Signal processing system and terminal device
The signal processing system addresses the overlap issue in LiDAR systems by generating transmission signals with non-overlapping frequency bands for optical carrier and sideband signals, enhancing measurement accuracy in LiDAR systems.
Patent Information
- Application Number
- JP2024527723
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-10
- Publication Date
- 2025-08-21
- Estimated Expiration
- 2041-11-10
AI Technical Summary
The frequency bands of residual optical carrier and phase-encoded optical sideband signals obtained by current modulation methods overlap, leading to insufficient accuracy in Doppler frequency shift and distance/velocity measurements in LiDAR systems.
A signal processing system that performs specific modulation processes on subcarrier signals and signal light to generate transmission signals with non-overlapping frequency bands for optical carrier and sideband signals, using components like frequency mixers and modulators to separate these signals effectively.
Achieves high accuracy in Doppler frequency shift and distance measurements by ensuring non-overlapping frequency bands, improving the separation and measurement precision of relative motion velocity and distance in LiDAR systems.
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Abstract
Description
[Technical Field]
[0001] The present application relates to the field of LiDAR technology, in particular to signal processing systems and terminal devices. [Background technology]
[0002] The phase-encoded signal is a typical pulse compression signal. When the product of time width and bandwidth is small, the peak-to-sidelobe ratio of the phase-encoded signal is large and the compression performance is excellent. Therefore, the phase-encoded signal can effectively resolve the conflict between the operating range and resolution of the radar, and is widely used in modern radars.
[0003] Currently, phase encoding is usually used to perform a modulation process on an optical carrier to obtain a transmission signal formed by a residual optical carrier and a phase-encoded optical sideband signal, and then a Doppler frequency shift signal and a phase-encoded signal are obtained based on the signal reflected by the transmission signal through the target and the local oscillator optical signal, and the relative motion speed and relative distance between the target and the radar system are measured based on the Doppler frequency shift signal and the phase-encoded signal.
[0004] However, the frequency bands of the residual optical carrier and the phase-encoded optical sideband signals obtained by the above modulation processing method overlap, and the residual optical carrier signal and the phase-encoded optical sideband signal cannot be separated, resulting in insufficient accuracy of the Doppler frequency shift signal and the phase-encoded signal, and low accuracy of distance and velocity measurement. Summary of the Invention
[0005] The embodiments of the present application provide a signal processing system and a terminal device to solve the problem of frequency band overlap between the phase-encoded optical sideband signal and the residual optical carrier obtained after modulation processing.
[0006] According to a first aspect, an embodiment of the present application provides a signal processing system, which includes a modulation unit and a transmission unit.
[0007] The modulation unit is configured to perform at least a first modulation process on the first subcarrier signal to obtain a second subcarrier signal.
[0008] The modulation unit is further configured to perform at least a second modulation process on the second subcarrier signal and the first signal light to obtain a transmission signal light, the transmission signal light including a single-frequency optical carrier signal and an optical sideband signal, wherein the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal do not completely overlap.
[0009] The transmitting unit is configured to transmit a transmission signal light.
[0010] In this embodiment of the present application, the modulation unit of the signal processing system is configured to perform at least a first modulation process on a first subcarrier signal to obtain a second subcarrier signal, and to perform at least a second modulation process on the input first signal light and second subcarrier signal to obtain a transmission signal light. The transmission signal light is used to detect at least one target, and the components of the transmission signal light mainly include a single-frequency optical carrier signal and an optical sideband signal. The frequency bands of the single-frequency optical carrier signal and the optical sideband signal obtained by the above modulation process do not completely overlap. Therefore, the single-frequency optical carrier signal and the optical sideband signal can be separated, and the separation effect is good.
[0011] In a possible implementation, the modulation unit is configured to perform a first modulation process, The method includes performing phase modulation on the first subcarrier signal by using the phase encoding signal to obtain a second subcarrier signal.
[0012] In this embodiment of the present application, a possible specific implementation of the first modulation process is provided. Specifically, the modulation unit performs phase modulation on a first subcarrier signal by using a phase-encoding signal to obtain a second subcarrier signal. The phase of the obtained second subcarrier signal is different from that of the first subcarrier signal, and there is a certain phase shift. Therefore, the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal, which are subsequently obtained by performing modulation on the first signal light by using the second subcarrier signal, can be made to not completely overlap. Furthermore, this embodiment of the present application is not limited to performing phase modulation on the first subcarrier signal by using a phase-encoding signal to obtain the second subcarrier signal, and other phase-compression signals, such as linear frequency modulation signals or nonlinear frequency modulation signals, may also be used to perform phase modulation on the first subcarrier signal. Phase modulation can be performed on the first subcarrier signal by using a signal that enables a phase shift of the second subcarrier signal relative to the first subcarrier signal.
[0013] In a possible implementation, the modulation unit is configured to perform a second modulation process, performing modulation on the first signal light by using the second subcarrier signal to obtain a transmitted signal light including a single-frequency optical carrier signal and an optical sideband signal;
[0014] In this embodiment of the present application, a specific implementation of the second modulation process is provided. Specifically, the modulation unit modulates the first signal light by using the second subcarrier signal to obtain a transmission signal light including a single-frequency optical carrier signal and an optical sideband signal. The first signal light is derived from the signal light of a laser, and the modulation of the first signal light can specifically be intensity modulation. The transmission signal light is used to detect at least one target, and the frequency bands of the single-frequency optical carrier signal and the optical sideband signal included in the transmission signal light do not completely overlap, thereby achieving a good separation effect.
[0015] In a possible implementation, performing modulation on the first signal light by using the second carrier signal comprises: It includes performing intensity modulation on the first signal light by using the second subcarrier signal.
[0016] In this embodiment of the present application, a possible specific implementation of the second modulation process is provided. Specifically, performing modulation on the first signal light by using the second subcarrier signal may specifically be performing intensity modulation on the first signal light so that the frequency band of the obtained single-frequency optical carrier signal and the frequency band of the optical sideband signal do not completely overlap.
[0017] In a possible implementation, the frequency bands of the single-frequency optical carrier signal and the optical sideband signals do not overlap.
[0018] In this embodiment of the present application, if the phase shift of the second subcarrier signal obtained by the first modulation process is sufficiently large, the frequency band interval between the single-frequency optical carrier signal and the optical sideband signals included in the transmission signal light obtained by the second modulation process is also sufficiently large, so that the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signals do not overlap, in this case, the separation effect of the single-frequency optical carrier signal and the optical sideband signals is better than when the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signals do not completely overlap.
