LIDAR DEVICE USING TIME-DELAYED LOCAL OSCILLATOR LIGHT AND ITS OPERATION METHOD

The LIDAR device uses time-delayed local oscillator light to overcome noise suppression and accuracy issues in existing methods, enabling precise range and velocity detection through time domain analysis.

JP7820113B2Active Publication Date: 2026-02-25SAMSUNG ELECTRONICS CO LTD
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Patent Information

Application Number
JP2021133859
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-08-27
Filing Date
2021-08-19
Publication Date
2026-02-25
Estimated Expiration
2041-08-19

AI Technical Summary

Technical Problem

Existing LIDAR technologies face challenges in noise suppression and accuracy due to the wide frequency band of pulses in ToF methods and the linearity requirements of frequency chirp in FMCW methods, especially with high-frequency light, making it difficult to implement accurate range detection.

Method used

A LIDAR device using time-delayed local oscillator light, which includes a transmitter, delay circuit, and detection circuit to determine distance and velocity based on time-delayed local oscillator light and received light, eliminating the need for frequency domain analysis.

Benefits of technology

Enables accurate range detection and velocity measurement without requiring complex frequency domain components, improving noise suppression and reducing implementation complexity.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide a LiDAR device that uses time delayed local oscillator light, and an operating method thereof.SOLUTION: A LiDAR device provided herein comprises a transmitter configured to transmit a continuous wave light and provide a local oscillator light corresponding to the transmitted continuous wave light; a delay circuit configured to time delay the local oscillator light; a receiver configured to receive the continuous wave light reflected from an object; and a detection circuit configured to determine a distance to the object on the basis of the time delayed local oscillator light and the received continuous wave light.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to a LIDAR device using time-delayed local oscillator light and a method of operating the same. [Background technology]

[0002] Typical range detection methods include ToF (Time of Flight) and FMCW (Frequency Modulated Continuous Wave). The ToF method detects range by analyzing transmitted and received pulses in the time domain. The FMCW method detects range by analyzing transmitted and received continuous waves in the frequency domain.

[0003] The ToF method requires a wideband receiver because it includes a wide frequency band of pulses, which makes noise suppression difficult.The accuracy of the FMCW method depends on the linearity of the frequency chirp of the continuous wave, so it is difficult to implement the FMCW method with light having a very high frequency of several hundred THz. Summary of the Invention [Problem to be solved by the invention]

[0004] The present invention provides a lidar device and an operating method thereof using a time-delayed local oscillator light. The technical problem to be solved by the present invention is not limited to the above-mentioned technical problem, and other technical problems may be inferred from the following examples. [Means for solving the problem]

[0005] According to one aspect, a lidar device includes a transmitter configured to transmit continuous wave light and provide local oscillator light corresponding to the transmitted light; a delay circuit configured to time-delay the local oscillator light; a receiver configured to receive light reflected from an object; and a detection circuit configured to determine a distance to the object based on the time-delayed local oscillator light and the received light.

[0006] According to another aspect, a method of operating a LIDAR device includes transmitting continuous wave light and providing local oscillator light corresponding to the transmitted light; time-delaying the local oscillator light; receiving light reflected from the object; and determining a distance to the object based on the time-delayed local oscillator light and the received light.

[0007] According to yet another aspect, a lidar device includes a transmitter configured to transmit continuous wave light and provide local oscillator light corresponding to the transmitted light; a delay circuit configured to time delay the local oscillator light; a receiver configured to receive light reflected from an object; and a detection circuit configured to determine a distance to the object and a velocity of the object based on the time-delayed local oscillator light and the received light. [Brief explanation of the drawings]

[0008] [Figure 1] FIG. 1 is a block diagram illustrating a lidar device according to one embodiment. [Figure 2] FIG. 1 is a block diagram illustrating a lidar device according to one embodiment. [Figure 3] 1 is a diagram illustrating an arbitrary frequency chirp according to an embodiment; [Figure 4] 1 is a diagram illustrating a local oscillator light and a time-delayed local oscillator light according to an embodiment; [Figure 5] 1 is a diagram illustrating a principle of distance detection by a LIDAR device according to an embodiment; [Figure 6]1 is a diagram illustrating an operation principle of a LIDAR device according to an embodiment. [Figure 7] 1 is a diagram illustrating a distance measurement method of a LIDAR device according to an embodiment; [Figure 8] 1 is a diagram illustrating a distance measurement method and a time delay value of a LIDAR device according to an embodiment; [Figure 9] 1 is a diagram illustrating a distance measurement method of a LIDAR device according to an embodiment; [Figure 10] 1 is a diagram illustrating a distance measurement method of a LIDAR device according to an embodiment; [Figure 11] 1 is a flowchart illustrating a method of operating a lidar device according to one embodiment. [Figure 12] 1 is a flowchart illustrating a method of operating a lidar device according to one embodiment. [Figure 13] FIG. 1 is a block diagram illustrating a lidar device according to one embodiment. [Figure 14] 1 is a diagram illustrating a method for detecting speed and distance of a LIDAR device according to an embodiment. [Figure 15] 1 is a flowchart illustrating a method for detecting velocity and distance using a LIDAR device according to an embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] The terms used in the examples are generally used and widely used to the extent possible, but these may vary depending on the intentions of those skilled in the art, legal precedents, the emergence of new technologies, etc. In addition, in certain cases, the applicant may arbitrarily select terms, and in such cases, their meanings will be described in detail in the relevant description. Therefore, the terms used in the specification must be defined based on the meanings of the terms and the overall content of the specification, rather than simply by the names of the terms.

