Object detection device
By using the random time determination unit in the object detection device to determine the random time according to the gear position and stagger the ultrasonic transmission time point, the problem of ultrasonic interference between vehicles is solved, and more efficient object detection is achieved.
Patent Information
- Application Number
- CN202380068565.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2022-09-30
- Filing Date
- 2023-09-28
- Publication Date
- 2025-05-06
AI Technical Summary
In the problem of ultrasonic interference between vehicles, it is difficult for the existing object detection device to effectively avoid interference when both the vehicle and other vehicles are equipped with the same device, resulting in the time point of sending ultrasonic waves that may be aligned and interference cannot be avoided.
By introducing a random time determination unit into the object detection device, a random time for staggering the ultrasonic transmission time point is determined based on the gear position of the vehicle (the position of the shift lever), so that the transmission time point is delayed by the determined random time point and a new transmission time point obtained.
Even if other vehicles are equipped with the same object detection device as the one in the vehicle, ultrasonic interference can be effectively avoided, and the accuracy of object detection is improved.
Smart Images

Figure CN119948358A_ABST
Abstract
Description
Technical Field
[0001] Embodiments of the present invention relate to an object detection device. Background Art
[0002] In a vehicle control system or the like, an object detection device is used. The object detection device transmits a transmission wave such as ultrasound from a vehicle and receives a reception wave (reflected wave) generated by the transmission wave being reflected by an object, thereby detecting an object existing around the vehicle.
[0003] In such an object detection device, when the time point of transmitting ultrasonic waves is constant between the host vehicle and other vehicles, interference may occur such that the ultrasonic waves transmitted by other vehicles are mistaken for the ultrasonic waves transmitted by the host vehicle. In the prior art, such interference is avoided by changing the time point of transmitting ultrasonic waves by the host vehicle.
[0004] Patent Document 1: Japanese Patent No. 6413620
[0005] Patent Document 2: Japanese Patent Application Publication No. 2018-59826
[0006] However, when the vehicle is interfered with, the other vehicles are also interfered with by the ultrasonic wave from the vehicle. Therefore, in such prior art, when the vehicle and other vehicles are equipped with the same object detection device with the same interference avoidance method, when both the vehicle and other vehicles take actions to avoid interference, as a result, the timing of sending ultrasonic waves may be aligned, and interference cannot be avoided. Summary of the invention
[0007] The object detection device of the embodiment is an object detection device that is mounted on a vehicle and detects objects existing around the above-mentioned vehicle, and includes: a control unit, which controls a transceiver unit that sends a transmission wave and receives a reception wave generated by the above-mentioned transmission wave being reflected by the above-mentioned object to make the transceiver unit send the above-mentioned transmission wave at a predetermined transmission time point; and a determination unit, which determines a waiting time, that is, a random time, for shifting the above-mentioned transmission time point based on the position of a shift lever, that is, a gear position, that causes the transmission of the above-mentioned vehicle to switch, and the above-mentioned control unit controls the above-mentioned transceiver unit to send the above-mentioned transmission wave at a new transmission time point obtained by delaying the above-mentioned transmission time point by the determined above-mentioned random time.
[0008] According to the embodiment of the present invention, as an example, even when the same type of object detection device as that of the own vehicle is mounted on another vehicle, interference by ultrasonic waves can be reliably avoided by delaying the random time according to the gear position. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Figure 1 It is a plan view showing an example of the structure of the vehicle according to the embodiment.
[0010] Figure 2 This is a block diagram showing an example of the hardware configuration of the vehicle control system according to the embodiment.
[0011] Figure 3 This is a block diagram showing an example of the functional configuration of the object detection device according to the present embodiment.
[0012] Figure 4A 1 is a diagram showing an example of a random table when the shift position is D indicating forward movement.
[0013] Figure 4B 1 is a diagram showing an example of a random table when the shift position is R indicating reverse.
