Light distribution control device
The light distribution control device accurately sets the first area's range based on vehicle positions in the image, ensuring wide visibility and minimizing dazzling by adjusting illuminance, addressing misalignment and frequent changes in conventional systems.
Patent Information
- Application Number
- JP2023006844
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-01-19
- Publication Date
- 2025-10-15
- Estimated Expiration
- 2043-01-19
AI Technical Summary
Conventional light distribution control devices inaccurately set the range of the first area due to misalignment and frequent changes, leading to improper illumination or dimming of forward vehicles, which can result in reduced visibility and dazzling.
A light distribution control device that sets the range of the first area based on the lateral and vertical positions of the forward vehicle in the captured image, adjusting the illuminance to ensure appropriate illumination without dazzling, using a control unit to calculate angles and margins for precise light distribution.
Ensures long-distance visibility over a wider range without dazzling the occupants of the forward vehicle, by accurately setting the first area's range and reducing the possibility of illumination errors.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a light distribution control device capable of controlling the light distribution of a headlight. [Background technology]
[0002] Conventionally, there has been known a light distribution control device that, when an imaging device detects a forward vehicle ahead of a host vehicle, controls the light distribution of headlights so that a predetermined first area including the forward vehicle and a predetermined second area other than the detected vehicle are illuminated with different illuminances (see, for example, Patent Document 1). The light distribution control device sets the illuminance illuminated in the first area to be lower than the illuminance illuminated in the second area. This light distribution control ensures long-distance visibility without dazzling occupants of the forward vehicle, thereby improving nighttime driving safety. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2016-159709 Summary of the Invention
[0004] A conventional light distribution control device (hereinafter referred to as a "conventional device") calculates the position (distance and direction) of a forward vehicle based on an image (a captured image obtained by capturing an image of the area ahead of the vehicle) acquired from an imaging device, and calculates the range of the first area based on the calculated position of the forward vehicle. This configuration may result in a misalignment of the position of the first area. Specifically, the conventional device calculates the distance from the vehicle to the forward vehicle based on the size of the vehicle's lights in the captured image (in other words, the number of pixels occupied by the lights in the captured image). Depending on the imaging conditions, the lights may be captured larger than they actually are or may be distorted. In this case, the conventional device cannot properly calculate the distance from the vehicle to the forward vehicle, which may result in an error in the position of the forward vehicle and a misalignment of the first area. As a result, the forward vehicle may be illuminated or may be blocked or dimmed to a position significantly distant from the forward vehicle, resulting in a problem in which the range of the first area is not properly set.
[0005] In addition, the conventional device identifies the type of vehicle ahead (a preceding vehicle or an oncoming vehicle) based on the captured image using machine learning, and calculates the range of the first area based on the identified type of vehicle ahead. With this configuration, the size of the first area may change frequently. That is, the conventional device determines the size of the first area according to the type of vehicle ahead. However, depending on the image processing capabilities of the imaging device, the type of vehicle ahead may be erroneously identified. If this phenomenon occurs frequently, the size of the first area changes frequently, resulting in a problem in which the range of the first area is not set appropriately.
[0006] The present invention has been made to address the above-mentioned problems. That is, one of the objects of the present invention is to provide a light distribution control device that can appropriately set the range of a predetermined first area that includes a forward vehicle.
[0007] The light distribution control device according to the present invention (hereinafter referred to as the "device of the present invention") is an imaging device capable of imaging a forward vehicle present in front of the host vehicle; a headlight capable of illuminating a region ahead of the host vehicle; The vehicle is equipped with a control unit capable of performing light distribution control that controls the light distribution of the headlights so that a predetermined first area including the vehicle in front and a predetermined second area other than the vehicle are illuminated with different illuminances based on an image obtained by capturing an image of the area in front of the vehicle. The control unit setting the illuminance irradiated in the first region to be lower than the illuminance irradiated in the second region; The range of the first area is set based on the lateral position of the forward vehicle in the captured image.
[0008] The lateral length of the captured image (strictly speaking, the effective range of the captured image) corresponds to the lateral angle of view (horizontal angle of view) of the imaging device. Therefore, by setting the range of the first area based on the lateral position of the forward vehicle in the captured image, the position of the first area does not shift and the size of the first area does not change frequently, and the range of the first area can be set appropriately.
[0009] In one aspect of the invention, If the lateral angles of the right and left ends of the vehicle ahead relative to the front and rear axes of the host vehicle are defined as a right vehicle angle and a left vehicle angle, respectively, The control unit calculating the right vehicle angle and the left vehicle angle based on the lateral positions of the right and left edges of the forward vehicle in the captured image, and calculating a difference between the right vehicle angle and the left vehicle angle as a vehicle width angle of the forward vehicle; the light distribution control is performed so that the right margin from the right edge of the forward vehicle to the right edge of the first area increases as at least one of the absolute value of the right vehicle angle or the vehicle width angle increases; The light distribution control is configured to be performed so that the left margin from the left edge of the forward vehicle to the left edge of the first area increases as at least one of the absolute value of the left vehicle angle or the vehicle width angle increases.
[0010] This configuration ensures long-distance visibility over a wider range in the left and right directions in the area necessary for driving operations without dazzling occupants of the vehicle ahead. Furthermore, in areas that do not significantly affect driving operations, the possibility of dazzling occupants of the vehicle ahead can be reliably reduced. As a result, the range of the first area can be more appropriately set.