[0010] The terms "comprise" or "include" used in this example should not be interpreted as including all of the components or steps described in the specification, but should be interpreted as including some of the components or steps, or as including additional components or steps.

[0011] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS The present invention will now be described in detail with reference to the accompanying drawings, in which: FIG.

[0012] FIG. 1 is a block diagram illustrating a lidar device according to one embodiment.

[0013] Referring to FIG. 1, in one embodiment, a LIDAR device 100 includes a transmitter 110, a receiver 120, a delay circuit 130, and a detection circuit 140.

[0014] The LIDAR device 100 can be used in a variety of fields where range detection is required. For example, the LIDAR device 100 can be used in aerospace, geology, 3D maps, automobiles, robots, drones, etc. For example, the LIDAR device 100 can be mounted on automobiles, airplanes, portable devices, observation equipment, etc.

[0015] In one embodiment, the transmitter 110 is configured to transmit continuous wave light and provide local oscillator light (LO light) 12 corresponding to the transmitted light 11. The receiver 120 is configured to receive light 14 that is the transmitted light 11 reflected by the object 1. The delay circuit 130 is configured to time-delay the LO light 12. The detection circuit 140 is configured to determine the distance to the object 1 based on the time-delayed LO light 13 and the received light 15.

[0016] FIG. 2 is a block diagram illustrating a lidar device according to one embodiment.

[0017] In one embodiment, the LIDAR device 200 includes a frequency modulator 211, a light source 212, a splitter 213, a transmitting antenna 214, a receiving antenna 220, a delay circuit 230, a mixer 241, a signal converter 242, and a processor 243.

[0018] The frequency modulator 211, the light source 212, the splitter 213, and the transmitting antenna 214 may be included in the transmitter 110 of FIG. 1. The receiving antenna 220 may be included in the receiver 120 of FIG. 1. The delay circuit 230 may correspond to the delay circuit 130 of FIG. 1. The mixer 241, the signal converter 242, and the processor 243 may be included in the detection circuit 140 of FIG. 1. It will be apparent to those of ordinary skill in the art that FIGS. 1 and 2 only illustrate embodiments of a lidar device, and that in other embodiments, the lidar device may be embodied differently from those shown in FIGS. 1 and 2.

[0019] The light source 212 is configured to generate continuous wave light that oscillates continuously and has a waveform such as a sine wave. The continuous wave light has a frequency band of several hundred THz or a wavelength of nm. For example, the continuous wave light has a wavelength band of approximately 800 nm to approximately 2,000 nm. However, this is not necessarily limited thereto, and the light source 212 is configured to generate light of various frequency bands, and is configured to simultaneously generate light of different frequency bands.

[0020] The frequency modulator 211 may be configured to control the driving of the light source 212. For example, the frequency modulator 211 may control the driving of the light source 212 by applying a control signal to the light source 212. The light source 212 may be controlled by the frequency modulator 211 to generate frequency modulated continuous wave light.

[0021] The frequency modulator 211 can control the light source 212 so that the light generated by the light source 212 becomes an arbitrary frequency chirp signal.

[0022] FIG. 3 is a diagram illustrating an arbitrary frequency chirp according to an embodiment.

[0023] Referring to Figure 3, frequency chirp refers to a phenomenon in which the frequency of light changes continuously over time, and frequency chirp signal refers to an optical signal whose frequency changes continuously depending on the signal.

[0024] Linear frequency chirp refers to the phenomenon in which the frequency of light changes linearly over time, as shown in graph (a) of Figure 3. Nonlinear frequency chirp refers to the phenomenon in which the frequency of light changes nonlinearly over time, as shown in graph (b) of Figure 3.

[0025] An arbitrary frequency chirp signal is a general term for the phenomenon in which the frequency of light changes continuously over time, and includes both linear and nonlinear frequency chirp. In other words, an arbitrary frequency chirp signal refers to an optical signal whose frequency changes continuously over time.

[0026] On the other hand, any frequency chirp signal may be interpreted as, but is not limited to, an optical signal in which the frequency of light increases continuously over time.

[0027] Referring back to Figure 2, since light has a frequency of several hundred THz, it is difficult to realize a linear frequency chirp signal from light using a voltage controlled oscillator (VCO) and a phase locked loop (PLL) used for radio frequency (RF) signals. Also, an optical phase locked loop (OPLL) is not yet technologically mature.

[0028] In one embodiment, the frequency modulator 211 is configured to control the light source 212 so that the light generated by the light source 212 becomes an arbitrary frequency chirp signal. That is, the frequency modulator 211 and the light source 212 are not bound by a restrictive condition such as the condition that the light generated by the light source 212 is a linear frequency chirp signal. Therefore, in one embodiment, the frequency modulator 211 and the light source 212 do not need to be configured to generate a linear frequency chirp signal.

[0029] A part of the light split by the splitter 213 is provided to a transmitting antenna 214, and the other part, i.e., the local oscillator light 22, is provided to a delay circuit 230. The light 21 transmitted by the transmitting antenna 214 is reflected from the object 2 and received by the receiving antenna 220.

