WO2016093502A1 - Dispositif d'affichage de véhicule et véhicule le comprenant - Google Patents

Dispositif d'affichage de véhicule et véhicule le comprenant Download PDF

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Publication number
WO2016093502A1
WO2016093502A1 PCT/KR2015/012227 KR2015012227W WO2016093502A1 WO 2016093502 A1 WO2016093502 A1 WO 2016093502A1 KR 2015012227 W KR2015012227 W KR 2015012227W WO 2016093502 A1 WO2016093502 A1 WO 2016093502A1
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WO
WIPO (PCT)
Prior art keywords
display
processor
vehicle
information
rolling
Prior art date
Application number
PCT/KR2015/012227
Other languages
English (en)
Korean (ko)
Other versions
WO2016093502A9 (fr
Inventor
엄진우
Original Assignee
엘지전자 주식회사
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from KR1020140177581A external-priority patent/KR101965881B1/ko
Priority claimed from KR1020150123757A external-priority patent/KR101809924B1/ko
Application filed by 엘지전자 주식회사 filed Critical 엘지전자 주식회사
Publication of WO2016093502A1 publication Critical patent/WO2016093502A1/fr
Publication of WO2016093502A9 publication Critical patent/WO2016093502A9/fr

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Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60JWINDOWS, WINDSCREENS, NON-FIXED ROOFS, DOORS, OR SIMILAR DEVICES FOR VEHICLES; REMOVABLE EXTERNAL PROTECTIVE COVERINGS SPECIALLY ADAPTED FOR VEHICLES
    • B60J1/00Windows; Windscreens; Accessories therefor
    • B60J1/08Windows; Windscreens; Accessories therefor arranged at vehicle sides
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60JWINDOWS, WINDSCREENS, NON-FIXED ROOFS, DOORS, OR SIMILAR DEVICES FOR VEHICLES; REMOVABLE EXTERNAL PROTECTIVE COVERINGS SPECIALLY ADAPTED FOR VEHICLES
    • B60J3/00Antiglare equipment associated with windows or windscreens; Sun visors for vehicles
    • B60J3/04Antiglare equipment associated with windows or windscreens; Sun visors for vehicles adjustable in transparency
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K28/00Safety devices for propulsion-unit control, specially adapted for, or arranged in, vehicles, e.g. preventing fuel supply or ignition in the event of potentially dangerous conditions
    • B60K28/02Safety devices for propulsion-unit control, specially adapted for, or arranged in, vehicles, e.g. preventing fuel supply or ignition in the event of potentially dangerous conditions responsive to conditions relating to the driver
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K35/00Instruments specially adapted for vehicles; Arrangement of instruments in or on vehicles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K35/00Instruments specially adapted for vehicles; Arrangement of instruments in or on vehicles
    • B60K35/60Instruments characterised by their location or relative disposition in or on vehicles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60RVEHICLES, VEHICLE FITTINGS, OR VEHICLE PARTS, NOT OTHERWISE PROVIDED FOR
    • B60R21/00Arrangements or fittings on vehicles for protecting or preventing injuries to occupants or pedestrians in case of accidents or other traffic risks
    • B60R21/01Electrical circuits for triggering passive safety arrangements, e.g. airbags, safety belt tighteners, in case of vehicle accidents or impending vehicle accidents
    • B60R21/013Electrical circuits for triggering passive safety arrangements, e.g. airbags, safety belt tighteners, in case of vehicle accidents or impending vehicle accidents including means for detecting collisions, impending collisions or roll-over
    • B60R21/0134Electrical circuits for triggering passive safety arrangements, e.g. airbags, safety belt tighteners, in case of vehicle accidents or impending vehicle accidents including means for detecting collisions, impending collisions or roll-over responsive to imminent contact with an obstacle, e.g. using radar systems
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60WCONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
    • B60W40/00Estimation or calculation of non-directly measurable driving parameters for road vehicle drive control systems not related to the control of a particular sub unit, e.g. by using mathematical models
    • B60W40/08Estimation or calculation of non-directly measurable driving parameters for road vehicle drive control systems not related to the control of a particular sub unit, e.g. by using mathematical models related to drivers or passengers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60WCONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
    • B60W50/00Details of control systems for road vehicle drive control not related to the control of a particular sub-unit, e.g. process diagnostic or vehicle driver interfaces
    • B60W50/08Interaction between the driver and the control system
    • B60W50/14Means for informing the driver, warning the driver or prompting a driver intervention
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays

Definitions

  • the present invention relates to a vehicle display apparatus and a vehicle having the same.
  • the vehicle is a device for moving in the direction desired by the user on board.
  • An example is a car.
  • one of the devices for driving convenience is a sun visor for protecting the occupant's eyes from direct sunlight. Passengers operate the sun visor to block the inflow of light because light entering through the windshield or window of the vehicle directly dazzles the occupants or is reflected by the display device installed in the vehicle to reduce the readability of the display device. do.
  • the vehicle display apparatus is fixedly provided to display a predetermined content.
  • Such a display device has a problem of occupying space even when the display device is not used.
  • the present invention relates to a vehicle display apparatus including a transparent flexible display to be developed as needed to solve the above problems.
  • the vehicle display device is an apiler display disposed in the A-pillar (A-Pillar) and the rolling is rolled to be deployed to the front windshield or side window glass from the apiler
  • a display unit including a display;
  • a processor configured to control the development of the rolling display and to control a screen displayed on the apiler display or the rolling display.
  • the length of the light blocking area is adjusted in consideration of the illuminance, the position of the sun or the gaze of the occupant, there is an effect of adaptively preventing glare of the occupant.
  • an image assisting driving is displayed on the image display area, so that the driver can safely drive the vehicle.
  • FIG. 1 is a view showing the appearance of a vehicle according to an embodiment of the present invention.
  • FIG. 2 is a block diagram of a vehicle driving assistance apparatus according to an embodiment of the present invention.
  • 3A to 4B are views referred to for describing a transparent flexible display, a driving unit, and a guide unit according to an embodiment of the present invention.
  • 5A is a diagram referred to for describing the driver 230 according to an exemplary embodiment of the present invention.
  • 5B is a view referred to for explaining the guide driver, according to an embodiment of the present invention.
  • FIG. 6 is a diagram referred to describe a driving unit according to still another exemplary embodiment of the present invention.
  • FIG. 7 is an example of an internal block diagram of the vehicle of FIG. 1.
  • FIG. 8 is an example of an internal block diagram of the electronic control apparatus in the vehicle of FIG. 1.
  • FIG. 9 is an exemplary view referred to to explain a vehicle driving assistance apparatus according to an embodiment of the present invention.
  • FIG. 10A is a diagram for describing an operation of controlling a length of a transparent flexible display in a driving assistance apparatus according to an exemplary embodiment of the present invention.
  • FIG. 10B is a diagram referred to for describing an operation of controlling an angle of a transparent flexible display in a driving assistance apparatus according to an exemplary embodiment of the present invention.
  • 11A to 11D are views referred to for describing a screen displayed on a transparent flexible display according to an embodiment of the present invention.
  • FIG. 12 is a diagram for describing an operation of controlling an image display area through the mobile terminal 250 according to an embodiment of the present invention.
  • FIG. 13 is a diagram referred to for describing an operation of outputting vehicle information by voice according to an embodiment of the present invention.
  • FIG. 14 is a view referred to for explaining a voice command reception operation according to an embodiment of the present invention.
  • FIG. 15 is a diagram for describing an operation of controlling an image display area by detecting a passenger's gaze according to an exemplary embodiment of the present invention.
  • FIG. 16 is a diagram referred to for describing an operation of detecting a gesture of a passenger according to an embodiment of the present invention.
  • FIG. 17 is a diagram referred to for describing an operation of displaying text message reception information and call reception information according to an embodiment of the present invention.
  • 18A to 18B are views for explaining an operation of displaying a state of a transparent flexible display, a driver, or a guide unit, according to an exemplary embodiment of the present invention.
  • the vehicle described herein may be a concept including an automobile and a motorcycle.
  • a vehicle is mainly described for a vehicle.
  • the vehicle described herein may be a concept including both an internal combustion engine vehicle having an engine as a power source, a hybrid vehicle having an engine and an electric motor as a power source, an electric vehicle having an electric motor as a power source, and the like.
  • the left side of the vehicle means the left side of the driving direction of the vehicle, that is, the driver's seat side
  • the right side of the vehicle means the right side of the vehicle's driving direction, that is, the auxiliary seat side.
  • FIG. 1 is a view showing the appearance of a vehicle according to an embodiment of the present invention.
  • the vehicle 700 includes wheels 103FR, 103FL, 103RL,... Rotated by a power source, a steering wheel for adjusting a traveling direction of the vehicle 10, and a vehicle driving assistance device 100. It may include.
  • the vehicle driving assistance apparatus 100 may be provided inside the vehicle.
  • the vehicle driving assistance device 100 is preferably attached to the ceiling inside the driver's seat.
  • the vehicle driving assistance apparatus 100 may be implemented integrally with the vehicle display apparatus 400.
  • the vehicle driving assistance apparatus 100 described with reference to FIGS. 2 to 18B may be referred to as a vehicle display apparatus.
  • FIG. 2 is a block diagram of a vehicle driving assistance apparatus according to an embodiment of the present invention.
  • the vehicle driving assistance apparatus 100 may include a communication unit 110, an input unit 120, a sensing unit 140, an interface unit 160, a memory 170, and a processor ( 180, a power supply unit 190, a display unit 210, a sound output unit 220, a driving unit 230, and a guide unit 240.
  • the communication unit 110 may exchange data with the mobile terminal 250, the server 260, or another vehicle 261 in a wireless manner.
  • the communication unit 110 may exchange data wirelessly with a mobile terminal of a vehicle occupant.
  • various data communication methods such as Bluetooth, WiFi Direct, WiFi, and APiX are possible.
  • the communication unit 110 may receive weather information, road traffic information, for example, TPEG (Transport Protocol Expert Group) information from the mobile terminal 250, the server 260, or another vehicle 261. .
  • TPEG Transport Protocol Expert Group
  • the user's mobile terminal 250 and the vehicle driving assistance device 100 may perform pairing with each other automatically or by executing the user's application.
  • the communication unit 110 may receive a control signal from the mobile terminal of the vehicle occupant.
  • the mobile terminal generates a control signal corresponding to an input signal received from the user and transmits the control signal to the vehicle driving assistance apparatus 100.
  • the communication unit 110 may receive the control signal and transmit it to the processor 180.
  • the input unit 120 may include a camera 121 or an image input unit for inputting an image signal, a microphone 123 for inputting an audio signal, an audio input unit, or a user input unit for receiving information from a user. 125 (eg, a touch key, a mechanical key, etc.).
  • the voice data or the image data collected by the input unit 120 may be analyzed and processed as a control command of the user.
  • the vehicle driving assistance apparatus 100 may include a plurality of cameras 121.
  • the camera 121 processes image frames such as still images or moving images obtained by the image sensor.
  • the processed image frame may be displayed on the display 210 or stored in the memory 170.
  • the plurality of cameras 121 provided in the vehicle driving assistance apparatus 100 may be arranged to form a matrix structure, and through the camera 121 forming the matrix structure as described above, various modifications may be made to the vehicle driving assistance apparatus 100.
