frequency analog signal S1 and output an analog electrical signal corresponding to the corrected low-frequency operating point to the laser emission module 12. By changing the low-frequency operating point of the drive feedback module 11, the low-frequency offset of the low-frequency component in the output analog signal can be adjusted. Specifically, if the output analog signal is affected by the laser light-emitting diode D1 or optical fiber jitter, and the voltage value corresponding to the low-frequency component in the output analog signal is greater than the normal voltage value that is not affected, lowering the low-frequency operating point of the drive feedback module 11 can restore the voltage value corresponding to the low-frequency component in the output analog signal to the normal voltage value. If the output analog signal is affected by the laser light-emitting diode D1 or optical fiber jitter, and the voltage value corresponding to the low-frequency component in the output analog signal is smaller than the normal voltage value that is not affected, raising the low-frequency operating point of the drive feedback module 11 can restore the voltage value corresponding to the low-frequency component in the output analog signal to the normal voltage value.

[0056] The laser emission module 12 includes a laser light-emitting diode D1 and a first resistor R1.

[0057] The first resistor R1 has one end connected to the first terminal of the laser emission module 12, and the other end connected to the second terminal of the laser emission module 12 via the laser light-emitting diode D1.

[0058] In this embodiment, the laser emission module 12 includes a laser light-emitting diode D1 and a first resistor R1, where the first resistor R1 is a current-limiting resistor. The first default reference voltage may be a first default supply voltage VCC1 or a first default reference voltage Ref1, and here we provide two construction methods for the laser emission module 12. The first construction method for the laser emission module 12 can be seen in Figures 3C and 3D, in which a single-ended signal (Vout) output by the drive feedback module 11 is input to one of the anodes or cathodes of the laser light-emitting diode D1 via the first resistor R1, and the first default reference voltage is input to the other of the anodes or cathodes. Specifically, the laser light-emitting diode D1 has a single-ended signal (Vout) input to its anode via the first resistor R1, and the first default reference voltage Ref1 is input to its cathode. Alternatively, the laser light-emitting diode D1 may have a single-ended signal (Vout) input to its cathode via a first resistor R1 and a first default reference voltage input to its anode. The construction method of the second laser emission module 12 can be seen in Figures 3A and 3B, where the single-ended signal (Vout) output by the drive feedback module 11 is directly input to one of the anode or cathode of the laser light-emitting diode D1, and the first default reference voltage Ref1 is input to the other of the anode or cathode via the first resistor R1. Specifically, the laser light-emitting diode D1 may have a single-ended signal (Vout) input to its anode, or the first default reference voltage Ref1 may be input to its cathode via the first resistor R1. Alternatively, the laser light-emitting diode D1 may have a single-ended signal input to its cathode, or the first default reference voltage Ref1 may be input to its anode via the first resistor R1.

[0059] If the output signal of the drive feedback module 11 includes a first output signal (Vout1) and a second output signal (Vout2) which are differential signals from each other, then here again, two construction methods for the laser emission module 12 are provided. The first construction method for the laser emission module 12 can be seen in Figure 3E, where the first output signal (Vout1) is input to the cathode of the laser light-emitting diode D1 and the second output signal (Vout2) is input to the anode via the first resistor R1. Of course, the first output signal (Vout1) may be input to the anode of the laser light-emitting diode D1 and the second output signal (Vout2) may be input to the cathode via the first resistor R1. The second construction method for the laser emission module 12 can be seen in Figure 3F, where the first output signal (Vout1) is input to the cathode of the laser light-emitting diode D1 via the first resistor R1 and the second output signal (Vout2) is input to the anode. Of course, the first output signal (Vout1) may be input to the anode of the laser light-emitting diode D1 via the first resistor R1, and the second output signal (Vout2) may be input to the cathode.

[0060] Furthermore, the connection point between the laser light-emitting diode D1 and the first resistor R1 is terminal F.

[0061] Referring to Figures 3A and 3B, the drive feedback module 11 further has a second feedback input point, and the second feedback input terminal of the drive feedback module 11 is connected to the F terminal or the output terminal of the drive feedback module 11, thereby receiving its own output signal or the signal from the F terminal to achieve its own negative feedback adjustment, which is advantageous in improving the matching between the output signal of the drive feedback module 11 and the input analog signal. Specifically, when the laser light-emitting diode D1 is connected to the output terminal of the drive feedback module 11 via the first resistor R1, the F terminal does not exist in the circuit, as shown in Figures 3C and D.

[0062] Furthermore, referring to Figures 3 and 4, the drive feedback module 11 includes a first amplification circuit 11A, a high-frequency feedback pathway 11B, and a low-frequency feedback pathway 11C.

[0063] The first amplification circuit 11A has a first input terminal connected to the input terminal of the drive feedback module 11, and an output terminal connected to the output terminal of the drive feedback module 11. The first input terminal of the low-frequency feedback pathway 11C is connected to the first feedback input terminal of the drive feedback module 11. The input terminal of the high-frequency feedback pathway 11B is connected to the second feedback input terminal of the drive feedback module 11. The output terminals of the high-frequency feedback pathway 11B and the low-frequency feedback pathway 11C are each connected to the second input terminal of the first amplification circuit 11A.

[0064] The high-frequency feedback circuit 11B can receive the output signal of the drive feedback module 11 or the signal from terminal F. The high-frequency feedback circuit 11B separates the intermediate frequency component and the high frequency component in the signal, and then feeds back the separated intermediate frequency component and the high frequency component to the second input terminal of the first amplifier circuit 11A. The low-frequency feedback pathway 11C can feed back the low-frequency analog signal S1 to the second input terminal of the first amplifier circuit 11A. Thus, the input signal to the second input terminal of the first amplifier circuit 11A can be considered to have components across the entire frequency band. Therefore, the first amplifier circuit 11A can perform calculations and amplification on the input analog signal using the input signal to the second input terminal and output the result, thereby realizing negative feedback input adjustment of the input analog signal by the first amplifier circuit 11A.

[0065] Furthermore, referring to Figures 3 and 4, the first amplification circuit 11A includes a first operational amplifier A1.

[0066] The first amplification circuit 11A has one first input terminal, the non-inverting input terminal or inverting input terminal of the first operational amplifier A1 is the first input terminal of the first amplification circuit 11A, the inverting input terminal of the first operational amplifier A1 is the second input terminal of the first amplification circuit 11A, and the input analog signal, which is a single-ended signal, is input to the non-inverting input terminal or inverting input terminal of the first operational amplifier A1 via the second resistor R2.

[0067] Alternatively, the first amplification circuit 11A has two first input terminals, the non-inverting input terminal and the inverting input terminal of the first operational amplifier are the two first input terminals of the first amplification circuit 11A, the inverting input terminal of the first operational amplifier A1 is the second input terminal of the first amplification circuit 11A, the input analog signal which is a differential signal is input to the non-inverting input terminal and the inverting input terminal of the first operational amplifier A1 via the third resistor R3 and the fourth resistor R4, respectively, and a second default reference voltage Ref2 is further input to the non-inverting input terminal of the first operational amplifier A1 via the fifth resistor R5.

[0068] When the input analog signal is a single-ended signal (Vout), the input analog signal, which is a single-ended signal, can be input to either the non-inverting input terminal or the inverting input terminal of the first operational amplifier A1 via a second resistor R2 having a resistance value of 0Ω or greater. When the input analog signal is input using the non-inverting input terminal, the resistance value of the second resistor R2 may be selected as 0Ω or a value greater than 0Ω as required by the actual circumstances. When the input analog signal is input using the inverting input terminal, the resistance value of the second resistor R2 can be selected from a range greater than 0Ω as required by the actual circumstances, and in this case, specifically referring to Figures 4B and 4C, the non-inverting input terminal may be supplied with a default reference voltage or grounded. Note that when the resistance value of the second resistor R2 is 0Ω, it may be considered as a conductor, and therefore the second resistor R2 is not shown in Figure 3A.

[0069] The first operational amplifier A1 can output the input analog signal in the form of a single-ended or differential signal after processing and amplifying it. A default reference voltage may be applied to the non-inverting / inverting input terminal of the first operational amplifier A1, which is not receiving an input analog signal, or it may be grounded. By inputting the output signals of the high-frequency feedback pathway 11B and the low-frequency feedback pathway 11C as feedback signals to the inverting input terminal of the first operational amplifier A1, negative feedback adjustment of the input analog signal can be achieved, which is advantageous for improving the matching between the output signal of the first operational amplifier A1 and the input analog signal. Furthermore, regarding the first amplifier circuit 11A, if the output is a differential signal and the input is a single-ended analog signal, the first amplifier circuit 11A may be implemented using a two-stage amplifier circuit. The first-stage amplifier circuit may have a single-ended signal input and a single-ended signal output, and the second-stage amplifier circuit may have a single-ended signal input and a differential signal output. The inverting input terminal of the operational amplifier in the first-stage amplifier circuit is configured to receive a feedback signal, while the inverting input terminal of the operational amplifier in the second-stage amplifier circuit is configured not to receive a feedback signal. In other words, in this case, the first operational amplifier A1 is provided in the first-stage amplifier circuit.

[0070] Furthermore, since the low-frequency operating point of the first operational amplifier A1 is the same as the low-frequency operating point of the drive feedback module 11 and the analog emission unit 10, the low-frequency analog signal S1 input to its inverting input terminal can be used to correct the low-frequency components in the input analog signal.