[0011] In one aspect of the invention, If the angles in the longitudinal direction of the upper end and lower end of the vehicle ahead relative to the front-rear axis of the host vehicle are defined as an upper vehicle angle and a lower vehicle angle, respectively, The control unit calculating the upper vehicle angle and the lower vehicle angle based on the vertical positions of the upper and lower ends of the forward vehicle in the captured image, and calculating a difference between the upper vehicle angle and the lower vehicle angle as a vehicle height angle of the forward vehicle; The light distribution control is configured to be performed so that as at least one of the absolute value of the central vehicle angle, which is the angle midway between the right vehicle angle and the left vehicle angle, or the vehicle height angle increases, the upper margin from the upper end of the forward vehicle to the upper end of the first area and the lower margin from the lower end of the forward vehicle to the lower end of the first area increase.
[0012] This configuration ensures long-distance visibility over a wider range in the vertical direction in the area necessary for driving operations without dazzling the occupants of the vehicle ahead. Furthermore, in areas that do not significantly affect driving operations, the possibility of dazzling the occupants of the vehicle ahead can be reliably reduced. As a result, the range of the first area can be more appropriately set.
[0013] One aspect of the present invention is If an angle in the lateral direction to the right of the longitudinal axis is defined as a positive value, and an angle in the lateral direction to the left of the longitudinal axis is defined as a negative value, then: When the oncoming lane in which the oncoming vehicle is traveling is located on the right side of the traveling lane in which the host vehicle is traveling, the rate of increase of the right margin with an increase in the right vehicle angle having a positive value is greater than the rate of increase of the right margin with a decrease in the right vehicle angle having a negative value, and the rate of increase of the left margin with a decrease in the left vehicle angle having a negative value is greater than the rate of increase of the left margin with an increase in the left vehicle angle having a positive value; When the oncoming lane is located to the left of the driving lane, The rate of increase of the right margin with a decrease in the right vehicle angle having a negative value is greater than the rate of increase of the right margin with an increase in the right vehicle angle having a positive value, and the rate of increase of the left margin with an increase in the left vehicle angle having a positive value is greater than the rate of increase of the left margin with a decrease in the left vehicle angle having a negative value.
[0014] This configuration can more reliably reduce the possibility of dazzling the occupants of the vehicle ahead in an area that does not significantly affect driving operations.
[0015] In one aspect of the invention, The angles in the lateral direction of the right and left ends of the vehicle ahead relative to the front-rear axis of the host vehicle are defined as the right vehicle angle and the left vehicle angle, respectively, and the angles in the longitudinal direction of the upper and lower ends of the vehicle ahead relative to the front-rear axis are defined as the upper vehicle angle and the lower vehicle angle, respectively. The control unit calculating the right vehicle angle and the left vehicle angle based on the lateral positions of the right and left edges of the forward vehicle in the captured image, respectively; calculating the upper vehicle angle and the lower vehicle angle based on the vertical positions of the upper and lower ends of the forward vehicle in the captured image, and calculating a difference between the upper vehicle angle and the lower vehicle angle as a vehicle height angle of the forward vehicle; The light distribution control is configured to be performed so that as at least one of the absolute value of the central vehicle angle, which is the angle midway between the left vehicle angle and the right vehicle angle, or the vehicle height angle increases, the upper margin from the upper end of the forward vehicle to the upper end of the first area and the lower margin from the lower end of the forward vehicle to the lower end of the first area increase.
[0016] This configuration ensures long-distance visibility over a wider range in the vertical direction in the area necessary for driving operations without dazzling the occupants of the vehicle ahead. Furthermore, in areas that do not significantly affect driving operations, the possibility of dazzling the occupants of the vehicle ahead can be reliably reduced. As a result, the range of the first area can be more appropriately set.
[0017] In the above description, in order to facilitate understanding of the invention, the symbols used in the embodiments are added in parentheses to the constituent elements of the invention corresponding to the embodiments, but each constituent element of the invention is not limited to the embodiments defined by the symbols. [Brief explanation of the drawings]
[0018] [Figure 1] 1 is a schematic configuration diagram of a light distribution control device according to an embodiment of the present invention. [Figure 2] 4 is a flowchart showing a routine executed by a CPU of a light distribution control ECU. [Figure 3] 10A and 10B are diagrams for explaining a method of calculating the right / left / center / upper / lower vehicle angles of an oncoming vehicle in a captured image. [Figure 4] FIG. 10 is a diagram showing graphs for right / left / top / bottom margin coefficients. [Figure 5] 4 is a diagram showing the range of a first area of an oncoming vehicle in FIG. 3. FIG. [Figure 6] FIG. 2 is a diagram showing the range of a first region of a plurality of forward vehicles in a captured image. DETAILED DESCRIPTION OF THE INVENTION
[0019] A light distribution control device (hereinafter also referred to as "the present embodiment device") according to an embodiment of the present invention will be described below with reference to the drawings. The present embodiment device is mounted on a vehicle. As shown in FIG. 1, the present embodiment device includes a light distribution control ECU 10, a camera sensor 20, a vehicle state sensor 21, and a headlight 30. The camera sensor 20, the vehicle state sensor 21, and the headlight 30 are connected to the light distribution control ECU 10. The light distribution control ECU 10 includes a microcomputer as a main component. The microcomputer includes a CPU, a ROM, a RAM, an interface (I / F), etc., and the CPU realizes various functions by executing instructions (programs, routines) stored in the ROM. Hereinafter, a vehicle equipped with the present embodiment device will be referred to as "host vehicle." The light distribution control ECU 10 will also be simply referred to as "ECU 10." In this embodiment, the oncoming lane in which an oncoming vehicle is traveling is located to the right of the lane in which the host vehicle is traveling.