  • a plurality of image information having an angle or focus may be input.
  • the plurality of cameras 121 may be arranged in a stereo structure to acquire a left image and a right image for implementing a stereoscopic image.
  • the first camera 121a may be disposed at a position suitable for acquiring an image of the outside of the vehicle.
  • the first camera 121a acquires an image around the vehicle and transmits the image to the processor 180.
  • two cameras may be disposed in a horizontal direction in front of a vehicle to acquire a stereo image.
  • the second camera 121b may be disposed at a position suitable for capturing an image inside the vehicle.
  • the second camera 121b may acquire an image of the occupant in the vehicle.
  • the second camera 121b may be disposed at a position where the eyes of the occupants may be photographed to track the eyes of the occupants.
  • the second camera 121b may receive a gesture input of the occupant.
  • the microphone 123 processes external sound signals into electrical voice data.
  • the processed voice data may be variously used according to a function (or an application program being executed) performed by the vehicle driving assistance apparatus 100. Meanwhile, various noise reduction algorithms may be implemented in the microphone 123 to remove noise generated in the process of receiving an external sound signal.
  • the microphone 123 may receive a voice input of the occupant.
  • the microphone 123 may convert the received voice input into an electrical signal.
  • the user input unit 125 is for receiving information from a user. When information is input through the user input unit 125, the processor 180 may control an operation of the vehicle driving assistance apparatus 100 to correspond to the input information. Can be.
  • the user input unit 125 may include a mechanical input means (or a mechanical key, for example, a button, a dome switch, a jog wheel, a jog switch, etc.) and a touch input means. .
  • the user input unit 125 may receive an input for controlling the driver 230 or the guide driver 245 from the passenger.
  • the vehicle occupant may control the driving unit 230 through the user input unit 125 to adjust the entry or withdrawal of the transparent flexible display.
  • the vehicle occupant may control the guide driver 245 through the user input unit 125 to adjust the angle of the contact unit 241.
  • the sensing unit 140 may include one or more sensors for sensing at least one of information in the vehicle driving assistance apparatus 100, surrounding environment information surrounding the vehicle driving assistance apparatus 100, and user information.
  • the sensing unit 140 may include a sun sensor 141 and a light amount sensor 142.
  • the sun sensor 141 tracks the position of the sun.
  • the sun sensor 141 performs tracking of azimuth and elevation angles of the sun.
  • Solar sensor 141 may include one or more photodiodes to track the position of the sun.
  • the light amount sensor 142 detects an amount of light flowing into the vehicle. Specifically, the light amount sensor 142 detects the amount of sunlight.
  • the light amount sensor 142 may include a photoconductive device such as a CdS photoconductive cell or a CdS cell.
  • the interface unit 160 may receive map information related to vehicle driving through data communication with the display apparatus 400.
  • the display apparatus 400 may include navigation, and the interface unit 160 may receive a map and information about a location of the vehicle on the map from the navigation and transmit the information to the processor 180. .
  • the interface unit 160 may receive sensor information from the control unit 770 or the vehicle sensor unit 760.
  • the sensor information includes the vehicle slip information, vehicle direction information, vehicle position information (GPS information), vehicle angle information, vehicle speed information, vehicle acceleration information, vehicle tilt information, vehicle forward / reverse information, battery information, fuel information. And at least one of tire information, vehicle lamp information, vehicle internal temperature information, and vehicle internal humidity information.
  • the sensor information includes a wheel speed sensor, a heading sensor, a yaw sensor, a gyro sensor, a position module, a vehicle forward / reverse sensor, a wheel sensor, It may be obtained from a vehicle speed sensor, a vehicle body tilt sensor, a battery sensor, a fuel sensor, a tire sensor, a steering sensor by steering wheel rotation, a vehicle internal temperature sensor, a vehicle internal humidity sensor, and the like.
  • the position module may include a GPS module for receiving GPS information.
  • vehicle driving information the vehicle driving information related to the vehicle driving.
  • the memory 170 may store various data for operations of the overall vehicle driving assistance apparatus 100, such as a program for processing or controlling the processor 180.
  • the memory 170 may be various storage devices such as a ROM, a RAM, an EPROM, a flash drive, a hard drive, and the like.
  • the processor 180 controls the overall operation of each unit in the vehicle driving assistance apparatus 100.
  • the processor 180 may control the display unit 210, the driver 230, and the guide unit 240.
  • the processor 180 may calculate a length value of the light blocking area or the image display area included in the transparent flexible display 211 based on the position of the sun.
  • the processor 180 may control the driver 230 according to the calculated length value to adjust the length of the light blocking area or the image display area.
  • the processor 180 may adjust the length of the light blocking area or the image display area based on the position of the sun tracked by the occupant gaze and the sun sensor 141 detected by the second camera 121b. have.
  • the processor 180 may control the driving unit 230 so that the light blocking area or the image display area may be positioned on a straight line formed by the position of the passenger's eye and the sun.
  • the processor 180 may calculate an angle value formed by the light blocking area or the image display area with the ground based on the position of the sun.
  • the processor 180 may control the guide unit 240 according to the calculated angle value.
  • the processor 180 may form a light blocking area or an image display area with the ground based on the position of the sun tracked by the passenger's gaze and the sun sensor 141 detected through the second camera 121b. Can calculate the angle value.
  • the processor 180 calculates an angle value formed by the light blocking area or the image display area with the ground so that sunlight can be efficiently blocked based on the occupant's gaze and the position of the sun. , By controlling the guide driving unit according to the calculated angle value, to adjust the angle formed by the contact portion with the ground.
  • the processor 180 further considers the occupant gaze detected by the second camera 121b at the position of the sun tracked by the sun sensor 141, and adjusts the length value of the light blocking area or the image display area.
  • the driving unit 230 may be controlled according to the calculated length value.
  • the processor 180 may receive information about the amount of light flowing into the vehicle from the light amount sensor 142.
  • the processor 180 may adjust the transparency of the transparent flexible display 211 based on the amount of light.
  • the processor 180 receives image data captured by the camera 121.
  • the processor 180 signals the image data based on a computer vision to generate vehicle-related information.
  • the processor 180 may display vehicle related information through one area of the transparent flexible display 211.
  • the processor 180 obtains a stereo image of the front of the vehicle from the first camera 121a, and based on the stereo image, the processor 180 displays a disc for the front of the vehicle.
  • a parity operation may be performed, and object detection may be performed on at least one of the stereo images based on the calculated disparity information, and after the object detection, the movement of the object may be continuously tracked.
  • the processor 180 may detect lane detection (LD), nearby vehicle detection (VD), pedestrian detection (PD), light spot detection (BD), traffic, and the like when detecting an object. Traffic sign recognition (TSR), road surface detection, and the like may be performed.
  • LD lane detection
  • VD vehicle detection
  • PD pedestrian detection
  • BD light spot detection
  • TSR Traffic sign recognition
  • road surface detection and the like may be performed.
  • the processor 180 may perform distance calculation on the detected surrounding vehicle, speed calculation of the detected surrounding vehicle, speed difference calculation with the detected surrounding vehicle, and the like.
  • the processor 180 may generate vehicle related information.
  • the processor 180 may display vehicle related information through one area of the transparent flexible display 211.
  • the vehicle related information may include vehicle control information for direct control of the vehicle or vehicle driving assistance information for driving guide to the vehicle occupant.
  • the vehicle related information may be information received through the input unit 120.
  • the vehicle related information may be information received from the vehicle sensor unit 760 through the interface unit 160.
  • the vehicle information may be information received from the controller 770 through the interface unit 160.
  • the vehicle information may be information received from the mobile terminal 250 or the server 260 through the communication unit 110.
  • the processor 180 is formed of an electrical unit for performing a digital signal processor (DSP), an application specific integrated circuit (ASIC), a microcontroller, programmable logic devices (PLDs), field programmable gate arrays (FPGAs), and other functions.
  • DSP digital signal processor
  • ASIC application specific integrated circuit
  • PLDs programmable logic devices
  • FPGAs field programmable gate arrays
  • the circuit board may be mounted on one surface of a predetermined circuit board.
  • the power supply unit 190 may supply power required for the operation of each component under the control of the processor 180.
  • the power supply unit 190 may receive power from a battery inside the vehicle.
  • the power supply unit 190 may contact a region of the transparent flexible display to supply power.
  • the display unit 210 displays (outputs) information processed by the processor 180.
  • the display 210 may display execution screen information of an application program driven by the vehicle driving assistance apparatus 100, or UI (User Interface) or Graphic User Interface (GUI) information according to the execution screen information. Can be.
  • UI User Interface
  • GUI Graphic User Interface
  • the display unit 210 may include a transparent flexible display 211.
  • the transparent flexible display 211 may be configured to be deformable by an external force.
  • the deformation may be at least one of bending, bending, folding, twisting, and curling the transparent flexible display 211.
  • the display area of the transparent flexible display 211 becomes flat.
  • the display area may be a curved surface.
  • the information displayed in the second state may be visual information output on a curved surface.
  • Such visual information is implemented by independently controlling light emission of a sub-pixel disposed in a matrix form.
  • the unit pixel refers to a minimum unit for implementing one color.
  • the transparent flexible display 211 may be placed in a curved state (for example, a vertically or horizontally curved state) rather than a flat state in the first state. In this case, when an external force is applied to the transparent flexible display 211, the transparent flexible display 211 may be deformed into a flat state (or less curved state) or more curved state.
  • the transparent flexible display 211 may be combined with a touch sensor to implement a flexible touch screen.
  • the processor 180 may perform a control corresponding to the touch input.
  • the flexible touch screen may be configured to detect a touch input not only in the first state but also in the second state.
  • the transparent flexible display 211 may have a predetermined transparency.
  • the transparent flexible display 211 has a transparent thin film elecroluminescent (TFEL), a transparent organic light-emitting diode (OLED), a transparent liquid crystal display (LCD), a transparent transparent display, and a transparent light emitting diode (LED). It may include at least one of the displays.
  • the transparency of the transparent flexible display 211 may be adjusted under the control of the processor 180.
  • the transparent flexible display 211 may be provided to be adjustable in the length of the vehicle interior.
  • the transparent flexible display 211 may block light flowing into the vehicle and display at least one image.
  • the transparent flexible display 211 may include a light blocking area or an image display area.
  • the light blocking region adjusts the transparency of the transparent flexible display 211 to prevent the light incident from the sun from being directly irradiated to the occupant.
  • the light blocking area may be adjusted based on the size of the area or the degree of transparency based on the data sensed by the solar sensor 141 or the light amount sensor 142.
  • the image display area displays information processed by the processor 180.
  • the image display area may be plural.
  • the processor 180 processes a control command or data transmitted from the communication unit 110, the input unit 120, the interface unit 160, or the memory 170, and displays the same on the image display area.
  • the image display area included in the transparent flexible display 211 may display an image acquired by the camera 121.
  • the image display area included in the transparent flexible display 211 may display the state of the guide part 240 or the driver 230.
  • the state of the guide unit 240 or the driving unit 230 may be displayed numerically or graphically.
