In-vehicle headlight and light projection method
11448379 · 2022-09-20
Assignee
Inventors
Cpc classification
B60Q2300/45
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/143
PERFORMING OPERATIONS; TRANSPORTING
B60Q1/0023
PERFORMING OPERATIONS; TRANSPORTING
F21S41/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/176
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60Q2300/054
PERFORMING OPERATIONS; TRANSPORTING
International classification
F21S41/64
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/25
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/176
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S41/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Reliability of an in-vehicle headlight is improved by changing a light distribution pattern without using any mechanical configuration. The in-vehicle headlight includes a laser light source, a spatial light modulator, a spatial-light-modulator controller, and a projection lens. The laser light source emits a laser light beam. The spatial light modulator modulates a phase distribution of the laser light beam emitted by the laser light source. The spatial-light-modulator controller is provided in a headlight controller, and controls the spatial light modulator. The spatial-light-modulator controller controls the spatial light modulator so as to modulate the phase distribution of the laser light beam, and changes the light distribution pattern projected from the projection lens.
Claims
1. An in-vehicle headlight comprising: a laser light source configured to emit a laser light beam; a spatial light modulator configured to modulate a phase distribution of the laser light beam emitted from the laser light source; a controller configured to control the spatial light modulator; a phosphor configured to radiate fluorescence by the laser light beam, and a projection lens configured to project the laser light beam, emission light of the spatial light modulator and the fluorescence which are incident thereon, wherein the controller controls the spatial light modulator so as to modulate the phase distribution of the laser light beam, and changes a light distribution pattern of the laser light beam projected from the projection lens, wherein the phosphor is provided between the spatial light modulator and the projection lens, wherein the projection lens projects a light beam generated by mixing the fluorescence radiated by the phosphor and the laser light beam, wherein the controller controls the spatial light modulator so that an irradiation pattern of the laser light beam irradiated to the phosphor changes in changing the light distribution pattern, and the controller modulates the phase distribution of the laser light beam, wherein a diffracted beam and a 0th order diffracted beam are irradiated to the phosphor, the diffracted beam being generated by modulation of the phase distribution, the 0th order diffracted beam transmitting or being reflected by the spatial light modulator without being subjected to the modulation of the phase distribution, wherein the controller controls the spatial light modulator so that the irradiation pattern of the diffracted beam irradiated to the phosphor changes in changing the light distribution pattern, and the controller changes the phase distribution, wherein the light beam projected from the projection lens includes at least a first light beam and a second light beam, wherein the first light beam is generated by mixing the 0th order diffracted beam and the fluorescence generated by the 0th order diffracted beam being irradiated to the phosphor, wherein the first light beam based on the 0th order diffracted beam is used as a low-beam headlight, wherein the second light beam is generated by mixing the diffracted beam and the fluorescence generated by the diffracted beam being irradiated to the phosphor, and wherein the second light beam based on the diffracted beam is used as a high beam.
2. The in-vehicle headlight according to claim 1, wherein the spatial light modulator has a plurality of pixels arranged in an array, and is a transmission type of modulating a phase of the incident laser light beam for each of the pixels, and the controller adds the phase to each of the pixels to transform a wavefront shape of the laser light beam and to modulate the phase distribution of the laser light beam.
3. The in-vehicle headlight according to claim 1, wherein the spatial light modulator has a plurality of pixels arranged in an array, and is a reflection type of reflecting the incident laser light beam for each of the pixels to modulate a phase, and the controller controls an operation of each of the pixels to modulate the phase distribution of the laser light beam.
4. The in-vehicle headlight according to claim 1, further comprising a laser drive controller controlling emission intensity of the laser light beam emitted from the laser light source, wherein the laser drive controller changes the emission intensity of the laser light beam emitted from the laser light source in accordance with the light distribution pattern projected from the projection lens.
5. The in-vehicle headlight according to claim 1 further comprising: a photographing unit configured to photograph a situation outside a vehicle; an image processor configured to image-process photography information photographed by the photographing unit; and a recognizer configured to recognize the situation outside the vehicle based on an image processed result of the image processor, wherein the controller changes the light distribution pattern based on a recognition result recognized by the recognizer.
