Radar signal processing device, radar device, radar signal processing method, and radar signal processing program
The radar system calculates shielding lengths and vertical heights to safely position the antenna away from wave impact, addressing antenna damage risks while maintaining cost-effectiveness.
Patent Information
- Application Number
- JP2023500661
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-02-22
- Filing Date
- 2022-01-24
- Publication Date
- 2025-09-03
- Estimated Expiration
- 2042-01-24
AI Technical Summary
Existing radar systems face the risk of antenna malfunction or damage due to wave impact when positioned near water surfaces, and using 3D radar to avoid this issue increases costs.
A radar system that calculates the shielding length and vertical height of obstructions using a shielding length calculation unit and vertical height calculation unit, allowing the antenna to be installed away from the water surface, thereby avoiding wave impact without the need for a complex 3D radar.
Enables cost-effective calculation of target heights by installing the antenna safely away from wave impact, reducing the need for expensive 3D radar systems.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a radar signal processing device, a radar device, a radar signal processing method, and a radar signal processing program. [Background technology]
[0002] Conventionally, techniques for grasping the wave conditions on the water surface by grasping the water level, etc., have been known. For example, Patent Document 1 (JP 2018-200176 A) discloses the following water surface distance measuring device. That is, the water surface distance measuring device installed on the side of a hull includes a main body portion disposed at a distance from the water surface, and a cylindrical body attached to a surface of the main body facing the water surface and extending from the surface toward the water surface, the main body portion including an antenna portion that irradiates radio waves from the surface toward the water surface and receives the radio waves reflected by the water surface, and the cylindrical body is arranged to surround the antenna portion when viewed in the axial direction of the cylindrical body. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2018-200176 Summary of the Invention [Problem to be solved by the invention]
[0004] In the technology described in Patent Document 1, the cylindrical body is arranged to surround the antenna unit, thereby preventing the antenna unit from malfunctioning or being damaged by the impact of waves.
[0005] However, since the antenna unit in the water surface distance measuring device described in Patent Document 1 is positioned facing the water surface in a position where it may be subjected to wave impact, there is still a possibility of malfunction or damage due to wave impact.
[0006] The present invention has been made to solve the above-mentioned problems, and an object of the present invention is to provide a radar signal processing device, a radar device, a radar signal processing method, and a radar signal processing program that can calculate the height of a target or the like at low cost while avoiding the impact of waves. [Means for solving the problem]
[0007] In order to solve the above problem, a radar signal processing device according to one aspect of the present invention includes a shielding length calculation unit that calculates, based on a received signal received by an antenna that transmits and receives radio waves, a shielding length, which is the horizontal length of an area in which a transmission signal transmitted from the antenna is shielded by a shielding object above a reference plane, and a vertical height calculation unit that calculates the height of the shielding object from the reference plane based on the shielding length and the positional relationship between the shielding object and the antenna.
[0008] In this way, by using the horizontal length of the area blocked by the obstruction to obtain height information, the antenna can be installed at a location away from a reference surface such as the water surface. Also, since there is no need to use 3D radar, costs can be kept down. Therefore, the height of a target or the like can be calculated at low cost while avoiding the impact of waves. [Effects of the Invention]
[0009] According to the present invention, the height of a target or the like can be calculated at low cost while avoiding the impact of waves. [Brief explanation of the drawings]
[0010] [Figure 1] FIG. 1 is a diagram showing an example of a radar device according to an embodiment of the present invention attached to a ship. [Figure 2] FIG. 2 is a diagram showing the configuration of a radar device according to an embodiment of the present invention. [Figure 3] FIG. 3 is a diagram showing the configuration of a signal processing unit in a radar device according to an embodiment of the present invention. [Figure 4] FIG. 4 is a diagram showing the configuration of a calculation unit in a signal processing unit according to an embodiment of the present invention. [Figure 5] FIG. 5 is a diagram showing an example of an echo image displayed by the display processing unit according to the embodiment of the present invention. [Figure 6] FIG. 6 is a diagram for explaining a method for calculating the height of a target present around a ship according to an embodiment of the present invention. [Figure 7] FIG. 7 is a diagram showing an example of a power spectrum generated by the FFT processing unit in the signal processing unit according to the embodiment of the present invention. [Figure 8] FIG. 8 is a flowchart defining an example of an operation procedure when the radar device according to the embodiment of the present invention calculates the height of an obstacle from a reference plane. [Figure 9] FIG. 9 is a flowchart defining another example of the operation procedure when the radar device according to the embodiment of the present invention calculates the height of the obstruction from the reference plane. DETAILED DESCRIPTION OF THE INVENTION
[0011] Hereinafter, embodiments of the present invention will be described with reference to the drawings. In the drawings, the same or corresponding parts are designated by the same reference numerals, and their description will not be repeated. Furthermore, at least some of the embodiments described below may be combined in any manner.
[0012] <Configuration and basic operation> [Radar equipment] FIG. 1 is a diagram showing an example of a radar device according to an embodiment of the present invention attached to a ship.
[0013] 1, the radar device 300 is mounted on, for example, a ship 10. More specifically, the radar device 300 is attached to, for example, a support part 12 extending upward from a wheelhouse 11 of the ship 10. The radar device 300 is, for example, an FM-CW (Frequency Modulated Continuous Wave) radar device.