[0019] In a possible implementation, the frequency band spacing between the single-frequency optical carrier signal and the optical sideband signals is greater than or equal to the bandwidth of the frequency band of the optical sideband signals.
[0020] In this embodiment of the present application, when the frequency band interval between the single-frequency optical carrier signal and the optical sideband signal is greater than or equal to the bandwidth of the frequency band of the optical sideband signal, it can be realized that the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal do not overlap, so the single-frequency optical carrier signal and the optical sideband signal are separated, and the separation effect is good.
[0021] In a possible implementation, the modulation unit includes a frequency mixer and a modulator.
[0022] The frequency mixer is configured to perform at least a first modulation process.
[0023] The modulator is configured to perform at least a second modulation process.
[0024] In this embodiment of the present application, a possible specific implementation of the modulation unit is provided. Specifically, the modulation unit may specifically include a frequency mixer and a modulator. The frequency mixer is configured to perform at least a first modulation process, and the modulator is configured to perform at least a second modulation process. By using the frequency mixer and the modulator, the problem of frequency band overlap between the residual optical carrier signal and the optical sideband signal obtained after the modulation process can be solved, so that the residual optical carrier signal and the optical sideband signal are separated, and the separation effect is good.
[0025] In possible implementations, the frequency mixer includes an active frequency mixer or a passive frequency mixer and is configured to shift a signal from one frequency range to another frequency range to generate a heterodyne signal, and the modulator includes an electro-optical modulator or a thermo-optical modulator and is configured to perform modulation on the amplitude, phase, etc. of the optical signal.
[0026] In a possible implementation, the signal processing system further comprises a beat frequency unit and a processing unit.
[0027] The beat frequency unit is configured to perform at least beat frequency processing on the second signal light and the reflected signal light to output a Doppler frequency shifted signal and a third subcarrier signal, where the second signal light and the first signal light are two channels of signal light obtained after a beam splitting process is performed on one channel of the signal light from the laser, and the reflected signal light is a reflected signal light corresponding to the transmitted signal light, and the frequency band of the Doppler frequency shifted signal does not overlap with the frequency band of the third subcarrier signal.
[0028] The processing unit is configured to process the Doppler frequency shift signal and the third subcarrier signal to output a fourth subcarrier signal or detection information of the at least one target.
[0029] In this embodiment of the present application, the signal processing system further includes a beat frequency unit and a processing unit. Specifically, the beat frequency unit is configured to perform at least beat processing on the second signal light and the reflected signal light, and then output a Doppler frequency shift signal and a third subcarrier signal. The processing unit is configured to process the Doppler frequency shift signal and the third subcarrier signal to output a fourth subcarrier signal or a detection signal of at least one target. The second signal light and the first signal light are two channels of signal light obtained after beat splitting processing is performed on one channel of signal light from the laser, and at least two channels of signal light should be obtained after beam splitting processing is performed on one channel of signal light from the laser. Optionally, more than two channels of signal light may be obtained. The reflected signal light is a reflected signal light corresponding to the transmitted signal light. Therefore, the reflected signal light also includes a single-frequency optical carrier signal and an optical sideband signal. Because the frequency bands of the single-frequency optical carrier signal and the optical sideband signal do not overlap, and the frequency bands of the Doppler frequency-shifted signal obtained by beat frequency processing and the third subcarrier signal do not overlap, the accuracy of the Doppler frequency-shifted signal and the third subcarrier signal obtained by separation is high, and the accuracy of measuring the relative motion velocity and relative distance between the target and the signal processing system based on the Doppler frequency-shifted signal and the third subcarrier signal is also high. The Doppler frequency-shifted signal is used to obtain the relative motion velocity between the target and the signal processing system, and the third subcarrier signal is used to obtain relative distance information between the target and the signal processing system. The target detection information includes, but is not limited to, relative velocity information and relative distance information between the target and the signal processing system. Due to the Doppler effect caused by the relative motion between the target and the signal processing system, the third subcarrier signal also has a certain Doppler frequency shift, and distance measurement using the third subcarrier signal is not sufficiently accurate. Therefore, Doppler compensation is performed on the third subcarrier signal by using the Doppler frequency shift signal to obtain a fourth subcarrier signal.Compared with the third subcarrier signal, the fourth subcarrier signal eliminates the Doppler frequency shift caused by the Doppler effect, and the accuracy of distance measurement by using the fourth subcarrier signal can be greatly improved.
[0030] In a possible implementation, the frequency band spacing between the Doppler frequency shifted signal and the third subcarrier signal is greater than or equal to the bandwidth of the frequency band of the third subcarrier signal.
[0031] In this embodiment of the present application, when the frequency band interval between the Doppler frequency shift signal and the third subcarrier signal is greater than or equal to the bandwidth of the frequency band of the third subcarrier signal, it can be realized that the frequency band of the Doppler frequency shift signal and the frequency band of the third subcarrier signal do not overlap, so the Doppler frequency shift signal and the third subcarrier signal are separated and the separation effect is good.
[0032] In a possible implementation, the beat frequency unit includes a detector and a filter unit.
[0033] The detector is configured to perform beat frequency processing.
[0034] The filter unit is configured to perform a filtering process to output a Doppler frequency shifted signal and a third subcarrier signal.
[0035] In this embodiment of the present application, a possible specific implementation of the beat frequency unit is provided. That is, the beat frequency unit may specifically include a detector and a filter unit. The detector is configured to perform beat processing to obtain a signal including a Doppler frequency shifted signal and a third subcarrier signal. The filter unit performs filtering on the signal to separate and output the Doppler frequency shifted signal and the third subcarrier signal. By using the detector and filter unit, the problem of frequency band overlap between the Doppler frequency shifted signal and the third subcarrier signal obtained after beat frequency processing can be solved, so that the Doppler frequency shifted signal and the third subcarrier signal are separated, and the separation effect is good.
[0036] In a possible implementation, the Doppler frequency shift signal is obtained based on the second signal light and the single-frequency optical carrier signal in the reflected signal light, and the third subcarrier signal is obtained based on the second signal light and the optical sideband signal in the reflected signal light.
[0037] In this embodiment of the present application, after beat frequency processing is performed on at least the second signal light and the reflected signal light, a Doppler frequency shifted signal and a third subcarrier signal are output. Specifically, the Doppler frequency shifted signal is obtained based on the second signal light and the single-frequency optical carrier signal in the reflected signal light, and the third subcarrier signal is obtained based on the second signal light and the optical sideband signal in the reflected signal light.