[0020] The camera sensor 20 (image capturing device) is installed on the rear surface of the inner mirror (rear view mirror) of the vehicle. When the vehicle is viewed from above, the optical axis of the camera sensor 20 coincides with the longitudinal axis of the vehicle. Here, the longitudinal axis is an axis that passes through the center of the vehicle in the width direction and is parallel to the ground surface of the vehicle. The camera sensor 20 captures an image of the area ahead of the vehicle and generates a captured image (image data). The camera sensor 20 transmits information including the generated captured image to the ECU 10 as image information every time a predetermined time elapses.
[0021] The vehicle state sensor 21 is a plurality of types of sensors that detect the vehicle state. The vehicle state sensor 21 includes a vehicle speed sensor, an acceleration sensor, a yaw rate sensor, and a steering angle sensor. The vehicle state sensor 21 transmits a detection signal to the ECU 10 every time a predetermined time elapses. The ECU 10 calculates the speed (vehicle speed), acceleration, yaw rate, and steering angle of the host vehicle based on the detection signal. The ECU 10 acquires information including the calculated vehicle speed, acceleration, yaw rate, and steering angle as vehicle state information.
[0022] The headlights 30 include a left headlight provided at the left front end of the vehicle and a right headlight provided at the right front end of the vehicle. The left and right headlights are driving headlights that function as high beams. In this embodiment, a passing headlight that functions as a low beam is not shown. The headlights 30 are lights that use an LED matrix as a light source. The LED matrix of the left headlight includes multiple (e.g., 20,000) LED groups. When viewed from the front of the vehicle, these LED groups are two-dimensionally arranged at predetermined intervals in the horizontal and vertical directions. The structure of the right headlight is symmetrical to the structure of the left headlight with respect to the longitudinal axis of the vehicle. The ECU 10 independently controls the lighting and extinguishing of the LED groups in the left and right headlights for each LED. The ECU 10 also independently controls the current value supplied to the LED groups in the left and right headlights for each LED. When the ECU 10 controls the lighting of the LED groups, the LED groups emit light to illuminate the area ahead of the vehicle.
[0023] The ECU 10 detects marking lines extending ahead of the vehicle based on image information. The ECU 10 calculates the shape of a lane based on the detected marking lines. Here, a lane is the area between two adjacent marking lines.
[0024] In addition, the ECU 10 detects light sources based on the image information. The light sources include ambient light and other vehicle light. Ambient light is light from street lamps, buildings, etc. Other vehicle light is light from a vehicle ahead, typically the headlights of an oncoming vehicle and the taillights of a preceding vehicle. Note that a preceding vehicle includes not only a vehicle ahead in the driving lane but also a vehicle ahead traveling in the same direction as the host vehicle in an adjacent lane. The ECU 10 identifies the type of detected light source (ambient light or other vehicle light) using a well-known method. For example, if the displacement of a light source over a predetermined period is less than a predetermined displacement threshold, the ECU 10 identifies the light source as ambient light. If the displacement of the light source is equal to or greater than the displacement threshold, the ECU 10 identifies the light source as other vehicle light.
[0025] Furthermore, the ECU 10 calculates the ambient illuminance, which is the illuminance around the vehicle, based on the image information by a well-known method. For example, the ECU 10 calculates the ambient illuminance by converting the luminance value of each pixel constituting the captured image into illuminance.
[0026] The ECU 10 is capable of executing adaptive high-beam control. Hereinafter, this control will also be referred to as "AH control." The AH control controls the light distribution (high beam distribution) of the headlights 30 so that a predetermined first area including a forward vehicle and a predetermined second area other than the first area are illuminated with different illuminances. The illuminance illuminated in the first area is set lower than the illuminance illuminated in the second area. In other words, the first area may be referred to as a "dimming area" or a "shading area." In this embodiment, the ECU 10 controls the light distribution of the headlights 30 so that the first area is not illuminated. Therefore, the first area is a shading area. The AH control is control executed by a light distribution control device that employs an adaptive high-beam system. The adaptive high-beam system is synonymous with "adaptive driving beam."
[0027] The ECU 10 starts AH control when a predetermined start condition is met. The start condition is met when all of the following conditions 1 to 4 are met. (Condition 1) The vehicle speed is equal to or greater than a predetermined first vehicle speed threshold (for example, 15 km / h). (Condition 2) Light from another vehicle is detected. (Condition 3) There is little ambient light. (Condition 4) The environmental illuminance is equal to or less than a predetermined first environmental illuminance threshold value. Condition 3 is met, for example, when the number of ambient lights is equal to or less than a predetermined number threshold, and no ambient light whose light intensity exceeds a predetermined intensity threshold is detected.
[0028] On the other hand, the ECU 10 ends the AH control when a predetermined end condition is met. The end condition is met when at least one of the following conditions 5 to 7 is met. (Condition 5) The vehicle speed is equal to or less than a predetermined second vehicle speed threshold (for example, 12 km / h) that is lower than the first vehicle speed threshold. (Condition 6) There is a lot of ambient light. (Condition 7) The environmental illuminance is equal to or greater than a predetermined second environmental illuminance threshold value that is greater than the first environmental illuminance threshold value. Condition 6 is met, for example, when the number of ambient lights exceeds a number threshold, or when one or more ambient lights whose light intensity exceeds an intensity threshold are detected.
[0029] However, the conditions under which the start condition and the end condition are satisfied are not limited to those described above.