  • the image display area may display the entrance, the degree of withdrawal, the angle at which the contact portion is formed with the ground, and the like of the transparent flexible display 211.
  • the transparent flexible display 211 may move according to the driving force generated by the driver 230.
  • the transparent flexible display 211 may adjust the length of the light blocking area or the image display area based on the driving force.
  • the transparent flexible display 211 may be moved in the reverse direction of the vehicle travel direction or the vehicle travel direction according to the driving force generated by the driver 230.
  • an area except the light blocking area or the image display area may be wound according to the driving force generated by the driving unit 230.
  • the driving force generator 231 included in the driver 230 is configured as a motor
  • an area except the light blocking area or the image display area in the transparent flexible display 211 may include a light blocking area or an image display area. Or, to withdraw, it can be wound or unrolled through the rotational force of the motor.
  • the sound output unit 220 converts the electric signal from the processor 180 into an audio signal and outputs the sound signal. To this end, a speaker or the like may be provided. The sound output unit 220 may output a sound corresponding to the operation of the user input unit 125, that is, the button.
  • the driver 230 is connected to the transparent flexible display 211 to control the length adjustment of the light blocking area or the image display area included in the transparent flexible display 211.
  • the driver 230 may adjust the length of the light blocking region based on the azimuth and altitude angles of the sun tracked by the sun sensor 141.
  • the driver 230 may adjust the length of the light blocking area or the image display area accordingly. have.
  • the driving unit 230 may include a driving force generating unit 231.
  • the driving force generation unit 231 provides a driving force for allowing the transparent flexible display 211 connected to the driving unit 230 to move forward or backward.
  • the driving force generator 231 may include a motor or an actuator.
  • the transparent flexible display 211 may adjust the length of the light blocking area or the image display area according to the driving force generated by the motor.
  • the driving force generator 231 is configured as an actuator
  • the transparent flexible display 211 may adjust the length of the light blocking area or the image display area according to the driving force generated by the actuator.
  • the driving unit 230 may transmit a driving force to the transparent flexible display 211 so that the transparent flexible display 211 is wound around the light blocking area or the image display area.
  • the driving force generation unit 231 included in the driving unit 230 is configured as a motor
  • the driving unit 230 may provide a rotational force of the motor to draw in or draw out the light blocking area or the image display area.
  • the area of the transparent flexible display 211 except for the light blocking area or the image display area may be wound or unwound based on the rotation force.
  • the vehicle driving assistance apparatus 100 may further include a stopper.
  • the stopper limits the winding of the transparent flexible display 211.
  • the driving unit 230 may further include an elastic unit.
  • the elastic part may support the transparent flexible display 211 upward.
  • the transparent flexible display 211 is upwardly supported by the elastic part, thereby restraining the vertical movement of the transparent flexible display 211. Due to such a function of the elastic part, even when there is a vertical movement of the vehicle, the movement of the transparent flexible display 211 is limited, and thus, there is an effect of being fixed without being shaken.
  • the guide unit 240 is provided inside the vehicle.
  • the guide unit 240 guides the movement of the transparent flexible display when the length of the transparent flexible display 211 is adjusted.
  • the guide part 240 may include a contact part and a guide driver.
  • the contact portion may be in contact with the transparent flexible display.
  • the contact forms an angle with the ground.
  • the contact guides the movement of the transparent flexible display.
  • the guide drive adjusts the angle at which the contact forms with the ground.
  • the guide driver may include driving force generating means, such as a motor or an actuator, to adjust the angle formed by the contact portion and the ground.
  • 3A to 4B are views referred to for describing a transparent flexible display, a driving unit, and a guide unit according to an embodiment of the present invention.
  • 3A to 4B are side views of the driver's seat inside the vehicle equipped with the vehicle driving assistance apparatus 100.
  • the driving unit 230 is connected to the transparent flexible display 211 to control the length adjustment of the light blocking area or the image display area included in the transparent flexible display 211.
  • the driving unit 230 may include a driving force generating unit 231, a connecting unit 232, and a moving unit 233.
  • the driving force generation unit 231 provides a driving force for allowing the transparent flexible display 211 connected to the driving unit 230 to move forward or backward under the control of the processor 180.
  • the driving force generator 231 illustrates a linear motor, but is not limited thereto.
  • the driving force generator 231 generates the driving force according to the control command of the processor 180.
  • connection unit 232 connects the driving unit 230 and the transparent flexible display 211.
  • the moving part 233 is attached to the bottom of the connection part 232.
  • the moving part 233 may be a roller.
  • the driving force generated by the driving force generator 231 is transmitted to the connection unit 232.
  • the driving unit 230 may move forward or backward through the driving force. That is, the driving unit 230 may move linearly toward the wind shield 290 or toward the wind shield 290 through the driving force. Accordingly, the transparent flexible display 211 connected through the connection unit 232 may be drawn out of the housing 280 or may be drawn into the housing 280.
  • 3A illustrates a state in which the transparent flexible display 211 is drawn into the housing 280
  • FIG. 3B illustrates a state in which the transparent flexible display 211 is drawn out of the housing 280.
  • the housing 280 accommodating the driver 230 may be attached to the ceiling of the driver's seat inside the vehicle.
  • the guide part 240 may include a contact part 241 and a guide driver 243.
  • the contact unit 241 may be in contact with the transparent flexible display 211.
  • the contact part 241 is in contact with the transparent flexible display 211.
  • the contact portion 241 guides the moving direction of the transparent flexible display 211.
  • the contact part 241 guides the transparent flexible display 211 to move while forming a predetermined angle downward.
  • 3B illustrates a state in which the contact unit 241 guides the movement of the transparent flexible display 211 to form a predetermined angle downward.
  • the guide driver 243 adjusts an angle formed by the contact part 241 with the ground.
  • the guide driver 243 may adjust the angle formed by the contact portion 241 with the ground.
  • an angle formed by the transparent flexible display 211 with the ground may be calculated by the processor 180 based on the position of the sun or the line of sight of the occupant.
  • the second camera 121b may be disposed in one area of the housing 280 so that the lens faces the occupant.
  • the second camera 121b may detect the gaze or the gesture of the occupant.
  • the microphone 123 may be disposed in an area of the housing 280 to facilitate reception of a passenger's voice.
  • the first camera 121a may be disposed between the guide part 240 and the wind shield 290 so that the lens faces the front of the vehicle.
  • the vehicle driving assistance apparatus 100 may include one or more rollers 235.
  • the roller 235 is the transparent flexible display 211 when the transparent flexible display 211 is drawn out of the housing 280 or drawn into the housing 280 by the driving force generated by the driving force generator 231. Reduces the frictional force caused by the movement of the. For example, when the transparent flexible display 211 is drawn out of the housing 280, the roller 235 rotates in contact with the transparent flexible display 211. With the rotation of the roller 235, the withdrawal of the transparent flexible display 211 is easier. For example, when the transparent flexible display 211 is drawn into the housing 280, the roller 235 rotates in contact with the transparent flexible display 211. With the rotation of the roller 235, the retraction of the transparent flexible display 211 is easier.
  • FIG. 5A is a diagram referred to for describing the driver 230 according to an exemplary embodiment of the present invention.
  • FIG. 5A is a partial front view of the driver 230 when looking at the driver 230 from the wind shield 290 of FIG. 3A.
  • 5A illustrates the first driver 230a disposed on one side of the transparent flexible display 211 in the width direction.
  • a second driver 230b formed to correspond to the first driver 230a disposed on one side illustrated in this figure may be disposed.
  • the driving unit 230 may include a driving force generating unit 231, a rotating unit 236, a fixing unit 237, and an elastic unit 238.
  • the display unit 210 may include a transparent flexible display 211, an extension 212, and a protrusion 213.
  • the driving force generator 231 generates the driving force under the control of the processor 180.
  • a motor is illustrated as the driving force generator 231.
  • the generated driving force is transmitted to the rotating part 236.
  • the rotating unit 236 rotates, the transparent flexible display 211 moves.
  • the rotary part 237 is disposed between the two protrusions 213.
  • the fixing part 237 restrains other movement except for the rotational movement of the rotating unit 236.
  • the fixing unit 237 restrains the up, down, left, right, front, and rear movements of the rotating unit 236 so that the rotational force is transmitted to the display unit 210.
  • the elastic portion 238 is connected to the fixed portion 237.
  • the elastic portion 238 includes an elastic member that provides elasticity. Although the spring is illustrated in this figure, the present invention is not limited thereto.
  • the elastic unit 238 allows the display unit 210 to be supported upward, that is, in the direction of the ceiling of the vehicle.
  • the transparent flexible display 211 is upwardly supported by the elastic part, thereby restraining the vertical movement of the transparent flexible display 211. Due to such a function of the elastic part, even when there is a vertical movement of the vehicle, the movement of the transparent flexible display 211 is limited, and thus, there is an effect of being fixed without being shaken.
  • the extension part 212 extends toward the one side of the width direction from the display 211.
  • the protrusion 213 protrudes downward from the extension 236.
  • the rotating part 236 is disposed between the two protrusions 213. Since the rotating unit 236 is disposed between the two protrusions 213, the rotational force generated by the rotating unit 236 may be accurately transmitted to the display unit 210.
  • 5B is a view referred to for explaining the guide driver, according to an embodiment of the present invention.
  • the guide driver 243 is connected to the first worm gear 252 on the rotation shaft of the rotating motor 251.
  • a first worm wheel gear 253 is engaged with the first worm gear 252 while converting the rotational center axis perpendicular to the motor shaft while reducing the rotational speed of the motor 251.
  • the second worm wheel gear 255 is engaged with the second worm gear 254 integrally formed with the first worm wheel gear 253.
  • the second worm wheel gear 255 serves to convert the rotation center axis directions of the first worm wheel gear 253 and the second worm gear 254 into a right angle.
  • the first spur gear 256 is positioned on the same axis as the second worm wheel gear 255.
  • the first spur gear 256 meshes with the second spur gear 257 formed at the end of the pivot 258 to transmit the rotational force to the contact portion 241.
  • FIG. 6 is a diagram referred to describe a driving unit according to still another exemplary embodiment of the present invention.
  • the driving unit 230 may transmit a driving force to the transparent flexible display 211 so that the transparent flexible display 211 is wound around an area 215 except for the light blocking area or the image display area.
  • the region 215 except for the light blocking region or the image display region may be formed of a material extending from the transparent flexible display 211 and deformable by an external force.
  • the transparent flexible display 211 may be formed. It may be formed of the same material as).
  • the driving unit 230 may provide a rotational force of the motor in order to draw in or draw out the light blocking area or the image display area.
  • the driver 230 may be the driver described with reference to FIG. 5A.
  • the area 215 of the transparent flexible display 211 except for the light blocking area or the image display area may be wound or unwound based on the rotational force.
  • the driving unit 230 may further include a stopper 216.
  • the stopper 216 limits the winding of the transparent flexible display 211.
  • FIG. 7 is a diagram referred to describe the user input unit 125 according to an embodiment of the present invention.
  • the user input unit 125 may be attached to the steering wheel 310.
  • the user input unit 125 may be configured to perform an input with a thumb while the occupant holds the steering wheel 310.