[0038] In a possible implementation, the filter unit comprises a first filter and a second filter.
[0039] The first filter is configured to perform a filtering process to output a Doppler frequency shifted signal.
[0040] The second filter is configured to perform a filtering process to output a third subcarrier signal.
[0041] In this embodiment of the present application, a possible specific implementation of the filter unit is provided. The filter unit may specifically include a first filter and a second filter. The first filter is configured to perform a filtering process to output a low-frequency Doppler frequency shift signal, and the second filter is configured to perform a filtering process to output a high-frequency third subcarrier signal. By using the first filter and the second filter, the problem of frequency band overlap that may exist between the Doppler frequency shift signal and the third subcarrier signal obtained after beat frequency processing can be avoided. can be solved , so that the Doppler frequency shift signal and the third subcarrier signal are separated, and the separation effect is good.
[0042] In a possible implementation, the first filter is a low-pass or band-pass filter and the second filter is a high-pass or band-pass filter.
[0043] In this embodiment of the present application, the first filter may be a low-pass filter or a band-pass filter and is configured to isolate the low-frequency Doppler frequency shift signal, and the second filter may be a high-pass filter or a band-pass filter and is configured to isolate the high-frequency third subcarrier signal.
[0044] In a possible implementation, the filter unit further comprises a power divider.
[0045] The power divider is configured to provide a signal input to the first filter and the second filter.
[0046] In this embodiment of the present application, the filter unit further includes a power divider configured to divide one signal obtained after the beat frequency processing is performed by the beat frequency unit into two signals based on a ratio, the one signal being a signal including the Doppler frequency shifted signal and the third subcarrier signal, and the two signals are used as signal inputs of a first filter and a second filter, respectively, to subsequently separate the low-frequency Doppler frequency shifted signal and the high-frequency third subcarrier signal, respectively.
[0047] According to a second aspect, an embodiment of the present application provides a LiDAR system. The LiDAR system includes a signal processing system according to the first aspect or any one of the possible implementations of the first aspect. Note that there may be multiple intelligent sensors integrated with the sensor. When the intelligent sensor includes a laser detection function, the intelligent sensor may also be referred to as a LiDAR system.
[0048] According to a third aspect, an embodiment of the present application provides a terminal device, the terminal device including a signal processing system according to the first aspect or any one of the possible implementations of the first aspect, or including a LiDAR system according to the second aspect.
[0049] In this embodiment of the present application, modulation is performed based on the first subcarrier signal to obtain a second subcarrier signal, and modulation is performed on the first signal light by using the second subcarrier signal, so that a transmission signal light including a single-frequency optical carrier signal and an optical sideband signal can be obtained. Since the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal obtained by the above modulation process do not completely overlap, the problem of frequency band overlap between the residual optical carrier signal and the optical sideband signal obtained after the modulation process can be successfully solved, and the residual optical carrier signal and the optical sideband signal can be separated.
[0050] In order to more clearly describe the technical solutions in the embodiments of the present application, the following briefly describes the accompanying drawings for describing the embodiments. The accompanying drawings in the following description only show some embodiments of the present application, and it is obvious that those skilled in the art can come up with other drawings from these accompanying drawings without creative efforts. [Brief explanation of the drawings]
[0051] [Figure 1] 1 is a schematic diagram of the structure of a signal processing system according to an embodiment of the present application; [Figure 2] FIG. 2 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application. [Figure 3] FIG. 2 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application. [Figure 4] FIG. 2 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application. [Figure 5] FIG. 2 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application. [Figure 6A] FIG. 2 is a schematic diagram of angular frequency versus amplitude of a signal according to an embodiment of the present application. [Figure 6B] FIG. 2 is a schematic diagram of angular frequency versus amplitude of a signal according to an embodiment of the present application. [Figure 6C] FIG. 2 is a schematic diagram of angular frequency versus amplitude of a signal according to an embodiment of the present application. [Figure 6D] FIG. 2 is a schematic diagram of angular frequency versus amplitude of a signal according to an embodiment of the present application. [Figure 6E] FIG. 2 is a schematic diagram of angular frequency versus amplitude of a signal according to an embodiment of the present application. DETAILED DESCRIPTION OF THE INVENTION
[0052] To make the objectives, technical solutions and advantages of the present application clearer, the following describes the embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application.
[0053] In the specification, claims, and accompanying drawings of this application, terms such as "first," "second," etc. are intended to distinguish different objects and not to indicate a particular order. Furthermore, the terms "comprise" and "have," or any other variations thereof, are intended to cover non-exhaustive inclusions. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, and may optionally further include unlisted steps or units, or may optionally further include other steps or units inherent to the process, method, product, or device.
[0054] The term "embodiment" as used herein means that a particular feature, structure, or characteristic described with reference to this embodiment may be included in at least one embodiment of the present application. Such phrases appearing in various places throughout the present specification may not necessarily refer to the same embodiment, and are not an independent or optional embodiment exclusive of other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0055] It should be understood that, as used herein, "at least one item" means one or more, "plurality" means two or more, "at least two items" means two, three, or more, and "and / or," when used to describe an association relationship between related objects, indicates that a three-way relationship may exist. For example, "A and / or B" means that only A is present, only B is present, or both A and B are present, where A and B may be singular or plural. The " / " character generally indicates a "disjunction" relationship between related objects. "At least one of the following items" or similar phrases refers to any combination of these items, including a single item or any combination of multiple items. For example, at least one of a, b, or c may refer to a, b, c, a and b, a and c, b and c, or a, b, and c, where a, b, and c may be singular or plural.
[0056] As described in the background, there is currently a need to consider how to solve the problem of frequency band overlap between the residual optical carrier and the optical sideband signal. This application provides a signal processing system and a terminal device to effectively solve the problem of frequency band overlap between the optical carrier signal and the optical sideband signal, and is related to the field of LiDAR technology.
[0057] To more clearly describe the solution of the present application, the following will first explain some knowledge about LiDAR.
[0058] Subcarrier: A subcarrier is a carrier wave for electronic communication signals, carried on top of another carrier wave, allowing two signals to be transmitted simultaneously. In subcarrier fiber optic communication, the signal to be transmitted is first used to modulate a radio frequency (frequency range from very high frequency to microwave) wave, which is then used to modulate the transmitting light source. At the receiving point, a photodetector converts the radio frequency wave back into a signal, and then a radio frequency detector converts the transmitted signal back into the original signal.