[0014] Figure 4C 1 is a diagram showing an example of a random table when the shift position is P indicating parking.
[0015] Figure 5 This is a flowchart showing an example of a procedure of ultrasonic transmission processing according to the present embodiment.
[0016] Figure 6 This is a diagram showing an example of the timing of transmitting ultrasonic waves at random times in a conventional object detection device.
[0017] Figure 7 This is a diagram showing an example of the timing of transmitting ultrasonic waves at random times in a conventional object detection device. DETAILED DESCRIPTION
[0018] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. The structures of the embodiments described below and the operations and effects brought about by the structures are merely examples, and the present invention is not limited to the following descriptions.
[0019] Figure 1 1 is a top view showing an example of the structure of a vehicle 1 according to the embodiment. The vehicle 1 is an example of a mobile body equipped with the object detection device according to the embodiment. The object detection device according to the embodiment is a device that detects objects existing around the vehicle 1 based on information such as TOF (Time Of Flight) and Doppler shift obtained by transmitting a transmission wave from the vehicle 1 and receiving a reception wave (reflected wave) generated by the transmission wave being reflected by the object.
[0020] The object detection device according to the present embodiment is connected to a plurality of transceivers 21A to 21L. Here, when it is not necessary to distinguish between the plurality of transceivers 21A to 21L, they are hereinafter referred to as the transceiver 21 .
[0021] Each transceiver 21 is provided on the vehicle body 2 as the exterior of the vehicle 1, transmits ultrasonic waves (an example of transmission waves) toward the outside of the vehicle body 2, and receives reflected waves from objects existing outside the vehicle body 2 as reception waves. Figure 1 In the example shown, four transceivers 21A to 21D are arranged at the front end of the vehicle body 2, four transceivers 21E to 21H are arranged at the rear end, two transceivers 21I and 21J are arranged at the right side surface, and two transceivers 21K and 21L are arranged at the left side surface. The number and installation positions of the transceivers 21 are not limited to this example.
[0022] Figure 2 1 is a block diagram showing an example of a hardware configuration of a vehicle control system 50 according to an embodiment. The vehicle control system 50 performs processing for controlling the vehicle 1 based on information output from the transceiver 21. The vehicle control system 50 according to this embodiment mainly includes an ECU (Electronic Control Unit) 100, a plurality of transceivers 21, a brake system 221, a buzzer 222, an engine 223, and a shift sensor 224.
[0023] The ECU 100 and each transceiver 21 are connected via a LIN (Local Interconnect Network) 240 as an in-vehicle network. In addition, the ECU 100 and the brake system 221, buzzer 222, engine 223, and shift sensor 224 are connected via a CAN (Controller Area Network) 230 as an in-vehicle network.
[0024] Each transceiver 21 includes a vibrator 211 formed by a piezoelectric element, an amplifier, etc., and realizes the transmission and reception of ultrasonic waves through the vibration of the vibrator 211. Specifically, each transceiver 21 transmits the ultrasonic wave generated by the vibration of the vibrator 211 as a transmission wave, and detects the vibration of the vibrator 211 formed by the reflected wave (received wave) obtained by the reflection of the transmission wave by objects such as obstacles O and road surface RS. The vibration of the vibrator 211 is converted into an electrical signal, and based on the electrical signal, the TOF corresponding to the distance from the transceiver 21 to the obstacle O, the Doppler shift information corresponding to the relative speed of the obstacle O, etc. can be obtained.
[0025] In addition, Figure 2In the example shown, a configuration is shown in which both transmission of the transmission wave and reception of the reception wave are performed using a single transducer 211, but the configuration of the transceiver 21 is not limited thereto. For example, a configuration in which the transmission side and the reception side are separated may be used, such as a configuration in which a transducer for transmitting the transmission wave and a transducer for receiving the reception wave are separately provided.