  • the user input unit 125 includes a + button 311, a-button 312, a first button 313, a second button 314, and a third button 315. It may include.
  • each button 311, 312, 313, 314, and 315 may be a physical button or a soft key.
  • the processor 180 controls the transparent flexible display 211 to move downward.
  • the processor 180 controls the driver 230 to allow the transparent flexible display 211 to be drawn out of the housing.
  • the moving direction of the transparent flexible display 211 is changed to have a predetermined angle downward through the guide part 240. Through this process, the transparent flexible display 211 may be moved downward.
  • the processor 180 controls the transparent flexible display 211 to be moved upward.
  • the processor 180 controls the driver 230 to allow the transparent flexible display 211 to be drawn into the housing.
  • the processor 180 adjusts the transparent flexible display 211 to increase transparency.
  • the processor 180 adjusts the transparent flexible display 211 to lower transparency.
  • the processor 180 controls the guide driver 243 so that the angle formed by the contact part 241 with the ground increases. .
  • the processor 180 controls the guide driver 243 to adjust the angle formed by the contact part 241 with the ground to be small. .
  • the user input unit 125 may be configured as a ball type 320.
  • the ball type user input unit may receive a rolling input of up, down, left, and right.
  • the processor 180 controls the transparent flexible display 211 to move downward.
  • the processor 180 controls the driver 230 to allow the transparent flexible display 211 to be drawn out of the housing.
  • the moving direction of the transparent flexible display 211 is changed to have a predetermined angle downward through the guide part 240. Through this process, the transparent flexible display 211 may be moved downward.
  • the processor 180 controls the transparent flexible display 211 to move upward.
  • the processor 180 controls the driver 230 to allow the transparent flexible display 211 to be drawn into the housing.
  • the processor 180 adjusts the transparent flexible display 211 to increase transparency.
  • the processor 180 adjusts the transparent flexible display 211 to lower transparency.
  • control operation of the processor 180 corresponding to the above-described rolling direction is merely an embodiment.
  • the control operation of the processor 180 corresponding to the rolling direction may be various embodiments according to a matching combination, and each embodiment may be included in the scope of the present invention.
  • FIG. 7 is an example of an internal block diagram of the vehicle of FIG. 1.
  • the vehicle 700 includes a communication unit 710, an input unit 720, a sensing unit 760, an output unit 740, a vehicle driver 750, a memory 730, an interface unit 780, a control unit 770, and a power supply unit. 790, the vehicle driving assistance apparatus 100, and the vehicle display apparatus 400.
  • the communication unit 710 may include one or more wireless communication devices between the vehicle 700 and the mobile terminal 600, between the vehicle 700 and the external server 601, or between the vehicle 700 and another vehicle 602. It may include a module. In addition, the communication unit 710 may include one or more modules for connecting the vehicle 700 to one or more networks.
  • the communication unit 710 may include a broadcast receiving module 711, a wireless internet module 712, a short range communication module 713, a location information module 714, an optical communication module 715, and a V2X communication module 716. have.
  • the broadcast receiving module 711 receives a broadcast signal or broadcast related information from an external broadcast management server through a broadcast channel.
  • the broadcast includes a radio broadcast or a TV broadcast.
  • the wireless internet module 712 refers to a module for wireless internet access and may be embedded or external to the vehicle 700.
  • the wireless internet module 712 is configured to transmit and receive wireless signals in a communication network in accordance with wireless internet technologies.
  • wireless Internet technologies include wireless LAN (WLAN), wireless-fidelity (Wi-Fi), wireless fidelity (Wi-Fi) Direct, digital living network alliance (DLNA), wireless broadband (WiBro), WiMAX ( World Interoperability for Microwave Access (HSDPA), High Speed Downlink Packet Access (HSDPA), High Speed Uplink Packet Access (HSUPA), Long Term Evolution (LTE), Long Term Evolution-Advanced (LTE-A), and the like.
  • 712 transmits and receives data according to at least one wireless Internet technology in a range including the Internet technologies not listed above.
  • the wireless internet module 712 may exchange data wirelessly with the external server 601.
  • the wireless internet module 712 may receive weather information and road traffic information (eg, TPEG (Transport Protocol Expert Group)) information from the external server 601.
  • TPEG Transport Protocol Expert Group
  • the short range communication module 713 is for short range communication, and includes Bluetooth TM, Radio Frequency Identification (RFID), Infrared Data Association (IrDA), Ultra Wideband (UWB), ZigBee, Near field communication may be supported using at least one of Near Field Communication (NFC), Wireless-Fidelity (Wi-Fi), Wi-Fi Direct, and Wireless Universal Serial Bus (Wireless USB) technologies.
  • RFID Radio Frequency Identification
  • IrDA Infrared Data Association
  • UWB Ultra Wideband
  • ZigBee ZigBee
  • Near field communication may be supported using at least one of Near Field Communication (NFC), Wireless-Fidelity (Wi-Fi), Wi-Fi Direct, and Wireless Universal Serial Bus (Wireless USB) technologies.
  • the short range communication module 713 may form short range wireless communication networks to perform short range communication between the vehicle 700 and at least one external device. For example, the short range communication module 713 may exchange data with the mobile terminal 600 wirelessly.
  • the short range communication module 713 may receive weather information and traffic condition information of a road (for example, a transport protocol expert group (TPEG)) from the mobile terminal 600. For example, when the user boards the vehicle 700, the mobile terminal 600 and the vehicle 700 of the user may perform pairing with each other automatically or by executing an application of the user.
  • TPEG transport protocol expert group
  • the location information module 714 is a module for obtaining the location of the vehicle 700, and a representative example thereof is a GPS (Global Positioning System) module.
  • GPS Global Positioning System
  • the vehicle may acquire the position of the vehicle using a signal transmitted from a GPS satellite.
  • the optical communication module 715 may include an optical transmitter and an optical receiver.
  • the light receiver may convert the light signal into an electrical signal to receive information.
  • the light receiver may include a photo diode (PD) for receiving light.
  • Photodiodes can convert light into electrical signals.
  • the light receiver may receive information of the front vehicle through the light emitted from the light source included in the front vehicle.
  • the light emitter may include at least one light emitting device for converting an electrical signal into an optical signal.
  • the light emitting element is a light emitting diode (LED).
  • the light emitting unit converts the electric signal into an optical signal and transmits it to the outside.
  • the light transmitting unit may emit an optical signal to the outside through the blinking of the light emitting device corresponding to the predetermined frequency.
  • the light emitting unit may include a plurality of light emitting element arrays.
  • the light emitting unit may be integrated with a lamp provided in the vehicle 700.
  • the light emitting unit may be at least one of a headlight, a taillight, a brake light, a turn signal, and a vehicle width lamp.
  • the optical communication module 715 may exchange data with another vehicle 602 through optical communication.
  • the V2X communication module 716 is a module for performing wireless communication with the server 601 or another vehicle 602.
  • the V2X module 716 includes a module capable of implementing inter-vehicle communication (V2V) or inter-vehicle communication (V2I) protocol.
  • the vehicle 700 may perform wireless communication with the external server 601 and another vehicle 602 through the V2X communication module 716.
  • the input unit 720 may include a driving manipulation unit 721, a camera 195, a microphone 723, and a user input unit 724.
  • the driving operation means 721 receives a user input for driving the vehicle 700.
  • the driving manipulation means 721 may include a steering input means 721a, a shift input means 721b, an acceleration input means 721c, and a brake input means 721d.
  • the steering input means 721a receives an input of a traveling direction of the vehicle 700 from the user.
  • the steering input means 721a is preferably formed in a wheel shape to enable steering input by rotation.
  • the steering input means 721a may be formed of a touch screen, a touch pad, or a button.
  • the shift input means 721b receives an input of parking P, forward D, neutral N, and reverse R of the vehicle 700 from the user.
  • the shift input means 721b is preferably formed in the form of a lever.
  • the shift input unit 721b may be formed as a touch screen, a touch pad, or a button.
  • the acceleration input means 721c receives an input for accelerating the vehicle 700 from the user.
  • the brake input means 721d receives an input for deceleration of the vehicle 700 from the user.
  • the acceleration input means 721c and the brake input means 721d are preferably formed in the form of a pedal. According to an embodiment, the acceleration input means 721c or the brake input means 721d may be formed as a touch screen, a touch pad, or a button.
  • the camera 195 may include an image sensor and an image processing module.
  • the camera 195 may process a still image or a moving image obtained by an image sensor (eg, CMOS or CCD).
  • the image processing module may process the still image or the video obtained through the image sensor, extract necessary information, and transfer the extracted information to the controller 170.
  • the vehicle 100 may include a front camera 195a for photographing a vehicle front image, an around view camera 195b for capturing a vehicle surrounding image, and an internal camera 195c for capturing an interior image of the vehicle.
  • Each camera 195a, 195b, 195c may include a lens, an image sensor, and a processor.
  • the processor may computer-process the captured image to generate data or information, and transmit the generated data or information to the controller 170.
  • the processor included in the camera 195 may be controlled by the controller 170.
  • the processor included in the camera 195 may be, in hardware, application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), and field programmable gate arrays (FPGAs). ), Processors, controllers, micro-controllers, microprocessors, and other electrical units for performing other functions.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGAs field programmable gate arrays
  • the front camera 195a may include a stereo camera.
  • the processor of the camera 195a may detect the distance to the object, the relative speed to the object detected in the image, and the distance between the plurality of objects using the disparity difference detected in the stereo image. have.
  • the front camera 195a may include a time of flight (TOF) camera.
  • the camera 195 may include a light source (for example, an infrared ray or a laser) and a receiver.
  • the process of the camera 195a is based on the time (TOF) until the infrared or laser light transmitted from the light source is reflected on the object and received, and the distance to the object, the relative speed to the object, and the distance between the plurality of objects. Can be detected.
  • TOF time of flight
  • the around view camera 195b may include a plurality of cameras.
  • the plurality of cameras may be arranged on the left side, rear side, right side and front side of the vehicle.
  • the left camera may be disposed in a case surrounding the left side mirror.
  • the left camera may be disposed outside the case surrounding the left side mirror.
  • the left camera may be disposed in one area outside the left front door, the left rear door, or the left fender.
  • the right camera may be disposed in a case surrounding the right side mirror. Alternatively, the right camera may be disposed outside the case surrounding the right side mirror. Alternatively, the right camera may be disposed in one area outside the right front door, the right rear door, or the right fender.
  • the rear camera may be disposed near the rear license plate or the trunk or tail gate switch.
  • the front camera may be arranged near the emblem or near the radiator grille.
  • Each image photographed by the plurality of cameras is transferred to a processor of the camera 195b, and the processor may synthesize the respective images to generate a vehicle surrounding image.
  • the vehicle surrounding image may be displayed through the display unit 141 as a top view image or a bird eye image.
  • the internal camera 195c may photograph the interior of the vehicle 100.
  • the internal camera 195c may acquire an image of the occupant.
  • the processor of the internal camera 195c may acquire an image of the occupant in the vehicle 100 to detect how many occupants and where the occupant is. For example, the internal camera 195c may detect the presence or absence of a passenger and a boarding position.
  • the internal camera 195c may acquire an image for biometrics of the occupant.