[0030] During the period from when the start condition is satisfied until the end condition is satisfied, the CPU of the ECU 10 repeatedly executes the routine shown in the flowchart of FIG. 2. When a predetermined timing arrives, the CPU proceeds from step 200 to step 210, where it acquires image information and vehicle state information. Next, the CPU proceeds to step 220, where it calculates the vehicle angle θ of the vehicle ahead based on the image information. The vehicle angle θ includes a right vehicle angle θr, a left vehicle angle θle, a central vehicle angle θm, an upper vehicle angle θu, and a lower vehicle angle θl. The right vehicle angle θr is the angle (lateral angle) of the right edge of the vehicle ahead relative to the longitudinal axis of the host vehicle. The left vehicle angle θle is the lateral angle of the left edge of the vehicle ahead relative to the longitudinal axis. The central vehicle angle θm is the lateral angle of the center of the vehicle ahead relative to the longitudinal axis. The upper vehicle angle θu is the angle (longitudinal angle) of the upper edge of the vehicle ahead relative to the longitudinal axis. The lower vehicle angle θl is the vertical angle of the lower end of the vehicle ahead relative to the longitudinal axis.
[0031] The CPU estimates the outline F of the forward vehicle based on the light source of the forward vehicle detected from the captured image I. The outline F is rectangular and consists of a pair of sides extending horizontally and a pair of sides extending vertically. Hereinafter, the horizontal position of any point P in the captured image I will be referred to as the "horizontal position." The vertical position of the point P will be referred to as the "vertical position." The CPU calculates the horizontal position Pr of the right edge of the outline F, the horizontal position Ple of the left edge of the outline F, the horizontal position Pm of the center M of the outline F, the vertical position Pu of the top edge of the outline F, and the vertical position Pl of the bottom edge of the outline F. The horizontal positions Pr, Ple, and Pm can each be calculated as the horizontal length (i.e., the number of pixels) from the vanishing point FOE (Focus of Expansion) of the captured image I. The vertical positions Pu and Pl can each be calculated as the vertical length (i.e., the number of pixels) from the vanishing point FOE. The CPU converts the lateral position Pr, lateral position Ple, lateral position Pm, vertical position Pu, and vertical position Pl into angles using a method described below, thereby calculating the right vehicle angle θr, left vehicle angle θle, central vehicle angle θm, upper vehicle angle θu, and lower vehicle angle θl.
[0032] A specific description will be given with reference to FIG. 3. FIG. 3 is a diagram showing a captured image I1 when the headlights 130, which are light sources of the oncoming vehicle V1, are captured by the camera sensor 20. For ease of explanation, FIG. 3 also shows the body of the oncoming vehicle V1, but only the headlights 130 are actually captured. Note that the lane markings are omitted from the illustration. The CPU estimates the outline F1 of the oncoming vehicle V1 based on the detected headlights 130. The CPU then calculates the lateral position P1r of the right end of the outline F1, the lateral position P1le of the left end of the outline F1, the lateral position P1m of the center M of the outline F1, the vertical position P1u of the top end of the outline F1, and the vertical position P1l of the bottom end of the outline F1.
[0033] The lateral length LL of the captured image I1 corresponds to the horizontal angle of view θL of the camera sensor 20. As described above, the optical axis of the camera sensor 20 passes through the center of the vehicle in the width direction (lateral direction). That is, the angle (lateral angle with respect to the longitudinal axis) corresponding to the lateral position PfoeL of the vanishing point FOE is 0°. Therefore, the right vehicle angle θ1r of the oncoming vehicle V1 can be calculated by proportionally allocating the "horizontal angle of view θL of the camera sensor 20" based on the "ratio of the lateral position P1r to the lateral length LL of the captured image I1" (θ1r = θL × P1r / LL). The left vehicle angle θ1le of the oncoming vehicle V1 can be calculated by proportionally allocating the "horizontal angle of view θL" based on the "ratio of the lateral position P1le to the lateral length LL" (θ1le = θL × P1le / LL). The central vehicle angle θ1m of the oncoming vehicle V1 can be calculated by proportionally allocating the "horizontal angle of view θL" by the "ratio of the lateral position P1m to the lateral length LL" (θ1m = θL × P1m / LL), where θ1m = (θ1r + θ1le) / 2.
[0034] On the other hand, the length LV of the captured image I1 in the vertical direction corresponds to the vertical angle of view θV of the camera sensor 20. In this embodiment, the optical axis of the camera sensor 20 is oriented in a direction such that the vanishing point FOE is located at the center of the captured image I1 in the vertical direction. Therefore, the angle corresponding to the vertical position PfoeV of the vanishing point FOE (the vertical angle with respect to the longitudinal axis) is 0°. Therefore, the upper vehicle angle θ1u of the oncoming vehicle V1 can be calculated by proportionally allocating the "vertical angle of view θV of the camera sensor 20" based on the "ratio of the vertical position P1u to the vertical length LV of the captured image I1" (θ1u = θV × P1u / LV). The lower vehicle angle θ1l of the oncoming vehicle V1 can be calculated by proportionally allocating the "vertical angle of view θV" based on the "ratio of the vertical position P1l to the vertical length LV" (θ1l = θV × P1l / LV).
[0035] In this embodiment, angles in the lateral direction to the right of the longitudinal axis are defined as positive values, and angles in the lateral direction to the left of the longitudinal axis are defined as negative values. That is, in the captured image I, when the lateral position Pr or lateral position Ple of the forward vehicle is located on the right side with respect to the lateral position PfoeL, the right vehicle angle θr or the left vehicle angle θle is a positive value. Also, in the captured image I, when the lateral position Pr or lateral position Ple of the forward vehicle is located on the left side with respect to the lateral position PfoeL, the right vehicle angle θr or the left vehicle angle θle is a negative value. In addition, in this embodiment, when the longitudinal position Pu or longitudinal position Pl of the forward vehicle is located above the longitudinal position PfoeV in the captured image I, the upper vehicle angle θu or the lower vehicle angle θl is defined as a positive value. Also, in the captured image I, when the longitudinal position Pu or longitudinal position Pl of the forward vehicle is located below the longitudinal position PfoeV, the upper vehicle angle θu or the lower vehicle angle θl is defined as a negative value.