[0071] Specifically, referring to Figure 4D, when the input analog signal is a differential signal, the first operational amplifier A1 receives the input analog signal at its non-inverting input terminal via a third resistor R3, at its inverting input terminal via a fourth resistor R4, and at its non-inverting input terminal via a second default reference voltage Ref2 via a fifth resistor R5. In this case, the input analog signal may include a first input analog signal (Vin1) and a second input analog signal (Vin2), which are differential signals from each other. The first operational amplifier A1 may perform calculations and amplification on the input first input analog signal (Vin1) and second input analog signal (Vin2) and then output them in the form of a single-ended signal (Vout) or differential signals (Vout1 and Vout2). Note that when the first operational amplifier A1 outputs differential signals (Vout1 and Vout2), the first operational amplifier A1 does not have a negative feedback pathway.

[0072] Preferably, referring to Figure 5, the high-frequency feedback pathway 11B may be implemented using a capacitor element, i.e., a first capacitor C1, the number of first capacitors C1 can be determined according to the actual requirements and is not limited thereto. By connecting both ends of the first capacitor C1 to the input terminal and output terminal of the high-frequency feedback pathway 11B, respectively, the intermediate frequency component and the high frequency component of the output signal of the first amplifier circuit 11A can be separated by utilizing the characteristic of the capacitor element to cut low-frequency components through high-frequency components.

[0073] Preferably, referring to Figure 6, the low-frequency feedback pathway 11C further has a second input terminal, the second input terminal of the low-frequency feedback pathway 11C is connected to a second feedback input terminal of the drive feedback module 11.

[0074] When the laser transmission circuit of the present invention operates in normal mode, the low-frequency feedback pathway receives a low-frequency analog signal S1 from the first input terminal, and when the laser transmission circuit of the present invention operates in gain calibration mode, the low-frequency feedback pathway receives an input signal from the second input terminal.

[0075] The low-frequency feedback pathway 11C includes a single-pole double-throw switch T and a sixth resistor R6.

[0076] The first input terminal of the single-pole double-throw switch T is connected to the first input terminal of the low-frequency feedback pathway 11C so that the low-frequency analog signal S1 is input to it, the second input terminal of the single-pole double-throw switch T is connected to the second input terminal of the low-frequency feedback pathway 11C, and the sixth resistor R6 has one end connected to the output terminal of the single-pole double-throw switch T and the other end connected to the output terminal of the low-frequency feedback pathway 11C.

[0077] The single-pole double-throw switch T, under the control of the main control unit in the equipment where the laser transmission equipment is located, connects the first input terminal and the output terminal, or connects the second input terminal and the output terminal. When the laser transmission circuit of the present invention is operating in normal mode, the first input terminal and the output terminal are connected, and the single-pole double-throw switch T can output the low-frequency analog signal S1 to the first amplifier circuit 11A via the sixth resistor R6 so that the first amplifier circuit 11A can perform negative feedback adjustment on the input analog signal S1 in response to the input low-frequency analog signal S1.

[0078] When the laser transmission circuit of the present invention operates in gain calibration mode, the second input terminal and the output terminal are in communication, and the single-pole double-throw switch T can output the output signal of the first amplifier circuit 11A via the sixth resistor R6 so that the first amplifier circuit 11A can perform negative feedback adjustment on the input analog signal in accordance with the output of the first amplifier circuit 11A or the F terminal signal. Here, the sixth resistor R6 may be a feedback resistor.

[0079] Referring to Figure 7, in the first embodiment of the present application, the analog receiving unit 20 includes a second amplification circuit 21, a laser photodetector diode D2, and a seventh resistor R7, wherein the output terminal of the second amplification circuit 21 is connected to the output terminal of the analog receiving unit 20. The laser photodetector diode D2 has a third default reference voltage Ref3 input to its first terminal, a second terminal connected to one end of the seventh resistor R7 and one input terminal of the second amplifier circuit 21, and a fourth default reference voltage Ref4 input to the other end of the seventh resistor R7.

[0080] In this embodiment, the second amplification circuit 21 may be implemented using an operational amplifier, or it may be implemented using an amplification circuit constructed with individual electronic devices such as triodes or resistors, and is not limited thereto. Here, the operation process of the analog receiving unit 20 will be described in detail using the case where the second amplification circuit 21 is implemented using an operational amplifier (hereinafter referred to as the second operational amplifier A2) as an example.

[0081] Referring to Figures 7A and 7B, the laser photodiode D2 may have an anode and a cathode, and the second operational amplifier A2 may have a non-inverting input terminal and an inverting input terminal. When the first terminal is the anode and the second terminal is the cathode, the third default reference voltage Ref3 is less than the fourth default reference voltage Ref4, and the laser photodiode D2 generates a corresponding induced current in response to the received analog laser signal, and the induced current flows to the laser photodiode D2 through the seventh resistor R7. When the first terminal is the cathode and the second terminal is the anode, the third default reference voltage Ref3 is greater than the fourth default reference voltage Ref4, and the laser photodiode D2 generates a corresponding induced current in response to the received analog laser signal, and the induced current flows to the fourth default reference voltage Ref4 through the seventh resistor R7. The voltage signal formed at the connection between the laser photodetector diode D2 and the seventh resistor R7 is processed and amplified by the second operational amplifier A1 and output as an analog signal. In this case, the first input terminal of the second amplification circuit 21 may be the non-inverting input terminal of the second operational amplifier A2, a predetermined reference voltage may be input to the inverting input terminal of the second operational amplifier A2, or negative feedback adjustment may be formed by connecting the inverting input terminal of the second operational amplifier A2 to the output terminal of the second operational amplifier A2. Of course, those skilled in the art can construct a processing circuit such as a non-inverting amplifier circuit, an inverting amplifier circuit, or a voltage follower circuit using the second operational amplifier A2 and a resistor element to realize the second amplification circuit 21 according to the present invention, and such a description is omitted here.

[0082] Alternatively, the laser photodetector diode D2 has a third default reference voltage Ref3 input to its first terminal, a second terminal connected to one end of the seventh resistor R7 and the first input terminal of the second amplifier circuit 21, the other end of the seventh resistor R7 connected to the output terminal of the second amplifier circuit 21, and a fourth default reference voltage Ref4 input to the second input terminal of the second amplifier circuit 21.

[0083] Referring to Figures 8A and 8B, in this embodiment, the first input terminal and the second input terminal of the second amplification circuit 21 may be the inverting input terminal and the non-inverting input terminal of the second operational amplifier A2, respectively. When the first pole of the laser photodetector diode D2 is the anode and the second pole is the cathode, the laser photodetector diode D2 generates a corresponding induced current in response to the received analog laser signal, and the induced current flows from the output terminal of the second operational amplifier A2 through the seventh resistor R7 to the laser photodetector diode D2. When the first pole of the laser photodetector diode D2 is the cathode and the second pole is the anode, the laser photodetector diode D2 generates a corresponding induced current in response to the received analog laser signal, and the induced current flows to the output terminal of the second operational amplifier A2 through the seventh resistor R7.

[0084] Alternatively, the laser photodetector diode D2 has a third default reference voltage Ref3 input to its first terminal, a second terminal connected to one end of the seventh resistor R7, a fourth default reference voltage Ref4 input to the other end of the seventh resistor R7, and the first and second input terminals of the second amplifier circuit 21 are connected to both ends of the seventh resistor R7, respectively.

[0085] Referring to Figures 8C and 8D, in this embodiment, the laser photodiode D2 generates a corresponding induced current in response to the received analog laser signal and outputs it to the seventh resistor R7, thereby forming a corresponding voltage signal across the seventh resistor R7. The second operational amplifier A2 may be a differential amplifier, and the non-inverting input terminal and inverting input terminal of the second operational amplifier A2 may be input to form differential inputs by inputting the voltage signals formed across the seventh resistor R7, respectively, and the two input voltage signals may be processed and amplified to output in the form of a single-ended signal or a differential signal.

[0086] The seventh resistor R7 may be a sampling resistor. The four default voltages described herein—the first default voltage Ref1, the second default voltage RER2, the third default voltage RER3, and the fourth default voltage RER4—can be obtained from the output of the power management circuit of the equipment to be placed, and the four voltage values ​​may be the same or different, but are not limited herein. In any preferred embodiment, the first default voltage Ref1, the second default voltage RER2, the third default voltage RER3, or the fourth default voltage RER4 may be realized using the ground voltage.

[0087] Referring to Figure 8, in the first embodiment of the present application, the digital feedback pathway 30 is An input terminal is connected to the input terminal of the digital feedback pathway 30, and a first low-pass filter unit 31 is used to low-pass filter the analog electrical signal before transmitting it. The input terminal is connected to the output terminal of the first low-pass filter unit 31, and the first processing unit 32 converts the analog electrical signal after low-pass filtering into a digital signal before outputting it. The system includes a second processing unit 33 whose output terminal is connected to the output terminal of the digital feedback pathway 30, which receives the digital signal emitted by the first processing unit 32, converts the digital signal into a low-frequency analog signal S1, and then outputs it to the output terminal of the digital feedback pathway 30.

[0088] In this embodiment, the first low-pass filter unit 31 and the first processing unit 32 may form a digital filter transmission pathway within the digital feedback pathway 30. The first low-pass filter unit 31 performs low-pass filtering on the output analog signal to separate the low-frequency components therein, then outputs an analog electrical signal representing the low-frequency components to the first processing unit 32, which converts it into a digital signal of the corresponding format before transmitting it. The second processing unit 33 may form a digital reception feedback pathway within the digital feedback pathway 30. The second processing unit 33 receives and identifies the digital signal of the corresponding format transmitted by the first processing unit 32, and outputs a corresponding low-frequency analog signal S1 to the analog transmission unit 10 according to the received digital signal, thereby realizing feedback of abnormal low-frequency components.