[0026] ECU 100 is a unit that executes various processes for controlling vehicle 1 based on various information. ECU 100 can control brake system 221, engine 223, etc. or output sound to buzzer 222 by sending control signals via CAN 230. ECU 100 can also receive detection results of shift sensor 224, etc. via CAN 230.
[0027] like Figure 2 As shown, ECU 100 includes CPU (Central Processing Unit) 130, SSD (Solid State Drive) 121, ROM (Read Only Memory) 122, and RAM (Random Access Memory) 123. ECU 100 is an example of an object detection device. ECU 100 is sometimes referred to as object detection device 100.
[0028] In addition to being able to perform output processing such as outputting an alarm to the buzzer 222, detecting an object, and determining whether there is interference with an object, the CPU 130 can also perform various calculation processing and control. The ROM 122 is a non-volatile storage device. The ROM 122 stores a program in advance. The CPU 130 can read the program stored in the ROM 122 and perform calculation processing according to the program.
[0029] RAM123 temporarily stores various data used in the calculation of CPU130. In addition, SSD121 is a rewritable non-volatile storage unit that can store data even when the power of ECU100 is disconnected. In addition, CPU130, ROM122, RAM123, etc. can be integrated in the same package. In addition, ECU100 can also be a structure that uses other logic operation processors such as DSP (Digital Signal Processor), logic circuits, etc. instead of CPU130. In addition, HDD (Hard Disk Drive) can be set instead of SSD121, and SSD121 and HDD can also be set separately from ECU100.
[0030] The brake system 221 is, for example, an ABS (Anti-lock Brake System) that suppresses brake locking, an anti-skid device (ESC: Electronic Stability Control) that suppresses the vehicle 1 from skidding when turning, an electric brake system that increases the braking force (performs brake assist), BBW (Brake By Wire), etc.
[0031] The engine 223 is a prime mover for driving the vehicle 1 .
[0032] The buzzer 222 is provided inside the vehicle 1 and outputs an alarm.
[0033] The shift sensor 224 detects the position of the shift lever for switching the transmission of the vehicle 1 , that is, the shift position, and notifies the ECU 100 of the position.
[0034] Next, the functional structure of the object detection device (ECU) 100 will be described.
[0035] Figure 3 1 is a block diagram showing an example of the functional structure of the object detection device 100 according to the present embodiment. Figure 3 As shown, the object detection device 100 according to the present embodiment mainly includes a sound wave control unit 150 , a vehicle state estimation unit 160 , a notification control unit 162 , a vehicle information management unit 163 , and a brake control unit 164 .
[0036] The vehicle state estimating unit 160 estimates various states of the vehicle 1 .
[0037] When the vehicle 1 approaches an object, that is, when the abnormality detection unit 1522 described below determines that the distance between the vehicle 1 and the object calculated by the detection distance calculation unit 1521 described below based on the ultrasonic waves transmitted and received by the transceiver 21 is less than a predetermined distance, the notification control unit 162 reports by outputting an alarm from the buzzer 222. The vehicle information management unit 163 manages various information of the vehicle 1. The brake control unit 164 controls the brakes made by the brake system 221.
[0038] The sound wave control unit 150 controls the transmission of ultrasonic waves by the transceiver unit 21, or manages information obtained based on the reflected waves received by the transceiver unit 21. Figure 3 As shown, the sound wave control unit 150 includes a transmission and reception control unit 1510 and a transmission and reception information management unit 1520 .
[0039] The transceiver control unit 1510 controls the transceiver unit 21 to transmit and receive ultrasonic waves. Figure 3As shown, the transmission and reception control unit 1510 includes a transmission control unit 1511 , a random time determination unit 1512 , and a random table 1513 .
[0040] The wave transmission control unit 1511 controls the transceiver unit to transmit the ultrasonic wave at a predetermined transmission time point. More specifically, the wave transmission control unit 1511 controls the transceiver unit 21 to transmit the ultrasonic wave at a new transmission time point obtained by delaying the transmission time point by a random time determined by a random time determination unit 1512 described below. Here, the random time is a waiting time for staggering the transmission time point of the ultrasonic wave. The wave transmission control unit 1511 is an example of a control unit.