[0030] The delay circuit 230 is configured to time-delay the local oscillator light 22. The time-delayed local oscillator light 23 is provided to the mixer 241 from the delay circuit 230.

[0031] FIG. 4 is a diagram illustrating a local oscillator light and a time-delayed local oscillator light according to an embodiment.

[0032] The time-delayed local oscillator light 42 is a time-shifted chirp signal of the same frequency as the local oscillator light 41. That is, there is only a time difference of the time delay value Δt between the time-delayed local oscillator light 42 and the local oscillator light 41, and the frequencies are the same.

[0033] 2, in one embodiment, the delay circuit 230 is configured to change a time delay value for time-delaying the local oscillator light 22. The range of the time delay value of the delay circuit 230 may be, but is not limited to, ns to ms.

[0034] The delay circuit 230 may also be, but is not limited to, a circuit configured to delay light based on optical fiber or silicon photonics.

[0035] The delay circuit 230 may also be configured to have a time delay value programmed therein, but is not limited to such. For example, the delay circuit 230 may be configured to have a time delay value programmed therein by an external device.

[0036] Alternatively, but not limited to, the delay circuit 230 may be configured to vary the time delay value based on a received input signal, for example, the input signal may be provided by the processor 243 or an external device.

[0037] The signal converter 242 may be configured to convert an optical signal into an electrical signal, and may include, but is not limited to, at least one of a photodiode (PD), an avalanche photodiode (APD), and a single avalanche photodiode (SPAD).

[0038] In one embodiment, the mixer 241 is configured to interfere with the time-delayed local oscillator light 23 and the received light 25. The light 26 interfered by the mixer 241 may be converted into an electrical signal 27 by the signal converter 242. The signal converter 242 may generate the electrical signal 27 as an analog signal or may generate the electrical signal 27 by digitally sampling it using an analog-digital converter (ADC).

[0039] In one embodiment, the processor 243 is configured to determine the distance to the object 2 based on the electrical signal 27. The processor 243 is configured to determine the distance to the object 2 by processing the electrical signal 27, which is an analog signal or a digital signal sampled in the time domain. The processor 243 may be configured to filter the electrical signal 27 with a high pass filter (HPF) and determine the distance to the object 2 based on the filtered signal. The processor 243 may be configured to determine the distance to the object 2 by obtaining the ToF from a time delay value corresponding to a section in which the filtered signal is reduced.

[0040] The processor 243 may be implemented as an array of multiple logic gates, or may be implemented as a combination of a general-purpose microprocessor and a memory storing a program executed by the microprocessor. The processor 243 may also include a filter for filtering a signal and a signal processor (Analog-to-digital converter: ADC) for processing the filtered signal.

[0041] FIG. 5 is a diagram illustrating a principle of distance detection by a LIDAR device according to an embodiment.

[0042] FIG. 5 shows a graph of the local oscillator light and the received light time-delayed by different time delay values.

[0043] Graph (a) is a graph of time-delayed local oscillator light LO having a time delay value Δt of 0 and received light Rx, graph (b) is a graph of time-delayed local oscillator light LO having a time delay value Δt of 0.5 times the ToF and received light Rx, graph (c) is a graph of time-delayed local oscillator light LO having the same time delay value Δt as the ToF and received light Rx, and graph (d) is a graph of time-delayed local oscillator light LO having a time delay value Δt of 1.5 times the ToF and received light Rx.

[0044] As explained with reference to Figure 4, the frequency of the local oscillator light does not change even when it passes through a delay circuit. Also, if the target object stops moving, the reflected light does not change in frequency. Therefore, as shown in graph (c), if the time delay value Δt is the same as the ToF, the beat frequency Δf component obtained from the interfered light disappears. In this case, the beat frequency means the difference between the frequency of the time-delayed local oscillator light and the frequency of the received light.

[0045] On the other hand, as shown in graphs (a), (b), and (d), if the time delay value Δt is different from the ToF, there may be a component of beat frequency Δf obtained from the interfered light.

[0046] In the section where the beat frequency component disappears, the high frequency component of the signal decreases, and therefore the ToF, i.e., the distance to the target object, can be determined from the time delay value Δt corresponding to the section where the high frequency component of the signal decreases.

[0047] FIG. 6 is a diagram illustrating the operating principle of a LIDAR device according to an embodiment.

[0048] The light 21 split and transmitted by the splitter 213 travels between the LIDAR device and the target object for approximately the ToF period before being received. The delay circuit 230 time-delays the local oscillator light 22 to generate time-delayed local oscillator light 23. The mixer 241 causes interference between the received light 25 and the time-delayed local oscillator light 23.

[0049] If the delay circuit 230 delays the local oscillator light LO by the ToF, the beat frequency component of the interfered light disappears, and the high frequency component of the electrical signal decreases. Therefore, by appropriately changing the time delay value of the delay circuit 230, the section where the high frequency component of the electrical signal decreases can be detected, and the distance to the target object can be determined.

[0050] FIG. 7 is a diagram illustrating a distance measurement method of a LIDAR device according to an embodiment.

[0051] 2 and 7, the delay circuit 230 varies the time delay value to generate time-delayed local oscillator light 23. The mixer 241 interferes the time-delayed local oscillator light 23 with the received light 25, and provides the interfered light 26 to the signal converter 242. The signal converter 242 provides the electrical signal 27 generated from the interfered light 26 to the processor 243.