[0014] The radar device 300 transmits a transmission signal to a detection target area, which is an area monitored by the ship 10, and receives a reflected signal of the transmission signal as a received signal. Based on the received signal, the radar device 300 then performs processing to display an echo image, which indicates the presence or absence of a target in the detection target area and the distance between the radar device 300 and the target, on a display device (not shown).
[0015] The radar device 300 includes a transmitting antenna 130 and a receiving antenna 140 (described later), which are examples of antennas that transmit and receive radio waves, and are attached so that the transmission signal is emitted obliquely with respect to the water surface, which is an example of a reference plane. Specifically, the angle θ1 between the direction of emission of the transmission signal indicated by arrow D1 in Fig. 1 and the water surface is, for example, 10°.
[0016] The transmission signal has a predetermined vertical beamwidth θ2 in a plane perpendicular to the reference plane and along the radiation direction of the transmission signal. For example, the radar device 300 uses an antenna such as a slot antenna or a two-dimensional array antenna to transmit a fan beam with a vertical beamwidth θ2 of 25° and a horizontal beamwidth of 1.8°.
[0017] FIG. 2 is a diagram showing the configuration of a radar device according to an embodiment of the present invention.
[0018] 2, the radar device 300 includes a radar unit 201 and a display processing unit 202. The radar unit 201 includes a signal generating unit 110, a transmitting unit 120, a transmitting antenna 130, a receiving antenna 140, a receiving unit 150, a mixer unit 160, an A / D (Analog to Digital) conversion unit 170, and a signal processing unit 100. The signal processing unit 100 is an example of a radar signal processing device. Hereinafter, each of the transmitting antenna 130 and the receiving antenna 140 will also be simply referred to as an "antenna."
[0019] The radar unit 201 outputs echo data indicating the detection results of targets in divided target areas, which are regions obtained by dividing the detection target area, to the display processing unit 202. The transmitting antenna 130 and the receiving antenna 140 rotate so that the azimuth angle of the radiation direction of radio waves from the transmitting antenna 130 changes by a predetermined angle every predetermined sweep period T. This allows the radar unit 201 to detect targets existing in all directions around the ship 10.
[0020] Furthermore, the radar unit 201 outputs echo data in a plurality of divided target areas for each sweep period T to the display processing unit 202.
[0021] The display processing unit 202 performs processing to display an echo image of the detection target area on a display device based on the multiple echo data received from the radar unit 201.
[0022] [Radar section] The signal generating unit 110 repeatedly generates an analog signal of a predetermined pattern and outputs it to the transmitting unit 120. More specifically, during a sweep period T, the signal generating unit 110 outputs to the transmitting unit 120 an analog signal whose frequency increases by a predetermined amount per unit time, the analog signal being generated using, for example, an FM-CW modulation method. Specifically, the signal generating unit 110 includes, for example, a voltage generating unit and a VCO (Voltage-Controlled Oscillator). During the sweep period T, the voltage generating unit generates an FM-modulated voltage whose magnitude increases at a constant rate and outputs it to the VCO. The VCO generates an analog signal having a frequency corresponding to the magnitude of the FM-modulated voltage received from the voltage generating unit and outputs it to the transmitting unit 120.
[0023] The transmitting unit 120 transmits a transmission signal. More specifically, during a sweep period T, the transmitting unit 120 generates a transmission signal in the RF (Radio Frequency) band based on the analog signal received from the signal generating unit 110, and outputs the generated transmission signal in the RF band to the area to be divided via the transmitting antenna 130, which rotates in accordance with the rotation of the radar unit 201.
[0024] Furthermore, the transmitting unit 120 outputs the generated transmission signal in the RF band to the mixer unit 160. Specifically, for example, the transmitting unit 120 includes a mixer and a power amplifier. The mixer generates a transmission signal in the RF band based on the analog signal received from the signal generating unit 110, and outputs the generated transmission signal to the power amplifier and the mixer unit 160. In the transmitting unit 120, the power amplifier amplifies the transmission signal received from the mixer, and outputs the amplified transmission signal to the division target area via the transmitting antenna 130.
[0025] The receiving unit 150 receives a reflected signal, which is a transmission signal reflected by a target. More specifically, the receiving unit 150 receives, via the receiving antenna 140 that rotates in conjunction with the rotation of the radar unit 201, a reflected signal in the RF band, which is a signal obtained by reflecting the transmission signal transmitted from the transmitting antenna 130 by a target in the division target area. The receiving unit 150 outputs a received signal, which is the reflected signal received via the receiving antenna 140, to the mixer unit 160. Specifically, for example, the receiving unit 150 includes a low-noise amplifier. The low-noise amplifier amplifies the received signal in the RF band received via the receiving antenna 140, and outputs the amplified received signal to the mixer unit 160.
[0026] The mixer unit 160 generates a beat signal between the transmission signal transmitted from the radar device 300 and the reception signal received by the radar device 300. Here, the beat signal is a signal having a frequency component that is the difference between the frequency component of the transmission signal transmitted by the transmitter 120 and the frequency component of the reception signal received by the receiver 150.
[0027] More specifically, mixer unit 160 includes, for example, two mixers. A branching unit (not shown) branches the transmission signal output from transmitter 120, imparts a phase difference of 90° to the branched transmission signals, and outputs the branches to the mixers in mixer unit 160. In addition, a branching unit (not shown) branches the reception signal output from receiver 150 and outputs the branches to the mixers in mixer unit 160. The two mixers in mixer unit 160 multiply the transmission signal by the reception signal, respectively, to generate an analog beat signal SA consisting of a set of an I signal Si and a Q signal Sq, and output the analog beat signal SA to A / D conversion unit 170.