[0041] The random time determination unit 1512 receives the shift position detected by the shift sensor 224 from the shift sensor 224. The random time determination unit 1512 determines the random time based on the inputted shift position. The random time determination unit 1512 is an example of a determination unit.
[0042] Specifically, the random time determination unit 1512 refers to the random table 1513 and determines the random time of the ultrasonic wave as the transmission wave emitted from the transceiver units 21A~21D arranged at the front of the vehicle 1 and the random time of the ultrasonic wave emitted from the transceiver units 21E~21H arranged at the rear of the vehicle 1 to different times according to the gear position.
[0043] The random table 1513 is stored in a storage medium such as the SSD 121. The random table 1513 determines the random time (an example of the first random time) of the transmission wave emitted from the transceiver 21A to 21D disposed at the front of the vehicle 1 and the random time (an example of the second random time) of the transmission wave emitted from the transceiver 21E to 21H disposed at the rear of the vehicle 1 for each gear position.
[0044] Figure 4A to Figure 4C This is a diagram showing an example of a random table according to the present embodiment. Figure 4A 1 is a diagram showing an example of a random table when the shift position is D indicating forward movement. Figure 4B 1 is a diagram showing an example of a random table when the shift position is R indicating reverse. Figure 4C 1 is a diagram showing an example of a random table when the shift position is P indicating parking.
[0045] exist Figure 4A to Figure 4CIn the random time Fr (front) is the random time (first random time) of the transmission wave (that is, ultrasonic wave) emitted from the transceiver 21A to 21D provided at the front of the vehicle 1, and the random time Rr (rear) is the random time (second random time) of the transmission wave (that is, ultrasonic wave) emitted from the transceiver 21E to 21H provided at the rear of the vehicle 1. In addition, three random times are set respectively, but an arbitrary random time is determined from them.
[0046] like Figure 4A As shown in FIG. 1 , when the gear is D, the random time of Fr (the first random time) is shorter than the random time of Rr. Figure 4B As shown, when the shift position is R, the random time of Fr (first random time) is set to be longer than the random time of Rr.
[0047] Therefore, the random time determination unit 1512 determines the random time of Fr and the random time of Rr by referring to the random table 1513, so that when the gear position is D indicating forward movement, the random time of the above-mentioned transmission wave emitted from the transceiver 21 of Fr, i.e., the transceiver 21A~21D arranged at the front part of the vehicle 1 is shorter than the random time of the transmission wave emitted from the transceiver 21 of Rr, i.e., the transceiver 21E~21H arranged at the rear part of the vehicle 1.
[0048] In addition, the random time determination unit 1512 determines the random time of Fr and the random time of Rr by referring to the random table 1513, so that when the gear position is R indicating reverse, the random time of the above-mentioned transmission wave emitted from the transceiver 21 of Fr, that is, the transceiver 21A~21D arranged at the front part of the vehicle 1, is longer than the random time of the transmission wave emitted from the transceiver 21 of Rr, that is, the transceiver 21E~21H arranged at the rear part of the vehicle 1.
[0049] The transmission and reception information management unit 1520 manages information based on the reflected waves received by the transmission and reception unit 21. Figure 3 As shown, the transmission and reception information management unit 1520 includes a detection distance calculation unit 1521 and an abnormality detection unit 1522 .
[0050] The detection distance calculation unit 1521 calculates the distance from the vehicle to the object based on the transmission wave transmitted by the transmission and reception unit 21 and the received reflected wave. Here, a known method is used as a method for calculating the distance.