[0089] Preferably, referring to Figure 9, the first processing unit 32 includes an analog-to-digital conversion module 32A, a first processor 32B, and a digital transmission module 32C. The analog-to-digital conversion module 32A has an input terminal connected to the input terminal of the first processing unit 32, an output terminal connected to the input terminal of the first processor 32B, the output terminal of the first processor 32B is connected to the input terminal of the digital transmission module 32C, and the digital transmission module 32C is used to transmit a digital signal.

[0090] In this embodiment, the analog-to-digital conversion module 32A converts the analog electrical signal output by the first low-pass filter unit 31 into a digital electrical signal and then outputs it to the first processor 32B. The first processor 32B may be a microprocessor such as an MCU, DSP, FPGA, or main control chip, and is not limited thereto. The first processor 32B may perform signal processing on the digital electrical signal output by the analog-to-digital conversion module 32A, and by outputting the signal-processed digital electrical signal to the digital transmission module 32C, the digital transmission module 32C can be driven by the signal-processed digital electrical signal to transmit a digital signal of the corresponding format, thereby realizing the transmission and emission of digital signals. Of course, the analog-to-digital conversion module 32A may be further integrated into the first processor 32B. Since the operation of the digital transmission module 32C is driven using a digital electrical signal, it is possible to effectively avoid the digital feedback pathway being affected by the aforementioned influencing factors, which further affects the transmission of digital signals, and is advantageous in improving the stability of the digital signal transmission process. Furthermore, the first processor 32B or analog-to-digital conversion module 32A is advantageous in reducing the difficulty of achieving high accuracy in digital signals because it is less difficult to achieve high accuracy in actual applications.

[0091] Preferably, the second processing unit 33 includes a digital receiving module 33A, a second processor 33B, and a digital-to-analog conversion module 33C, wherein the digital receiving module 33A is used to receive a digital signal transmitted by the digital transmitting module 33C, the output terminal of the digital receiving module 33A is connected to the input terminal of the second processor 33B, the output terminal of the second processor 33B is connected to the input terminal of the digital-to-analog conversion module 33C, and the output terminal of the digital-to-analog conversion module 33C is connected to the output terminal of the second processing unit 33.

[0092] The digital receiving module 33A can receive digital signals of a corresponding format, convert these digital signals into digital electrical signals, and output them to the second processor 33B. The second processor 33B may be a microprocessor such as an MCU, DSP, or FPGA, or a main control chip, but is not limited thereto. The second processor 33B can perform signal processing on the digital electrical signals output by the digital receiving module 33A, and by outputting the processed digital electrical signals to the digital / analog conversion module 33C, the digital / analog conversion module 33C converts them into low-frequency analog signals S1, which are then output to the feedback input terminal of the analog transmission unit 10, thereby realizing digital signal reception feedback. Of course, the digital / analog conversion module 33C may be further integrated into the second processor 33B. Furthermore, since the second processor 33B or the digital / analog conversion module 33C has a low difficulty in achieving high accuracy in actual applications, it is also advantageous in reducing the difficulty in achieving high accuracy for the low-frequency analog signals S1.

[0093] Furthermore, the digital emission module 32C is a laser emitter, and the digital receiving module 33A is a laser receiver.

[0094] The laser emitter is driven by a digital electrical signal and outputs a digital signal in laser format to the laser receiver. This allows the laser receiver to generate and output a corresponding digital electrical signal in response to the received digital signal, thereby enabling low-frequency laser transmission. Since it is driven by a digital electrical signal, the electrical-to-optical conversion effect of the laser emitter in this case is not affected by environmental factors or changes in its own operating state. Therefore, the laser receiver can restore and output a digital electrical signal that is free from offset and represents standard low-frequency components.

[0095] Alternatively, the digital transmission module 32C is a wireless transmission circuit, and the digital reception module 33A is a wireless reception circuit.

[0096] The wireless transmitting circuit and wireless receiving circuit may be short-range communication circuits such as infrared communication circuits, Bluetooth communication circuits, ultra-wideband communication circuits, ZigBee communication circuits, and RFID communication circuits, or long-range communication circuits such as 3G communication circuits, 4G communication circuits, 5G communication circuits, Wi-Fi communication circuits, WiGig communication circuits, and wireless broadband internet communication circuits, and are not limited thereto. The wireless transmitting circuit is driven by a digital electrical signal and outputs a digital signal in the form of infrared rays, electromagnetic waves, etc., to the wireless receiving circuit, so that the wireless receiving circuit can generate and output a corresponding digital electrical signal in response to the received digital signal in the form of infrared rays, electromagnetic waves, etc., thereby realizing wireless communication transmission of low-frequency components.

[0097] Alternatively, the digital transmission module 32C is an optical coupling unit, and the digital reception module 33A is the main controller.

[0098] The optical coupling unit may receive a digital electrical signal output by the first processor 32B via the primary side, and is driven by the digital electrical signal to generate a corresponding digital electrical signal on the secondary side, which is then received and identified by the main controller in the digital receiving feedback pathway, thereby enabling communication transmission of low-frequency components.

[0099] Alternatively, the digital transmission module 32C is the main controller, and the digital reception module 33A is the optical coupling unit.

[0100] The main controller may receive a digital electrical signal output by the first processor 32B as input. By processing the digital electrical signal and then outputting it, it can receive and identify the signal on the primary side of the optical coupling unit in the digital receiving feedback pathway, thereby realizing low-frequency component communication transmission.

[0101] Furthermore, the digital feedback pathway 30 further includes a second low-pass filter unit 34, the second low-pass filter unit 34 having an input terminal connected to the output terminal of the second processing unit 33 and an output terminal connected to the output terminal of the digital feedback pathway 30.

[0102] The second low-pass filter unit 34 is used to ensure that intermediate frequency components and high frequency components are not present in the low-frequency correction signal input to the analog transmission unit 10 by low-pass filtering the low-frequency analog signal S1 output by the second processing unit 33 before outputting it to the analog transmission unit 10, which is advantageous in improving the accuracy of low-frequency component correction by the analog transmission unit 10.

[0103] Second example: This application proposes a laser transmission circuit. In linear transmission of laser signals, it is usually necessary to use two types of laser diodes: a laser light-emitting diode D1 and a laser photodetector D2. The laser light-emitting diode D1 can output an analog signal of the corresponding laser type, i.e., an analog laser signal, depending on the input analog electrical signal. In actual use, during transmission, the laser signal is susceptible to influences from the laser light-emitting diode, particularly the laser light-emitting diode itself, and the transmission environment. Therefore, errors exist in the output analog laser signal due to low-frequency components within the analog electrical signal, and further offsets exist in the low-frequency components of the analog electrical signal obtained by reconstruction by the laser photodetector D2 in the analog receiving unit 30. Thus, in electronic devices, especially electronic measuring instruments with multiple signal transmission stages such as oscilloscopes, the offsets of low-frequency components generated at each signal transmission stage are sequentially superimposed, resulting in extremely low accuracy in the final obtained analog electrical signal. This is precisely the problem that prevents the current electronic measuring industry from using laser signals for analog signal transmission. The sources of influence from the laser light-emitting diode and laser photodetector include, but are not limited to, operating temperature and jitter of the equipment used. Influences on the transmission environment include, but are not limited to, ambient temperature, ambient light, ambient humidity, and transmission optical fiber jitter.

[0104] To address the above problem, refer to Figure 10. In the second embodiment of the present application, the laser transmission circuit is: An analog emission unit 10 is used to emit an analog laser signal corresponding to the input analog signal, and the input analog signal of the laser transmission circuit is input to the input terminal. The input terminal receives the input analog signal of the laser transmission circuit, and a digital emission unit 20 is used to emit a digital signal corresponding to the low-frequency component in the input analog signal. The system includes a receiving unit 30 used to receive an analog laser signal output by an analog emission unit 10, receive a digital signal output by a digital emission unit 20, and generate corresponding digital and analog electrical signals. The receiving unit 30 is further used to correct the generated analog electrical signal according to the generated digital electrical signal and to output the corrected analog electrical signal.

[0105] In this embodiment, the input terminal of the analog emission unit 10 may be connected to the input terminal of the laser transmission circuit so that an analog electrical signal awaiting transmission, i.e., an input analog signal, is input. In addition, it can output an analog signal in laser form, i.e., an analog laser signal, in response to the input analog signal, and have it received by the receiving unit 30. The analog laser signal output by the analog emission unit 10 has all the signal components of the input analog signal.

[0106] The digital transmission unit 20 receives an input analog signal awaiting transmission when its input terminal is connected to the input terminal of the laser transmission circuit. It separates the low-frequency component from the signal and, according to the separated low-frequency component, transmits a digital signal of the corresponding format, which can then be received by the receiving unit 30. The input analog signal has three signal components: a low-frequency component, an intermediate-frequency component, and a high-frequency component. In other words, the digital signal transmitted by the digital transmission unit 20 contains the low-frequency component of the input analog signal.