[0028] The A / D conversion unit 170 converts the analog beat signal SA received from the mixer unit 160 into a beat signal SD, which is a digital signal made up of a set of I signals Si and Q signals Sq. More specifically, the A / D conversion unit 170 generates N beat signals SD, each made up of a set of N I signals Si and N Q signals Sq, by sampling at a predetermined sampling frequency for each sweep period T, and outputs the N beat signals SD to the signal processing unit 100. N is an integer equal to or greater than 2.
[0029] The signal processing unit 100 processes the N beat signals SD received from the A / D conversion unit 170 in each sweep period T to generate echo data indicating the detection result of the target in the divided target area for each sweep period T. The signal processing unit 100 outputs the generated echo data to the display processing unit 202.
[0030] The radar device 300 may be configured to include a single antenna that functions similarly to the transmitting antenna 130 and the receiving antenna 140 as an antenna for transmitting and receiving radio waves, instead of the transmitting antenna 130 and the receiving antenna 140. In this case, for example, the transmitting unit 120 transmits a transmission signal to the transmitting antenna 130 via a circulator. Also, for example, the receiving unit 150 receives a reception signal from the receiving antenna 140 via a circulator.
[0031] [Display processing section] The display processing unit 202 generates integrated data, which is echo data in the detection target area, based on the echo data for each divided target area received from the signal processing unit 100. Then, the display processing unit 202 performs processing to adjust the gain of the generated integrated data, for example, so that reflections from targets appear on the echo image, and to display the echo image in the detection target area on a display device (not shown) based on the integrated data after the gain adjustment.
[0032] [Details of the signal processing section] FIG. 3 is a diagram showing the configuration of a signal processing unit in a radar device according to an embodiment of the present invention.
[0033] 3, signal processing unit 100 includes an interference removal unit 20, a window function processing unit 30, an FFT processing unit 40, an absolute value / logarithm conversion unit 50, a calculation unit 60, and a storage unit .
[0034] The interference removal unit 20 receives N beat signals SD from the A / D conversion unit 170 for each sweep period T, and performs FFT preprocessing to remove interference components, which are components based on interference waves, from the components of the received beat signals SD. The interference removal unit 20 outputs the beat signals SD from which the interference components have been removed by FFT preprocessing to the window function processing unit 30.
[0035] The window function processing unit 30 performs window function processing by multiplying the N beat signals SD after FFT processing received from the interference removal unit 20 by a predetermined window function for each sweep period T. The window function processing unit 30 outputs the beat signals SD after window function processing to the FFT processing unit 40.
[0036] The FFT processing unit 40 generates a power spectrum P by performing FFT processing on the N beat signals SD received from the window function processing unit 30 for each sweep period T, and outputs the generated power spectrum P to the absolute value / logarithm conversion unit 50. For example, the frequency in the power spectrum P generated by the FFT processing unit 40 corresponds to the distance between the radar device 300 and a target.
[0037] The absolute value / logarithm converter 50 generates echo data by logarithmically converting the power spectrum PA, which indicates the absolute value of the power spectrum P received from the FFT processor 40, and outputs the generated echo data to the display processor 202.
[0038] The storage unit 70 stores dimensional information indicating the length or height of each part of the ship 10. The dimensional information indicates, for example, the horizontal length L1 between the end 13a of the upper deck 13 and the antenna of the radar device 300 in a plane perpendicular to the water surface shown in FIG. 1 and along the radiation direction of the transmission signal from the radar device 300. The dimensional information also indicates, for example, the height H1 of the antenna from the upper deck 13. The dimensional information also indicates, for example, the height H3 of the upper deck 13 from the bottom of the ship 10.
[0039] The calculation unit 60 calculates the draft of the ship 10, the height of targets present around the ship 10, and the like, based on the echo image displayed by the display processing unit 202 and the dimensional information stored in the storage unit 70. The configuration of the calculation unit 60 will be described in detail below.
[0040] [Calculation details] FIG. 4 is a diagram showing the configuration of a calculation unit in a signal processing unit according to an embodiment of the present invention.
[0041] Referring to FIG. 4, the calculation unit 60 includes a shielding length calculation unit 61, a vertical height calculation unit 62, a draft calculation unit 63, an antenna height calculation unit 64, and an object elevation calculation unit 65.
[0042] (Calculating the draft) 1 and 4, the shielding length calculation unit 61 calculates the shielding length L2, which is the horizontal length of the area where the transmission signal is shielded by an obstruction above a reference plane, based on the received signal received by the antenna of the radar device 300. Here, the reference plane is assumed to be the water surface. The obstruction is assumed to be a structure of the ship 10, specifically, the upper deck 13 of the ship 10.
[0043] 1, when a part of the transmission signal output from the transmitter 120 in the radar device 300 via the transmission antenna 130 is blocked by the upper deck 13 of the ship 10, there will be an area on the water surface in the detection target area where the transmission signal does not reach. Such an area where the transmission signal does not reach due to a blocking object is called a shadow area A1.
[0044] The shading length calculation unit 61 calculates the shading length L2, which is the horizontal length of the shadow area A1 shading by the upper deck 13, for example, based on the echo image of the detection target area displayed by the display processing unit 202.
[0045] FIG. 5 is a diagram showing an example of an echo image displayed by the display processing unit according to the embodiment of the present invention.