6. The in-vehicle headlight according to claim 1, wherein the phosphor has at least a first fluorescence material and a second fluorescence material, the first fluorescence material emits fluorescence having a yellow spectrum, and the second fluorescence material emits a spectrum of near infrared light.
7. A light projection method by an in-vehicle headlight using a laser light source to project a light beam, the method comprising: emitting a laser light beam from the laser light source; making the laser light beam and fluorescence incident on a projection lens, and projecting a light beam from the projection lens, wherein the laser light beam is incident on a phosphor, and the fluorescence is radiated from the phosphor; and modulating a phase distribution of the laser light beam by a spatial light modulator to change a light distribution pattern of the light beam projected by the projection lens, wherein projecting the light beam causes a light beam generated by mixing fluorescence and the laser light beam to be incident on the projection lens, wherein the fluorescence is generated by irradiating a phosphor with the laser light beam modulated by the spatial light modulator, wherein changing the light distribution pattern changes an irradiation pattern of the laser light beam irradiated to the phosphor to change the light distribution pattern projected from the projection lens, wherein a diffracted beam and a 0th order diffracted beam are irradiated to the phosphor, the diffracted beam being generated by modulation of the phase distribution, the 0th order diffracted beam transmitting or being reflected by the spatial light modulator without being subjected to the modulation of the phase distribution, wherein changing the light distribution pattern changes the phase distribution by the spatial light modulator to change the irradiation pattern of the diffracted beam irradiated to the phosphor, wherein the light beam projected from the projection lens includes at least a first light beam and a second light beam, wherein the first light beam is generated by mixing the 0th order diffracted beam and fluorescence generated by irradiating the 0th order diffracted beam to the phosphor, wherein the first light beam based on the 0th order diffracted beam is used as a low-beam headlight, wherein the second light beam is generated by mixing the diffracted beam and fluorescence generated by irradiating the diffracted beam to the phosphor, and wherein the second light beam based on the diffracted beam is used as a high beam.
8. The in-vehicle headlight according to claim 1, further comprising an aperture stop configured so that light incident on the spatial light modulator have a desired shape, wherein the first light beam generated by the 0th order diffracted beam is directed to an irradiation area of the low-beam headlight by the aperture stop.
Description
BRIEF DESCRIPTIONS OF THE DRAWINGS
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
(16) Components having the same function are denoted by the same reference characters throughout the drawings for describing the embodiments, and the repetitive description thereof will be omitted. Hatching may be used even in a plan view so as to make the drawings easy to see.
First Embodiment
(17) Hereinafter, an embodiment will be described in detail.
(18) <Configuration Example of In-Vehicle Headlight>
(19)
(20) The headlight means an in-vehicle headlight mounted on an automobile or the like and, as shown in
(21) The headlight controller 36 generates various light distribution patterns by controlling an irradiation pattern(s) of the headlight unit 35. Incidentally, a configuration of the headlight controller 36 will be described later with reference to
(22) In
(23) For example, as shown in
(24)
(25) Since a light beam(s) propagates in a direction perpendicular to a wavefront, control of a wavefront shape makes it possible to control light's propagation characteristics. As a result, an irradiation pattern of a light beam separating a predetermined distance therefrom can be controlled to have a desired shape.
(26) Incidentally, a phase amount to be added to each pixel is adjusted by, for example, control etc. of a voltage to each pixel. Used as the spatial light modulator 3 is a liquid-crystal type spatial light modulator in which: liquid crystals of several hundred to several thousand per side are arranged as a two-dimensional pixel; a voltage is controlled for each pixel; and a phase is modulated by varying orientations of liquid crystal molecules in accordance with the controlled voltage.
(27) Incidentally, an optical system of the headlight unit 35 may have a configuration using a reflection type spatial light modulator 3.
(28)
(29) In this case, as shown in
(30) Thus, the spatial light modulator 3 is a solid-state modulator capable of phase modulation without providing a mechanical mechanism(s). Such a modulator brings no occurrence of abrasion and consumption etc. of the mechanical parts, and makes it possible to reduce occurrence of malfunctions etc. of the headlight in accordance with no abrasion occurrence.
(31) In
(32) Blue laser light beams separated into the diffracted beam 6a and the 0th order diffracted beam 7a are irradiated to the phosphor 4 with predetermined irradiation patterns, and a spot(s) subjected to this irradiation is excited. For example, fluorescence having a yellow spectrum occurs from the excited spot.