[0052] The processor 243 can generate a filtered signal by filtering the electrical signal 27 using a HPF. When the time delay value is the ToF, the beat frequency Δf component of the interfered light 26 disappears, reducing the high-frequency component of the electrical signal 27 and decreasing the filtered signal. Therefore, when a section in which the filtered signal decreases is detected, a time delay value corresponding to the detected section is obtained, and the ToF and the distance to the target can be determined from the obtained time delay value. Therefore, the processor 243 can determine the distance to the target by analyzing the filtered signal in the time domain.

[0053] The processor 243 may detect a section in which the filtered signal is reduced. For example, the processor 243 may detect a section in which the filtered signal is reduced by comparing the magnitude of the filtered signal with a predetermined value. Alternatively, the processor 243 may detect a section in which the filtered signal is reduced by determining whether the magnitude of the filtered signal is smaller than a predetermined value. Alternatively, the processor 243 may detect a section in which the filtered signal is reduced by determining whether the average value of the filtered signal magnitude is smaller than a predetermined value. Alternatively, the processor 243 may determine a section in which the filtered signal is reduced from a section in which the magnitude of the filtered signal is minimum. Alternatively, the processor 243 may determine a section in which the filtered signal is reduced from a section in which the average value of the magnitude of the filtered signal is minimum.

[0054] FIG. 7 illustrates an example of determining distances to cars, people, and bicycles.

[0055] When determining the distance to the vehicle, the interval over which the magnitude of the filtered signal is reduced is D. The processor 243 determines the distance to the vehicle from the time delay value A corresponding to interval D.

[0056] Similarly, when detecting the distance to a person, the interval over which the filtered signal size decreases is E. The processor 243 can determine the distance to the person from the time delay value C corresponding to the interval E.

[0057] Similarly, when sensing the distance to a bicycle, the interval over which the filtered signal size decreases is F. The processor 243 determines the distance to the bicycle from the time delay value B corresponding to interval F.

[0058] Because the processor 243 determines the distance to the object by analyzing the filtered signal in the time domain, the lidar device 200 in one embodiment does not require components for analyzing signals in the frequency domain (e.g., FFT (Fast Fourier Transform) circuitry, etc.).

[0059] FIG. 8 is a diagram illustrating a distance measurement method and a time delay value of a LIDAR device according to an embodiment.

[0060] The time delay value of the LIDAR device can be determined based on the performance of the LIDAR device.

[0061] Consider the maximum measurable distance MaxR of the LIDAR device. The ToF corresponding to the maximum measurable distance MaxR is 2*MaxR / c, and the time delay value is 2*MaxR / c. Consider the range resolution ΔR of the LIDAR device. The time delay value corresponding to the range resolution ΔR is 2*ΔR / c, where c is the speed of light.

[0062] Therefore, to satisfy the performance of the LIDAR device, the time delay value needs to be controlled at intervals of 2*ΔR / c in the range of 0 to 2*MaxR / c. For example, if the maximum measurable distance of the LIDAR device is 200 m and the distance resolution is 10 cm, the time delay value needs to be controlled at intervals of 0.66 ns in the range of 0 to 1.33 μs.

[0063] In one embodiment, the lidar device may be configured to increase the time delay value arithmetically from a minimum delay value to a maximum delay value MaxD by a unit delay value gapD.

[0064] The maximum delay value MaxD may be determined based on the maximum measurable distance MaxR of the LIDAR device. The unit delay value gapD may be determined based on the distance resolution ΔR of the LIDAR device. The minimum delay value may be determined based on the minimum distance to be measured. For example, the maximum delay value MaxD may be determined as 2*MaxR / c, and the unit delay value gapD may be determined as 2*ΔR / c. For example, if the maximum measurable distance of the LIDAR device is 200 m and the distance resolution is 10 cm, the maximum delay value MaxD may be determined as 1.33 μs, and the unit delay value gapD may be determined as 0.66 ns. That is, the time delay values ​​may be determined to increase in increments of 0.66 ns from 0 to 1.33 μs.

[0065] The processor can determine the distance to the object from the time delay value K corresponding to the section L in which the filtered signal is reduced. For example, if the time delay value K is 0.66 μs (=0.66 ns*1000), the ToF is acquired at 0.66 μs, and the distance to the object can be determined to be approximately 99 m (=0.66 μs*c / 2).

[0066] A unit delay period interT, where the time delay value is a constant period, can be determined as (delay period MaxT) / (maximum delay value MaxD-minimum delay value)*(unit delay value gapD). In this case, the delay period MaxT is the period during which the local oscillator light is time delayed from the minimum delay value to the maximum delay value MaxD. If the delay period MaxT is equal to the maximum delay value MaxD-minimum delay value, the unit delay period interT can be determined as the unit delay value gapD.

[0067] For example, if the delay period MaxT is 2.66 μs, the maximum delay value MaxD is 1.33 μs, the minimum delay value is 0, and the unit delay value gapD is 0.66 ns, the unit delay period interT may be determined as 1.32 ns (=2.66 μs / 1.33 μs*0.66 ns). As another example, if the delay period MaxT and the maximum delay value MaxD are 1.33 μs, the minimum delay value is 0, and the unit delay value gapD is 0.66 ns, the unit delay period interT may be determined as 0.66 ns (=1.33 μs / 1.33 μs*0.66 ns).