  • the processor of the internal camera 195c may check the ID of the passenger based on the face image of the passenger.
  • FIG. 7 illustrates that the camera 195 is included in the input unit 720, the camera 195 may be described as a configuration included in the sensing unit 125.
  • the microphone 723 may process an external sound signal into electrical data.
  • the processed data may be utilized in various ways depending on the function being performed in the vehicle 700.
  • the microphone 723 may convert the user's voice command into electrical data.
  • the converted electrical data may be transferred to the controller 770.
  • the camera 722 or the microphone 723 may be a component included in the sensing unit 760, not a component included in the input unit 720.
  • the user input unit 724 is for receiving information from a user. When information is input through the user input unit 724, the controller 770 may control the operation of the vehicle 700 to correspond to the input information.
  • the user input unit 724 may include a touch input means or a mechanical input means. According to an embodiment, the user input unit 724 may be disposed in one region of the steering wheel. In this case, the driver may manipulate the user input unit 724 with a finger while holding the steering wheel.
  • the sensing unit 760 senses a signal related to driving of the vehicle 700.
  • the sensing unit 760 may include a collision sensor, a wheel sensor, a speed sensor, a tilt sensor, a weight sensor, a heading sensor, a yaw sensor, a gyro sensor.
  • Position module vehicle forward / reverse sensor, battery sensor, fuel sensor, tire sensor, steering sensor by steering wheel rotation, vehicle interior temperature sensor, vehicle interior humidity sensor, rain sensor, ultrasonic sensor, radar , Light Detection And Ranging (LiADAR), and the like.
  • LiADAR Light Detection And Ranging
  • the sensing unit 760 may include vehicle collision information, vehicle direction information, vehicle position information (GPS information), vehicle angle information, vehicle speed information, vehicle acceleration information, vehicle tilt information, vehicle forward / reverse information, and battery information.
  • the sensing signal may be obtained such as fuel information, tire information, vehicle lamp information, vehicle internal temperature information, vehicle internal humidity information, rain information, steering wheel rotation angle, and the like.
  • the sensing unit 760 in addition to the accelerator pedal sensor, pressure sensor, engine speed sensor (engine speed sensor), air flow sensor (AFS), intake temperature sensor (ATS), water temperature sensor (WTS), throttle
  • the sensor may further include a position sensor TPS, a TDC sensor, a crank angle sensor CAS, and the like.
  • the sensing unit 760 may include a biometric information detecting unit.
  • the biometric information detector detects and acquires biometric information of the passenger.
  • Biometric information includes fingerprint information, iris-scan information, retina-scan information, hand geo-metry information, facial recognition information, voice recognition ( Voice recognition) information.
  • the biometric information sensing unit may include a sensor for sensing biometric information of the passenger.
  • the internal camera 195c and the microphone 723 may operate as sensors.
  • the biometric information detecting unit may acquire hand shape information and face recognition information through the internal camera 195c.
  • the output unit 740 outputs the information processed by the controller 770 and may include a display unit 741, a sound output unit 742, and a haptic output unit 743.
  • the display 741 may display information processed by the controller 770.
  • the display unit 741 may display vehicle related information.
  • the vehicle related information may include vehicle control information for direct control of the vehicle, or vehicle driving assistance information for driving guide to the vehicle driver.
  • the vehicle related information may include vehicle state information indicating a current state of a vehicle or vehicle driving information related to driving of the vehicle.
  • the display unit 741 may include a liquid crystal display (LCD), a thin film transistor-liquid crystal display (TFT LCD), an organic light-emitting diode (OLED), and a flexible display (flexible display). display, a 3D display, or an e-ink display.
  • LCD liquid crystal display
  • TFT LCD thin film transistor-liquid crystal display
  • OLED organic light-emitting diode
  • flexible display flexible display
  • display a 3D display, or an e-ink display.
  • the display unit 741 forms a layer structure with or is integrally formed with the touch sensor, thereby implementing a touch screen.
  • a touch screen may provide an output interface between the vehicle 700 and the user while functioning as a user input unit 724 that provides an input interface between the vehicle 700 and the user.
  • the display unit 741 may include a touch sensor that senses a touch on the display unit 741 to receive a control command by a touch method. Using this, when a touch is made to the display unit 741, the touch sensor may sense the touch and the controller 770 may generate a control command corresponding to the touch based on the touch sensor.
  • the content input by the touch method may be letters or numbers or menu items that can be indicated or designated in various modes.
  • the display unit 741 may include a cluster (cluster) so that the driver can check the vehicle status information or vehicle driving information while driving.
  • the cluster can be located on the dashboard. In this case, the driver can check the information displayed on the cluster while keeping the gaze in front of the vehicle.
  • the display unit 741 may be implemented as a head up display (HUD).
  • HUD head up display
  • information may be output through a transparent display provided in the wind shield.
  • the display unit 741 may include a projection module to output information through an image projected on the wind shield.
  • the sound output unit 742 converts the electrical signal from the control unit 770 into an audio signal and outputs the audio signal.
  • the sound output unit 742 may include a speaker.
  • the sound output unit 742 may output a sound corresponding to the operation of the user input unit 724.
  • the haptic output unit 743 generates a tactile output.
  • the haptic output unit 743 may vibrate the steering wheel, the seat belt, and the seat so that the user can recognize the output.
  • the vehicle driver 750 may control operations of various vehicles.
  • the vehicle driver 750 includes a power source driver 751, a steering driver 752, a brake driver 753, a lamp driver 754, an air conditioning driver 755, a window driver 756, an airbag driver 757, and a sunroof. It may include a driver 758 and a suspension driver 759.
  • the power source driver 751 may perform electronic control of the power source in the vehicle 700.
  • the power source driver 751 may perform electronic control on the engine. Thereby, the output torque of an engine, etc. can be controlled.
  • the power source driver 751 is an engine, the speed of the vehicle may be limited by limiting the engine output torque under the control of the controller 770.
  • the power source driver 751 may perform control on the motor. Thereby, the rotation speed, torque, etc. of a motor can be controlled.
  • the power source driver 751 may receive an acceleration control signal from the vehicle driving assistance apparatus 100.
  • the power source driver 751 may control the power source according to the received acceleration control signal.
  • the steering driver 752 may perform electronic control of a steering apparatus in the vehicle 700. As a result, the traveling direction of the vehicle can be changed.
  • the steering driver 752 may receive a steering control signal from the vehicle driving assistance apparatus 100.
  • the steering driver 752 may control the steering apparatus to steer according to the received steering control signal.
  • the brake driver 753 may perform electronic control of a brake apparatus (not shown) in the vehicle 700. For example, the speed of the vehicle 700 may be reduced by controlling the operation of the brake disposed on the wheel. As another example, by varying the operation of the brakes disposed on the left wheels and the right wheels, the traveling direction of the vehicle 700 may be adjusted to the left or the right.
  • the brake driver 753 may receive the deceleration control signal from the vehicle driving assistance apparatus 100.
  • the brake driver 759 may control the brake device according to the received deceleration control signal.
  • the lamp driver 754 may control turn on / turn off of a lamp disposed in or outside the vehicle. In addition, it is possible to control the intensity, direction, etc. of the light of the lamp. For example, control of a direction indicator lamp, a brake lamp, and the like can be performed.
  • the air conditioning driver 755 may perform electronic control of an air cinditioner (not shown) in the vehicle 700. For example, when the temperature inside the vehicle is high, the air conditioner may be operated to control cold air to be supplied into the vehicle.
  • the window driver 756 may perform electronic control of a window apparatus in the vehicle 700. For example, the opening or closing of the left and right windows of the side of the vehicle can be controlled.
  • the airbag driver 757 may perform electronic control of an airbag apparatus in the vehicle 700.
  • the airbag can be controlled to burst.
  • the sunroof driver 758 may perform electronic control of a sunroof apparatus (not shown) in the vehicle 700. For example, the opening or closing of the sunroof can be controlled.
  • the suspension driver 759 may perform electronic control of a suspension apparatus (not shown) in the vehicle 700. For example, when the road surface is curved, the suspension device may be controlled to control the vibration of the vehicle 700 to be reduced.
  • the suspension driver 759 may receive a suspension control signal from the vehicle driving assistance apparatus 100. The suspension driver 759 may control the suspension device according to the received suspension control signal.
  • the memory 730 is electrically connected to the controller 770.
  • the memory 730 may store basic data for the unit, control data for controlling the operation of the unit, and input / output data.
  • the memory 730 may be various storage devices such as a ROM, a RAM, an EPROM, a flash drive, a hard drive, and the like, in hardware.
  • the memory 730 may store various data for the overall operation of the vehicle 700, such as a program for processing or controlling the controller 770.
  • the interface unit 780 may serve as a path to various types of external devices connected to the vehicle 700.
  • the interface unit 780 may include a port connectable to the mobile terminal 600, and may be connected to the mobile terminal 600 through the port. In this case, the interface unit 780 may exchange data with the mobile terminal 600.
  • the interface unit 780 may serve as a path for supplying electrical energy to the connected mobile terminal 600.
  • the interface unit 780 provides the mobile terminal 600 with electrical energy supplied from the power supply unit 790. do.
  • the controller 770 may control the overall operation of each unit in the vehicle 700.
  • the controller 770 may be referred to as an electronic control unit (ECU).
  • ECU electronice control unit
  • the controller 770 may be hardware, such as application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), and processors ( It may be implemented using at least one of processors, controllers, micro-controllers, microprocessors, and electrical units for performing other functions.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGAs field programmable gate arrays
  • processors It may be implemented using at least one of processors, controllers, micro-controllers, microprocessors, and electrical units for performing other functions.
  • the power supply unit 790 may supply power required for the operation of each component under the control of the controller 770.
  • the power supply unit 770 may receive power from a battery (not shown) in the vehicle.
  • the vehicle driving assistance apparatus 100 may exchange data with the controller 770.
  • the control signal generated by the vehicle driving assistance apparatus 100 may be output to the controller 770.
  • the vehicle driving assistance apparatus 100 may be the vehicle driving assistance apparatus described above with reference to FIGS. 1 to 7.
  • the vehicle display apparatus 400 may exchange data with the controller 770.
  • FIG. 9 is an exemplary view referred to to explain a vehicle driving assistance apparatus according to an embodiment of the present invention.
  • the transparent flexible display 211 is provided to be adjustable in length in a vehicle.
  • the transparent flexible display 211 includes a light blocking area or an image display area. The transparency of the transparent flexible display 211 can be adjusted.
  • the processor 180 may control the driver 230 to adjust the length of the light blocking area or the image display area.
  • the driving unit 230 is accommodated in the housing 280.
  • the processor 180 may receive information about the amount of light flowing into the vehicle from the light amount sensor 142.
  • the processor 180 may adjust the transparency of the transparent flexible display 211 based on the amount of light.
  • FIG. 10A is a diagram for describing an operation of controlling a length of a transparent flexible display in a driving assistance apparatus according to an exemplary embodiment of the present invention.
  • the processor 180 may calculate the length value L of the light blocking area or the image display area included in the transparent flexible display 211 based on the position of the sun 1010.
  • the processor 180 may control the driver 230 according to the calculated length value L to adjust the length L of the light blocking area or the image display area.