(33) Part of the diffracted beam 6a and part of the 0th order diffracted beam 7a pass through the phosphor 4, and a mixture of those laser beams and the fluorescence occurring from the phosphor 4 becomes a white light beam. The white light beam is used as a headlight, and is projected in front of the headlight through the projection lens 5.
(34) Here, for convenience, a white light beam generated by the diffracted beam 6a is abbreviated as a white beam 6b, and a white light beam generated by the 0th order diffracted beam 7a is abbreviated as a white beam 7b.
(35) Since the excited spot on the phosphor 4 becomes a source for generating white beams, irradiation patterns with which the diffracted beam 6a and 0th order diffracted beam 7a exciting the phosphor 4 are irradiated onto the phosphor 4 can be virtually regarded as light source shapes of the white beams.
(36) In
(37) Namely, changing the irradiation patterns of the diffracted beam 6a and 0th order diffracted beam 7a that are irradiated onto the phosphor 4 makes it possible to change the light distribution pattern projected in front of the headlight.
(38) Incidentally, although disposing the phosphor 4 at the approximate back focus position of the projection lens 5 is described, a case where the projection lens 5 is a single lens may cause large field curvature. In order that the irradiation pattern irradiated onto the phosphor 4 is clearly projected in front of the headlight through the projection lens 5, the phosphor 4 desirably has a curved shape following (depending on) the field curvature, but not a planar shape.
(39) Therefore, for example, adopted may be a configuration in which the phosphor 4 is made no a planar shape but a curved shape and the diffracted beam 6a and the 0th order diffracted beam 7a are irradiated onto the phosphor having the curved shape.
(40) Additionally, in
(41) <Example of Light Distribution Patterns>
(42)
(43)
(44) Incidentally, although
(45) For example, as shown in
(46) As shown in
(47)
(48) For example, as shown in
(49) When the irradiation pattern on the phosphor 4 is changed from
(50) As described above, the spatial light modulator 3 has the plurality of pixels arranged two-dimensionally, and can modulate the phase of the incident laser light beam for each pixel. That is, by adding an appropriate phase difference to each pixel, the spatial light modulator 3 serves as a phase hologram that generates desired 0th order diffracted beam and diffracted beam.
(51) Therefore, use of the holography principle makes it possible to change irradiation amounts and irradiation patterns of the diffracted beam 6a and 0th order diffracted beam 7a that are irradiated onto the phosphor 4.
(52) A phase distribution(s) added to the laser light beams by the spatial light modulator 3 is previously calculated as a phase distribution(s) to be added by the spatial light modulator 3 by, for example, an Iterative Fourier Transform Algorithm used in a field of a CGH (Computer-generated Hologram) so that the diffracted beam 6a and the 0th order diffracted beam 7a have desired irradiation patterns and irradiation amounts on the phosphor 4.
(53) Then, based on the calculated phase distribution, the phases of the laser light beams incident on the spatial light modulator 3 are modulated for each pixel. At this time, in consideration of an initial phase distribution of the laser light beams incident on the spatial light modulator 3, the spatial light modulator 3 may add, to the laser light beams, a distribution(s) obtained by subtracting the above-mentioned initial phase distribution from the calculated phase distribution.
(54) Timing for changing the irradiation pattern may be changed in cooperation with, for example, a driver's switch operation etc., or may be changed adaptively in accordance with an environment (surrounding situation) photographed by an in-vehicle camera etc. installed in the vehicle.
(55)
(56) The headlight controller 36 controls a light distribution(s) of the headlight unit 35 in cooperation with the above-described in-vehicle camera etc. The headlight controller 36 includes a photographing unit (camera) 60, an image processor 61, a recognizer (recognition unit) 62, a light distribution pattern calculator 63, an addition phase calculator 64, a spatial-light-modulator controller 65, a laser drive controller 66, and a controller 67.
(57) The controller 67 controls respective operations of the photographing unit 60, the image processor 61, the recognizer 62, the light distribution pattern calculator 63, the additional phase calculator 64, the spatial light modulator controller 65, and the laser drive controller.