[0068] Therefore, in order to increase the unit delay period interT, it is necessary to increase the delay period MaxT, decrease the maximum delay value MaxD, increase the minimum delay value, or increase the unit delay value gapD.

[0069] FIG. 9 is a diagram illustrating a distance measurement method of a LIDAR device according to an embodiment.

[0070] In one embodiment, the LIDAR device may perform a plurality of delay operations to time-delay the local oscillator light by time delay values ​​that increase in unit delay value increments from a minimum delay value to a maximum delay value, wherein at least one of the minimum delay value and the maximum delay value of any one delay operation is different from the corresponding value of any other delay operation.

[0071] The lidar device can determine the distance to the object from the time delay value corresponding to the section where the filtered signal corresponding to the multiple delay operations is reduced.

[0072] In one embodiment, the lidar device is configured to use an increased unit delay value to increase the unit delay period. Specifically, when the minimum unit delay value that satisfies the lidar's range resolution ΔR is ΔT0 (=2*ΔR / c), in one embodiment, the lidar device is configured to use a unit delay value that is greater than the minimum unit delay value ΔT0.

[0073] 9, in one embodiment, the LIDAR device time-delays the local oscillator light using a unit delay value of 3*ΔT0 (=6*ΔR / c), which is three times the minimum unit delay value. Specifically, in the first delay operation S1, the LIDAR device increases the time delay value from the first minimum delay value ΔT0 by 3*ΔT0, in the second delay operation S2, increases the time delay value from the second minimum delay value Δ2*T0 by 3*ΔT0, and in the third delay operation S3, increases the time delay value from the third minimum delay value Δ3*T0 by 3*ΔT0.

[0074] For example, if the distance resolution of the LIDAR device is 10 cm, the minimum unit delay value ΔT0 corresponding to the distance resolution is 0.66 ns, so three times the minimum unit delay value is 1.98 ns (=0.66 ns*3). In the first delay operation S1, the time delay value increases to 0.66ns, 2.64ns (=0.66ns+3*0.66ns), 4.62ns (=0.66ns+6*0.66ns), ...; in the second delay operation S2, the time delay value increases to 1.32ns (=2*0.66ns), 3.3ns (=2*0.66ns+3*0.66ns), 5.28ns (=2*0.66ns+6*0.66ns), ...; in the third delay operation S3, the time delay value increases to 1.98ns (=3*0.66ns), 3.96ns (=3*0.66ns+3*0.66ns), 5.94ns (=3*0.66ns+6*0.66ns), ...

[0075] In general, when a unit delay value that is N times the minimum unit delay value is used, the lidar device may increase the time delay value by the first minimum delay value N*ΔT0 in the first delay operation, increase the time delay value from the second minimum delay value by N*ΔT0 in the second delay operation, and increase the time delay value from the Nth minimum delay value by N*ΔT0 in the Nth delay operation, where the Nth minimum delay value may be, but is not limited to, N*ΔT0.

[0076] As explained based on Fig. 8, the unit delay period is proportional to the unit delay value, so that an N-fold increase in the unit delay value results in an N-fold increase in the unit delay period.

[0077] In each delay operation, N*ΔT0 is used as the unit delay value, but when the overall delay operations S1 to S3 are considered, the unit delay value is essentially ΔT0. Therefore, the unit delay period increases by N times while satisfying the distance resolution of the LIDAR device.

[0078] The processor determines the distance to the target based on the filtered signal generated from all delay operations S1 to S3. The processor can determine the distance to the target by detecting the section where the filtered signal is most reduced.

[0079] In FIG. 9, the processor can obtain a time delay value M corresponding to section P where the filtered signal is most reduced among sections O, P, and Q where the filtered signal is reduced, and determine the distance to the target object.

[0080] FIG. 10 is a diagram illustrating a distance measurement method of a LIDAR device according to an embodiment.

[0081] In one embodiment, the LIDAR device may perform a plurality of delay operations to time-delay the local oscillator light by time delay values ​​that increase in increments of unit delay values ​​from a minimum delay value to a maximum delay value, wherein at least one of the minimum delay value, the maximum delay value, and the unit delay value of any one delay operation is different from the corresponding value of any other delay operation.

[0082] The LIDAR device may perform the delay operation multiple times by decreasing the maximum delay value and increasing the minimum delay value, i.e., by reducing the range of time delay values.

[0083] The LIDAR device may perform the delay operation multiple times by decreasing the unit delay value, i.e., by gradually decreasing the time delay value, the LIDAR device may perform the delay operation multiple times.

[0084] 10, in one embodiment, the delay circuit delays the local oscillator light by a time delay value that increases in increments of a first unit delay value (6*ΔT0) from a first minimum delay value AH to a first maximum delay value AG in a first delay operation S1, where ΔT0 (=2*ΔR / c) is the minimum unit delay value that satisfies the range resolution ΔR of the lidar.

[0085] The processor obtains the time delay values ​​AA, AB corresponding to the section U where the filtered signal corresponding to the first delay operation S1 is most reduced.