[0107] The receiving unit 30 can receive analog laser signals via the laser photodetector diode D2, and can also receive digital signals of the corresponding format via a digital receiving unit 32 such as a wireless receiving unit, laser receiver, wired receiving unit, or main controller. After converting the received analog laser signals and digital signals into analog electrical signals and digital electrical signals, respectively, the receiving unit 30 can correct the analog electrical signals using the digital electrical signals. The analog electrical signals correspond to all signal components of the input analog signal, and the digital electrical signals correspond to the low-frequency components of the input analog signal. Furthermore, the operation process in which the digital transmission unit 20 transmits a digital signal of the corresponding format and the receiving unit 30 converts the received digital signal into a digital electrical signal is not affected by the laser diode or the transmission environment. Therefore, the digital electrical signals can represent standard low-frequency components that are not affected by the above. Accordingly, the receiving unit 30 can perform signal processing on the analog electrical signals and digital electrical signals to determine the low-frequency offset after the low-frequency components in the input analog signal have been affected, and can use the determined low-frequency offset to correct the low-frequency components in the analog electrical signal. Specifically, the low-frequency offset can be determined by obtaining the affected abnormal low-frequency components from an analog electrical signal, obtaining the corresponding standard low-frequency components from a digital electrical signal, and comparing the abnormal low-frequency components with the standard low-frequency components. The receiving unit may also perform corresponding calculations on the low-frequency offset and the abnormal low-frequency components in the analog electrical signal until the abnormal low-frequency components in the analog electrical signal are corrected to become standard low-frequency components.

[0108] By repeating this process, abnormal low-frequency components in the analog electrical signal can be corrected in real time to become standard low-frequency components unaffected by the laser diode and transmission environment. Since the intermediate-frequency and high-frequency components themselves are unaffected, the corrected analog electrical signal can be considered as if it had not been affected by the laser diode and transmission environment during laser transmission, and can be output as the output signal of the laser transmission circuit (hereinafter, "output analog signal" is used to represent "output signal of the laser transmission circuit"). Therefore, linear laser transmission of analog signals is realized, and the problem of errors occurring in analog signals during laser signal transmission is also solved. Furthermore, according to the present invention, it becomes possible to adopt a method of transmitting analog signals using lasers to electronic measuring instruments such as oscilloscopes, overcoming the difficulties in transmitting analog signals using lasers in the electronic measuring industry, increasing the diversity of analog signal transmission, and also being advantageous in improving the display accuracy of electronic measuring instruments for analog signals.

[0109] Referring to Figure 11, in the second embodiment of the present application, the analog firing unit 10 is A drive module 11 whose input terminal is connected to the input terminal of the analog firing unit 10, The system includes a laser emission module 12, the first terminal of which is connected to the output terminal of the drive module 11, and the second terminal of which is connected to the negative output terminal of the drive module 11, such that a first predetermined voltage is input to the second terminal, or a differential signal output by the drive module 11 is input to the second terminal.

[0110] In this embodiment, the drive module 11 drives the laser emission module 12 to emit an analog laser signal by calculating and amplifying an input analog signal and outputting it to the laser emission module 12. Two methods of driving the laser emission module 12 by the drive module 11 are provided below. The first driving method can be specifically shown in Figure 11A, in which the drive module 11 outputs a single-ended signal (Vout) to the first terminal of the laser emission module 12, so that the laser emission module 12 can emit a corresponding analog laser signal based on the single-ended signals (Vout) and a first predetermined voltage input to both ends. The second driving method can be specifically shown in Figure 11B, in which the drive module 11 outputs differential signals (Vout1 and Vout2) to both terminals of the laser emission module 12, so that the laser emission module 12 can emit a corresponding analog laser signal in response to the differential signals (Vout1 and Vout2) input to both terminals.

[0111] In this embodiment, the laser emission module 12 includes a laser light-emitting diode D1 and a first resistor R1. When the output signal of the drive module 11 is a single-ended signal (Vout), the first default voltage may be a first default supply voltage VCC1 or a first default reference voltage Ref1, and here we provide two construction methods for the laser emission module 12. The first construction method for the laser emission module 12 can be seen in Figures 12A and 12B, in which the single-ended signal (Vout) output by the drive module 11 is input to one of the anodes or cathodes of the laser light-emitting diode D1 via the first resistor R1, and the first default voltage is input to the other of the anodes or cathodes. Specifically, the laser light-emitting diode D1 has the single-ended signal (Vout) input to the anode via the first resistor R1, and the first default reference voltage Ref1 input to the cathode. Alternatively, the laser light-emitting diode D1 may have a single-ended signal (Vout) input to its cathode via a first resistor R1 and a first default supply voltage VCC1 input to its anode. The construction method of the second laser emission module 12 can be seen in Figures 12A and 12B, where one of the anode or cathode of the laser light-emitting diode D1 has a single-ended signal (Vout) output by the drive module 11 input, and the other of the anode or cathode has a first default voltage input via a first resistor R1. Specifically, the laser light-emitting diode D1 may have a single-ended signal (Vout) input to its anode and a first default reference voltage Ref1 input to its cathode via a first resistor R1. Alternatively, the laser light-emitting diode D1 may have a single-ended signal input to its cathode via a first resistor R1 and a first default supply voltage VCC1 input to its anode via a first resistor R1.

[0112] If the output signal of the drive module 11 includes a first output signal (Vout1) and a second output signal (Vout2) which are differential signals from each other, then here again, two construction methods for the laser emission module 12 are provided. The first construction method for the laser emission module 12 can be seen in Figure 12E, where the first output signal (Vout1) is input to the cathode of the laser light-emitting diode D1 and the second output signal (Vout2) is input to the anode via the first resistor R1. Of course, the first output signal (Vout1) may be input to the anode of the laser light-emitting diode D1 and the second output signal (Vout2) may be input to the cathode via the first resistor R1. The second construction method for the laser emission module 12 can be seen in Figure 12F, where the first output signal (Vout1) is input to the cathode of the laser light-emitting diode D1 via the first resistor R1 and the second output signal (Vout2) is input to the anode. Of course, the first output signal (Vout1) may be input to the anode of the laser light-emitting diode D1 via the first resistor R1, and the second output signal (Vout2) may be input to the cathode.

[0113] Furthermore, if the first terminal of the laser light-emitting diode D1 is connected to the first terminal of the laser emission module 12, and the other terminal of the laser light-emitting diode D1 is connected to the second terminal of the laser emission module 12 via the first resistor R1, then the connection point between the laser light-emitting diode D1 and the first resistor R1 is terminal F, and the drive module 11 includes a first amplification circuit having a non-inverting input terminal and an inverting input terminal.

[0114] In this embodiment, the first amplification circuit may be implemented using an operational amplifier or an operational amplifier chip, or it may be implemented using an amplification circuit constructed with individual electronic elements such as a triode or a resistor, and is not limited thereto. Here, the operating principle of the drive module 13 will be explained in detail using the case where the first amplification circuit is implemented using an operational amplifier (hereinafter referred to as the first operational amplifier A1) as an example. The non-inverting input terminal, inverting input terminal, and output terminal of the first operational amplifier A1 may be the non-inverting input terminal, inverting input terminal, and output terminal of the first amplification circuit, respectively.

[0115] When the input analog signal is a single-ended signal (Vout), the input analog signal, which is a single-ended signal, can be input to either the non-inverting input terminal or the inverting input terminal of the first operational amplifier A1 via a third resistor R3 having a resistance value of 0Ω or greater. When the input analog signal is input using the non-inverting input terminal, the resistance value of the third resistor R3 may be selected to 0Ω or a value greater than 0Ω as required by actual circumstances. In this case, specifically referring to Figure 13C, the inverting input terminal may be input to a default reference voltage via an eighth resistor R8 or grounded. When the input analog signal is input using the inverting input terminal, the resistance value of the third resistor R3 can be selected from a range greater than 0Ω as required by actual circumstances, and in this case, specifically referring to Figure 13D, the non-inverting input terminal may be input to a default reference voltage or grounded.

[0116] Specifically, refer to Figures 13A and 13B. The first operational amplifier A1 can output the input analog signal in the form of a single-ended or differential signal after processing and amplifying it. When the output from the first operational amplifier A1 is a differential signal and the input analog signal to the first operational amplifier A1 is a single-ended signal, a default reference voltage may be applied to the non-inverting / inverting input terminal of the first operational amplifier, which is not receiving the input analog signal, or it may be grounded. The inverting input terminal of the first operational amplifier A1 is connected to the output terminal of the first operational amplifier A1 or the F terminal of the laser emission module 12 via the fourth resistor R4. This allows the output signal of the first operational amplifier A1 or the signal from the F terminal to be input as a feedback signal, thereby realizing negative feedback adjustment of the first operational amplifier A1, which is advantageous for improving the matching between the output signal of the first operational amplifier A1 and the input analog signal. Specifically, refer to Figures 13C and 13D, where the resistance of the fourth resistor is 0Ω or greater. The negative feedback pathway for terminal F can be seen as the dotted dashed line pathway in Figures 12C and 12D, and the negative feedback pathway for the output terminal of the first operational amplifier A1 can be seen as the solid line pathway in Figures 12A, 12B, 12C, and 12D. Note that when the laser light-emitting diode D1 is connected to the output terminal of the first operational amplifier A1 via the first resistor R1, there is no F terminal in the circuit. The third resistor R3 and the fourth resistor R4 may be considered as conductors when their resistance is 0Ω, so they are not shown in Figures 12A and 12B.