[0059] Single-frequency optical carrier: An optical carrier (OC) is an optical signal that is modulated to carry a signal. Generally, the frequency of the optical carrier is much higher than that of the modulating signal. During transmission by using an optical carrier, to implement information transmission, a data signal can be placed on the carrier signal, and a receiver receives the data signal based on the carrier frequency. A single-frequency optical carrier generally refers to an optical carrier with a single frequency or a single frequency range.
[0060] Optical Sideband: Optical sidebands can be understood as sidebands of an optical signal. Generally, the optical signal is modulated. Optical sidebands are classified as single sidebands and double sidebands. Double sidebands are sidebands on either side of the center frequency of the optical signal. A sideband greater than the center carrier frequency is an upper sideband, and a sideband less than the center carrier frequency is a lower sideband. Single sideband generally refers to the upper or lower sideband of an optical signal.
[0061] With the rapid development of detection technology, radar is required to have higher performance, such as operating distance, resolution, and measurement accuracy. To improve the detection ability of radar, radar is required to have a large time width, bandwidth, and energy product. However, when the peak power of the radar transmission device is limited, large signal energy can only be obtained by increasing the time width of the signal. Although the operating distance of the radar can be extended, the resolution will deteriorate, that is, there is a conflict between the resolution and the operating distance.
[0062] Pulse compression is an important system for modern radars, and can effectively resolve the conflict between radar operating range and resolution. It is widely used in modern radars. There are three typical types of pulse compression signals: linear frequency modulation signals, nonlinear frequency modulation signals, and phase-encoded signals. When the product of time duration and bandwidth is small, the peak-to-sidelobe ratio of phase-encoded signals is large, resulting in good compression performance. Therefore, phase-encoded signals are widely used.
[0063] Currently, phase encoding is usually used to perform a modulation process on an optical carrier to obtain a transmission signal formed by a residual optical carrier and a phase-encoded optical sideband signal, and then a Doppler frequency shift signal and a phase-encoded signal are obtained based on the signal reflected by the transmission signal through the target and the local oscillator optical signal, and the relative motion speed and relative distance between the target and the radar system are measured based on the Doppler frequency shift signal and the phase-encoded signal.
[0064] However, the frequency bands of the residual optical carrier and the phase-encoded optical sideband signals obtained by the above modulation processing method overlap, and the residual optical carrier signal and the phase-encoded optical sideband signal cannot be separated, resulting in insufficient accuracy of the Doppler frequency shift signal and the phase-encoded signal, and low accuracy of distance and velocity measurement.
[0065] Furthermore, in the process of performing pulse compression on the target echo signal by using the phase-encoded signal, the echo signal will be modulated by the Doppler effect because the target and the platform on which the radar is mounted have relative motion, and the seed laser carrier frequency changes within the round-trip time of the radar signal. Due to the Doppler effect, the relative distance information between the target and the platform on which the radar is mounted cannot be obtained by the phase-encoded signal through pulse compression, which seriously affects the performance of distance measurement.
[0066] Specifically, the Doppler effect refers to the phenomenon that when a wave source and a target are in relative motion, the frequency at which the target receives the wave is different from the frequency at which the wave source transmits the wave. Specifically, when the wave source moves toward the target, the frequency of the wave received by the target becomes higher, or when the wave source moves away from the target, the frequency of the wave received by the target becomes lower. The same conclusion can be reached when the target is moving. By using the Doppler effect, the relative motion speed and relative distance between the target and the wave source can be measured based on the Doppler frequency shift signal and the phase-encoded signal.
[0067] Based on the technical problem of frequency band overlap between the residual optical carrier and phase-encoded optical sideband signals obtained by current modulation methods, this application proposes a new signal processing system. The signal processing system performs modulation on a first subcarrier signal to obtain a second subcarrier signal, and performs modulation on the first signal light using the second subcarrier signal, thereby obtaining a transmission signal light including a single-frequency optical carrier signal and an optical sideband signal. Because the frequency bands of the single-frequency optical carrier signal and the optical sideband signals obtained by the above modulation process do not completely overlap, the frequency band overlap problem between the residual optical carrier and optical sideband signals obtained after the modulation process can be solved, and the residual optical carrier signal and the optical sideband signals can be separated.
[0068] The following describes the signal processing system provided in the embodiment of the present application with reference to the accompanying drawings in the embodiment of the present application.
[0069] Please refer to Figure 1. Figure 1 is a schematic diagram of the structure of a signal processing system according to an embodiment of the present application.
[0070] As shown in FIG. 1, the signal processing system includes a modulation unit 10 and a transmission unit 20 .
[0071] In some possible embodiments, the functions of the modulation unit 10 and the transmission unit 20 are as follows.
[0072] The modulation unit 10 performs at least a first modulation process on the first subcarrier signal to obtain a second subcarrier signal, and performs at least a second modulation process on the input first signal light and second subcarrier signal to obtain a transmission signal light.
[0073] The transmitting unit 20 is configured to transmit a transmission signal light.
[0074] The transmitted signal light is used to detect at least one target, and the components of the transmitted signal light mainly include a single-frequency optical carrier signal and an optical sideband signal. The frequency bands of the single-frequency optical carrier signal and the optical sideband signal obtained by the modulation process performed by the modulation unit 10 do not completely overlap. Because the frequency bands of the single-frequency optical carrier signal and the optical sideband signal do not completely overlap, the two signals can be separated. Therefore, the problem of frequency band overlap between the residual optical carrier signal and the optical sideband signal obtained after modulation in the current modulation process can be solved, and the residual optical carrier signal and the optical sideband signal are separated with good separation effect.
[0075] In some possible embodiments, the modulation unit 10 performs at least a first modulation process on the first subcarrier signal, specifically, by using a phase-encoded signal to perform phase modulation on the first subcarrier signal to obtain a second subcarrier signal. The phase of the obtained second subcarrier signal is different from that of the first subcarrier signal, and there is a certain phase shift. Therefore, the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal obtained by subsequently performing modulation on the first signal light using the second subcarrier signal do not completely overlap.
[0076] Furthermore, this embodiment of the present application is not limited to performing phase modulation on the first subcarrier signal by using a phase encoding signal to obtain the second subcarrier signal, but may also perform phase modulation on the first subcarrier signal by using other phase compression signals, such as linear frequency modulation signals or nonlinear frequency modulation signals. Phase modulation can be performed on the first subcarrier signal by using a signal that allows a phase shift of the second subcarrier signal relative to the first subcarrier signal.