[0051] The abnormality detection unit 1522 detects abnormalities of the vehicle 1, etc. In the present embodiment, when the distance calculated by the detection distance calculation unit 1521 is less than a predetermined distance, the abnormality detection unit 1522 determines that the object is close. In addition, the abnormality detection unit 1522 detects whether the ultrasonic wave has caused interference based on the distance calculated by the detection distance calculation unit 1521. For example, when the abnormality detection unit 1522 detects that the distance calculated by the detection distance calculation unit 1521 is less than a predetermined threshold value three times in a row, it determines that the ultrasonic wave has caused interference. In addition, the detection method of ultrasonic interference is not limited to this.
[0052] Next, the ultrasonic wave transmission process performed by the object detection device 100 according to the present embodiment having the above configuration will be described.
[0053] Figure 5 2 is a flowchart showing an example of the procedure of the ultrasonic wave transmission process according to the present embodiment. The transmission process is executed from the start of the vehicle 1 running and is performed every time the shift sensor 224 detects a shift.
[0054] First, the random time determination unit 1512 obtains the current gear position from the shift sensor 224 (S11). Then, the random time determination unit 1512 determines whether the gear position is D (S12). If the gear position is D (S12: Yes), the random time determination unit 1512 selects Figure 4A The random table (S13) for the D range shown is a random table for Fr (front) and Rr (rear).
[0055] In S12, when the gear position is not D (S12: No), the random time determination unit 1512 determines whether the gear position is R (S14). When the gear position is R (S14: Yes), the random time determination unit 1512 selects Figure 4B The random table (S15) for the R range shown is a random table for Fr (front) and Rr (rear).
[0056] In S14, when the gear position is not R (S14: No), the random time determination unit 1512 determines whether the gear position is P (S16). When the gear position is P (S16: Yes), the random time determination unit 1512 selects Figure 4C The random table for the P range shown is used as a random table for Fr (front) and Rr (rear) (S17).
[0057] In S16 , when the shift position is not P ( S16 : No), the random time determination unit 1512 selects the random table corresponding to the previous shift position as the random table for Fr (front) and Rr (rear) ( S18 ).
[0058] In this way, after the random table is selected in S13, S15, S17, and S18, the random time determination unit 1512 obtains and determines the random time set in the selected random table (S19). Next, the wave transmission control unit 1511 controls the transceiver 21 to transmit the ultrasonic wave at a time point offset from the random time determined in S19, thereby, the transceiver 21 transmits the ultrasonic wave at a time point offset from the random time (S20).
[0059] In the past, ultrasonic waves were sent in a vehicle to detect an object, and when the distance between the vehicle and the object was close to a predetermined distance, an alarm was output from a buzzer. Here, when the time point of sending ultrasonic waves is constant between the vehicle and the other vehicle, when the vehicle receives ultrasonic waves sent by other vehicles, the ultrasonic waves are sometimes mistakenly recognized as reflected waves of the ultrasonic waves sent by the vehicle, so-called interference. For example, if ultrasonic waves are sent simultaneously between the vehicle and the other vehicle, the ultrasonic waves returned from half the distance are mistakenly recognized as reflected waves in the vehicle. Therefore, if the object is at a close distance and is mistakenly recognized as within the range of the buzzer output, the buzzer is mistakenly output.
[0060] Therefore, as a method for avoiding erroneous recognition caused by such interference, there is a method as follows: in an existing object detection device, when the same distance is continuously detected at a predetermined threshold or above, it is determined that interference has occurred. For example, the object detection device determines that interference has occurred when the distance is 30 cm detected three times in a row. When it is determined that interference has occurred, the object detection device can avoid continuous detection of the same distance by staggering the transmission time of the ultrasonic wave.
[0061] Figure 6 , Figure 7 FIG. 1 is a diagram showing an example of the timing of transmitting ultrasonic waves at random intervals in a conventional object detection device. Figure 6 As shown, for example, ultrasonic waves are transmitted at intervals of 168 ms, but when it is determined that interference occurs, the object detection device transmits ultrasonic waves every 172 ms with a random time difference of 4 ms, thereby avoiding interference.