[0117] When the input analog signal is a differential signal, the first operational amplifier A1 receives the input analog signal at its non-inverting input terminal via a fifth resistor R5 and at its inverting input terminal via a sixth resistor R6, and a default reference voltage RER0 is input to the non-inverting input terminal via a seventh resistor R7. In this case, refer specifically to Figures 13E and 13F, and the input analog signal may include a first input analog signal (Vin1) and a second input analog signal (Vin2) which are differential signals from each other. The first operational amplifier A1 may perform calculations and amplification on the input first input analog signal (Vin1) and second input analog signal (Vin2) and then output them in the form of a single-ended signal (Vout) or differential signals (Vout1 and Vout2). Note that when the first operational amplifier A1 outputs differential signals (Vout1 and Vout2), the first operational amplifier A1 does not have a negative feedback pathway.

[0118] Referring to Figure 14, in a second embodiment of the present application, the digital launch unit 20 includes a first low-pass filter unit 21, a first main control unit 22, and a digital launch module 23, wherein the input terminal of the first low-pass filter unit 21 is an input terminal of the digital launch unit 20, and the output terminal of the first low-pass filter unit 21 is connected to a controlled terminal of the digital launch module 23 via the first main control unit 22.

[0119] In this embodiment, the first main control unit 22 may be a microprocessor or main control chip such as an MCU, DSP, FPGA, etc., that has an analog / digital conversion function, and is not limited thereto. The input terminal of the first low-pass filter unit 21 may be the input terminal of the digital emission unit 20. The first low-pass filter unit 21 performs low-pass filtering on the input analog signal input to the laser transmission circuit, outputs the low-frequency components in the input analog signal to the analog input terminal of the first main control unit 22, converts them into a drive signal which is a digital electrical signal by the first main control unit 22, and then outputs them to the controlled terminal of the digital emission module 23. This enables the digital emission module 23 to transmit the corresponding digital signal in response to the received drive signal, and is used to realize the emission of a digital signal. Here, the digital signal may be a laser signal, an electromagnetic wave signal, an electrical signal, or an optical signal.

[0120] Preferably, the first main control unit 22 includes a first main controller 22B and a first analog-to-digital conversion module 22A, and the first low-pass filter unit 21 is connected to the controlled terminals of the digital launch module 23 via the first analog-to-digital conversion module 22A and the first main controller 22B.

[0121] In this embodiment, the first main controller 22B outputs a drive signal, which is an analog electrical signal, to the first analog-to-digital conversion module 22A based on the low-frequency components output by the first low-pass filter unit 21. The first analog-to-digital conversion module 22A then converts the drive signal, which is a digital electrical signal, from analog to digital before outputting it to the digital launch module 23, thereby enabling the drive of the digital launch module 23. Simply put, it can be considered that the analog-to-digital conversion function of the first main controller 22B is realized using the first analog-to-digital conversion module 22A. Since the operation of the digital launch module 23 is driven using a digital electrical signal, it is possible to effectively avoid the influence of the laser diode and the transmission environment on the operating state of the digital launch module 23, which would further affect the transmission of the digital signal, thus improving the stability of the digital signal transmission process. Furthermore, since the first main control unit 22 or the first analog-to-digital conversion module 22A is easy to achieve high precision in actual applications, it is also advantageous in reducing the difficulty of achieving high precision for standard low-frequency components.

[0122] Referring to Figure 14, in the second embodiment of the present application, the receiving unit 30 is An analog receiving unit 31 used to receive an analog laser signal and output an analog electrical signal, A digital receiving unit 32 used to receive digital signals and output digital electrical signals, The system includes a signal processing unit 33, which has a first input terminal and a second input terminal connected to the output terminals of an analog receiving unit 31 and a digital receiving unit 32, respectively, and which performs signal processing on the input analog and digital electrical signals before outputting a low-frequency correction signal to the feedback terminal of the analog receiving unit 31. The analog receiving unit 31 is further used to correct the low-frequency operating point in accordance with the received low-frequency correction signal and to output an analog electrical signal corresponding to the corrected low-frequency operating point.

[0123] In this embodiment, the analog receiving unit 31 receives an analog laser signal via the laser photodetector diode D2, generates a corresponding analog electrical signal in response to the analog laser signal, and can perform calculations and amplification on the analog electrical signal before outputting it as an output analog signal. By changing the low-frequency operating point of the analog receiving module 31, the low-frequency offset of the low-frequency component in the output analog signal can be adjusted. Specifically, if the output analog signal is affected by the laser diode and the transmission environment, and the voltage value corresponding to the low-frequency component in the output analog signal is greater than the normal voltage value that is not affected, lowering the low-frequency operating point can restore the voltage value corresponding to the low-frequency component in the output analog signal to the normal voltage value. If the output analog signal is affected by the laser diode and the transmission environment, and the voltage value corresponding to the low-frequency component in the output analog signal is smaller than the normal voltage value that is not affected, raising the low-frequency operating point can restore the voltage value corresponding to the low-frequency component in the output analog signal to the normal voltage value.

[0124] The digital receiving unit 32 can receive digital signals in the form of laser signals, electromagnetic wave signals, electrical signals, or optical signals using a digital receiver, and generate and output corresponding digital electrical signals based on the digital signals.

[0125] The first and second input terminals of the signal processing unit 33 are connected one-to-one with the output terminals of the analog receiving unit 31 and the digital receiving unit 32, respectively. This allows the output analog signal and the digital electrical signal to be input, and abnormal low-frequency components in the output analog signal can be separated. The abnormal low-frequency components are those affected by the laser diode and the transmission environment, while the digital electrical signal is a standard low-frequency component unaffected by the laser diode and the transmission environment. Therefore, the signal processing unit 33 determines the degree of offset of the abnormal low-frequency components based on the abnormal and standard low-frequency components, and outputs a corresponding electrical signal according to the result. By adjusting the low-frequency operating point of the analog receiving unit 31 accordingly, the signal processing unit 33 can then perform the corresponding calculation on the analog electrical signal based on the adjusted low-frequency operating point and output it as a new output analog signal. By repeating this process, the signal processing unit 33 adjusts the low-frequency operating point of the analog receiving unit 31 in real time, thereby enabling the analog receiving unit 31 to continuously output an output analog signal that is unaffected by low-frequency components.

[0126] Referring to Figures 15A and 15B, in the second embodiment of the present application, the analog receiving unit 31 includes a laser photodiode D2, a second resistor R2, and a second amplification circuit.

[0127] The laser photodetector diode D2 has a second predetermined voltage input to its first pole, which is connected to the first input terminal of the second amplifier circuit, and a third predetermined voltage is further input to the second pole via a second resistor R2. The second amplifier circuit has a second input terminal which is the feedback terminal of the analog receiver unit 31, and an output terminal which is the output terminal of the analog receiver unit 31.

[0128] In this embodiment, the second amplification circuit may be implemented using an operational amplifier or an operational amplifier chip, or it may be implemented using an amplification circuit constructed with discrete elements such as a triode or a resistor, and is not limited thereto. Here, the operating principle of the analog receiving unit 31 will be explained in detail using the case where the second amplification circuit is implemented using an operational amplifier (hereinafter referred to as the second operational amplifier A2) as an example. The non-inverting input terminal, inverting input terminal, and output terminal of the second operational amplifier A1 may be the first input terminal, inverting input terminal, and output terminal of the second amplification circuit, respectively.

[0129] The laser photodiode D2 has an anode and a cathode. When the first pole is the anode and the second pole is the cathode, the second default voltage RER2 is less than the third default voltage RER3, and the laser photodiode D2 generates a corresponding induced current in response to the received analog laser signal, and this current flows to the laser photodiode D2 through the second resistor R2. When the first pole is the cathode and the second pole is the anode, the second default reference voltage RER2 is greater than the third default voltage RER3, and the laser photodiode D2 generates a corresponding induced current in response to the received analog laser signal, and this induced current flows to the third default voltage RER3 through the second resistor R2. The voltage signal formed at the connection between the laser photodiode D2 and the second resistor R2 is calculated and amplified by the second operational amplifier A1 and output as an output analog signal. In this embodiment, the low-frequency operating point of the analog receiving unit 31 is the same as the low-frequency operating point of the second operational amplifier A2, and is corrected by the low-frequency correction signal input to its inverting terminal.

[0130] Referring to Figures 15C and 15D, in a second embodiment of the present application, the analog receiving unit 31 includes a laser photodiode D2, a second resistor R2, and a second amplification circuit.

[0131] The laser photodetector diode D2 has a fourth predetermined voltage input to its first pole, its second pole connected to the second input terminal of the second amplifier circuit, and the second pole further connected to the input terminal of the second amplifier circuit via a second resistor R2. The second amplifier circuit has its first input terminal as the feedback terminal of the analog receiving unit 31, and its output terminal as the output terminal of the analog receiving unit 31.

[0132] When the first pole of the laser photodetector diode D2 is the anode and the second pole is the cathode, the laser photodetector diode D2 generates a corresponding induced current in response to the received analog laser signal, and this current flows from the output terminal of the second operational amplifier A2 through the second resistor R2 to the laser photodetector diode D2. When the first pole of the laser photodetector diode D2 is the cathode and the second pole is the anode, the laser photodetector diode D2 generates a corresponding induced current in response to the received analog laser signal, and this induced current flows through the second resistor R2 to the output terminal of the second operational amplifier A2. In this embodiment, the low-frequency operating point of the analog receiving unit 31 is the same as the low-frequency operating point of the second operational amplifier A2, and is corrected by a low-frequency correction signal input to its non-inverting terminal.