[0077] In some possible embodiments, the modulation unit 10 performs at least a second modulation process on the input first signal light and second subcarrier signal, which may specifically be: performing modulation on the first signal light by using the second subcarrier signal to obtain a transmission signal light including a single-frequency optical carrier signal and an optical sideband signal.
[0078] The first signal light may be signal light from a laser, and the modulation of the first signal light may specifically be intensity modulation. Intensity modulation here refers to laser oscillation in which the intensity (light intensity) of the first signal light is regularly changed by a modulation signal (second subcarrier signal). Laser modulation generally adopts the intensity modulation format because the receiver generally responds directly to changes in the intensity of the light received by the receiver. The transmission signal light is used to detect at least one target, and the frequency bands of the single-frequency optical carrier signal and the optical sideband signals contained in the transmission signal light do not completely overlap, thereby achieving a good separation effect.
[0079] In some possible embodiments, the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signals obtained after the modulation process performed by the modulation unit 10 do not overlap, which can be specifically classified into the following possible cases:
[0080] Case 1 When the phase of the second subcarrier signal obtained by the first modulation process is shifted, there is also a certain interval between the frequency bands of the single-frequency optical carrier signal and the optical sideband signal included in the transmission signal light obtained by the second modulation process, so that the frequency bands of the single-frequency optical carrier signal and the optical sideband signal do not completely overlap. However, because the phase shift of the second subcarrier signal obtained by the first modulation process is limited, the frequency band interval between the single-frequency optical carrier signal and the optical sideband signal is also limited, so that the frequency bands of the single-frequency optical carrier signal and the optical sideband signal may still partially overlap.
[0081] Case 2 When the phase shift of the second subcarrier signal obtained by the first modulation process is sufficiently large, the frequency band interval between the single-frequency optical carrier signal and the optical sideband signal contained in the transmission signal light obtained by the second modulation process is also sufficiently large, so that the frequency bands of the single-frequency optical carrier signal and the optical sideband signal do not overlap at all, which results in a better separation effect between the single-frequency optical carrier signal and the optical sideband signal than when the frequency bands of the single-frequency optical carrier signal and the optical sideband signal do not overlap at all as in Case 1 above.
[0082] Case 3 When the frequency band interval between the single-frequency optical carrier signal and the optical sideband signal is greater than or equal to the bandwidth of the frequency band of the optical sideband signal, the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal can be realized to be non-overlapping, so that the single-frequency optical carrier signal and the optical sideband signal are separated and the separation effect is good. In this case, the resource waste problem caused by the excessively large frequency band interval between the single-frequency optical carrier signal and the optical sideband signal caused by the excessively large phase shift in the above case 2 can be avoided. That is, the frequency bands of the single-frequency optical carrier signal and the optical sideband signal do not overlap at all as long as the frequency band interval between the single-frequency optical carrier signal and the optical sideband signal is greater than or equal to the bandwidth of the frequency band of the optical sideband signal, and the single-frequency optical carrier signal and the optical sideband signal can be achieved to have a good separation effect.
[0083] In this embodiment of the present application, modulation is performed based on the first subcarrier signal to obtain a second subcarrier signal, and modulation is performed on the first signal light by using the second subcarrier signal, so that a transmission signal light including a single-frequency optical carrier signal and an optical sideband signal can be obtained. Since the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal obtained by the above modulation process do not completely overlap, the problem of frequency band overlap between the residual optical carrier signal and the optical sideband signal obtained after the modulation process can be successfully solved, and the residual optical carrier signal and the optical sideband signal can be separated.
[0084] Possible structures of the modulation unit 10 will now be described with reference to the accompanying drawings.
[0085] Please refer to Figure 2. Figure 2 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application.
[0086] As shown in FIG. 2, the modulation unit 10 includes a frequency mixer 101 and a modulator 102 .
[0087] In some possible embodiments, the functions of the frequency mixer 101 and the modulator 102 are as follows.
[0088] The frequency mixer 101 is configured to perform at least a first modulation process, i.e., perform at least a first modulation process on a first subcarrier signal to obtain a second subcarrier signal. Specifically, phase modulation is performed on the first subcarrier signal by using a phase-encoded signal to obtain the second subcarrier signal. The phase of the obtained second subcarrier signal is different from that of the first subcarrier signal, and there is a certain phase shift. Therefore, the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal obtained by subsequently performing modulation on the first signal light by using the second subcarrier signal do not completely overlap.
[0089] Here, it is not limited to performing phase modulation on the first subcarrier signal by using a phase encoding signal to obtain the second subcarrier signal, and the phase modulation can also be performed on the first subcarrier signal by using other pulse compression signals, such as a linear frequency modulation signal or a nonlinear frequency modulation signal. The phase modulation can be performed on the first subcarrier signal by using a signal that enables a phase shift of the second subcarrier signal relative to the first subcarrier signal.
[0090] The modulator 102 is configured to perform at least a second modulation process, i.e., perform at least a second modulation process on the input first signal light and second subcarrier signal to obtain a transmission signal light. Specifically, modulation is performed on the first signal light by using the second subcarrier signal to obtain a transmission signal light including a single-frequency optical carrier signal and an optical sideband signal.
[0091] Here, the modulation of the first signal light may specifically be intensity modulation. Intensity modulation refers to laser oscillation in which the intensity (light intensity) of the first signal light is regularly changed by a modulation signal (second subcarrier signal). Laser modulation generally adopts the intensity modulation format because a receiver generally responds directly to changes in the intensity of the light received by the receiver.
[0092] In some possible embodiments, the frequency mixer 101 may be an active frequency mixer or a passive frequency mixer, etc., and is configured to shift a signal from one frequency range to another frequency range to generate a heterodyne signal, and the modulator 102 may be an electro-optical modulator or a thermo-optical modulator, and is configured to perform modulation on the amplitude, phase, etc. of the optical signal.
[0093] After the frequency mixer 101 and the modulator 102 perform the modulation process, the frequency band of the obtained single-frequency optical carrier signal and the frequency band of the optical sideband signal do not overlap. The specific case corresponds to the above case obtained after the modulation process performed by the modulation unit 10, and the details will not be described again here.
[0094] Other possible configurations of the signal processing system will now be described with reference to the accompanying drawings.