[0046] 5, the echo image displayed by the display processing unit 202 displays, for example, a color tone according to the intensity of a reflected signal transmitted from a target object present in a detection target area centered on the ship 10. For example, in the echo image, the location of the target object that is the transmission source of the reflected signal is displayed in a color according to the intensity of the reflected signal.
[0047] For example, in the echo image, area R1, where multiple small areas are scattered, is an area where sea surface reflection occurs on the water surface, which is an example of a target. Also, for example, in the echo image, area R2, where the intensity of the reflected signal around the ship 10 is high, is an area where the upper deck 13 of the ship 10 is located. Also, for example, in the echo image, area R3, where no reflection of the transmitted signal occurs, is a shadow area where the transmitted signal has not reached, specifically, shadow area A1 blocked by the upper deck 13.
[0048] The occlusion length calculation unit 61 identifies an area R3 by, for example, performing brightness determination on the echo image, and calculates the horizontal length of the identified area R3. Then, the occlusion length calculation unit 61 notifies the calculated length to the vertical height calculation unit 62 as the occlusion length L2.
[0049] The occlusion length calculation unit 61 may calculate the occlusion length L2 using a learning model for determining the shadow area A1 from the echo image. For example, the occlusion length calculation unit 61 inputs image information indicating the echo image displayed by the display processing unit 202 into the learning model, and calculates the occlusion length L2 of the shadow area A1 based on the determination result of the shadow area A1 output from the learning model.
[0050] Referring again to Figures 1 and 4, the vertical height calculation unit 62 calculates the height H2 of the obstruction from the reference plane based on the obstruction length L2 calculated by the obstruction length calculation unit 61 and the positional relationship between the obstruction and the antenna.
[0051] More specifically, the positional relationship between the upper deck 13, which is the obstruction, and the antenna is known, and information indicating this positional relationship is stored as dimensional information in the storage unit 70. That is, the vertical height calculation unit 62 uses the length L1 and height H1 indicated by the dimensional information stored in the storage unit 70 as the positional relationship to calculate the height H2 of the obstruction from the reference plane, i.e., the freeboard H2, which is the height of the upper deck 13 from the water surface, according to the following equation (1). Then, the vertical height calculation unit 62 notifies, for example, the draft calculation unit 63 and the antenna height calculation unit 64 of the calculated height H2. H2=L2 / L1×H1 (1)
[0052] The draft calculation unit 63 calculates the draft H5 of the ship 10 according to the following formula (2) based on the difference between the height H2 of the upper deck 13 from the water surface calculated by the vertical height calculation unit 62 and the height H3 indicated by the dimensional information stored in the memory unit 70. Then, the draft calculation unit 63 stores the calculated draft H5 in the memory unit 70, for example. H5=H3-H2 (2)
[0053] In addition, the vertical height calculation unit 62 may calculate the height H2 of the obstruction from the reference plane using other lengths or heights that indicate the positional relationship between the obstruction and the antenna instead of the horizontal length L1 between the end 13a of the upper deck 13 and the antenna and the height H1 of the antenna from the upper deck 13.
[0054] (Calculation of target height) FIG. 6 is a diagram for explaining a method for calculating the height of a target present around a ship according to an embodiment of the present invention.
[0055] 6, for example, assume that a target Ob is present on the sea around the ship 10. In this case, the calculation unit 60 in the radar device 300 calculates the height H6 of the target Ob from the water surface. The target Ob may be a fixed object such as land, a floating object on the sea, or a wave.
[0056] 4 and 6, the occlusion length calculation unit 61 in the calculation unit 60 calculates, for example, an occlusion length L4, which is the horizontal length of the shadow area A2 occluded by the target object Ob, based on an echo image. The occlusion length calculation unit 61 calculates the occlusion length L4 using, for example, a method similar to the above-mentioned method for calculating the occlusion length L2. The occlusion length calculation unit 61 then notifies the object elevation calculation unit 65 of the calculated occlusion length L4.
[0057] The shading length calculation unit 61 also calculates, for example, based on the echo image, a distance L3 in the horizontal direction between the antenna of the radar device 300 and the target object Ob. More specifically, the shading length calculation unit 61 identifies, for example, an area displayed in the echo image that corresponds to the shadow area A2. Then, based on the echo image, the shading length calculation unit 61 calculates the horizontal distance between the ship 10 and the identified area as the distance L3, and notifies the object elevation calculation unit 65 of the calculated distance L3.
[0058] As described above, the vertical height calculation unit 62 calculates the height H2 of the upper deck 13 from the water surface, and notifies the draft calculation unit 63 and the antenna height calculation unit 64, for example.
[0059] The antenna height calculation unit 64 calculates the height H4 of the antenna from the water surface based on the height H2 of the upper deck 13 from the water surface calculated by the vertical height calculation unit 62 and the height H1 of the antenna from the upper deck 13 indicated by the dimensional information stored in the memory unit 70.
[0060] That is, the antenna height calculation unit 64 calculates the height H4 of the antenna from the water surface according to the following equation (3): Then, the antenna height calculation unit 64 notifies the object elevation calculation unit 65 of the calculated height H4. H4=H1+H2 (3)
[0061] The object elevation calculation unit 65 calculates the height H6 of the target Ob from the water surface based on the shading length L4 and distance L3 calculated by the shading length calculation unit 61, and the height H4 calculated by the antenna height calculation unit 64.