[0036] After calculating the vehicle angle θ of the forward vehicle, the CPU proceeds to step 230, where it calculates the right vehicle width angle Δθr and the left vehicle width angle Δθle from the vehicle width angle ΔθL of the forward vehicle, and calculates the upper vehicle height angle Δθu and the lower vehicle height angle Δθl from the vehicle height angle ΔθV of the forward vehicle. The vehicle width angle ΔθL is the difference between the right vehicle angle θr and the left vehicle angle θle. The vehicle width angle ΔθL corresponds to the lateral length of the forward vehicle (strictly speaking, the outline F) in the captured image I. The CPU calculates half the value of the vehicle width angle ΔθL as the right vehicle width angle Δθr and the left vehicle width angle Δθle, respectively. That is, Δθr = Δθle = ΔθL / 2 = |θr - θle| / 2. The right vehicle width angle Δθr corresponds to the lateral length from the center M of the forward vehicle to its right edge. The left vehicle width angle Δθle corresponds to the lateral length from the center M of the forward vehicle to its left edge. On the other hand, the vehicle height angle ΔθV is the difference between the upper vehicle angle θu and the lower vehicle angle θl. The vehicle height angle ΔθV corresponds to the vertical length of the forward vehicle in the captured image I. The CPU calculates half the value of the vehicle height angle ΔθV as the upper vehicle height angle Δθu and the lower vehicle height angle Δθl, respectively. That is, Δθu = Δθl = ΔθV / 2 = |θu - θl| / 2. The upper vehicle height angle Δθu corresponds to the vertical length from the center M of the forward vehicle to its upper end. The lower vehicle height angle Δθl corresponds to the vertical length from the center M of the forward vehicle to its lower end. In the example of FIG. 3, the right vehicle width angle Δθ1r and left vehicle width angle Δθ1le of the oncoming vehicle V1 are both |θ1r - θ1le| / 2, and the upper vehicle height angle Δθ1u and lower vehicle height angle Δθ1l of the oncoming vehicle V1 are both |θ1u - θ1l| / 2.
[0037] After calculating the right / left vehicle width angles Δθr / Δθle and the up / down vehicle height angles Δθu / Δθl of the forward vehicle, the CPU proceeds to step 240 and determines margin coefficients C for defining the range of the first region R1. The margin coefficients C include a right margin coefficient Cr, a left margin coefficient Cle, an up margin coefficient Cu, and a down margin coefficient Cl.
[0038] FIG. 4 is a graph defining the relationship between the vehicle angle θ and the margin coefficient C. The right margin coefficient Cr is determined by reading out the margin coefficient C corresponding to the right vehicle angle θr with reference to the right margin coefficient graph Gr. According to the graph Gr, the right margin coefficient Cr increases as the absolute value of the right vehicle angle θr increases. The left margin coefficient Cle is determined by reading out the margin coefficient C corresponding to the left vehicle angle θle with reference to the left margin coefficient graph Gle. According to the graph Gle, the left margin coefficient Cle increases as the absolute value of the left vehicle angle θle increases. Meanwhile, the upper margin coefficient Cu and the lower margin coefficient Cl are determined by reading out the margin coefficient C corresponding to the central vehicle angle θm with reference to the upper margin coefficient graph Gu and the lower margin coefficient graph Gl, respectively. Both the graphs Gu and Gl are symmetrical with respect to the vertical axis, and the upper margin coefficient Cu and the lower margin coefficient Cl each increase slightly as the absolute value of the central vehicle angle θm increases. The minimum values of these margin coefficients Cr, Cle, Cu and Cl are all greater than one.
[0039] After determining the margin coefficient C, the CPU proceeds to step 250, where it calculates a target shading angle Δθt corresponding to the range of the first region R1 and defines (sets) the range of the first region R1. The target shading angle Δθt includes a right target shading angle Δθrt, a left target shading angle Δθlet, an upper target shading angle Δθut, and a lower target shading angle Δθlt. The right target shading angle Δθrt corresponds to the lateral length from the center M of the forward vehicle to the right end of the first region R1 and can be calculated by multiplying the right vehicle width angle Δθr by the right margin coefficient Cr. The left target shading angle Δθlet corresponds to the lateral length from the center M to the left end of the first region R1 and can be calculated by multiplying the left vehicle width angle Δθle by the left margin coefficient Cle. The upper target shading angle Δθut corresponds to the longitudinal length from the center M to the top end of the first region R1 and can be calculated by multiplying the upper vehicle height angle Δθu by the upper margin coefficient Cu. The lower target shading angle Δθlt corresponds to the vertical length from the center M to the lower end of the first region R1 and can be calculated by multiplying the lower vehicle height angle Δθl by the lower margin coefficient Cl. As a result, the horizontal angle θrt corresponding to the right end of the first region R1 is θrt = (θr + θle) / 2 + Δθr × Cr, the horizontal angle θlet corresponding to the left end of the first region R1 is θlet = (θr + θle) / 2 - Δθle × Cle, the vertical angle θut corresponding to the upper end of the first region R1 is θut = (θu + θl) / 2 + Δθu × Cu, and the vertical angle θlt corresponding to the lower end of the first region R1 is θlt = (θu + θl) / 2 - Δθl × Cl.