[0086] The processor may determine a second minimum delay value AD and a second maximum delay value AC from the obtained time delay values ​​AA and AB. For example, the processor may determine the second minimum delay value AD by decreasing the time delay value AB by the minimum unit delay value ΔT0, and may determine the second maximum delay value AC by increasing the time delay value AA by the minimum unit delay value ΔT0.

[0087] In the second delay operation S2, the delay circuit time-delays the local oscillator light by a time delay value that increases in increments of a second unit delay value 2*ΔT0 from a second minimum delay value AD to a second maximum delay value AC. The second unit delay value is also a value smaller than the first unit delay value. In one embodiment, the second unit delay value is 1 / 3 times the first unit delay value, but this is merely an exemplary value and is not limited thereto. In one embodiment, the second unit delay value is twice the minimum unit delay value ΔT0, but this is merely an exemplary value and is not limited thereto.

[0088] The processor obtains the time delay values ​​AE, AF corresponding to the interval W in which the filtered signal corresponding to the second delay operation S2 is most reduced.

[0089] The processor may determine a third minimum delay value AJ and a third maximum delay value AK from the acquired time delay values ​​AE and AF. For example, the processor may determine the third minimum delay value AJ by decreasing the time delay value AF by the minimum unit delay value ΔT0, and may determine the third maximum delay value AK by increasing the time delay value AE by the minimum unit delay value ΔT0.

[0090] In the third delay operation S3, the delay circuit time-delays the local oscillator light by a time delay value that increases in increments of a third unit delay value ΔT0 from a third minimum delay value AJ to a third maximum delay value AK. The third unit delay value may be smaller than the second unit delay value. In one embodiment, the third unit delay value is 1 / 2 the second unit delay value, but this is merely an exemplary value and is not limited thereto. In one embodiment, the third unit delay value is the same as the minimum unit delay value ΔT0, but this is merely an exemplary value and is not limited thereto.

[0091] The processor can obtain a time delay value S corresponding to the section X in which the filtered signal corresponding to the third delay operation S3 is reduced, and determine the distance to the object.

[0092] As described with reference to FIG. 8, the unit delay period can be increased by decreasing the maximum delay value minus the minimum delay value or by increasing the unit delay value.

[0093] In the first delay operation S1, an increased unit delay value is used, so the unit delay period increases; in the second delay operation S2, an increased unit delay value and a maximum delay value and a minimum delay value with a decreased difference are used, so the unit delay period increases; and in the third delay operation S3, a maximum delay value and a minimum delay value are used, so the unit delay period increases.

[0094] Also, the unit delay value in the final delay operation S3 is ΔT0. Therefore, the distance to the target can be detected with an increased unit delay period while satisfying the distance resolution of the LIDAR device.

[0095] FIG. 11 is a flowchart illustrating a method of operating a lidar device according to one embodiment.

[0096] 1 and 11, in step 1101, a transmitter 110 can transmit continuous wave light and provide local oscillator light 12 corresponding to the transmitted light 11.

[0097] In step 1102, the delay circuit 130 may time-delay the local oscillator light 12. The delay circuit 130 may provide the time-delayed local oscillator light 13 to the detection circuit 140.

[0098] In step 1103, the receiver 120 may receive the light 14 reflected from the object 1. The receiver 120 may provide the received light 15 to the detection circuitry 140.

[0099] In step 1104, the detection circuit 140 can determine the distance to the target based on the time-delayed local oscillator light 12 and the received light 15. The detection circuit 140 can determine the distance to the target by analyzing, in the time domain, an electrical signal obtained from the interference between the time-delayed local oscillator light 12 and the received light 15.

[0100] FIG. 12 is a flowchart illustrating a method of operating a lidar device according to one embodiment.

[0101] 2 and 12, in step 1201, a light source 212 may generate continuous wave light having a desired frequency chirp. A frequency modulator 211 may control the light source 212 so that the light generated by the light source 212 becomes a desired frequency chirp signal.

[0102] In step 1202, the splitter 213 and the transmitting antenna 214 may transmit a portion of the generated light and provide the other portion as the local oscillator light 22. Specifically, the splitter 213 may split the light generated by the light source 212 into the light to be transmitted and the local oscillator light 22, and the transmitting antenna 214 may transmit the light.

[0103] In step 1203, the delay circuit 230 may time-delay the local oscillator light 22. The delay circuit 230 may time-delay the local oscillator light 22 by a changed time delay value, thereby providing the time-delayed local oscillator light 23 to the mixer 241.

[0104] In step 1204 , the receiving antenna 220 may receive the light 24 reflected from the object 2 .

[0105] In step 1205 , the mixer 241 can obtain an interfered light 26 by interfering the time-delayed local oscillator light 23 and the received light 25 .

[0106] In step 1206 , the signal converter 242 can convert the interfered light 26 into an electrical signal 27 .

[0107] In step 1207, the processor 243 filters the electrical signal with an HPF to obtain a filtered signal, in step 1208, obtains a time delay value corresponding to the section in which the filtered signal is smallest, and in step 1209, determines the distance to the target based on the obtained time delay value.

[0108] FIG. 13 is a block diagram illustrating a lidar device according to one embodiment.

[0109] The LIDAR device 1300 of FIG. 13 differs from the LIDAR device 200 of FIG. 2 in that the processor 1343 is configured to analyze signals in the time domain and the frequency domain. Therefore, the configuration illustrated in FIG. 14 may be configured to perform the same or similar functions as the configuration illustrated in FIG. 2.