[0062] That is, the object elevation calculation unit 65 calculates the height H6 of the target Ob from the water surface according to the following equation (4): Then, the object elevation calculation unit 65 stores the calculated height H6 in the storage unit 70, for example. H6=L4 / (L3+L4)×H4 (4)
[0063] The radar device 300 is not limited to being mounted on the ship 10, but may be attached to a support stand or the like provided on land. In this case, for example, a quay that is the boundary between the land and the water surface acts as a shield and blocks the transmission signal from reaching the water surface. The radar device 300 can then calculate the height of the quay from the water surface.
[0064] Furthermore, the reference surface is not limited to the water surface, but may be, for example, land.
[0065] The radar signal processing device may be provided separately from the radar device 300. Specifically, the calculation unit 60 in the signal processing unit 100 shown in Fig. 3 may be provided as a radar signal processing device separately from the radar device 300. In this case, the signal processing unit 100 in the radar device 300 does not include the calculation unit 60.
[0066] Furthermore, the radar device 300 is not limited to one that employs the FM-CW method, and may employ, for example, a pulse method. However, when employing the pulse method, the resolution of the pulse radar is determined by the pulse width, and there is a limit to how short the pulse width can be, so there is a limit to how high the resolution can be. On the other hand, when employing the FM-CW method, the resolution is determined by the frequency bandwidth, so it is easy to achieve high resolution. For this reason, it is preferable to employ the FM-CW method rather than the pulse method.
[0067] Furthermore, the calculation unit 60 is not limited to a configuration that calculates both the draft H5 and the height H6 of targets present around the ship 10. For example, the calculation unit 60 may be configured not to include the draft calculation unit 63. Furthermore, the calculation unit 60 may be configured not to include the antenna height calculation unit 64 and the object elevation calculation unit 65.
[0068] [Variation 1] The shielding length calculation unit 61 in the calculation unit 60 may be configured to calculate the shielding lengths L2 and L4 using a method other than the method using an echo image. For example, the shielding length calculation unit 61 may calculate the shielding lengths L2 and L4 based on the power spectrum P generated by the FFT processing unit 40 shown in FIG.
[0069] 7 is a diagram showing an example of a power spectrum generated by an FFT processor in the signal processor according to the embodiment of the present invention, where the horizontal axis represents frequency and the vertical axis represents amplitude [dB].
[0070] Referring to FIG. 7, for example, if a shadow area A exists around the ship 10, the transmitted signal is not reflected in the shadow area A, and therefore the intensity of the frequency corresponding to the shadow area A in the power spectrum P is low.
[0071] For this reason, for example, when there is a portion in the power spectrum P where the intensity is lower than the threshold value Th continuously over a predetermined frequency width or more, the shading length calculation unit 61 determines that this portion corresponds to the shadow area A. The shading length calculation unit 61 identifies the minimum value fa and maximum value fb of the frequency of the portion corresponding to the shadow area A, and calculates the horizontal length of the shadow area A, i.e., the shading length L2 or the shading length L4, based on the identified minimum value fa and maximum value fb.
[0072] In the graph shown in Fig. 7, the portion where the intensity suddenly decreases, indicated by arrow X1, corresponds to, for example, the boundary between the obstruction and shadow area A. In addition, in the graph shown in Fig. 7, the portion where the intensity suddenly increases, indicated by arrow X2, corresponds to, for example, the boundary between shadow area A and the area where sea surface clutter occurs.
[0073] [Variation 2] The shielding length calculation unit 61 may calculate the shielding lengths L2 and L4 based on multiple power spectra P generated by the FFT processing unit 40, instead of calculating the shielding lengths L2 and L4 based on one power spectrum P generated by the FFT processing unit 40.
[0074] More specifically, as described above, the transmitting antenna 130 and the receiving antenna 140 rotate so that the azimuth angle of the radiation direction of the radio waves from the transmitting antenna 130 changes by a predetermined angle for each predetermined sweep period T. Then, the FFT processing unit 40 in the signal processing unit 100 generates a power spectrum P for each sweep period T, for example.
[0075] The shielding length calculation unit 61 calculates the shielding lengths L2 and L4, for example, based on a predetermined number K1 (K1 is a natural number equal to or greater than 2) of power spectra P continuously generated by the FFT processing unit 40. Specifically, the shielding length calculation unit 61 calculates the shielding length L2 for each power spectrum P, for example, and sets the minimum value of the K1 calculated shielding lengths L2 as the shielding length L2.
[0076] In this way, the shielding length calculation unit 61 calculates the shielding lengths L2 and L4 using a plurality of power spectra P, and thus the shielding lengths L2 and L4 can be calculated more accurately than when one power spectrum P is used.
[0077] [Variation 3] The transmitting antenna 130 and the receiving antenna 140 rotate by a predetermined angle, and rotate 360 degrees for each scan period T2.
[0078] The shielding length calculation unit 61 may calculate the shielding lengths L2 and L4, for example, based on a predetermined number K2 (K2 is a natural number equal to or greater than 2) of power spectra P, which are multiple power spectra P generated by the FFT processing unit 40, at each timing when the azimuth angle of the radiation direction of radio waves from the transmitting antenna 130 becomes the same, that is, for each scan period T2. Specifically, the shielding length calculation unit 61 calculates the shielding length L2 for each power spectrum P, for example, and sets the minimum value of the K2 calculated shielding lengths L2 as the shielding length L2.