[0040] 5 is a diagram showing the range of the first region R11 of the oncoming vehicle V1. The lateral angle θ1rt, the lateral angle θ1let, the vertical angle θ1ut, and the vertical angle θ1lt corresponding to the right / left / upper / lower ends of the first region R11 can be calculated as follows: θ1rt=(θ1r+θ1le) / 2+Δθ1rt(Δθ1rt=Δθ1r×C1r) θlet=(θ1r+θ1le) / 2-Δθ1let(Δθ1let=Δθ1le×C1le) θ1ut=(θ1u+θ1l) / 2+Δθ1ut(Δθ1ut=Δθ1u×C1u) θ1lt=(θ1u+θ1l) / 2-Δθ1lt(Δθ1lt=Δθ1l×C1l)
[0041] The range of the first region R1 is defined by calculating the angles θrt, θlet, θut, and θlt. As is clear from the above explanation, as at least one of the absolute values of the vehicle width angle ΔθL (= 2Δθr = 2Δθle) or the right vehicle angle θr increases, the right margin from the right edge of the forward vehicle to the right edge of the first region R1 increases. Also, as at least one of the absolute values of the vehicle width angle ΔθL or the left vehicle angle θle increases, the left margin from the left edge of the forward vehicle to the left edge of the first region R1 increases. Furthermore, as at least one of the absolute values of the vehicle height angle ΔθV (= 2Δθu = 2Δθl) or the central vehicle angle θm (= (θr + θle) / 2) increases, the upper margin from the top edge of the forward vehicle to the top edge of the first region R1 and the lower margin from the bottom edge of the forward vehicle to the bottom edge of the first region R1 increase.
[0042] After defining the range of the first region R1, the CPU proceeds to step 260 and selects a group of LEDs to be turned off from the LED matrix of the headlight 30. That is, the group of LEDs corresponding to the first region R1 is set as the target of the light-off control. The group of LEDs to be turned off can be selected by a well-known method using the angles θrt, θlet, θut, θlt and vehicle state information.
[0043] Next, the CPU proceeds to step 270, where it executes AH control by turning off the LED group selected in step 260 and turning on the other LED groups. As a result, the first region R1 is shaded and only the second region R2 is selectively illuminated. After that, the CPU proceeds to step 295 and temporarily ends this routine.
[0044] As shown in FIG. 4 , in this embodiment, the rate of increase of the right margin coefficient Cr with an increase in the right vehicle angle θr (positive value) is greater than the rate of increase of the right margin coefficient Cr with a decrease in the right vehicle angle θr (negative value). Therefore, for the same absolute value of the right vehicle angle θr, the right margin of the first region R1 is larger when the right end of the leading vehicle is located on the right side of the vehicle's longitudinal axis compared to when the leading vehicle is located on the left side. Also, in this embodiment, the rate of increase of the left margin coefficient Cle with a decrease in the left vehicle angle θle (negative value) is greater than the rate of increase of the left margin coefficient Cle with an increase in the left vehicle angle θle (positive value). Therefore, for the same absolute value of the left vehicle angle θle, the left margin of the first region R1 is larger when the left end of the leading vehicle is located on the left side of the vehicle's longitudinal axis compared to when the leading vehicle is located on the right side. On the other hand, for the same center vehicle angle θm, the upper margin coefficient Cu is greater than the lower margin coefficient Cl. Note that in FIG. 4 , the scale of the vertical axis of graph Gr is different from the scale of the vertical axis of graph Gle.
[0045] A specific description will be given with reference to Figure 6. Figure 6 is a diagram showing a captured image I2 when the headlights 130 of oncoming vehicle V1 and the taillights 230 and 330 of leading vehicles V2 and V3 are captured by camera sensor 20. For ease of explanation, Figure 6 also shows the bodies of vehicles V1, V2, and V3, but what is actually captured is only the headlights 130 and taillights 230 and 330. Note that lane markings are omitted from the illustration. The angles θ1r, θ1le, θ1m, θ1u, θ1l, θ1rt, θ1let, θ1ut, θ1lt of the oncoming vehicle V1, the angles θ2r, θ2le, θ2m, θ2u, θ2l, θ2rt, θ2let, θ2ut, θ2lt of the preceding vehicle V2, and the angles θ3r, θ3le, θ3m, θ3u, θ3l, θ3rt, θ3let, θ3ut, θ3lt of the preceding vehicle V3 are calculated by the CPU performing the processing of steps 210 to 250 in Figure 2.
[0046] 6, the right margin coefficient Cr2 corresponding to the right vehicle angle θ2r of the preceding vehicle V2 is larger than the right margin coefficient Cr3 corresponding to the right vehicle angle θ3r of the preceding vehicle V3. In addition, the right vehicle width angle Δθ2r of the preceding vehicle V2 is larger than the right vehicle width angle Δθ3r of the preceding vehicle V3. Therefore, the right target shading angle Δθ2rt of the preceding vehicle V2 is larger than the right target shading angle Δθ3rt of the preceding vehicle V3. In other words, the right margin of the first region R12 of the preceding vehicle V2 is larger than the right margin of the first region R13 of the preceding vehicle V3.
[0047] 6, the vehicle width angle Δθ1L of the oncoming vehicle V1 is equal to the vehicle width angle Δθ2L of the preceding vehicle V2, but the oncoming vehicle V1 is located to the right of the vehicle's longitudinal axis, while the preceding vehicle V2 is located to the left of the longitudinal axis. Therefore, the right margin coefficient Cr1 of the oncoming vehicle V1 is significantly larger than the right margin coefficient Cr2 of the preceding vehicle V2. Therefore, the right margin of the first region R11 is significantly larger than the right margin of the first region R12.