[0110] The processor 1343 may be configured to determine the distance to the object 2 by analyzing the electrical signal provided by the signal converter 1342 in the time domain, and to determine the velocity of the object 2 by analyzing the electrical signal in the frequency domain.

[0111] The processor 1343 may include filters for analyzing the electrical signal in the time domain and FFT circuits for analyzing the electrical signal in the frequency domain.

[0112] FIG. 14 is a diagram illustrating a method for detecting speed and distance using a LIDAR device according to an embodiment.

[0113] 13 and 14, the LIDAR device 1300 can determine the distance to the object based on the first delay operation S1 and the velocity of the object based on the second delay operation S2.

[0114] The method by which the LIDAR device 1300 determines the distance to the target based on the first delay operation S1 is the same as the method described above with reference to Figures 1 to 12. Specifically, the processor 1343 may determine the distance to the target from the time delay value Y corresponding to the section Z in which the filtered signal is reduced.

[0115] The delay circuit 1330 may time-delay the local oscillator light by a time delay value Y in a second delay operation S2.

[0116] The mixer 1341 can interfere the received light with the local oscillator light time-delayed by a time delay value Y, thereby providing the interfered light to the signal converter 1342 .

[0117] The signal converter 1342 can convert the interfered light into an electrical signal and provide the electrical signal to the processor 1343 .

[0118] The processor 1343 can obtain a beat frequency Δf from the electrical signal using an FFT circuit and determine the velocity of the object from the beat frequency Δf based on the Doppler effect.

[0119] The second unit delay period interT2 of the second delay operation S2 is greater than the first unit delay period interT1 of the first delay operation S1. The second unit delay period interT2 is also a period sufficient to analyze the component of the beat frequency Δf.

[0120] For example, if the target is moving at a speed of 200 km / h, the Doppler frequency calculated from the target's speed is approximately 42.4 MHz. The second unit delay period interT2 can be determined to be approximately 94 ns (=1 / (42.4 MHz / 4)) to acquire electrical signals with four cycles of the Doppler frequency.

[0121] For example, if an object moves at a speed of Mach 1.0, the Doppler frequency calculated from the object's speed is approximately 943 MHz. In order to acquire an electrical signal with 6 cycles of the Doppler frequency, the second unit delay period interT2 can be determined to be approximately 6 ns (=1 / (943 MHz / 6)).

[0122] FIG. 15 is a flowchart illustrating a method for detecting velocity and distance in a LIDAR device according to an embodiment.

[0123] 13 and 15, in step 1501, a transmitting antenna 1314 transmits continuous wave light, and a splitter 1313 provides local oscillation light corresponding to the transmitted light. A frequency modulator 1311 controls the light source 1312 so that the light generated from the light source 1312 becomes a chirp signal of any frequency.

[0124] The delay circuit 1330 may time-delay the local oscillator light in operation 1502. The delay circuit 1330 may time-delay the local oscillator light using time delay values ​​that increase in unit delay value increments from a minimum delay value to a maximum delay value.

[0125] In step 1503, the receiving antenna 1320 may receive light reflected from the object.

[0126] In step 1504, the processor 1343 can determine the distance to the object based on the time-delayed local oscillator light and the received light, and obtain a time delay value corresponding to the distance to the object.

[0127] In step 1505, the transmitting antenna 1314 can transmit continuous wave light, and the splitter 1313 can provide local oscillator light corresponding to the transmitted light.

[0128] In step 1506 , the delay circuit 1330 may time delay the local oscillator light based on the time delay value obtained by the processor 1343 .

[0129] In step 1507, the receiving antenna 1320 may receive light reflected from the object.

[0130] In operation 1508, the processor 1343 may determine the velocity of the object based on the time-delayed local oscillator light and the received light. The processor 1343 may determine the velocity of the object by analyzing beat frequency components of the time-delayed local oscillator light and the received light.

[0131] Those skilled in the art will understand that the embodiments can be embodied in various modified forms without departing from the essential characteristics of the above description. Therefore, the disclosed embodiments should be considered in an illustrative rather than a restrictive sense. The scope of the invention is defined in the claims, not the above description, and all variations within the scope of the claims should be construed as being included in the embodiments. [Explanation of symbols]

[0132] 100, 200 Lidar equipment 110 Transmitter 120 Receiver 130 Delay Circuit 140 Detection circuit 211 Frequency Modulator 212 Light source 213 Splitter 214 Transmitting Antenna 220 Receiving Antenna 230 Delay Circuit 241 Mixer 242 Signal Converter 243 processors

Claims

1. a transmitter configured to transmit continuous wave light and to provide local oscillator light corresponding to the transmitted light; a delay circuit configured to time-delay the local oscillator light; a receiver configured to receive light reflected from the object; a detection circuit configured to determine a distance to the object based on the time-delayed local oscillator light and the received light; A lidar device, wherein the delay circuit is configured to increase the time delay value for time-delaying the local oscillator light by unit delay values ​​from a minimum delay value to a maximum delay value.

2. The LIDAR device of claim 1 , wherein the delay circuit is configured to change a time delay value for time-delaying the local oscillator light.

3. the transmitter includes a light source and a frequency modulator configured to control the light source such that the light source generates frequency modulated light; The LIDAR device according to claim 1 or 2, wherein the frequency modulator controls the light source so that the light generated from the light source becomes a chirp signal of an arbitrary frequency.