[0079] The shielding length calculation unit 61 is not limited to using the minimum value of the K1 or K2 shielding lengths L2, and may use, for example, the average value of the K1 or K2 shielding lengths L2 as the shielding length L2.
[0080] <Operation flow> A radar device according to an embodiment of the present invention includes a computer including a memory, and a processing unit such as a CPU in the computer reads from the memory and executes a program including some or all of the steps in the following flowcharts and sequences. This program can be installed externally. This program is distributed in a state stored on a recording medium or via a communication line.
[0081] [Calculating the height of an obstruction (Example 1)] 8 is a flowchart showing an example of an operation procedure when the radar device according to the embodiment of the present invention calculates the height H2 of the obstruction from the reference plane. Here, a case will be described in which the obstruction length calculation unit 61 in the radar device 300 calculates the height H2 of the obstruction from the reference plane based on an echo image.
[0082] Referring to FIG. 8, first, the transmitter 120 transmits a transmission signal to the division target area via the transmission antenna 130 (step S11).
[0083] Next, the receiver 150 receives, as a received signal, a reflected signal that is the transmission signal transmitted from the transmitter 120 and reflected by a target in the division target area (step S12).
[0084] Next, the mixer unit 160 generates a beat signal between the transmission signal transmitted from the transmitter 120 and the reception signal received by the receiver 150. The A / D converter 170 converts the beat signal generated by the mixer unit 160 into a beat signal that is a digital signal. The signal processor 100 generates a power spectrum P by performing FFT processing on the beat signal that is a digital signal converted by the A / D converter 170, and performs signal processing on the generated power spectrum P to generate echo data (step S13).
[0085] Next, the display processing unit 202 generates integrated data based on the echo data for each divided target area generated by the signal processing unit 100, and adjusts the gain of the generated integrated data so that reflections from targets appear on the echo image (step S14).
[0086] Next, the display processing unit 202 performs processing to display an echo image of the detection target area on a display device based on the integrated data after gain adjustment (step S15).
[0087] Next, the shielding length calculation unit 61 of the calculation unit 60 in the signal processing unit 100 calculates the horizontal length of the shadow area A1 where the transmitted signal is shielded by an obstruction above the reference plane, i.e., the shielding length L2, based on the received signal received by the radar device 300.
[0088] For example, the occlusion length calculation unit 61 identifies a shadow area A1 in the detection target area by performing a brightness determination on the echo image displayed by the display processing unit 202, and calculates the horizontal length of the identified shadow area A1 as the occlusion length L2 (step S16).
[0089] Next, the vertical height calculation unit 62 in the calculation unit 60 calculates the height H2 of the shielding object from the reference plane based on the shielding length L2 calculated by the shielding length calculation unit 61 and the positional relationship between the shielding object and the antenna. Specifically, the vertical height calculation unit 62 calculates the height of the upper deck 13 from the water surface, i.e., the freeboard H2, using the horizontal length L1 between the end 13a of the upper deck 13 and the antenna of the radar device 300, and the height H1 of the antenna from the upper deck 13, which are indicated by the dimensional information stored in the memory unit 70, as the positional relationship (step S17).
[0090] Next, the draft calculation unit 63 in the calculation unit 60 calculates the draft H5 of the vessel 10 based on the difference between the draft H2 calculated by the vertical height calculation unit 62 and the height H3 of the upper deck 13 from the bottom of the vessel 10, which is indicated by the dimensional information stored in the memory unit 70. Then, the draft calculation unit 63 stores the calculated draft H5 in, for example, the memory unit 70 (step S18).
[0091] [Calculating the height of an obstruction (Example 2)] 9 is a flowchart showing another example of the operation procedure when the radar device according to the embodiment of the present invention calculates the height H2 of the shielding object from the reference plane. Here, the case where the shielding length calculation unit 61 in the radar device 300 calculates the height H2 of the shielding object from the reference plane based on a plurality of power spectra P as described in the above-mentioned Modification 2 will be described.
[0092] 9, first, the operations from step S21 to step S23 are similar to the operations from step S11 to step S13 shown in FIG. 8, and therefore detailed description thereof will not be repeated here.
[0093] Next, the shielding length calculation unit 61 of the calculation unit 60 calculates the horizontal length of the shadow area A1 where the transmission signal is shielded by an obstruction above the reference plane, i.e., the shielding length L2, based on the power spectrum P generated by the signal processing unit 100.
[0094] For example, if there is a portion in the power spectrum P where the intensity is lower than the threshold Th continuously over a predetermined frequency width or more, the shading length calculation unit 61 performs threshold determination to determine that the portion corresponds to the shadow area A1. Then, the shading length calculation unit 61 identifies the minimum value fa and the maximum value fb of the frequency of the portion corresponding to the shadow area A1, and calculates the shading length L2 based on the identified minimum value fa and maximum value fb (step S24).
[0095] Next, the shielding length calculation unit 61 checks whether or not a predetermined number, K1, of shielding lengths L2 have been calculated (step S25), and if K1 shielding lengths L2 have not been calculated ("NO" in step S25), the shielding length calculation unit 61 does not identify the shielding length L2.
[0096] Next, the azimuth angle of the radiation direction of the transmission signal from the transmission antenna 130 is changed (step S26), and the operations from step S21 onwards are performed again.
[0097] On the other hand, when the calculation of K1 shielding lengths L2 is completed ("YES" in step S25), the shielding length calculation unit 61 identifies, for example, the minimum value of the calculated K1 shielding lengths L2 as the shielding length L2 (step S27).