  • the processor 180 displays a light blocking area or an image based on the position of the sun 1010 tracked by the occupant gaze 1020 and the sun sensor 141, which are detected through the second camera 121b.
  • the length L of the region can be adjusted.
  • the processor 180 may control the driver 230 so that the light blocking area or the image display area may be positioned on the straight line 1030 formed by the occupant line 1020 and the position 1010 of the sun. .
  • FIG. 10B is a diagram referred to for describing an operation of controlling an angle of a transparent flexible display in a driving assistance apparatus according to an exemplary embodiment of the present invention.
  • the processor 180 may calculate an angle value ⁇ formed by the light blocking area or the image display area with the ground 1040 based on the position of the sun.
  • the processor 180 may control the guide unit 240 according to the calculated angle value ⁇ . For example, the processor 180 based on the position of the sun 1010 tracked through the passenger gaze 1020 and the sun sensor 141 detected through the second camera 121b, the light blocking area or the image.
  • An angle value ⁇ formed by the display area with the ground surface 1040 can be calculated.
  • the processor 180 may form the light blocking area or the image display area with the ground so that the sunlight may be efficiently blocked based on the position of the occupant gaze 1020 and the sun 1010.
  • the angle value ⁇ is calculated, and the guide driver 243 is controlled according to the calculated angle value ⁇ to adjust the angle formed by the contact portion 241 with the ground. As the angle formed by the contact portion 241 with the ground is adjusted, the angle formed by the transparent flexible display 211 contacting the contact portion 241 with the ground 1040 is adjusted.
  • 11A to 11D are views referred to for describing a screen displayed on a transparent flexible display according to an embodiment of the present invention.
  • the transparent flexible display 211 may include image display areas 1110, 1120, and 1130.
  • the processor 180 may display an image received from the camera 121 in the image display area.
  • the first camera 121a may be configured in plural.
  • the first camera 121a is comprised of three, and can capture the image of the vehicle rear, left rear, right rear.
  • the camera photographing the rear of the vehicle may be installed at the top or bottom of the rear license plate.
  • the camera photographing the rear left side of the vehicle may be installed in the left door or the left side mirror module.
  • the camera photographing the right rear of the vehicle may be installed in the right door or the right side mirror module.
  • the processor 180 may display the acquired vehicle rear image on the first area 1110.
  • the processor 180 may display the obtained right rear image of the vehicle in the second area 1120.
  • the processor 180 may display the acquired left rear image on the third area 1130.
  • the transparent flexible display 211 may perform a side mirror function.
  • the second camera 121b may photograph an interior image of the vehicle.
  • the processor 180 may display the vehicle interior image in any one of the first to third regions 1110, 1120, and 1130.
  • the transparent flexible display 211 may perform a room mirror function.
  • FIG. 11B illustrates an embodiment in which a vehicle rear view image is received and the vehicle rear view image is displayed on the display 210.
  • the camera for acquiring the vehicle rear image may include a first camera 1160a, a second camera 1160b, and a third camera 1160c.
  • the first camera 1160a may be provided at the rear of the vehicle, for example, above or below the rear license plate.
  • the first camera 1160a may acquire the first image 1170a.
  • the first image 1170a may be a rear image of the vehicle.
  • the second camera 1160b may be provided on the left side of the vehicle (eg, the left side mirror module).
  • the second camera 1160b may acquire a second image 1170b.
  • the second image 1170b may be a left rear image of the vehicle.
  • the third camera 1160c may be provided on the right side of the vehicle (eg, the right side mirror module).
  • the third camera 1160c may acquire a third image 1170c.
  • the third image 1170c may be a rear right image of the vehicle.
  • the processor 180 may receive the first to third images 1170a, 1170b, and 1170c, synthesize the first to third images 1170a, 1170b, and 1170c, and generate the synthesized image 1180.
  • the processor 180 may control to be displayed on the transparent flexible display 211.
  • an area overlapping each image acquired by the first to third cameras 1160a, 1160b, and 1160c may be generated.
  • processing of overlapping regions is required.
  • the processing of the overlapping regions can be processed in the following manner.
  • the processor 180 synthesizes the first image 1170a and the second image 1170b based on the extension line 1162a (hereinafter, referred to as a first line) of the left bodyline of the vehicle. can do.
  • the processor 180 may have a right side of the first line 1162a based on the first image 1170a and a left side of the first line 1162a based on the first line 1162a. Can be synthesized based on
  • the processor 180 may synthesize the first image 1170a and the third image 1170c based on the extension line 1162b (hereinafter, referred to as a second line) of the right body line of the vehicle.
  • the processor 180 is based on the second line 1162b, the left side of the second line 1162b is based on the first image 1170a, and the right side of the second line 1162b is the third image ( 1170c).
  • the processor 180 is based on the second line 1162b, the left side of the second line 1162b is based on the first image 1170a, and the right side of the second line 1162b is the third image ( 1170c).
  • the first to third cameras 1160a, 1160b, and 1160c have different positions provided in the vehicle, respectively. Accordingly, a sense of distance may be generated in the image acquired by each camera. When the composite image 1180 is generated, distance correction is required.
  • the distance correction can be processed in the following manner.
  • the processor 180 may synthesize the first to third images by adjusting distances to the second and third images based on the first camera position.
  • the second and third cameras may not be disposed in the same plane as the first camera.
  • the first camera may be provided above or below the vehicle rear license plate, the second camera may be provided in the left side mirror module, and the third camera may be provided in the right side mirror module.
  • a point at which the second and third cameras acquire an image is different from a point at which the first camera acquires an image. Accordingly, a sense of distance according to the distance between the second and third cameras and the first camera is generated between the second and third images and the first image.
  • the processor 180 may adjust the distance through scaling such that the first to third images are photographed on the same plane.
  • the processor 180 may display vehicle information on an image display area.
  • the vehicle information may be information received from the vehicle sensor unit 760 through the interface unit 160.
  • the vehicle information may be information received from the controller 770 through the interface unit 160.
  • the vehicle information may be information received from the mobile terminal 250 or the server 260 through the communication unit 110.
  • the vehicle information may be information received through the input unit 120.
  • the processor 180 may display vehicle speed information (shown in FIG. 11B), traffic sign information, navigation information, fuel level information (shown in FIG. 11B (b)), and a vehicle failure in the image display area 1140.
  • vehicle speed information shown in FIG. 11B
  • traffic sign information shown in FIG. 11B
  • navigation information shown in FIG. 11B (b)
  • fuel level information shown in FIG. 11B (b)
  • a vehicle failure in the image display area 1140.
  • Information, traffic information and the like can be displayed.
  • the processor 180 may exchange data with the server 260 through the communication unit 110.
  • the server 260 may be a home server.
  • an image taken from a camera installed at home may be transferred to a home server.
  • the processor 180 may receive the captured image and display the captured image on the image display area 1150 through the communication unit 110.
  • FIG. 12 is a diagram for describing an operation of controlling an image display area through the mobile terminal 250 according to an embodiment of the present invention.
  • the processor 180 receives a control signal of the mobile terminal 250 and controls the display unit 210. Can be.
  • the processor 180 may determine the above. In response to the pinch-in input, the size of the image display area 1210 displayed on the transparent flexible display 211 may be reduced.
  • the processor 180 may determine the above. In response to the pinch-out input, the size of the image display area 1210 displayed on the transparent flexible display 211 may be increased.
  • the processor 180 corresponds to the drag direction.
  • the position of the image display area 1210 displayed on the transparent flexible display 211 may be changed.
  • FIG. 13 is a diagram referred to for describing an operation of outputting vehicle information by voice according to an embodiment of the present invention.
  • the processor 180 may output vehicle information as a voice through the sound output unit 220.
  • the processor 180 may negatively output the state of the remaining fuel amount 1310. If the remaining fuel amount is insufficient, the voice 1310 may be asked whether the neighboring gas station is searched. In this case, the processor 180 may receive a voice command through the microphone 123.
  • the processor 180 may provide a calendar function.
  • the calendar function may be provided through an application provided in the vehicle 10.
  • the calendar function of the mobile terminal 250 may be provided through pairing.
  • the processor 180 may output the preset schedule as voice through the sound output unit 1320.
  • the processor 180 may output navigation information corresponding to a preset schedule as a voice 1320.
  • FIG. 14 is a view referred to for explaining a voice command reception operation according to an embodiment of the present invention.
  • the processor 180 may receive a user voice command through the microphone 123.
  • the occupant may ask the voice 1410 for the reason for the road congestion in the road congestion section.
  • the processor 180 may receive information from the server 260 through the communication unit 110.
  • the server 260 may be a server for providing traffic information.
  • the processor 180 may output the received information to the voice 1420 through the sound output unit 220.
  • the processor 180 may display the received information on the transparent flexible display 211.
  • FIG. 15 is a diagram for describing an operation of controlling an image display area by detecting a passenger's gaze according to an exemplary embodiment of the present invention.
  • the second camera 121b may photograph a line of sight of a passenger.
  • the second camera 121b may photograph an occupant's eyes.
  • the processor 180 receives an image from the second camera 121b.
  • the processor 180 extracts a pupil from the received image.
  • the processor 180 tracks the extracted pupil.
  • the processor 180 may activate the image display area 1510. That is, when the occupant's eyes are directed toward the front of the vehicle, the transparent flexible display 211 only serves to block light flowing from the outside. When the occupant's eyes are directed to the transparent flexible display 211, the processor 180 may activate the image display area 1510, and the transparent flexible display 211 may serve as a display means.
  • the image described with reference to FIGS. 11A through 11C may be displayed in the image display area 1510.
  • the vehicle interior image acquired from the second camera 121b may be displayed in the image display area 1510.
  • FIG. 16 is a diagram referred to for describing an operation of detecting a gesture of a passenger according to an embodiment of the present invention.
  • the processor 180 may use the display unit 210 or the sound output unit 220. In addition, call reception information can be output.
  • the processor 180 receives the gesture input through the second camera 121b.
  • the processor 180 transmits a call reception command to the mobile terminal 250. Accordingly, the mobile terminal 250 can make a call connection.
  • the processor 180 may receive a user voice through the microphone 123 and output the received voice through the sound output unit 220.
  • FIG. 17 is a diagram referred to for describing an operation of displaying text message reception information and call reception information according to an embodiment of the present invention.
  • the processor 180 receives the text message through the communication unit 110. Is received and displayed on the display 210. In detail, the processor 180 displays a text message on the image display area 1710 included in the transparent flexible display 211.
  • the processor 180 may communicate with the communication unit 110. Receives a call signal, and displays the lake god event on the display 210. In detail, the processor 180 displays the deity scene on the image display area 1720 included in the transparent flexible display 211.
  • 18A to 18B are views for explaining an operation of displaying a state of a transparent flexible display, a driver, or a guide unit, according to an exemplary embodiment of the present invention.
  • the processor 180 may display the states of the transparent flexible display 211, the driver 230, or the guide 240.
  • the processor 180 may display an image 1810 corresponding to the length of the transparent flexible display 211 on the display unit 210.
  • the processor 180 may display an image 1820 corresponding to an angle formed by the contact portion 241 with the ground on the display 210.