[0095] Please refer to Figure 3. Figure 3 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application.
[0096] As shown in FIG. 3, the signal processing system further includes a beat frequency unit 30 and a processing unit 40 .
[0097] In some possible embodiments, the functions of the beat frequency unit 30 and the processing unit 40 are as follows.
[0098] The beat frequency unit 30 is configured to perform at least beat processing on the second signal light and the reflected signal light, and then obtain a Doppler frequency shift signal and a third subcarrier signal.
[0099] The processing unit 40 is configured to process the Doppler frequency shift signal and the third subcarrier signal to output a fourth subcarrier signal or a detection signal of at least one target.
[0100] The second signal light and the first signal light are two channels of signal light obtained after a beat splitting process is performed on one channel of signal light from the laser, and at least two channels of signal light should be obtained after a beam splitting process is performed on one channel of signal light from the laser. The beam splitting process may specifically be implemented by using a fiber beam splitter. Optionally, after the beam splitting process, more than two channels of signal light may be obtained and separately provided as signal inputs to the beat frequency unit 30 and the modulation unit 10 (modulator 102). The reflected signal light is a reflected signal light corresponding to the transmitted signal light, specifically, the signal light reflected by the transmitted signal light through at least one target, and the receiving unit may receive the reflected signal light. Therefore, the components of the reflected signal light are similar to those of the transmitted signal light and also include a single-frequency optical carrier signal and an optical sideband signal.
[0101] In some possible embodiments, the frequency band of the obtained Doppler frequency shift signal and the frequency band of the third subcarrier signal do not overlap after the beat frequency processing performed by the beat frequency unit 30. This can be specifically classified into the following several possible cases:
[0102] Case 1 When the frequency band interval between the single-frequency optical carrier signal and the optical sideband signal contained in the reflected signal light is sufficiently large so that the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal do not overlap at all, the Doppler frequency shifted signal is obtained based on the second signal light and the single-frequency optical carrier signal in the reflected signal light, and the third subcarrier signal is obtained based on the second signal light and the optical sideband signal in the reflected signal light. In this case, the frequency band of the obtained Doppler frequency shifted signal does not overlap at all with the frequency band of the third subcarrier signal. Compared to when the frequency bands of the Doppler frequency shifted signal and the third subcarrier signal do not completely overlap, the separation effect between the Doppler frequency shifted signal and the third subcarrier signal is better.
[0103] Case 2 When the frequency band interval between the single-frequency optical carrier signal and the optical sideband signal contained in the reflected signal light is greater than or equal to the bandwidth of the frequency band of the optical sideband signal, the Doppler frequency shifted signal is obtained based on the second signal light and the single-frequency optical carrier signal in the reflected signal light, and the third subcarrier signal is obtained based on the second signal light and the optical sideband signal in the reflected signal light. In this case, the frequency band interval between the obtained Doppler frequency shifted signal and the third subcarrier signal is greater than or equal to the bandwidth of the frequency band of the third subcarrier signal, and the frequency band of the Doppler frequency shifted signal and the frequency band of the third subcarrier signal do not overlap, so the Doppler frequency shifted signal and the third subcarrier signal are separated, and the separation effect is good. In this case, the resource waste problem caused by the excessively large frequency band interval between the Doppler frequency shifted signal and the third subcarrier signal, which is caused by the excessively large frequency band interval between the single-frequency optical carrier signal and the optical sideband signal in the above case 1, can be avoided; that is, the frequency bands of the Doppler frequency shifted signal and the third subcarrier signal do not overlap at all as long as the frequency band interval between the Doppler frequency shifted signal and the third subcarrier signal is greater than or equal to the bandwidth of the frequency band of the third subcarrier signal, and a good separation effect between the Doppler frequency shifted signal and the third subcarrier signal is achieved.
[0104] Because the frequency bands of the Doppler frequency-shifted signal and the third subcarrier signal acquired by the beat frequency unit 30 through beat frequency processing do not overlap, the accuracy of the Doppler frequency-shifted signal and the third subcarrier signal acquired by separation is high, and the accuracy of measuring the relative motion velocity and relative distance between the target and the signal processing system based on the Doppler frequency-shifted signal and the third subcarrier signal is also high. The Doppler frequency-shifted signal is used to acquire the relative motion velocity between the target and the signal processing system, and the third subcarrier signal is used to acquire relative distance information between the target and the signal processing system. The target detection information includes, but is not limited to, relative velocity information and relative distance information between the target and the signal processing system. Furthermore, due to the Doppler effect caused by the relative motion between the target and the signal processing system, the third subcarrier signal also has a certain Doppler frequency shift, and distance measurement using the third subcarrier signal is not sufficiently accurate. Therefore, Doppler compensation is performed on the third subcarrier signal using the Doppler frequency-shifted signal to acquire the fourth subcarrier signal. Compared with the third subcarrier signal, the fourth subcarrier signal eliminates the Doppler frequency shift caused by the Doppler effect, and the accuracy of distance measurement by using the fourth subcarrier signal can be greatly improved.
[0105] In some possible embodiments, the processing unit 40 processes the Doppler frequency shift signal and the third subcarrier signal may specifically be: performing Doppler compensation on the third subcarrier signal by using the Doppler frequency shift signal to obtain a fourth subcarrier signal; Alternatively, after the fourth subcarrier signal is obtained, relative distance information between the target and the signal processing system is obtained by using the fourth subcarrier signal, and the relative motion velocity between the target and the signal processing system is obtained by using the Doppler frequency shift signal, and target distance information, including but not limited to relative velocity information and relative distance information between the target and the signal processing system, is output.
[0106] In this embodiment of the present application, based on the fact that the frequency bands of the single-frequency optical carrier signal and the optical sideband signal obtained by the above modulation process do not completely overlap, the frequency bands of the obtained Doppler frequency shifted signal and the third subcarrier signal are made non-overlapping by performing beat processing on the second signal light and the reflected signal light including the single-frequency optical carrier signal and the optical sideband signal, thereby solving the problem that the frequency bands of the signals obtained after beat processing may overlap. Furthermore, the Doppler frequency shifted signal is used to perform Doppler compensation on the third subcarrier signal to obtain a fourth subcarrier signal, and the fourth subcarrier signal is used to obtain relative distance information between the target and the signal processing system, and the Doppler frequency shifted signal is used to obtain the relative motion velocity between the target and the signal processing system, thereby greatly improving the accuracy of target distance and velocity measurement.