[0062] However, when the vehicle receives ultrasonic waves from other vehicles, other vehicles may also receive ultrasonic waves from the vehicle. In this case, it is possible to consider the case where vehicles are equipped with object detection devices that use the same method as the existing interference avoidance processing. In this case, the object detection device detects that it is interfered with, and even if the transmission time of the ultrasonic wave of the vehicle is shifted, if other vehicles also use the same method to shift the transmission time, such as Figure 7 As shown, this will again cause the transmission time points to coincide, which may cause interference.
[0063] In contrast, in the present embodiment, the random time determination unit 1512 determines the waiting time, i.e., the random time, for shifting the transmission time point according to the position, i.e., the gear position, of the shift lever of the transmission of the vehicle 1, and the wave transmission control unit 1511 controls the transceiver 21 so that the ultrasonic wave is transmitted at a new transmission time point obtained by delaying the transmission time point by the determined random time. Therefore, according to the present embodiment, even if another vehicle is equipped with the same type of object detection device as the vehicle itself, the random time is delayed according to the gear position, so that the interference of the ultrasonic wave can be effectively avoided.
[0064] Furthermore, in the present embodiment, the random time determination unit 1512 determines the random time of the ultrasonic waves emitted from the transceivers 21A to 21D provided at the front of the vehicle 1 and the random time of the ultrasonic waves emitted from the transceivers 21E to 21H provided at the rear of the vehicle 1 to be different times. Therefore, according to the present embodiment, even if the other vehicle is equipped with the same type of object detection device as the vehicle itself, and because the random time of the transceivers 21A to 21D at the front of the vehicle 1 is different from the random time of the transceivers 21E to 21H at the rear of the vehicle 1, even if the vehicle itself is following the other vehicle, interference of ultrasonic waves can be more reliably avoided.
[0065] Furthermore, in the present embodiment, the random time determination unit 1512 determines the random time of Fr and the random time of Rr so that when the gear position is D indicating forward movement, the random time of Fr (front), i.e., the random time of the ultrasonic wave emitted from the transceiver 21 provided at the front of the vehicle 1 (first random time), is shorter than the random time of Rr (rear), i.e., the random time of the ultrasonic wave emitted from the transceiver 21 provided at the rear of the vehicle 1 (second random time). Therefore, according to the present embodiment, when the vehicle 1 is moving forward, the random time of Fr is shorter than the random time of Rr, and therefore, the transmission time point of the ultrasonic wave of Fr is earlier than the transmission time point of the ultrasonic wave of Rr, and object detection can be performed with higher accuracy, and interference of ultrasonic waves can be effectively avoided.
[0066] In addition, in the present embodiment, the random time determination unit 1512 further determines the random time of Fr and the random time of Rr so that when the gear position is R indicating reverse, the random time of Fr (front), i.e., the random time of the ultrasonic wave emitted from the transceiver 21 provided at the front of the vehicle 1 (the first random time), is longer than the random time of Rr (rear), i.e., the random time of the ultrasonic wave emitted from the transceiver 21 provided at the rear of the vehicle 1 (the second random time). Therefore, according to the present embodiment, when the vehicle 1 moves backward, the random time of Fr is longer than the random time of Rr, and therefore, the transmission time point of the ultrasonic wave of Rr is earlier than the transmission time point of the ultrasonic wave of Fr, and object detection can be performed with higher accuracy, thereby being able to effectively avoid interference of ultrasonic waves.
[0067] In addition, in the present embodiment, the SSD 121 storing the random table 1513 is provided, and the random table 1513 determines the random time of Fr and the random time of Rr for each gear position, and the random time determination unit 1512 determines the random time of Fr and the random time of Rr based on the gear position and the random table 1513. Therefore, according to the present embodiment, the random time can be determined by switching the random table, so that the interference of ultrasonic waves can be avoided simply and more reliably.