(58) Based on the control by the controller 67, the laser drive controller 66 drives the laser light source 1 included in the headlight unit 35 of
(59) Information photographed by the photographing unit 60 installed in the vehicle, i.e., by an in-vehicle camera is appropriately subjected to an image processing(s) by the image processor 61, and is sent to the recognizer 62. The recognizer 62 recognizes, for example, a forward vehicle(s), an oncoming vehicle(s), a pedestrian(s), a road sign(s), and traffic lights, etc.
(60) The light distribution pattern calculator 63 calculates, for example, a light distribution pattern(s) etc. avoiding occurrence of glare based on those pieces of recognition information. Additionally, the light distribution pattern is not limited to avoiding the glare's occurrence and, for example, a light distribution pattern(s), which is positively irradiated to the pedestrian, road sign, or the like recognized by the recognizer 62, may be calculated.
(61) The light distribution pattern calculator 63 calculates an appropriate light distribution pattern(s) in accordance with the environment. The addition phase calculator 64 calculates, by using the above-described Iterative Fourier Transform Algorithm or the like, the phase distribution added by the spatial light modulator 3 based on the information calculated by the light distribution pattern calculator 63.
(62) Then, the spatial-light-modulator controller 65 serving as a controller controls the spatial light modulator 3 in the headlight unit 35 of
(63) Here, the optical system configuration of the headlight unit 35 is not limited to that shown in
(64) <Another Configuration Example of Headlight>
(65)
(66) A headlight unit 35 shown in
(67) The lenses 11, 12 are lenses that condense the laser light beam irradiated from the laser light source 1. The laser light beam condensed by the lenses 11, 12 is irradiated to the lens 2 through the optical fiber 13.
(68) Since a configuration subsequent to the lens 2 is almost the same as that shown in
(69) As shown in
(70) As described above, realized can be the headlight capable of arbitrarily controlling the light distribution pattern without providing any mechanical mechanisms. Realization of such a headlight makes it possible to improve the reliability of the headlight.
Second Embodiment
(71) <Setting Example of Low Beam Area of 0th Order Diffracted Beam>
(72) Described in a second embodiment will be a technique for setting a 0th order diffracted beam to a low beam area.
(73)
(74) The light distribution pattern by the second embodiment has, as shown in
(75) Namely, the white beam 7b generated by the 0th order diffracted beam 7a is used as the low beam. In order to hold the irradiation area of the white beam 7b within the region 21, for example, such an aperture stop(s) that an incident shape of the laser light beam incident on the spatial light modulator 3 of
(76) A light distribution of the low beam is a light distribution obtained by considering occurrence avoidance of glare to the forward vehicles and oncoming vehicles, so that no problem of the glare arises even if the low beam is always lighted up. Meanwhile, if the light distribution of the white beam 7b generated by the 0th order diffracted beam exceeds the region 21 irradiated by the low beam as shown in
(77) However, a desired phase distribution may not be generally added faithfully to the laser light beams due to an influence of a quantization error(s) etc. associated with a pixel gap(s) and a gradation number(s) of the phase modulation of the spatial light modulator. To be unable to add a desired phase distribution(s) brings deterioration (reduction) in the diffraction efficiency, which may make a value of intensity of the 0th order diffracted beam larger than an assumed value(s).
(78) For this reason, even if the phase modulation is performed by the spatial light modulator 3 so as to make the 0th order diffracted beam as small as possible, for example, there arises a case of being unable to ignore intensity of an unnecessary 0th order diffracted beam as shown in
(79) Therefore, even if the value of the intensity of the 0th order diffracted beam becomes larger than the assumed value, adopted is such a configuration that the irradiation area in which the white beam 7b generated by the 0th order diffracted beam 7a is irradiated is held within the irradiation region of the low beam so as to be capable of avoiding the problem about the glare.
(80) By adopting such a configuration, a light beam(s) arriving in the high-beam irradiation region leads to being only the white beam 6b generated by the diffracted beam 6a. Therefore, in avoiding the glare to the forward vehicles or oncoming vehicles, the diffraction efficiency may be set to almost zero so that the diffracted beam 6a is not generated. This is possible by not performing the phase modulation by the spatial light modulator 3.