[0048] For the same reason, the left margin of the first region R12 is significantly larger than the left margin of the first region R13 and the left margin of the first region R11.
[0049] On the other hand, the upper margin coefficient Cu2 corresponding to the central vehicle angle θ2m of the preceding vehicle V2 is slightly larger than the upper margin coefficient Cu3 corresponding to the central vehicle angle θ3m of the preceding vehicle V3. In addition, the upper vehicle height angle Δθ2u of the preceding vehicle V2 is larger than the upper vehicle height angle Δθ3u of the preceding vehicle V3. Therefore, the upper target shading angle Δθ2ut of the preceding vehicle V2 is larger than the upper target shading angle Δθ3ut of the preceding vehicle V3. In other words, the upper margin of the first region R12 is larger than the upper margin of the first region R13.
[0050] 6, the upper margin coefficient Cu1 corresponding to the central vehicle angle θ1m of the oncoming vehicle V1 is equal to the upper margin coefficient Cu2 corresponding to the central vehicle angle θ2m of the preceding vehicle V2 (because θ1m=θ2m). In addition, the vehicle height angle Δθ1V of the oncoming vehicle V1 is equal to the vehicle height angle Δθ2V of the preceding vehicle V2. Therefore, the upper margin of the first region R11 is equal to the upper margin of the first region R12.
[0051] For the same reason, the bottom margin of the first region R12 is larger than the bottom margin of the first region R13. The bottom margin of the first region R11 is equal to the bottom margin of the first region R12.
[0052] As described above, in the present embodiment, the right / left / upper / lower margins of the first region R become smaller as the absolute values of the right / left / center vehicle angles θr / θle / θm (i.e., the absolute values of the lateral position of the forward vehicle in the captured image I) become smaller. Therefore, the margin of the first region in the region directly in front of the host vehicle becomes significantly smaller compared to the margin of the first region under conventional AH control. On the other hand, in the present embodiment, the right / left / upper / lower margins of the first region R become larger as the absolute values of the right / left / center vehicle angles θr / θle / θm become larger. Therefore, the margin of the first region in the region diagonally forward of the host vehicle is set to be somewhat wider. Generally, the region required for driving operation is the region directly in front of the host vehicle. Therefore, the configuration of the present embodiment can ensure long-distance visibility over a wider range in the region required for driving operation without dazzling the occupants of the forward vehicle. Furthermore, in regions that do not significantly affect driving operation, the possibility of dazzling the occupants of the forward vehicle can be reliably reduced. Therefore, the range of the first region can be set appropriately.
[0053] In particular, when the oncoming lane is located to the right of the driving lane, the possibility of the host vehicle entering the area to the right of the oncoming vehicle is extremely low. Therefore, in this case, by making the rate of increase in the right margin coefficient Cr associated with an increase in the right vehicle angle θr (which has a positive value) larger than the rate of increase in the right margin coefficient Cr associated with a decrease in the right vehicle angle θr (which has a negative value), the possibility of dazzling the occupants of the preceding vehicle can be more reliably reduced in areas that do not significantly affect driving operations. Also, when the oncoming lane is located to the right of the driving lane, the possibility of the host vehicle entering the area to the left of the preceding vehicle is extremely low. Therefore, in this case, by making the rate of increase in the left margin coefficient Cle associated with a decrease in the left vehicle angle θle (which has a negative value) larger than the rate of increase in the left margin coefficient Cle associated with an increase in the left vehicle angle θle (which has a positive value), the possibility of dazzling the occupants of the preceding vehicle can be more reliably reduced in areas that do not significantly affect driving operations.
[0054] Although the light distribution control device according to the embodiment has been described above, the present invention is not limited to the above embodiment, and various modifications are possible without departing from the object of the present invention.
[0055] For example, when the oncoming lane is located to the left of the driving lane, the behavior of graph Gr in FIG. 4 may be inverted with respect to the vertical axis. Similarly, the behavior of graph Gle in FIG. 4 may be inverted with respect to the vertical axis. In this case, the rate of increase of the right margin in the first region R with a decrease in the right vehicle angle θr having a negative value is greater than the rate of increase of the right margin with an increase in the right vehicle angle θr having a positive value. Also, the rate of increase of the left margin in the first region R with an increase in the left vehicle angle θle having a positive value is greater than the rate of increase of the left margin with a decrease in the left vehicle angle θle having a negative value. This configuration can also achieve the same effects as the present embodiment of the device.
[0056] In addition, as described above, the method of calculating the distance from the host vehicle to the forward vehicle based on the size of the lights of the forward vehicle in the captured image is likely to be unable to calculate the distance appropriately. However, when the conditions that the forward vehicle is located directly in front of the host vehicle and the distance to the forward vehicle is relatively short (for example, 50 m or less) are met, the above method can still properly calculate the distance to the forward vehicle. Therefore, the light distribution control device may be configured to perform control similar to conventional AH control when the above conditions are met, and to perform the AH control of the above embodiment only when the above conditions are not met.
[0057] Furthermore, the light distribution control device may be equipped with a radar sensor capable of detecting a preceding vehicle. If the position of the preceding vehicle detected by the camera sensor 20 closely matches the position of the preceding vehicle detected by the radar sensor, control similar to conventional AH control may be performed.
[0058] Furthermore, the light distribution control device may be configured to calculate only the horizontal angles θrt and θlet corresponding to the right and left ends of the first region R1, or may be configured to calculate only the vertical angles θut and θlt corresponding to the top and bottom ends of the first region R1.