[0068] In the above-mentioned embodiment, the CPU 130 reads and executes the program stored in the storage device such as the ROM 122 and the SSD 121, thereby realizing various functional modules such as the wave control unit 1511, the random time determination unit 1512, the detection distance calculation unit 1521, the abnormality detection unit 1522, the vehicle state estimation unit 160, the report control unit 162, the vehicle information management unit 163, and the brake control unit 164. However, it is not limited to this. For example, the various functional modules such as the wave control unit 1511, the random time determination unit 1512, the detection distance calculation unit 1521, the abnormality detection unit 1522, the vehicle state estimation unit 160, the report control unit 162, the vehicle information management unit 163, and the brake control unit 164 can also be realized by independent hardware.
[0069] In addition, the object detection program executed by the object detection device 100 of the above-described embodiment is provided by being installed in advance in a ROM or the like.
[0070] The object detection program executed in the object detection device 100 of the above-mentioned embodiment can also be configured as a file in an installable or executable form recorded on a recording medium that can be read by a computer, such as a CD-ROM, floppy disk (FD), CD-R, DVD (Digital Versatile Disk), etc.
[0071] Furthermore, the object detection program executed by the object detection device 100 of the above embodiment may be stored on a computer connected to a network such as the Internet and provided by downloading it via the network. Furthermore, the object detection program executed by the object detection device 100 of the above embodiment may be provided or distributed via a network such as the Internet.
[0072] The object detection program executed by the object detection device 100 of the above-mentioned embodiment becomes a module structure including the above-mentioned parts (wave control unit 1511, random time determination unit 1512, detection distance calculation unit 1521, abnormality detection unit 1522, vehicle state estimation unit 160, report control unit 162, vehicle information management unit 163, brake control unit 164, etc.), and as actual hardware, the CPU reads out and executes the object detection program from the above-mentioned ROM, thereby, the above-mentioned parts are loaded on the main storage device, and the wave control unit 1511, random time determination unit 1512, detection distance calculation unit 1521, abnormality detection unit 1522, vehicle state estimation unit 160, report control unit 162, vehicle information management unit 163, brake control unit 164, etc. are generated on the main storage device.
[0073] Several embodiments of the present invention have been described, but these embodiments are presented as examples and are not intended to limit the scope of the invention. These new embodiments can be implemented in various other ways, and various omissions, substitutions, and changes can be made without departing from the scope of the invention. These embodiments and their variations are included in the scope and purpose of the invention, and are included in the invention described in the claims and their equivalents.
[0074] [Summary of this embodiment]
[0075] The object detection device (100) of this embodiment has at least the following structure.
[0076] That is, the object detection device (100) is an object detection device (100) mounted on a vehicle (1) and detecting an object existing around the vehicle (1), and comprises: a control unit (1511) which controls a transceiver unit (21) which transmits a transmission wave and receives a reception wave generated by the reflection of the transmission wave by the object to transmit the transmission wave at a predetermined transmission time point; and a determination unit (1512) which determines a waiting time, i.e., a random time, for shifting the transmission time point based on a position, i.e., a gear position, of a shift lever for switching a transmission of the vehicle (1), wherein the control unit (1511) controls the transceiver unit (21) to transmit the transmission wave at a new transmission time point obtained by delaying the transmission time point by the determined random time.
[0077] According to this configuration, as an example, even when another vehicle is equipped with the same type of object detection device (100) as the own vehicle, interference of ultrasonic waves can be reliably avoided because the random time is delayed according to the gear position.
[0078] In addition, in the object detection device (100) of the embodiment, the above-mentioned determination unit (1512) sets the random time of the above-mentioned transmission wave emitted from the above-mentioned transceiver unit (21) arranged at the front of the above-mentioned vehicle (1) and the random time of the above-mentioned transmission wave emitted from the above-mentioned transceiver unit (21) arranged at the rear of the above-mentioned vehicle (1) to different times.