(81) Adopting such a configuration is effective also from the viewpoint of functional safety in order that the white beam 7b generated by the 0th order diffracted beam 7a may be irradiated in the low-beam irradiation region even if the phase modulation cannot be performed due to a failure(s) of the spatial light modulator 3.
(82) Incidentally, in
(83) Further, luminance in the region to which the low beam is irradiated may be given by such a light distribution(s) that the luminance complies with luminance corresponding to each measurement point described in, for example, Section 6.2.4. etc. of the European law (ECE 112).
(84) As described above, the reliability of the headlight can be further improved.
Third Embodiment
(85) <Example of Control of Irradiation Angle>
(86) In this third Embodiment, explained will be a control technique of irradiation angles about a headlight.
(87)
(88) Incidentally, a schematic diagram of the optical system of the headlight is almost the same as that shown in
(89)
(90) In this case, the diffracted beam 6a is irradiated, on the phosphor 4, sideways in a direction horizontal to the 0th order diffracted beam 7a. That is, as shown in
(91) As described above, the irradiation pattern on the phosphor 4 is projected with the image being reversed to the intersection 50 with the optical axis of the projection lens 5. Therefore, as shown in
(92) This makes it possible to bring an increase in light amounts in a wide range in a horizontal direction, and improve horizontal visibility of a driver.
(93) Timing for extending an irradiation-angle range may be cooperated with, for example, a predetermined operation(s) of the driver, or be automatically set in accordance with an in-vehicle camera(s) installed in the vehicle, that is, in accordance with an environment(s) captured by the photographing unit 60 in
(94)
(95)
(96) In
(97) Such extension makes it possible to improve the visibility when the vehicle travels in the traffic intersection, and to easily recognize a pedestrian(s) etc.
(98) Incidentally, the timing for extending the irradiation area may be extended (increased) in cooperation with a steering angle of a steering wheel when the steering angle of the steering wheel is equal to or larger than a predetermined angle.
(99)
(100)
(101) When the vehicle is traveling as shown in
(102) Incidentally, although
(103) As described above, safety can be enhanced while the reliability of the headlight is improved.
Fourth Embodiment
(104) <Setting of Laser Intensity and Diffraction Efficiency>
(105) A fourth Embodiment changes emission intensity of the laser light beams emitted from the laser light source 1 in accordance with a light distribution pattern(s) projected from the projection lens 5. Incidentally, the headlight is almost the same as that of the first embodiment shown in
(106)
(107) In this case, for example, as shown in
(108) Incidentally, an irradiation pattern(s) irradiated onto the phosphor 4 is not limited to that of
(109) Here, numerical values in parentheses adjacent to the reference numerals 6b, 7b shown in
(110) Subsequently, for example, it is assumed that an oncoming vehicle 30 appears from a state shown in
(111) At this time, if luminance of lighting areas other than an area extinguished to avoid the glare is changed, the driver feels uncomfortable. Therefore, it is desirable that the luminance of the respective lighting areas is kept substantially the same.
(112) Thus, as shown in
(113) Therefore, if part of the area is extinguished (lighted off) to avoid the glare, the entire amount of light beams projected in front of the headlight can be reduced from 100 to 90. In other words, reduced can be the emission intensity of the laser light beams emitted from the laser light source 1.
(114) The laser drive controller 66 reduces the emission intensity of the laser light beams emitted from the laser light source 1 when the light distribution pattern projected in front of the headlight is partially extinguished.
(115) Further, if the diffraction efficiency is focused on, the entire light amount of white beams 6b generated by the diffracted beam 6a in the light distribution pattern shown in
(116) Meanwhile, the total light amount of light beams projected in front of the headlight is projected as the amount of 100 as described above, so that diffraction efficiency can be estimated to be approximately 50% if vignetting and stray light of a light flux are ignored.
(117) Similarly, when the diffraction efficiency is roughly estimated in the light distribution pattern shown in
(118) Namely, partially extinguishing the light distribution pattern projected in front of the headlight makes it possible to reduce the emission intensity of the laser light beam emitted from the laser light source 1 as described above and to further reduce the diffraction efficiency.
(119) A technique for reducing diffraction efficiency while a diffraction angle is held can be realized by, for example, in a case of a diffraction grating, changing depth of each grating groove, in other words, phase depth while its grating pitch is held.