[0133] The four default voltages described herein—the first default voltage REF1, the second default voltage RER2, the third default voltage RER3, and the fourth default voltage RER4—can be obtained from the output of the power management circuit of the equipment to be installed, and the four voltage values ​​may be the same or different, but are not limited herein. In any preferred embodiment, the first default voltage REF1, the second default voltage RER2, the third default voltage RER3, and the fourth default voltage RER4 may be realized using the ground voltage.

[0134] Referring to Figure 16A, in the second embodiment of the present application, the signal processing unit 33 includes a second low-pass filter unit 33A, a second main control unit, and a comparator circuit 33B. The second low-pass filter unit 33A has its input terminal connected to the first input terminal of the signal processing unit 33 and its output terminal connected to the first input terminal of the comparator circuit 33B. The second main control unit has its input terminal connected to the second input terminal of the signal processing unit 33 and its output terminal connected to the second input terminal of the comparator circuit 33B. The output terminal of the comparator circuit 33B is connected to the feedback terminal of the analog receiving unit 31.

[0135] The second low-pass filter unit 33A is used to output abnormal low-frequency components in the output analog signal to the first input terminal of the comparator circuit 33B by low-pass filtering the output analog signal. The second main control unit may be a main controller or main control chip that has an analog / digital conversion function, where the main controller may be a microprocessor such as an MCU, DSP, or FPGA. The second main control unit may perform signal processing on the digital electrical signal output by the digital receiving unit 32, and then perform digital / analog conversion to an analog electrical signal representing a standard low-frequency component before outputting it to the second input terminal of the comparator circuit 33B. The comparator circuit 33B can compare the analog electrical signals input to the first and second input terminals, respectively, to determine the low-frequency offset of the low-frequency components in the output analog signal, and can also perform low-frequency operating point correction for the analog receiving unit 31 by outputting the corresponding electrical signal (i.e., a low-frequency correction signal) to the feedback terminal of the analog receiving unit 31.

[0136] Preferably, the comparator circuit 33B may be implemented using an amplification circuit, a dedicated comparator chip, or a comparator circuit constructed of switching elements and discrete elements. The specific implementation of the amplification circuit (hereinafter referred to as the third amplification circuit) can be found in the first and second amplification circuits described above, and will not be explained here. Here, the operating principle of the analog receiving unit 31 will be explained in detail using the case where the third amplification circuit is implemented using an operational amplifier (hereinafter referred to as the third operational amplifier A3) as an example. The non-inverting input terminal, inverting input terminal, and output terminal of the third operational amplifier A3 may be the non-inverting input terminal, inverting input terminal, and output terminal of the first amplification circuit, respectively.

[0137] Either the non-inverting input terminal or the inverting input terminal of the third operational amplifier A3 may be the first input terminal of the comparator circuit 33B, and the other may be the second input terminal. In the second embodiment, a capacitor circuit 33E is further connected between the first input terminal and the output terminal of the comparator circuit 33B, and the capacitor circuit 33E may include at least one capacitor C to improve the operational stability of the third operational amplifier A3.

[0138] Preferably, referring to Figure 16B, a low-pass filter unit, i.e., a third low-pass filter unit 33F, may be further connected between the output terminal of the comparator circuit 33B and the feedback terminal of the analog receiving unit 31 to low-pass filter the low-frequency correction signal output by the comparator circuit 33B before outputting it to the feedback terminal of the analog receiving unit 31. This ensures that intermediate frequency and high-frequency components are not present in the low-frequency correction signal received by the feedback terminal of the analog receiving unit 31, which is advantageous in improving the stability of the low-frequency operating point correction of the analog receiving unit 31.

[0139] Preferably, the second main control unit includes a second main controller 33C and a first digital-to-analog conversion module 33D, wherein the input terminals of the second main controller 33C are connected to the input terminals of the second main control unit, and the output terminals are connected to the input terminals of the first digital-to-analog conversion module 33D, and the output terminals of the first digital-to-analog conversion module 33D are connected to the output terminals of the second main control unit.

[0140] In this embodiment, the second main controller 33C may process the digital electrical signal output by the digital receiving unit 32 and output it to the first digital / analog conversion module 33D, which then converts it from digital to analog electrical signals before outputting it to the signal processing unit 33. In short, the analog / digital conversion function of the second main controller 33C can be considered to be realized using the first digital / analog conversion module 33D.

[0141] Referring to Figure 16C, in the second embodiment of the present application, the signal processing unit 33 includes a fourth low-pass filter unit 33G and a third main control unit. The fourth low-pass filter unit 33G has its input terminal connected to the first input terminal of the signal processing unit 33 and its output terminal connected to the second input terminal of the third main control unit. The third main control unit has its second input terminal connected to the second input terminal of the signal processing unit 33 and its output terminal connected to the output terminal of the analog receiving unit 31.

[0142] In this embodiment, the fourth low-pass filter unit 33G is used to output abnormal low-frequency components in the output analog signal to the third main control unit by low-pass filtering the output analog signal. The third main control unit may be a main controller or main control chip that has analog / digital conversion and digital / analog conversion functions, and the main controller may be a microprocessor such as an MCU, DSP, or FPGA. The third main control unit may also receive the digital electrical signal output by the digital receiving unit 32 as direct input, and after converting the abnormal low-frequency components to a digital signal from analog to digital, it can execute a pre-integrated hardware circuit and software program or algorithm to perform calculations on the two digital electrical signals to determine the low-frequency offset of the low-frequency components in the output analog signal. Furthermore, depending on the result obtained, the third main control unit can also correct the low-frequency operating point of the analog receiving unit 31 by directly outputting a low-frequency correction signal of the analog electrical signal to the feedback terminal of the analog receiving unit 31.

[0143] Preferably, the third main control unit includes a second analog-to-digital conversion module 33H, a third main controller 33I, and a second digital-to-analog conversion module 33J, wherein the third main controller 33I is connected to the output terminal of the digital receiving unit 32, and further connected to the output terminal of the analog receiving unit 31 via the second analog-to-digital conversion module 33H, and connected to the feedback terminal of the analog receiving unit 31 via the second digital-to-analog conversion module 33J.

[0144] In this embodiment, the third main control unit may include a second analog-to-digital conversion module 33H, a third main controller 33I, and a second digital-to-analog conversion module 33J. The third main controller 33I may be directly connected to the output terminal of the digital receiving unit 32 so that the digital electrical signal output by the digital receiving unit is input to it. The second analog-to-digital conversion module 33H may be connected to the output terminal of the fourth low-pass filter unit 33G so that the abnormal low-frequency components output by the fourth low-pass filter unit 33G are converted into digital signals and then output to the third main controller 33I. The third main controller 33I can determine the low-frequency offset of the low-frequency components in the output analog signal by performing corresponding calculations on the two digital electrical signals, and can also output the low-frequency correction signal of the digital electrical signal to the second digital-to-analog conversion module 33J so that it is converted into an analog electrical signal by the second digital-to-analog conversion module 33J and then output to the feedback terminal of the analog receiving unit 31. Simply put, the second analog / digital conversion module 33H and the second digital / analog conversion module 33J can be considered as realizing the analog / digital conversion function and the digital / analog conversion function of the second main controller 33C. Furthermore, the second main control unit, the third main control unit, the first digital / analog conversion module 33D, the second digital / analog conversion module 33J, and the second analog / digital conversion module 33H are advantageous in reducing the difficulty of achieving high accuracy at the low-frequency operating point, as they are less difficult to achieve in actual applications.

[0145] Referring to Figures 14 to 16, in the second embodiment of the present application, the digital emission module 23 is a laser emitter and the digital receiving unit 32 is a laser receiver.

[0146] The laser emitter is driven by a digital electrical signal and outputs a digital signal in laser format to the laser receiver. This allows the laser receiver to generate and output a corresponding digital electrical signal in response to the received digital signal, thereby enabling low-frequency laser transmission. Since it is driven by a digital electrical signal, the digital laser signal output by the laser emitter is unaffected by the laser diode and transmission environment. Therefore, the laser receiver can restore and output a digital electrical signal that is free from offset and represents standard low-frequency components.

[0147] Alternatively, the digital transmission module 23 is a wireless transmission circuit, and the digital receiving unit 32 is a wireless receiving circuit.

[0148] The wireless transmitting circuit and wireless receiving unit may be short-range communication circuits such as infrared communication circuits, Bluetooth communication circuits, ultra-wideband communication circuits, ZigBee communication circuits, and RFID communication circuits, or long-range communication circuits such as 3G communication circuits, 4G communication circuits, 5G communication circuits, Wi-Fi communication circuits, WiGig communication circuits, and wireless broadband internet communication circuits, and are not limited thereto. The wireless transmitting circuit is driven by a digital electrical signal and outputs a digital signal in the form of infrared rays, electromagnetic waves, etc. to the wireless receiving unit, so that the wireless receiving unit can generate and output a corresponding digital electrical signal in response to the received digital signal in the form of infrared rays, electromagnetic waves, etc., thereby realizing wireless communication transmission of low-frequency components.

[0149] Alternatively, the digital transmission module 23 is an optical coupling unit, and the digital reception unit 32 is the main controller.

[0150] The optical coupling unit may receive a digital electrical signal output by the first analog / digital conversion module 22A via its primary side, and by being driven by the digital electrical signal, it can generate a corresponding digital electrical signal on its secondary side, thereby realizing optical communication transmission of low-frequency components.

[0151] Alternatively, the digital transmission module 23 is the main controller, and the digital reception unit 32 is the optical coupling unit.