[0079] According to this configuration, as an example, when another vehicle is equipped with the same type of object detection device (100) as that of the own vehicle, interference of ultrasonic waves can be more reliably avoided when the own vehicle follows the other vehicle.
[0080] In addition, in the object detection device (100) of the embodiment, the above-mentioned determination unit (1512) determines the random time of the above-mentioned transmission wave emitted from the above-mentioned transceiver (21) arranged at the front of the above-mentioned vehicle (1), that is, the first random time, and the random time of the above-mentioned transmission wave emitted from the above-mentioned transceiver (21) arranged at the rear of the above-mentioned vehicle (1), that is, the second random time, so that when the above-mentioned gear position indicates forward movement, the above-mentioned first random time is shorter than the above-mentioned second random time.
[0081] According to this configuration, as an example, when the vehicle is moving forward, object detection can be performed with higher accuracy, and interference by ultrasonic waves can be reliably avoided.
[0082] In addition, in the object detection device (100) of the embodiment, the above-mentioned determination unit (1512) further determines the above-mentioned first random time and the above-mentioned second random time so that when the above-mentioned gear position indicates reverse, the above-mentioned first random time is longer than the above-mentioned second random time.
[0083] According to this configuration, as an example, when the vehicle moves backward, object detection can be performed with higher accuracy, and interference by ultrasonic waves can be reliably avoided.
[0084] In addition, in the object detection device (100) of the embodiment, there is also a storage unit (121) for storing random information (1513), and the random information (1513) determines the first random time and the second random time according to each of the gear positions, and the determination unit (1512) determines the first random time and the second random time based on the gear position and the random information (1513).
[0085] According to this configuration, as an example, interference by ultrasonic waves can be avoided simply and more reliably.
[0086] Description of Reference Numerals
[0087] 1...Vehicle; 21...Transceiver; 50...Vehicle control system; 100...Object detection device (ECU); 121...SSD; 211...Vibrator; 150...Sound wave control unit; 1510...Transceiver control unit; 1511...Wave control unit; 1512...Random time determination unit; 1513...Random table; 1520...Transceiver information management unit; 1521...Detection distance calculation unit; 1522...Abnormality detection unit; 160...Vehicle state estimation unit; 162...Report control unit; 163...Vehicle information management unit; 164...Braking control unit.
Claims
1. An object detection device is mounted on a vehicle and detects an object existing around the vehicle, characterized in that: have: a control unit for controlling a transceiver unit that transmits a transmission wave and receives a reception wave generated by reflection of the transmission wave by the object, so that the transceiver unit transmits the transmission wave at a predetermined transmission time point; as well as a determination unit that determines a random time, which is a waiting time, for shifting the transmission timing, based on a position, which is a gear position, of a shift lever for switching a transmission of the vehicle, The control unit controls the transceiver unit to transmit the transmission wave at a new transmission time point obtained by delaying the transmission time point by the determined random time.
2. The object detection device according to claim 1, characterized in that: The determination unit sets the random timing of the transmission wave emitted from the transmission and reception unit provided at the front of the vehicle and the random timing of the transmission wave emitted from the transmission and reception unit provided at the rear of the vehicle to different times.
3. The object detection device according to claim 2, characterized in that: The decision unit determines a random time of the transmission wave emitted from the transceiver disposed at the front of the vehicle, i.e., a first random time, and a random time of the transmission wave emitted from the transceiver disposed at the rear of the vehicle, i.e., a second random time, so that when the gear position indicates forward movement, the first random time is shorter than the second random time.
4. The object detection device according to claim 3, characterized in that: The determination unit further determines the first random time and the second random time so that, when the shift position indicates reverse, the first random time is longer than the second random time.
5. The object detection device according to claim 4, characterized in that: The apparatus further comprises a storage unit for storing random information, wherein the random information determines the first random time and the second random time for each of the gear positions. The determination unit determines the first random time and the second random time based on the shift position and the random information.
Citation Information
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