[0107] Possible structures of the beat frequency unit 30 will now be described with reference to the accompanying drawings.
[0108] Please refer to Figure 4. Figure 4 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application.
[0109] As shown in FIG. 4, the beat frequency unit 30 includes a detector 301 and a filter unit 302 .
[0110] In some possible embodiments, the functions of the detector 301 and the filter unit 302 are as follows.
[0111] The detector 301 is configured to perform at least beat processing, i.e., perform at least beat processing on the second signal light and the reflected signal light to obtain a signal including a Doppler frequency shift signal and a third subcarrier signal. Specifically, the Doppler frequency shift signal is obtained based on the second signal light and the single-frequency optical carrier signal in the reflected signal light, and the third subcarrier signal is obtained based on the second signal light and the optical sideband signal in the reflected signal light.
[0112] The filter unit 302 is configured to perform a filtering process on the signal acquired by the detector 301 to implement separation between the Doppler frequency shift signal and the third subcarrier signal, and to separate and output the Doppler frequency shift signal and the third subcarrier signal.
[0113] It can be understood that after the beat frequency processing of the detector 301, the frequency band of the obtained Doppler frequency shift signal and the frequency band of the third subcarrier signal do not overlap, the specific situation of which is consistent with the situation obtained after the beat frequency processing of the beat frequency unit 30, and the details will not be described again here.
[0114] Possible structures of the filter unit 302 will now be described with reference to the accompanying drawings.
[0115] Please refer to Figure 5. Figure 5 is a schematic diagram of the structure of another signal processing system according to an embodiment of the present application.
[0116] As shown in FIG. 5, the filter unit 302 includes a first filter 3021 and a second filter 3022 .
[0117] In some possible embodiments, the functions of the first filter 3021 and the second filter 3022 are as follows.
[0118] The first filter 3021 is configured to perform a filtering process to output a low frequency Doppler frequency shifted signal.
[0119] The second filter 3022 is configured to perform a filtering process to output a high-frequency third subcarrier signal.
[0120] In this embodiment of the present application, by using the first filter 3021 and the second filter 3022, the Doppler frequency shift signal and the third subcarrier signal obtained after beat frequency processing can be separated, and the separation effect is good.
[0121] In some possible embodiments, the first filter 3021 may be a low-pass filter or a band-pass filter and is configured to isolate the low-frequency Doppler frequency shift signal, and the second filter 3022 may be a high-pass filter or a band-pass filter and is configured to isolate the high-frequency third subcarrier signal.
[0122] In some possible embodiments, the filter unit 302 further includes a power divider 3023, the function of which is as follows.
[0123] The power divider 3023 is configured to divide one signal obtained after the beat frequency processing is performed into two signals based on a ratio, where the one signal is a signal including the Doppler frequency shifted signal and the third subcarrier signal, and the two signals are used as signal inputs of the first filter 3021 and the second filter 3022, respectively, to subsequently separate the low-frequency Doppler frequency shifted signal and the high-frequency third subcarrier signal, respectively.
[0124] In some possible embodiments, the signal processing system further comprises an optical fiber coupler, the function of which is as follows.
[0125] The optical fiber coupler is configured to combine the input second signal light and the reflected signal light, and then transmit the second signal light and the reflected signal light to the detector 301 for subsequent beat processing.
[0126] The above has described in detail possible structures of the signal processing system in the embodiments of the present application. The signal processing process performed by the signal processing system will now be described with reference to Figures 6A to 6E.
[0127] For ease of understanding, the above signal processing system shown in FIG. 5 is used as an example for explanation.
[0128] Please refer to Figure 6A, which is a schematic diagram of the angular frequency-amplitude of a signal according to an embodiment of the present application. The angular frequency-amplitude of the signal shown in Figure 6A is the angular frequency-amplitude of the first signal light obtained by the laser corresponding to point A in Figure 5, and can be expressed as follows: E in (t)=E0exp(iω C t)
[0129] where E in (t) represents the first signal light, and ω C represents the angular frequency of the first signal light.
[0130] After the first signal light is modulated by the modulator 102, the schematic diagram of the angular frequency-amplitude of the signal shown in Figure 6B is obtained. Please refer to Figure 6B. The angular frequency-amplitude of the signal shown in Figure 6B is the angular frequency-amplitude of the transmitted signal light obtained by the modulator 102 corresponding to point B in Figure 5, and can be expressed as follows:
number
[0131] where E MZM (t) represents the transmitted signal light, and ω RF represents the angular frequency of the second subcarrier signal, and θ n (t) represents the phase-encoded signal, and θ n The value of (t) is 0 or π, and V π represents the half-wave voltage of the modulator 102, and V RF represents the AC driving voltage amplitude, and V b represents the DC bias voltage, and β=(π / 2)·(V RF / V π ) represents the modulation coefficient, and φ=(π / 2)·(V b / V π ) represents the phase of the modulator 102.
[0132] The transmission signal light is transmitted by using a transmitting unit and reflected by at least one target. A reflected signal corresponding to the transmission signal light, i.e., a schematic diagram of the angular frequency-amplitude of the signal shown in FIG. 6C, can be obtained by using a receiving unit. See FIG. 6C. The angular frequency-amplitude of the signal shown in FIG. 6C is the angular frequency-amplitude of the reflected signal light received by the receiving unit corresponding to point C in FIG. 5, and can be expressed as follows:
number
[0133] where E τ (t-τ) represents the reflected signal light, τ represents the delay time of the reflected signal light, k represents the power attenuation coefficient in the transmission process of the reflected signal light, and ω d represents the Doppler frequency shift.
[0134] The reflected signal light and the second signal light transmitted by the laser are combined by an optical fiber coupler and then enter the detector 301 to perform beat frequency processing. The second signal light here is also called a local oscillator optical signal, which can be expressed as: E L0 (t)EL0 exp(iω C t)
[0135] After performing beat frequency processing on the second signal light and the reflected signal light, the detector 301 can obtain an electrical signal, that is, the schematic diagram of the angular frequency-amplitude of the signal shown in FIG. 6D. Please refer to FIG. 6D. The angular frequency-amplitude of the signal shown in FIG. 6D is the angular frequency-amplitude of the electrical signal output by the detector 301 corresponding to point D in FIG. 6, and can be expressed as follows:
number
[0136] where i BPD (t) represents the electrical signal obtained after beat frequency processing is performed on the second signal light and the reflected signal light, which includes the Doppler frequency shift signal and the third subcarrier signal.