[0098] Next, the vertical height calculation unit 62 in the calculation unit 60 calculates the freeboard H2, which is the height of the obstruction from the reference plane, based on the obstruction length L2 identified by the obstruction length calculation unit 61 and the positional relationship between the obstruction and the antenna, similar to step S17 shown in Figure 8 (step S28).
[0099] 8, the draft calculation unit 63 in the calculation unit 60 calculates the draft H5 of the vessel 10 based on the difference between the draft H2 calculated by the vertical height calculation unit 62 and the height H3 of the upper deck 13 from the bottom of the vessel 10, which is indicated by the dimensional information stored in the memory unit 70. Then, the draft calculation unit 63 stores the calculated draft H5 in, for example, the memory unit 70 (step S29).
[0100] Incidentally, in the technology described in Patent Document 1, the cylindrical body is arranged to surround the antenna unit, thereby preventing the antenna unit from malfunctioning or being damaged by the impact of waves.
[0101] However, since the antenna unit in the water surface distance measuring device described in Patent Document 1 is positioned facing the water surface in a position where it may be subjected to wave impact, there is still a possibility of malfunction or damage due to wave impact.
[0102] Another possible method is to install a 3D radar that can oscillate beams in both horizontal and vertical directions at a location away from the water surface and use the 3D radar to obtain height information for targets, etc. However, this method has the problem of increasing costs due to the complex structure of the radar device.
[0103] Another possible method is to emit a beam from a radar device installed above the water surface in a direction oblique to the water surface and calculate the height of a protrusion on the seabed based on the length of the shadow of the sound waves cast behind the protrusion. However, this method cannot measure water depth, so it is necessary to obtain information about the radar device's height from the seabed from another device that can obtain height information, such as a fish finder. Another problem is that sound waves are used, so they are significantly attenuated in the air.
[0104] In contrast, in the signal processing unit 100 according to the embodiment of the present invention, the shielding length calculation unit 61 calculates, based on a received signal received by an antenna, a shielding length L2, which is the horizontal length of an area where a transmission signal transmitted from the antenna is shielded by a shielding object above the reference plane. The vertical height calculation unit 62 calculates the height H2 of the shielding object from the reference plane based on the shielding length L2 calculated by the shielding length calculation unit 61 and the positional relationship between the shielding object and the antenna.
[0105] In this way, by using the horizontal length of the area blocked by the obstruction to obtain height information, the antenna of the radar device 300 can be installed at a location away from a reference surface such as the water surface. Furthermore, since there is no need to use a three-dimensional radar, costs can be kept low. Therefore, the height of a target or the like can be calculated at low cost while avoiding the impact of waves.
[0106] Furthermore, in the signal processing unit 100 according to the embodiment of the present invention, the vertical height calculation unit 62 calculates the height H2 of the obstruction from the reference plane using the height H1 of the antenna from the obstruction and the length L1 from the antenna to the end of the obstruction in the horizontal direction as the positional relationship.
[0107] In this way, by using the height H1 of the antenna from the obstruction and the length L1 from the antenna to the end of the obstruction in the horizontal direction, the height H2 of the obstruction from the reference plane can be easily calculated.
[0108] In the signal processing unit 100 according to the embodiment of the present invention, the reference plane is the water surface.
[0109] With this configuration, when there is an obstacle above the water surface that blocks the arrival of the transmission signal, the height H2 of the obstacle from the water surface can be calculated.
[0110] In addition, in the signal processing unit 100 according to the embodiment of the present invention, the antenna height calculation unit 64 calculates the antenna height H4, which is the height of the antenna from the water surface, based on the sum of the height H2 of the obstruction from the water surface calculated by the vertical height calculation unit 62 and the height H1 of the antenna from the obstruction.
[0111] In this way, by focusing on the sum of the height H2 of the obstruction from the water surface and the height H1 of the antenna from the obstruction, the antenna height H4, which is the height of the antenna from the water surface, can be easily calculated.
[0112] In addition, in the signal processing unit 100 according to the embodiment of the present invention, the object elevation calculation unit 65 calculates the height H6 of the target from the water surface based on the antenna height H4 calculated by the antenna height calculation unit 64, the distance L3 between the antenna and a target that is farther away from the antenna than an obstruction, and the horizontal length L4 of the area in which the transmitted signal is obstructed by the target.
[0113] With this configuration, the height H6 from the water surface of a target such as a fixed object such as land, a floating object on the sea, or a wave, which is located far from the antenna of the radar device 300, can be easily calculated.
[0114] In the signal processing unit 100 according to the embodiment of the present invention, the antenna is mounted on the ship 10. The obstruction is a structure of the ship 10. The vertical height calculation unit 62 calculates the height H2 of the structure from the water surface.
[0115] With this configuration, the positional relationship between the obstruction and the antenna of the radar device 300 is fixed, and the vertical height calculation unit 62 can use a known value as the positional relationship between the obstruction and the antenna. In other words, the vertical height calculation unit 62 can calculate the height H2 of the structure from the water surface based on the signal received by the radar device 300 and the known value, without using information indicating the height or distance measured by another device.
[0116] In addition, in the signal processing unit 100 according to an embodiment of the present invention, the draft calculation unit 63 calculates the draft H5 of the ship 10 based on the difference between the height H2 of the structure from the water surface calculated by the vertical height calculation unit 62 and the height H3 of the structure from the bottom of the ship 10.