  • the processor 180 may display on the display 210 an image 1830 corresponding to an angle formed by the transparent flexible display 211 with the ground.
  • the processor 180 may display the states of the transparent flexible display 211, the driver 230, or the guide unit 240.
  • the processor 180 may display the length of the drawn transparent flexible display 211 as a character 1840.
  • the processor 180 may display an angle formed by the transparent flexible display 211 with the ground as a character 1850.
  • the processor 180 may display an angle formed by the contact portion 241 with the ground using text.
  • 19 is a block diagram referred to describe a vehicle display apparatus according to an embodiment of the present invention.
  • the vehicle display apparatus 400 may include a communication unit 410, an input unit 420, a memory 430, a display unit 440, an audio output unit 448, a driver 450, and a sensing unit ( 460, a processor 470, an interface unit 480, and a power supply unit 490 may be included.
  • the communication unit 410 may include one or more wireless communication devices between the vehicle 700 and the mobile terminal 600, between the vehicle 700 and the external server 510, or between the vehicle 700 and another vehicle 520. It may include a module. In addition, the communication unit 410 may include one or more modules for connecting the vehicle 700 to one or more networks.
  • the communication unit 410 may include a broadcast receiving module 411, a wireless internet module 412, a short range communication module 413, a location information module 414, and a V2X communication module 416.
  • the broadcast receiving module 411 receives a broadcast signal or broadcast related information from an external broadcast management server through a broadcast channel.
  • the broadcast includes a radio broadcast or a TV broadcast.
  • the wireless internet module 412 refers to a module for wireless internet access and may be embedded or external to the vehicle 700.
  • the wireless internet module 412 is configured to transmit and receive wireless signals in a communication network in accordance with wireless internet technologies.
  • wireless Internet technologies include wireless LAN (WLAN), wireless-fidelity (Wi-Fi), wireless fidelity (Wi-Fi) Direct, digital living network alliance (DLNA), wireless broadband (WiBro), WiMAX ( World Interoperability for Microwave Access (HSDPA), High Speed Downlink Packet Access (HSDPA), High Speed Uplink Packet Access (HSUPA), Long Term Evolution (LTE), Long Term Evolution-Advanced (LTE-A), and the like.
  • 412 transmits and receives data according to at least one wireless Internet technology in a range including the Internet technologies not listed above.
  • the wireless internet module 412 may exchange data wirelessly with the external server 510.
  • the wireless internet module 412 may receive weather information and road traffic information (eg, TPEG (Transport Protocol Expert Group)) information from the external server 510.
  • TPEG Transport Protocol Expert Group
  • the short range communication module 413 is for short range communication, and includes Bluetooth TM, Radio Frequency Identification (RFID), Infrared Data Association (IrDA), Ultra Wideband (UWB), ZigBee, Near field communication may be supported using at least one of Near Field Communication (NFC), Wireless-Fidelity (Wi-Fi), Wi-Fi Direct, and Wireless Universal Serial Bus (Wireless USB) technologies.
  • RFID Radio Frequency Identification
  • IrDA Infrared Data Association
  • UWB Ultra Wideband
  • ZigBee ZigBee
  • Near field communication may be supported using at least one of Near Field Communication (NFC), Wireless-Fidelity (Wi-Fi), Wi-Fi Direct, and Wireless Universal Serial Bus (Wireless USB) technologies.
  • the short range communication module 413 may form short range wireless networks to perform short range communication between the vehicle 400 and at least one external device. For example, the short range communication module 413 may exchange data with the mobile terminal 600 wirelessly.
  • the short range communication module 413 may receive weather information and traffic condition information of the road (eg, a transport protocol expert group (TPEG)) from the mobile terminal 600. For example, when the user boards the vehicle 700, the mobile terminal 600 and the vehicle 700 of the user may perform pairing with each other automatically or by executing an application of the user.
  • TPEG transport protocol expert group
  • the location information module 414 is a module for acquiring the location of the vehicle 700, and a representative example thereof is a global positioning system (GPS) module.
  • GPS global positioning system
  • the vehicle may acquire the position of the vehicle using a signal transmitted from a GPS satellite.
  • the V2X communication module 416 is a module for performing wireless communication with the server 510 or another vehicle 520.
  • the V2X module 416 includes a module capable of implementing inter-vehicle communication (V2V) or inter-vehicle communication (V2I) protocol.
  • the vehicle 700 may perform wireless communication with the external server 510 and another vehicle 520 through the V2X communication module 416.
  • the input unit 420 may include a user input unit 421 and a sound input unit 422.
  • the user input unit 421 is for receiving information from a user.
  • the processor 470 may control an operation of the vehicle display apparatus 400 to correspond to the input information.
  • the user input unit 424 may include a touch input means or a mechanical input means.
  • the sound input unit 422 may process an external sound signal as electrical data.
  • the processed data may be utilized in various ways depending on the function being performed in the vehicle display apparatus 400.
  • the sound input unit 422 may convert a user's voice command into electrical data.
  • the converted electrical data may be transferred to the processor 470.
  • the memory 430 is electrically connected to the processor 470.
  • the memory 430 may store basic data for the unit, control data for controlling the operation of the unit, and input / output data.
  • the memory 430 may be various storage devices such as a ROM, a RAM, an EPROM, a flash drive, a hard drive, or the like in hardware.
  • the memory 430 may store various data for operations of the overall vehicle display apparatus 400, such as a program for processing or controlling the processor 470.
  • the memory 430 may store map data for implementing a navigation function.
  • the map data may be stored as a vehicle factory default.
  • the map data may be received from an external device through the communication unit 410 or the interface unit 480.
  • the display unit 440 may display information processed by the processor 470.
  • the display unit 440 may display vehicle related information.
  • the vehicle related information may include vehicle control information for direct control of the vehicle, or vehicle driving assistance information for driving guide to the vehicle driver.
  • the vehicle related information may include vehicle state information indicating a current state of a vehicle or vehicle driving information related to driving of the vehicle.
  • the display unit 440 may include a transparent flexible display 441.
  • the transparent flexible display 441 may be configured to be deformable by an external force.
  • the deformation may be at least one of bending, bending, folding, twisting, and curling the transparent flexible display 441.
  • the display area of the transparent flexible display 441 becomes flat.
  • the display area may be a curved surface.
  • the information displayed in the second state may be visual information output on a curved surface.
  • Such visual information is implemented by independently controlling light emission of a sub-pixel disposed in a matrix form.
  • the unit pixel refers to a minimum unit for implementing one color.
  • the transparent flexible display 441 may be placed in a bent state (eg, bent vertically or horizontally) instead of being flat in the first state. In this case, when an external force is applied to the transparent flexible display 441, the transparent flexible display 441 may be deformed into a flat state (or less curved state) or more curved state.
  • the transparent flexible display 441 may be combined with a touch sensor to implement a flexible touch screen.
  • the processor 470 may perform control corresponding to the touch input.
  • the flexible touch screen may be configured to detect a touch input not only in the first state but also in the second state.
  • the transparent flexible display 441 may have a predetermined transparency.
  • the transparent flexible display 441 includes a transparent thin film elecroluminescent (TFEL), a transparent organic light-emitting diode (OLED), a transparent liquid crystal display (LCD), a transparent transparent display, and a transparent light emitting diode (LED). It may include at least one of the displays.
  • the transparency of the transparent flexible display 441 may be adjusted under the control of the processor 470.
  • the transparent flexible display 441 may be disposed in the vehicle without being exposed to the outside while being rolled around a predetermined axis. In this state, according to a predetermined event, one region of the transparent flexible display 441 may be exposed to the interior of the vehicle.
  • the event may be a user input.
  • the transparent flexible display 441 may be disposed in the dashboard while being rolled around a predetermined axis.
  • the transparent flexible display 441 may be wound around the front windshield on the dash board.
  • the transparent flexible display 441 may be deployed toward the front windshield on the dashboard.
  • the transparent flexible display 441 may be disposed in the A-pillar in a state of being rolled around a predetermined axis.
  • the transparent flexible display 441 may be rolled up from the pillar to the front windshield or the side window glass.
  • the transparent flexible display 441 may be deployed toward the front windshield or the side window glass at the pillar.
  • the transparent flexible display 441 may be disposed inside the door in a state of being rolled around a predetermined axis.
  • the transparent flexible display 441 may be rolled up from the door toward the side window glass.
  • the transparent flexible display 441 may be deployed from the door toward the side window glass.
  • the transparent flexible display 441 may be disposed on a ceiling of a vehicle interior in a state of being rolled around a predetermined axis.
  • the transparent flexible display 441 may be rolled up from the ceiling toward the front windshield, the rear windshield, or the side window glass.
  • the transparent flexible display 441 may be deployed toward the front windshield, the rear windshield, or the side window glass from the ceiling.
  • the transparent flexible display 441 may be disposed on a sheet in a state of being rolled around a predetermined axis.
  • the transparent flexible display 441 may be rolled up to be upwardly, downwardly, or laterally in the sheet.
  • the transparent flexible display 441 may be extended upward, downward, or laterally in the sheet.
  • the area of the transparent flexible display 441 that is exposed to the interior of the vehicle may be adjusted according to a user input.
  • an unfolded area of the transparent flexible display 441 may be adjusted according to a user input.
  • the transparent flexible display 441 may be disposed in at least one of a front windshield, a rear windshield, a side window glass, and a front seat in an interior space of the vehicle.
  • the sound output unit 448 converts an electrical signal from the processor 470 into an audio signal and outputs the audio signal.
  • the sound output unit 448 may include a speaker or the like.
  • the sound output unit 448 may output a sound corresponding to the operation of the user input unit 421.
  • the driver 450 may adjust the length of an area of the transparent flexible display 441 that is exposed to the interior of the vehicle. For example, the driver 450 may adjust the deployment area of the transparent flexible display 441.
  • the driving unit 450 may include a roller unit 451, a driving force generating unit 452, an elastic support unit (2221a to 2221d in FIG. 22), and an inclination adjustment unit (2230 in FIG. 22).
  • the roller unit 451 may adjust the length of an area exposed to the outside through rotation by being in contact with the transparent flexible display 441.
  • the roller unit 451 may be in contact with the transparent flexible display 441 to adjust the deployment area through rotation.
  • the roller unit 451 may include a main roller (2211 in FIG. 22) and a sub roller (2212a to 2211f in FIG. 22).
  • the main roller (2211 of FIG. 22) may be connected to the driving force generator 452.
  • the main roller (2211 of FIG. 22) can accommodate the rotational driving force generated by the driving force generation unit 452.
  • the sub rollers 2212a to 2212f of FIG. 22 may be disposed between the transparent flexible display 441 and the housing.
  • the sub rollers 2212a to 2212f may reduce frictional force with the housing 2235 of FIG. 22 when the transparent flexible display 441 is drawn in or drawn out.
  • the driving force generation unit 452 may provide a rotational driving force to the roller unit 451.
  • the driving force generator 452 may include a motor.
  • the driving force generator 452 may provide the roller unit 451 with a rotational driving force generated by the motor.
  • the elastic support part 2221a to 2221d of FIG. 22 may elastically support the transparent flexible display 441 to the housing 2235.