[0152] The main controller may receive a digital electrical signal output by the first analog / digital conversion module 22A as input. By processing the digital electrical signal and then outputting it, the main controller can receive and identify the signal on the primary side of the optical coupling unit in the receiving unit 30, thereby realizing low-frequency component communication transmission.

[0153] Third example: This application further proposes a laser transmission assembly including a laser transmission circuit, and for the specific configuration of this laser transmission circuit, refer to the first or second embodiment described above. Since this laser transmission assembly adopts all the technical proposals of all the embodiments described above, it has all the beneficial effects of at least the technical proposals of the first or second embodiment described above, and therefore will not be explained here.

[0154] Here, the laser transmission assembly may include a firing assembly and a receiving assembly. When the laser transmission assembly employs the laser transmission circuit of the first embodiment, the analog firing unit 10 and the digital firing unit 20 may be provided within the firing assembly, and the receiving unit 30 may be located within the receiving assembly. This enables laser transmission of analog signals between the firing assembly and the receiving assembly. When the laser transmission assembly employs the laser transmission circuit of the second embodiment, the analog firing unit 10 and the digital receiving feedback pathway within the digital feedback pathway 30 may be provided within the firing assembly, and the analog receiving unit 20 and the digital filter firing pathway within the digital feedback pathway 30 may be located within the receiving assembly. This enables laser transmission of analog signals between the firing assembly and the receiving assembly.

[0155] Fourth embodiment: This application further proposes an electronic measuring device including a laser transmission circuit or a laser transmission assembly. For the specific configuration of this laser transmission circuit, refer to the first or second embodiment described above, and for the specific configuration of this laser transmission assembly, refer to the third embodiment described above. Since this electronic measuring device adopts all the technical proposals of all the embodiments described above, it has at least all the beneficial effects brought about by the technical proposals of the embodiments described above, and therefore will not be explained here.

[0156] Here, electronic measuring instruments may include, but are not limited to, digital oscilloscopes, spectrum analyzers and network analyzers, signal generators and waveform generators.

[0157] An electronic measuring instrument may include at least a measuring assembly and a main body. To enable laser transmission of analog signals between the measuring assembly and the main body, the emitting assembly may be located within the measuring assembly, and the receiving assembly may be located within the main body. Of course, to enable laser transmission of analog signals between each functional assembly within the main body, the measuring assembly may be located entirely within the main body.

[0158] Preferably, the electronic measuring instrument is an oscilloscope.

[0159] In this embodiment, the instrument body may be an oscilloscope. The measurement assembly may include at least two probes, and the oscilloscope may further include signal modulation boxes connected to each probe and the instrument body, respectively. Here, one emitter assembly may be provided in any one probe, and the signal modulation cartridge may include at least two receiver assemblies and one emitter assembly, each receiver assembly may correspond to one probe, and the emitter assembly may correspond to the instrument body. The signal modulation cartridge can receive analog signals transmitted by laser from each probe via each receiver assembly, and after signal processing of each input analog signal, transmits it to the instrument body via the emitter assembly, so that it can be received and displayed by the instrument body. All assemblies may be placed inside the oscilloscope, and the transmission process may be completed within the oscilloscope.

[0160] The following describes the technical proposal in the embodiments of this application clearly and completely, in conjunction with the drawings of the embodiments. It is clear that the embodiments described are not all embodiments of this application, but only a selection of embodiments. All other embodiments that can be obtained by a person skilled in the art without creative work based on the embodiments of this application are within the scope of protection of this application.

Claims

1. A laser transmission circuit, An analog firing unit is used to receive an input analog signal at an input terminal, convert the input analog signal into a corresponding analog laser signal, and then fire it. An analog receiving unit used to receive the analog laser signal transmitted by the analog emission unit, convert the analog laser signal into an analog electrical signal, and then use that as the output signal of the laser transmission circuit, The input terminal is connected to the output terminal of the analog receiving unit, and the output terminal is connected to the feedback input terminal of the analog transmission unit, and the digital feedback pathway is included, The aforementioned digital feedback pathway receives the analog electrical signal output by the analog receiving unit, converts the input analog electrical signal into a corresponding digital signal, and then transmits it. The digital feedback pathway is further used to convert the transmitted digital signal into a corresponding low-frequency analog signal and output it to the feedback input terminal of the analog firing unit. Laser transmission circuit.

2. The aforementioned analog firing unit is A drive feedback module having an input terminal connected to the input terminal of the analog firing unit and a first feedback input terminal connected to the output terminal of the digital feedback pathway, A laser emission module having a first terminal connected to the output terminal of the drive feedback module and a second terminal to which a first default reference voltage is input, or having a first terminal connected to the positive output terminal of the drive feedback module and a second terminal connected to the negative output terminal of the drive feedback module, A laser transmission circuit according to claim 1, including the following:

3. The laser emission module includes a laser light-emitting diode and a first resistor. The first resistor has one end connected to the first terminal of the laser emission module and the other end connected to the second terminal of the laser emission module via the laser light-emitting diode. Alternatively, the first terminal of the laser light-emitting diode may be connected to the first terminal of the laser emission module, and the other terminal of the laser light-emitting diode may be connected to the second terminal of the laser emission module via the first resistor. The laser transmission circuit according to claim 2.

4. The connection point between the laser light-emitting diode and the first resistor is terminal F. The drive feedback module includes a second feedback input terminal, and the second feedback input terminal of the drive feedback module is connected to the F terminal or the output terminal of the drive feedback module. The laser transmission circuit according to claim 3.

5. The drive feedback module includes a first amplification circuit, a high-frequency feedback pathway, and a low-frequency feedback pathway. The first amplification circuit has a first input terminal connected to the input terminal of the drive feedback module, an output terminal connected to the output terminal of the drive feedback module, a first input terminal of the low-frequency feedback pathway connected to the first feedback input terminal of the drive feedback module, an input terminal of the high-frequency feedback pathway connected to the second feedback input terminal of the drive feedback module, and the output terminals of the high-frequency feedback pathway and the low-frequency feedback pathway are respectively connected to the second input terminal of the first amplification circuit. The laser transmission circuit according to claim 4.

6. The first amplification circuit includes a first operational amplifier, The first amplification circuit has one first input terminal, the non-inverting input terminal or inverting input terminal of the first operational amplifier is the first input terminal of the first amplification circuit, the inverting input terminal of the first operational amplifier is the second input terminal of the first amplification circuit, and the input analog signal, which is a single-ended signal, is input to the non-inverting input terminal or inverting input terminal of the first operational amplifier via the second resistor. Alternatively, the first amplification circuit has two first input terminals, the non-inverting input terminal and the inverting input terminal of the first operational amplifier are the two first input terminals of the first amplification circuit, the inverting input terminal of the first operational amplifier is the second input terminal of the first amplification circuit, the input analog signal which is a differential signal is input to the non-inverting input terminal and the inverting input terminal of the first operational amplifier via a third resistor and a fourth resistor, respectively, and a second default reference voltage is further input to the non-inverting input terminal of the first operational amplifier via a fifth resistor. The laser transmission circuit according to claim 5.

7. The high-frequency feedback pathway includes a first capacitor, the ends of which are connected to the input and output terminals of the high-frequency feedback pathway, respectively. The laser transmission circuit according to claim 5.

8. The low-frequency feedback pathway further has a second input terminal, and the second input terminal of the low-frequency feedback pathway is connected to the second feedback input terminal of the drive feedback module. The low-frequency feedback pathway includes a single-pole double-throw switch and a sixth resistor. The first input terminal of the single-pole double-throw switch is connected to the first input terminal of the low-frequency feedback pathway so that the low-frequency analog signal is input to it, the second input terminal of the single-pole double-throw switch is connected to the second input terminal of the low-frequency feedback pathway, and the sixth resistor has one end connected to the output terminal of the single-pole double-throw switch and the other end connected to the output terminal of the low-frequency feedback pathway. The laser transmission circuit according to claim 5.

9. The analog receiving unit includes a second amplification circuit, a laser photodetector diode, and a seventh resistor, and the output terminal of the second amplification circuit is connected to the output terminal of the analog receiving unit. The laser photodetector diode has a third default reference voltage input to its first terminal, a second terminal connected to one end of the seventh resistor and the first input terminal of the second amplification circuit, and a fourth default reference voltage input to the other end of the seventh resistor. Alternatively, the laser photodetector diode has a third default reference voltage input to its first terminal, a second terminal connected to one end of the seventh resistor and the first input terminal of the second amplifier circuit, the other end of the seventh resistor connected to the output terminal of the second amplifier circuit, and a fourth default reference voltage input to the second input terminal of the second amplifier circuit. Alternatively, the laser photodetector diode may have a third default reference voltage input to its first terminal, a second terminal connected to one end of the seventh resistor, a fourth default reference voltage input to the other end of the seventh resistor, and the first and second input terminals of the second amplifier circuit connected to both ends of the seventh resistor, respectively. The laser transmission circuit according to claim 1.