(120) In consideration of this, for example, in order to realize the irradiation pattern of the diffracted beam 6a with the maximum diffraction efficiency, the headlight controller 36 first calculates a phase distribution(s) required by the spatial light modulator 3 for the laser light beams through, for example, the Iterative Fourier Transform Algorithm etc.
(121) Then, this calculation can be realized by the spatial light modulator 3 adding, to the laser light beams, a distribution in which the phase distribution is multiplied by a uniform correction coefficient α to change the phase depth. The correction coefficient α may be set appropriately in accordance with an amount of reduction in diffraction efficiency and, for example, setting the correction coefficient α to a value smaller than 1 makes it possible to reduce the diffraction efficiency.
(122) Incidentally, each numerical value in the parentheses described in
(123) Also by the above, the present embodiment can enhance safety while improving the reliability of the headlight.
Fifth Embodiment
(124) <Generation of Infrared Light>
(125) In a fifth embodiment, a headlight generating an infrared light beam will be described.
(126) A semiconductor light source such as a laser has advantages of having longer lifetime and quicker lighting/extinction start-up than a halogen lamp etc. Meanwhile, the halogen lamp etc. have a feature of almost no spectral component in an infrared light region contained therein.
(127) Infrared light plays an important role as a light source for night vision use applications that enhance night-time visibility. Therefore, the present embodiment mounts the laser light source 1 for generating a white beam(s) and, for example, needs to separately mount an infrared light source as a separate light source when infrared light is also required for the night vision use applications. An increase in the number of light sources affects increases in size and cost of an apparatus (devise), so that the number of light sources is desirably as small as possible.
(128) Hereinafter, generation of infrared light by the headlight will be described.
(129)
(130) Incidentally, a configuration of the headlight is almost the same as that of
(131) In this case, as shown in
(132) Incidentally, used as the fluorescent material is a material such as a quantum cutting phosphor which absorbs one high energy photon and emits two lower energy photons, so that use of such a material makes it possible to generate a fluorescent 71 in a range of a band of near infrared light from a wavelength band of a blue laser.
(133) Adopting such a configuration as the phosphor 4 makes it possible to generate the fluorescence of yellow light and near infrared light while a single excitation light source and the phosphor 4 are used.
(134) As described above, the present embodiment can generate the white beams and the near infrared light that are usable as an in-vehicle headlight with a simple configuration.
(135) Additionally, when a divergence angle of fluorescence having a yellow spectrum generated from the phosphor 4 is different from a divergence angle of a blue laser that has passed through the phosphor 4, a region that is not partially mixed therewith and is made no white beam may occur. Therefore, for example, adopted may be such a configuration as to arrange an optical component(s) having wavelength selectivity immediately after the phosphor 4, widen the divergence angle of the blue laser, and approach the divergence angle of the fluorescence.
(136) As described above, the present embodiment can enhance nighttime safety while improving the reliability of the headlight.
(137) In the foregoing, the invention made by the inventor of the present invention has been concretely described based on the embodiments. However, needless to say, the present invention is not limited to the foregoing embodiments, and various modifications and alterations can be made within a range not departing from the gist of the present invention.
(138) Note that the present invention is not limited to the embodiments described above and includes various modification examples. For examples, the embodiments above have been described in detail so as to make the present invention easily understood, and the present invention is not always limited to the embodiment having all of the described constituent elements.
(139) Also, a part of the configuration of one embodiment may be replaced with the configuration of another embodiment, and the configuration of one embodiment may be added to the configuration of another embodiment. Furthermore, another configuration may be added to a part of the configuration of each embodiment, and a part of the configuration of each embodiment may be eliminated or replaced with another configuration.
EXPLANATION OF SYMBOLS
(140) 1 Laser light source; 2 Lens; 3 Spatial light modulator; 4 Phosphor; 5 Projection lens; 11 Lens; 12 Lens; 13 Optical fiber; 15 Light source unit; 16 Projector; 35 Headlight unit; 36 Headlight controller; 60 Photographing unit; 61 Image processor; 62 Recognizer; 63 Light distribution pattern calculator; 64 Addition phase calculator; 65 Spatial-light-modulator controller; 66 Laser drive controller; 67 Controller; 70 Fluorescent material; and 71 Fluorescence.