4. 4. The lidar device of claim 3, wherein the transmitter further includes a splitter that splits the light generated from the light source into the transmitted light and the local oscillator light and provides the local oscillator light to the delay circuit.

5. The LIDAR device of any one of claims 1 to 4, wherein the detection circuit includes a mixer configured to interfere the time-delayed local oscillator light with the received light and output interfered light.

6. The LIDAR device according to claim 5 , wherein the detection circuit further includes a signal converter configured to output an electrical signal by photoelectrically converting the interfered light.

7. The lidar device of claim 6 , wherein the detection circuitry further includes a processor configured to determine a distance to the object based on the electrical signal.

8. a transmitter configured to transmit continuous wave light and to provide local oscillator light corresponding to the transmitted light; a delay circuit configured to time-delay the local oscillator light; a receiver configured to receive light reflected from the object; a detection circuit configured to determine a distance to the object based on the time-delayed local oscillator light and the received light; the detection circuit includes a mixer configured to interfere the time-delayed local oscillator light with the received light, and output an interfered light; the detection circuit is a signal converter configured to output an electrical signal by photoelectrically converting the interfered light; the detection circuit includes a processor configured to determine a distance to the object based on the electrical signal; The processor is configured to generate a filtered signal by filtering the electrical signal with a high pass filter (HPF), obtain a time delay value of the time-delayed local oscillator light corresponding to a section where the filtered signal is reduced, and determine a distance to the object from the obtained time delay value.

9. 1. A method for operating a lidar device, comprising: transmitting continuous wave light and providing local oscillator light corresponding to the transmitted light; time-delaying the local oscillator light; receiving light reflected from the object; determining a distance to the object based on the time-delayed local oscillator light and the received light; The step of time-delaying the local oscillator light includes: The method includes time delaying the local oscillator light using time delay values ​​that increase in unit delay value increments from a minimum delay value to a maximum delay value.

10. The step of time-delaying the local oscillator light includes:

10. The method of claim 9, comprising time delaying the local oscillator light with varying time delay values.

11. The step of time-delaying the local oscillator light includes: performing a delay operation a plurality of times to time-delay the local oscillator light by time delay values ​​that increase in increments of unit delay values ​​from a minimum delay value to a maximum delay value; 11. The method of claim 9 or 10, wherein at least one of the minimum delay value, maximum delay value, and unit delay value of at least one of the delay operations is different from the corresponding value of another of the delay operations.

12. The step of time-delaying the local oscillator light includes: delaying the local oscillator light by time delay values ​​that increase in unit delay value increments from a first minimum delay value to a first maximum delay value; and time-delaying the local oscillator light by time delay values ​​that increase in increments of the unit delay value from a second minimum delay value to a second maximum delay value, The method according to any one of claims 9 to 11, wherein the unit delay value is proportional to the difference between the first minimum delay value and the second minimum delay value.

13. The step of time-delaying the local oscillator light includes: delaying the local oscillator light by a time delay value that increases in increments of a first unit delay value from a first minimum delay value to a first maximum delay value; and delaying the local oscillator light by a time delay value that increases by a second unit delay value from a second minimum delay value to a second maximum delay value, A method according to any one of claims 9 to 12, wherein the difference between the second maximum delay value and the second minimum delay value is smaller than the difference between the first maximum delay value and the first minimum delay value, or the second unit delay value is smaller than the first unit delay value.

14. The step of determining the distance to the object comprises: obtaining an interfered light by interfering the time-delayed local oscillator light with the received light; obtaining an electrical signal by photoelectrically converting the interfered light; and determining a distance to the object based on the electrical signal.

15. determining a distance to the object based on the electrical signal, filtering the electrical signal to obtain a filtered signal; and determining a distance to the object based on the filtered signal.

16. 1. A method for operating a lidar device, comprising: transmitting continuous wave light and providing local oscillator light corresponding to the transmitted light; time-delaying the local oscillator light; receiving light reflected from the object; determining a distance to the object based on the time-delayed local oscillator light and the received light; The step of determining the distance to the object comprises: obtaining an interfered light by interfering the time-delayed local oscillator light with the received light; obtaining an electrical signal by photoelectrically converting the interfered light; determining a distance to the object based on the electrical signal; determining a distance to the object based on the electrical signal, filtering the electrical signal to obtain a filtered signal; determining a distance to the object based on the filtered signal; determining a distance to the object based on the filtered signal, obtaining a time delay value of the time-delayed local oscillator light corresponding to a section where the filtered signal is reduced; and determining a distance to the object from the obtained time delay values.

17. a transmitter configured to transmit continuous wave light and to provide local oscillator light corresponding to the transmitted light; a delay circuit configured to time-delay the local oscillator light; a receiver configured to receive light reflected from the object; a detection circuit configured to determine a distance to the object and a velocity of the object based on the time-delayed local oscillator light and the received light; the detection circuit is configured to obtain a time delay value of the local oscillator light corresponding to a distance to the object; the delay circuit is configured to time-delay the local oscillator light by the obtained time delay value; The detection circuit is configured to determine a velocity of the object based on local oscillator light time-delayed by the obtained time delay value and received light corresponding to the local oscillator light time-delayed by the obtained time delay value.

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