10. The aforementioned digital feedback pathway is An input terminal is connected to the input terminal of the digital feedback pathway, and a first low-pass filter unit is used to low-pass filter the analog electrical signal before outputting it. The input terminal is connected to the output terminal of the first low-pass filter unit, and the first processing unit converts the analog electrical signal after low-pass filtering into a digital signal and outputs it. A second processing unit, whose output terminal is connected to the output terminal of the digital feedback pathway, is used to receive a digital signal emitted by the first processing unit, convert the digital signal into a low-frequency analog signal, and then output it to the output terminal of the digital feedback pathway. A laser transmission circuit according to claim 1, including the following:

11. The first processing unit includes an analog-to-digital conversion module, a first processor, and a digital emission module. The second processing unit includes a digital receiving module, a second processor, and a digital-to-analog conversion module. The analog-to-digital conversion module has an input terminal connected to the input terminal of the first processing unit, an output terminal connected to the input terminal of the first processor, the output terminal of the first processor connected to the input terminal of the digital transmission module, and the digital transmission module is used to transmit a digital signal. The digital receiving module is used to receive the digital signal emitted by the digital transmitting module. The output terminal of the digital receiving module is connected to the input terminal of the second processor, the output terminal of the second processor is connected to the input terminal of the digital-to-analog conversion module, and the output terminal of the digital-to-analog conversion module is connected to the output terminal of the second processing unit. The laser transmission circuit according to claim 10.

12. The digital emission module is a laser light-emitting diode, and the digital reception module is a laser photodetector diode. Alternatively, the digital transmission module is a wireless transmission circuit, and the digital reception module is a wireless reception circuit. Alternatively, the digital transmission module is an optical coupling unit, and the digital reception module is a main controller. Alternatively, the digital transmission module is the main controller and the digital reception module is the optical coupling unit. The laser transmission circuit according to claim 11.

13. The digital feedback pathway further includes a second low-pass filter unit, the second low-pass filter unit having an input terminal connected to the output terminal of the second processing unit and an output terminal connected to the output terminal of the digital feedback pathway. The second low-pass filter unit is used to low-pass filter the low-frequency analog signal output by the second processing unit and then output it to the analog transmission unit. The laser transmission circuit according to claim 10.

14. A laser transmission circuit, The aforementioned laser transmission circuit is An analog emission unit is used to emit an analog laser signal corresponding to the input analog signal of the laser transmission circuit, and the input analog signal of the laser transmission circuit is input to the input terminal. The input analog signal of the laser transmission circuit is input to the input terminal, and a digital emission unit is used to emit a digital signal corresponding to the low-frequency component in the input analog signal. The system includes a receiving unit used to receive the analog laser signal output by the analog emission unit and the digital signal output by the digital emission unit, and to generate corresponding analog and digital electrical signals. The receiving unit is further used to correct the generated analog electrical signal according to the generated digital electrical signal and to output the corrected analog electrical signal. Laser transmission circuit.

15. The aforementioned analog firing unit is A drive module whose input terminal is connected to the input terminal of the analog firing unit, A laser emitting module having a first terminal connected to the output terminal of the drive module, a second terminal to which a first predetermined voltage is input, or a differential signal output by the drive module is input, such that the first terminal is connected to the positive output terminal of the drive module and the second terminal is connected to the negative output terminal of the drive module, The laser transmission circuit according to claim 14, including the following:

16. The laser emission module includes a laser light-emitting diode and a first resistor. The first resistor has one end connected to the first terminal of the laser emission module and the other end connected to the second terminal of the laser emission module via the laser light-emitting diode. Alternatively, the first terminal of the laser light-emitting diode may be connected to the first terminal of the laser emission module, and the other terminal of the laser light-emitting diode may be connected to the second terminal of the laser emission module via the first resistor. The laser transmission circuit according to claim 15.

17. When the first terminal of the laser light-emitting diode is connected to the first terminal of the laser emission module, and the other terminal of the laser light-emitting diode is connected to the second terminal of the laser emission module via the first resistor, the connection point between the laser light-emitting diode and the first resistor is terminal F, and the drive module includes a first amplification circuit having a non-inverting input terminal and an inverting input terminal, The input analog signal is a single-ended signal, and the input analog signal is input to the non-inverting input terminal or inverting input terminal of the first amplifier circuit via a third resistor, and the second input terminal of the first amplifier circuit is further connected to the output terminal or F terminal of the first amplifier circuit via a fourth resistor. Alternatively, the input analog signal is a differential signal, and the input analog signal is input to the first amplification circuit via a fifth resistor at the non-inverting input terminal and via a sixth resistor at the inverting input terminal, and a reference voltage is input to the non-inverting input terminal via a seventh resistor. The laser transmission circuit according to claim 16.

18. The digital launch unit includes a first low-pass filter unit, a first main control unit, and a digital launch module, wherein the input terminal of the first low-pass filter unit is the input terminal of the digital launch unit, and the output terminal of the first low-pass filter unit is connected to the controlled terminal of the digital launch module via the first main control unit. The laser transmission circuit according to claim 14.

19. The first main control unit includes a first main controller and a first analog-to-digital conversion module, and the first low-pass filter unit is connected to the controlled terminal of the digital launch module via the first main controller and the first analog-to-digital conversion module. The laser transmission circuit according to claim 18.

20. The aforementioned receiving unit is An analog receiving unit used to receive the analog laser signal and output the analog electrical signal, A digital receiving unit used to receive the aforementioned digital signal and output the aforementioned digital electrical signal, The signal processing unit includes a first input terminal and a second input terminal connected to the output terminal of the analog receiving unit and the output terminal of the digital receiving unit, respectively, and is used to perform signal processing on the input analog electrical signal and the digital electrical signal, and then output a low-frequency correction signal to the feedback terminal of the analog receiving unit. The analog receiving unit is further used to correct the low-frequency operating point in accordance with the received low-frequency correction signal and to output an analog electrical signal corresponding to the corrected low-frequency operating point. The laser transmission circuit according to claim 14.

21. The analog receiving unit includes a laser photodiode, a second resistor, and a second amplification circuit. The laser photodetector diode has a second predetermined voltage input to its first pole, the second pole is connected to the first input terminal of the second amplification circuit, and a third predetermined voltage is further input to the second pole via the second resistor; the second amplification circuit has a second input terminal which is the feedback terminal of the analog receiving unit, and an output terminal which is the output terminal of the analog receiving unit. Alternatively, the laser photodetector diode has a fourth predetermined voltage input to its first pole, a second pole connected to the second input terminal of the second amplification circuit, and the second pole further connected to the input terminal of the second amplification circuit via the second resistor, wherein the first input terminal of the second amplification circuit is the feedback terminal of the analog receiving unit, and the output terminal is the output terminal of the analog receiving unit. The laser transmission circuit according to claim 20.

22. The signal processing unit includes a second low-pass filter unit, a second main control unit, and a comparison circuit. The second low-pass filter unit has an input terminal connected to the first input terminal of the signal processing unit and an output terminal connected to the first input terminal of the comparator circuit. The second main control unit has an input terminal connected to the second input terminal of the signal processing unit and an output terminal connected to the second input terminal of the comparator circuit, and the output terminal of the comparator circuit is connected to the feedback terminal of the analog receiver unit. The laser transmission circuit according to claim 20.

23. The comparison circuit includes a third amplification circuit, wherein the third amplification circuit has a non-inverting input terminal which is the first input terminal of the comparison circuit and a second input terminal which is the second input terminal of the comparison circuit, or the third amplification circuit has a second input terminal which is the first input terminal of the comparison circuit and a non-inverting input terminal which is the second input terminal of the third amplification circuit. The signal processing unit further includes a capacitor circuit connected between the first input terminal and the output terminal of the comparison circuit. The laser transmission circuit according to claim 22.

24. The aforementioned signal processing unit is The system includes a third low-pass filter unit, the output terminal of the comparison circuit being connected to the feedback terminal of the analog receiving unit via the third low-pass filter unit. The laser transmission circuit according to claim 22.

25. The second main control unit is, The system includes a second main controller and a first digital-to-analog conversion module, wherein the second main controller has an input terminal which is the input terminal of the second main control unit, an output terminal which is connected to the input terminal of the first digital-to-analog conversion module, and the output terminal of the first digital-to-analog conversion module is connected to the output terminal of the second main control unit. The laser transmission circuit according to claim 22.

26. The signal processing unit includes a fourth low-pass filter unit and a third main control unit. The fourth low-pass filter unit has an input terminal connected to the first input terminal of the signal processing unit and an output terminal connected to the first input terminal of the third main control unit, and the third main control unit has a second input terminal connected to the second input terminal of the signal processing unit and an output terminal connected to the output terminal of the signal processing unit. The laser transmission circuit according to claim 20.

27. The third main control unit is, The system includes a second analog-to-digital conversion module, a third main controller, and a second digital-to-analog conversion module, wherein the third main controller is connected to the output terminal of the digital receiving unit, and further connected to the output terminal of the fourth low-pass filter unit via the second analog-to-digital conversion module, and connected to the feedback terminal of the analog receiving unit via the second digital-to-analog conversion module. The laser transmission circuit according to claim 26.

28. The digital emission module is a laser emitter, and the digital receiving unit is a laser receiver. Alternatively, the digital transmission module is a wireless transmission circuit, and the digital receiving unit is a wireless receiving circuit. Alternatively, the digital transmission module is an optical coupling unit, and the digital reception unit is a main controller. Alternatively, the digital transmission module is the main controller and the digital reception unit is the optical coupling unit. The laser transmission circuit according to claim 20.

29. A laser transmission circuit comprising the laser transmission circuit described in any one of claims 1 to 13, or a laser transmission circuit comprising the laser transmission circuit described in any one of claims 14 to 28. Laser transmission assembly.

30. A laser transmission circuit comprising any one of claims 1 to 13, or a laser transmission circuit comprising any one of claims 14 to 28, or a laser transmission assembly comprising claim 29. Electronic measuring equipment.

31. The aforementioned electronic measuring instrument is an oscilloscope. The electronic measuring instrument according to claim 30.