[0137] A biphase code is used as an illustrative example. For small signal modulation, the above signal i BPD After (t) is filtered by the first filter 3021 and the second filter 3022, the Doppler frequency shift signal and the third subcarrier signal are obtained, respectively, and can be expressed as:
number
[0138] where the low frequency signal i low (t) represents the Doppler frequency shift signal, and the high frequency signal i high (t) represents the third subcarrier signal.
[0139] By adjusting the bias voltage of the modulator 102, the strength of the low-frequency current signal and the strength of the high-frequency current signal can be adjusted. Because the third subcarrier signal is a wideband signal, a high signal-to-noise ratio can generally be obtained only when high signal power is required. Therefore, in practical signal processing systems, φ usually uses a value close to π / 2. Because the Doppler frequency shift signal and the third subcarrier signal can be well separated in the frequency domain, the Doppler frequency shift signal with low strength can still be measured. Furthermore, the influence of the Doppler frequency shift signal is removed from the high-frequency signal, which helps to obtain better accuracy in distance measurement.
[0140] During distance measurement, the Doppler frequency shift signal and the third subcarrier signal are input to the processing unit 40, and the processing unit 40 performs Doppler compensation on the third subcarrier signal by using the Doppler frequency shift signal to obtain the fourth subcarrier signal, i.e., the schematic diagram of the angular frequency-amplitude of the signal shown in FIG. 6E. See FIG. 6E. The angular frequency-amplitude of the signal shown in FIG. 6E is the angular frequency-amplitude of the fourth subcarrier signal output by the processing unit 40 corresponding to point E in FIG. 5, and can be expressed as follows:
number
[0141] Pulse compression is performed by combining the fourth subcarrier signal and the original current signal v(t) = V to obtain the relative distance information and corresponding delay information between the target and the signal processing system. RF cos[ω RF t+θ n t].
[0142] In summary, according to the signal processing system provided in the present application, modulation is performed on the first subcarrier signal to obtain a second subcarrier signal, and modulation is performed on the first signal light by using the second subcarrier signal, thereby obtaining a transmission signal light including a single-frequency optical carrier signal and an optical sideband signal. Since the frequency bands of the single-frequency optical carrier signal and the optical sideband signal obtained by the above modulation process do not completely overlap, the problem of frequency band overlap between the residual optical carrier signal and the optical sideband signal obtained after the modulation process can be solved, and the residual optical carrier signal and the optical sideband signal can be separated.
[0143] The present application provides a terminal device. The terminal device includes a signal processing system provided herein. For example, the terminal device may be a vehicle, such as an automobile, truck, aircraft, unmanned aerial vehicle, low-speed transport vehicle, spacecraft, ship, or other vehicle used in any application, or any device equipped with a laser detection device, such as a surveying and mapping device. One or more signal processing systems provided herein are deployed on the terminal device.
[0144] The above description is merely a specific implementation of the present application, and the scope of protection of the present application is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present application should fall within the scope of protection of the present application. Therefore, the scope of protection of the present application should be governed by the scope of protection of the claims.
Claims
1. a modulation unit and a transmission unit, the modulation unit is configured to perform at least a first modulation operation on a first subcarrier signal to obtain a second subcarrier signal; the modulation unit is further configured to perform at least a second modulation process on the second subcarrier signal and the first signal light to obtain a transmission signal light, wherein the transmission signal light includes a single-frequency optical carrier signal and an optical sideband signal, and a frequency band of the single-frequency optical carrier signal and a frequency band of the optical sideband signal do not completely overlap; the transmitting unit is configured to transmit the transmission signal light; Signal processing system.
2. the modulation unit is configured to perform phase modulation on the first subcarrier signal by using a phase encoding signal to obtain the second subcarrier signal; 2. The signal processing system of claim 1.
3. the modulation unit is configured to perform modulation on the first signal light by using the second subcarrier signal to obtain the transmission signal light including the single-frequency optical carrier signal and the optical sideband signal.
3. A signal processing system according to claim 1 or 2.
4. the frequency band of the single-frequency optical carrier signal and the frequency band of the optical sideband signal do not overlap; A signal processing system according to any one of claims 1 to 3.
5. the modulation unit includes a frequency mixer and a modulator; the frequency mixer is configured to perform at least the first modulation process; the modulator is configured to perform at least the second modulation process; A signal processing system according to any one of claims 1 to 4.
6. the signal processing system further comprises a beat frequency unit and a processing unit; the beat frequency unit is configured to perform at least beat frequency processing on a second signal light and a reflected signal light to output a Doppler frequency shifted signal and a third subcarrier signal, the second signal light and the first signal light being two channels of signal light obtained after a beam splitting process is performed on one channel of signal light from a laser, the reflected signal light being a reflected signal light corresponding to the transmitted signal light, and frequency bands of the Doppler frequency shifted signal and the third subcarrier signal do not overlap; the processing unit is configured to process the Doppler frequency shift signal and the third subcarrier signal to output a fourth subcarrier signal or detection information of at least one target. A signal processing system according to any one of claims 1 to 5.
7. the beat frequency unit comprises a detector and a filter unit; the detector is configured to perform the beat frequency processing; the filter unit is configured to perform a filtering process to output the Doppler frequency shifted signal and the third subcarrier signal.
7. The signal processing system of claim 6.
8. the Doppler frequency shift signal is obtained based on the second signal light and the single-frequency optical carrier signal in the reflected signal light, and the third subcarrier signal is obtained based on the second signal light and the optical sideband signal in the reflected signal light.
8. A signal processing system according to claim 6 or 7.
9. the filter unit includes a first filter and a second filter; the first filter is configured to perform a filtering process to output the Doppler frequency shifted signal; the second filter is configured to perform a filtering process to output the third subcarrier signal.
8. The signal processing system of claim 7.
10. the filter unit further comprises a power divider; the power divider is configured to provide signal inputs to the first filter and the second filter.
10. The signal processing system of claim 9.
11. A terminal device comprising a signal processing system according to any one of claims 1 to 10.
Citation Information
Patent Citations
Generation method and device of microwave signal with differential phase code
CN104639253A
Dual-modulation common-optical-path linear frequency modulation continuous wave distance measurement and speed measurement method and device
CN112363146A
Light transmitter / Receiver
JP1999103288A
Optical communication using duobinary modulation
US20050286908A1
Optical measurement device and measurement method
WO2021131315A1