[0059] Furthermore, the camera sensor 20 may be installed on the vehicle so that its optical axis passes through a position shifted from the center of the vehicle in the vehicle width direction. In this case, the origin of the margin coefficient graph corresponds to the center of the vehicle in the vehicle width direction. Furthermore, the vehicle angle θ can be appropriately calculated from the horizontal length and vertical length from the vanishing point FOE in the captured image I by taking into account the offset amount of the optical axis of the camera sensor 20 from the longitudinal axis of the vehicle.
[0060] Furthermore, the present invention is also applicable to vehicles capable of executing automatic driving control. [Explanation of symbols]
[0061] 10: Light distribution control ECU, 20: Camera sensor, 21: Vehicle state sensor, 30: Headlight
Claims
1. an imaging device capable of imaging a forward vehicle present in front of the host vehicle; a headlight capable of illuminating a region ahead of the host vehicle; a control unit capable of performing light distribution control to control the light distribution of the headlights so that a predetermined first area including the vehicle ahead and a predetermined second area other than the vehicle are illuminated with different illuminances based on an image obtained by capturing an image of the area ahead of the vehicle; Equipped with If the lateral angles of the right and left ends of the vehicle ahead relative to the front and rear axes of the host vehicle are defined as a right vehicle angle and a left vehicle angle, respectively, The control unit setting the illuminance irradiated in the first region to be lower than the illuminance irradiated in the second region; setting a range of the first area based on a lateral position of the forward vehicle in the captured image; calculating the right vehicle angle and the left vehicle angle based on the lateral positions of the right and left edges of the forward vehicle in the captured image, and calculating a difference between the right vehicle angle and the left vehicle angle as a vehicle width angle of the forward vehicle; the light distribution control is performed so that the right margin from the right edge of the forward vehicle to the right edge of the first area increases as at least one of the absolute value of the right vehicle angle or the vehicle width angle increases; the light distribution control is executed so that the left margin from the left edge of the forward vehicle to the left edge of the first area increases as at least one of the absolute value of the left vehicle angle or the vehicle width angle increases. It was configured as follows: Light distribution control device.
2. The light distribution control device according to claim 1, If the angles in the longitudinal direction of the upper end and lower end of the vehicle ahead relative to the front-rear axis of the host vehicle are defined as an upper vehicle angle and a lower vehicle angle, respectively, The control unit calculating the upper vehicle angle and the lower vehicle angle based on the vertical positions of the upper and lower ends of the forward vehicle in the captured image, and calculating a difference between the upper vehicle angle and the lower vehicle angle as a vehicle height angle of the forward vehicle; the light distribution control is executed so that an upper margin from the upper end of the forward vehicle to the upper end of the first region and a lower margin from the lower end of the forward vehicle to the lower end of the first region increase as at least one of an absolute value of a central vehicle angle, which is a central angle between the right vehicle angle and the left vehicle angle, or the vehicle height angle increases. It was configured as follows: Light distribution control device.
3. The light distribution control device according to claim 1 or 2, If an angle in the lateral direction to the right of the longitudinal axis is defined as a positive value, and an angle in the lateral direction to the left of the longitudinal axis is defined as a negative value, then: When the oncoming lane in which the oncoming vehicle is traveling is located on the right side of the traveling lane in which the host vehicle is traveling, the rate of increase of the right margin with an increase in the right vehicle angle having a positive value is greater than the rate of increase of the right margin with a decrease in the right vehicle angle having a negative value, and the rate of increase of the left margin with a decrease in the left vehicle angle having a negative value is greater than the rate of increase of the left margin with an increase in the left vehicle angle having a positive value; When the oncoming lane is located to the left of the driving lane, an increase rate of the right margin associated with a decrease in the right vehicle angle having a negative value is greater than an increase rate of the right margin associated with an increase in the right vehicle angle having a positive value, and an increase rate of the left margin associated with an increase in the left vehicle angle having a positive value is greater than an increase rate of the left margin associated with a decrease in the left vehicle angle having a negative value; Light distribution control device.
4. An imaging device capable of imaging a vehicle ahead of the vehicle; a headlight capable of illuminating a region ahead of the host vehicle; a control unit capable of performing light distribution control to control the light distribution of the headlights so that a predetermined first area including the vehicle ahead and a predetermined second area other than the vehicle are illuminated with different illuminances based on an image obtained by capturing an image of the area ahead of the vehicle; Equipped with The angles in the lateral direction of the right and left ends of the vehicle ahead relative to the front-rear axis of the host vehicle are defined as the right vehicle angle and the left vehicle angle, respectively, and the angles in the longitudinal direction of the upper and lower ends of the vehicle ahead relative to the front-rear axis are defined as the upper vehicle angle and the lower vehicle angle, respectively. The control unit setting the illuminance irradiated in the first region to be lower than the illuminance irradiated in the second region; setting a range of the first area based on a lateral position of the forward vehicle in the captured image; calculating the right vehicle angle and the left vehicle angle based on the lateral positions of the right and left edges of the forward vehicle in the captured image, respectively; calculating the upper vehicle angle and the lower vehicle angle based on the vertical positions of the upper and lower ends of the forward vehicle in the captured image, and calculating a difference between the upper vehicle angle and the lower vehicle angle as a vehicle height angle of the forward vehicle; the light distribution control is executed so that an upper margin from the upper end of the forward vehicle to the upper end of the first region and a lower margin from the lower end of the forward vehicle to the lower end of the first region increase as at least one of an absolute value of a central vehicle angle, which is a central angle between the left vehicle angle and the right vehicle angle, or the vehicle height angle increases. It was configured as follows: Light distribution control device.
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