[0117] With this configuration, the draft H5 of the ship 10 can be easily calculated by focusing on the difference between the height H2 of the structure of the ship 10 from the water surface and the height H3 of the structure from the bottom of the ship 10.
[0118] Furthermore, the radar device 300 according to the embodiment of the present invention includes the signal processing unit 100, a transmitting unit that transmits a transmission signal whose radiation direction is oblique to a reference plane and has a predetermined beam width on a plane perpendicular to the reference plane and along the radiation direction, and a receiving unit that receives a received signal that is a reflected wave of the transmission signal.
[0119] With this configuration, for example, it is possible to calculate the height of a target, etc. from a reference plane using a marine radar device for measuring the presence or absence of a target in a detection area centered on the ship 10 and the distance between the ship 10 and the target.
[0120] Furthermore, a radar signal processing method according to an embodiment of the present invention is a radar signal processing method in a signal processing unit 100. In this radar signal processing method, first, a shielding length calculation unit 61 calculates, based on a received signal received by an antenna, a shielding length L2, which is the horizontal length of an area where a transmission signal transmitted from the antenna is shielded by a shielding object above a reference plane. Next, a vertical height calculation unit 62 calculates a height H2 of the shielding object from the reference plane based on the shielding length L2 calculated by the shielding length calculation unit 61 and the positional relationship between the shielding object and the antenna.
[0121] In this way, by using the horizontal length of the area blocked by the obstruction to obtain height information, the antenna of the radar device 300 can be installed at a location away from a reference surface such as the water surface. Furthermore, since there is no need to use a three-dimensional radar, costs can be kept low. Therefore, the height of a target or the like can be calculated at low cost while avoiding the impact of waves.
[0122] The above-described embodiments should be considered to be illustrative in all respects and not restrictive. The scope of the present invention is defined by the claims, not by the above description, and is intended to include all modifications within the meaning and scope of the claims. [Explanation of symbols]
[0123] 10 ships 11 Wheelhouse 12 Support part 13 Upper Deck 13a End 14a End of quay 20 Interference removal section 21 Support stand 30 Window function processing section 40 FFT processing section 50 Absolute value / logarithm conversion section 60 Calculation Unit 61 Shielding length calculation part 62 Vertical height calculation section 63 Draft Calculation Section 64 Antenna height calculation unit 65 Object Elevation Calculation Unit 70 Memory section 100 signal processing section 110 Signal generating unit 120 Transmitter 130 transmitting antenna 140 receiving antenna 150 Receiver 160 Mixer section 170 A / D conversion section 201 Radar Section 202 Display processing unit 300 Radar Equipment
Claims
1. a shielding length calculation unit that calculates, based on a received signal received by an antenna that transmits and receives radio waves, a shielding length that is a horizontal length of an area where a transmission signal transmitted from the antenna is shielded by a shielding object above a reference plane; a vertical height calculation unit that calculates a height of the shielding object from the reference plane based on the shielding length and a positional relationship between the shielding object and the antenna.
2. 2. The radar signal processing device according to claim 1, wherein the vertical height calculation unit calculates the height of the obstacle from the reference plane using, as the positional relationship, a height of the antenna from the obstacle and a length from the antenna to an end of the obstacle in a horizontal direction.
3. 3. The radar signal processing device according to claim 1, wherein the reference surface is a water surface.
4. The radar signal processing device further includes:
4. The radar signal processing device according to claim 3, further comprising an antenna height calculation unit that calculates an antenna height, which is the height of the antenna from the water surface, based on the sum of the height of the obstruction from the water surface and the height of the antenna from the obstruction.
5. The radar signal processing device further includes:
5. The radar signal processing device according to claim 4, further comprising an object elevation calculation unit that calculates the height of the target from the water surface based on the antenna height, a distance between the antenna and a target that is farther from the antenna than the obstruction, and a length in the horizontal direction of an area where the transmission signal is obstructed by the target.
6. The antenna is mounted on a vessel, the shielding object is a structure of the ship, The radar signal processing device according to claim 3 , wherein the vertical height calculation unit calculates the height of the structure from the water surface.
7. The radar signal processing device further includes:
7. The radar signal processing device according to claim 6, further comprising a draft calculation unit that calculates a draft of the vessel based on a difference between a height of the structure from the water surface and a height of the structure from a bottom surface of the vessel.
8. A radar signal processing device according to any one of claims 1 to 7; a transmitter that transmits the transmission signal such that the radiation direction of the transmission signal is oblique to the reference plane; a receiving unit that receives the received signal, which is a reflected wave of the transmitted signal.
9. The transmission unit further 9. The radar device according to claim 8, wherein the transmission signal has a predetermined beam width in a plane perpendicular to the reference plane and along the radiation direction.
10. A radar signal processing method in a radar signal processing device, comprising: calculating a shielding length, which is the horizontal length of an area where a transmission signal transmitted from the antenna is shielded by a shielding object above a reference plane, based on a reception signal received by the antenna that transmits and receives radio waves; a radar signal processing method for calculating a height of the shielding object from the reference plane based on the shielding length and a positional relationship between the shielding object and the antenna;
11. A radar signal processing program used in a radar signal processing device, A process of calculating a shielding length, which is the horizontal length of an area where a transmission signal transmitted from an antenna is shielded by a shielding object above a reference plane, based on a reception signal received by the antenna that transmits and receives radio waves; and calculating a height of the shielding object from the reference plane based on the shielding length and a positional relationship between the shielding object and the antenna.
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