  • the tilt adjuster 2230 of FIG. 22 may adjust the tilt of the transparent flexible display 441.
  • the driving unit 450 will be described later with reference to FIG. 22.
  • the sensing unit 460 may include a sun sensor 461, a light amount sensor 462, and a length sensor 463.
  • Solar sensor 461 tracks the position of the sun. For example, solar sensor 461 performs tracking of azimuth and elevation angles of the sun. Solar sensor 461 may include one or more photodiodes to track the position of the sun.
  • the light amount sensor 462 detects an amount of light flowing into the vehicle. Specifically, the light amount sensor 462 detects the amount of sunlight.
  • the light amount sensor 462 may include a photoconductive device such as a CdS photoconductive cell or a CdS cell.
  • the length detector 463 may detect the length of the transparent flexible display 441 exposed inside the vehicle. For example, the length detector 463 may detect a deployment area of the transparent flexible display 441.
  • the processor 470 controls the overall operation of each unit in the vehicle display apparatus 400.
  • the processor 470 may control the display unit 440 or the sound output unit 448 to output information or data received through the communication unit 410, the input unit 420, or the interface unit 480.
  • the processor 470 may control the display unit 440 or the sound output unit 448 to output information or data stored in the memory 430.
  • the processor 470 may directly output or process the received information or data.
  • the processor 470 may visually output information or data through the display unit 440.
  • the processor 470 may acoustically output information or data through the sound output unit 448.
  • the processor 470 may control the driver 450.
  • the processor 470 may control the driver 450 to control the entry or withdrawal of the transparent flexible display 441.
  • the processor 470 may control the development of the transparent flexible display through the control of the driver 450.
  • an area of the transparent flexible display 441 may be exposed to the interior of the vehicle.
  • the processor 470 may control the screen to be displayed on the transparent flexible display 441.
  • the processor 470 may control the screen to be displayed on the exposed area.
  • the processor 470 may control the screen to be displayed in the development area of the transparent flexible display 441.
  • the processor 470 may control different screens to be displayed on each of the plurality of transparent displays.
  • the transparent flexible display 441 may include a first display and a second display. If a passenger rides besides the user, the processor 470 may control the second display to be exposed to the interior of the vehicle. For example, the processor 470 may control the second display to be deployed.
  • the processor 470 may receive image data acquired by the camera 195 through the interface unit 480.
  • the processor 470 may display a screen based on image data on the transparent flexible display 441.
  • the processor 470 may control the rear flexible image of the vehicle to be displayed on the transparent flexible display 441.
  • the processor 470 may control the rear image of the vehicle to be displayed on the transparent flexible display 441 disposed in close proximity to the side window glass.
  • the processor 470 may control the rear image of the vehicle to be displayed on the transparent flexible display 441 disposed close to the side window glass. have.
  • the processor 470 may darken the transparent flexible display 441 according to the amount of light irradiated into the vehicle.
  • the processor 470 may control the transparent flexible display 441 to form a predetermined color or contrast, thereby darkening the transparent flexible display 441.
  • the amount of light may be detected through the light amount sensor 462.
  • the processor 470 may receive collision information with the object through the interface unit 480.
  • the camera 195 may detect a collision with an object.
  • a radar, a rider (LiDAR), or an ultrasonic sensor included in the sensing unit 760 may detect a collision with an object.
  • the processor 470 may control the transparent flexible display 441 not to be exposed through the driver 450.
  • the processor 470 may control the driver 450 to control the transparent flexible display 441 to be disposed in a state in which the transparent flexible display 441 is rolled around a predetermined axis. As a result, damage to the transparent flexible display 441 due to an accident can be prevented.
  • the processor 470 may generate new information based on the information or data received through the interface unit 480.
  • the processor 470 may control the display 441 to display the generated information or a screen corresponding to the generated information.
  • the processor 470 may include application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), processors (processors), It may be implemented using at least one of controllers, micro-controllers, microprocessors, and electrical units for performing other functions.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGAs field programmable gate arrays
  • processors processors
  • It may be implemented using at least one of controllers, micro-controllers, microprocessors, and electrical units for performing other functions.
  • the interface unit 480 may receive data or transmit a signal processed or generated by the processor 470 to the outside. To this end, the interface unit 130 may perform data communication with the control unit 770, the vehicle driving assistance device 400, the sensing unit 760, and the like, by wire or wireless communication.
  • the interface unit 480 may receive sensor information from the control unit 770 or the sensing unit 760.
  • the sensor information includes vehicle direction information, vehicle position information (GPS information), vehicle angle information, vehicle speed information, vehicle acceleration information, vehicle tilt information, vehicle forward / reverse information, battery information, fuel information, tire information, vehicle lamp It may include at least one of information, vehicle interior temperature information, vehicle interior humidity information.
  • Such sensor information may include heading sensors, yaw sensors, gyro sensors, position modules, vehicle forward / reverse sensors, wheel sensors, vehicle speed sensors, It may be obtained from a vehicle body tilt sensor, a battery sensor, a fuel sensor, a tire sensor, a steering sensor by steering wheel rotation, a vehicle interior temperature sensor, a vehicle interior humidity sensor, and the like.
  • the position module may include a GPS module for receiving GPS information.
  • vehicle driving information the vehicle driving information related to the vehicle driving.
  • the interface unit 480 may receive object detection information, distance information with an object, relative speed information with an object, or collision information with an object obtained through a radar, a rider or an ultrasonic sensor.
  • the object may be various objects located on a road such as another vehicle, a traffic light, a traffic sign, a roadside tree, a pedestrian, a street light, a guardrail, and the like.
  • the interface unit 480 may receive vehicle front image data or vehicle surrounding image data obtained from the camera 195.
  • the interface unit 480 may receive image data acquired by each camera disposed in the front, rear, left, and right rooms.
  • the interface unit 480 may receive information or data obtained by processing the vehicle front image or the vehicle surrounding image by the processor 170 of the vehicle driving assistance apparatus 100.
  • the interface unit 480 may receive detection information of the object, distance information with the object, relative speed information with the object, or collision information with the object obtained through image processing.
  • the interface unit 480 may receive passenger information obtained by the internal camera 195c.
  • the interface unit 480 may receive the gaze information of the user acquired by the internal camera 195c.
  • the interface unit 480 may receive vehicle state information.
  • the interface unit 480 may receive the open or closed state information of the window from the window driver 756.
  • the power supply unit 490 may supply power required for the operation of each component under the control of the processor 770.
  • the power supply unit 490 may receive power from a battery or the like inside the vehicle.
  • FIG. 20 is a diagram referred to for describing a position of a transparent flexible display according to an embodiment of the present invention.
  • the transparent flexible display 441 may be disposed to be close to the front windshield 2210.
  • the transparent flexible display 441 may be located inside the dashboard.
  • a hole for pulling out the transparent flexible display 441 may be formed on the upper side of the dashboard.
  • the transparent flexible display 441 may be disposed inside the dashboard while being rolled around a predetermined axis. Under the control of the processor 470, a portion of the transparent flexible display 441 may be exposed toward the interior of the vehicle.
  • the transparent flexible display 441 may be disposed in proximity to the rear windshield.
  • the transparent flexible display 441 may be located inside the C-PILLAR.
  • a hole for pulling out the transparent flexible display 441 may be formed at one side of the C-PILLAR.
  • the transparent flexible display 441 may be disposed inside the C-PILLAR while being rolled around a predetermined axis. Under the control of the processor 470, a portion of the transparent flexible display 441 may be exposed toward the interior of the vehicle.
  • the transparent flexible display 441 may be disposed to be close to the side window glass 2020.
  • the transparent flexible display 441 may be located inside a door of the vehicle. In this case, a hole for pulling out the transparent flexible display 441 may be formed above the door.
  • the transparent flexible display 441 may be disposed inside the door in a state of being rolled around a predetermined axis. Under the control of the processor 470, a portion of the transparent flexible display 441 may be exposed toward the interior of the vehicle.
  • the transparent flexible display 441 may be located inside the A-PILLAR or the B-PILLAR of the vehicle. In this case, a hole for pulling out the transparent flexible display 441 may be formed at one side of the A-PILLAR or the B-PILLAR.
  • the transparent flexible display 441 may be disposed inside the A-PILLAR or the B-PILLAR while being rolled around a predetermined axis. Under the control of the processor 470, a portion of the transparent flexible display 441 may be exposed toward the interior of the vehicle.
  • the transparent flexible display 441 may be disposed to be close to the front sheet 2020.
  • the transparent flexible display 441 may be disposed on the rear surface of the front sheet 2020. In this case, the user who sits on the rear seat can see the content displayed on the transparent flexible display 441.
  • 21 is an exemplary view of a case in which the transparent flexible display is disposed in close proximity to the front windshield according to an embodiment of the present invention.
  • the transparent flexible display 441 may be located inside the dashboard 2110.
  • a hole 2115 for withdrawing the transparent flexible display 441 may be formed on the upper side of the dash 2110 board.
  • the transparent flexible display 441 may be disposed inside the dashboard 2110 in a state of being rolled around a predetermined axis. Under the control of the processor 470, a portion of the transparent flexible display 441 may be exposed toward the interior of the vehicle.
  • the front windshield may be formed of an inner glass and an outer glass.
  • a space may be formed between the inner glass and the outer glass.
  • An exposed area of the transparent flexible display 441 may be disposed in a space between the inner glass and the outer glass.
  • 22 is a diagram referred to describe a transparent flexible display and a driver, according to an embodiment of the present invention. 22 illustrates a side view of the drive 450.
  • the transparent flexible display 441 may be rolled around a first axis 2201.
  • Transparent electrodes 2241 and 2242 may be disposed in at least one region of the transparent flexible display 441.
  • the processor 470 may transmit an electrical signal or electrical energy to the transparent flexible display 441 through the transparent electrodes 2241 and 2242.
  • the driver 450 may adjust the length of an area of the transparent flexible display 441 that is exposed to the interior of the vehicle.
  • the driving unit 450 may include a roller unit 451, a driving force generating unit 452, elastic support units 2221 to 2221d, and an inclination adjusting unit 2230.
  • the roller unit 451 may adjust the length of an area exposed to the outside through rotation by being in contact with the transparent flexible display 441.
  • the roller unit 451 may roll or unwind the transparent flexible display 441 through a rotational driving force.
  • the roller unit 451 may include a main roller 2211 and sub rollers 2212a to 2211f.
  • the main roller 2211 may be connected to the driving force generator 452.
  • the main roller 2211 may receive a rotational driving force generated by the driving force generator 452.
  • the main roller 2211 may be connected to the transparent flexible display 441.
  • the main roller 2211 may rotate about the first shaft 2201.
  • the first axis 2201 is an axis that is the center when the transparent flexible display 441 is rolled up.
  • the main roller 2211 may roll or unwind the transparent flexible display 441 while rotating about the first axis 2201.
  • the sub rollers 2212a to 2212f may be disposed between the transparent flexible display 441 and the housing. In this figure, although six sub rollers 2212a-2212f are illustrated, it is not limited to the number.
  • the driving unit 450 may include one or more sub rollers.
  • the sub rollers 2212a to 2212f may reduce the frictional force with the housing 2235 when the transparent flexible display 441 is drawn in or drawn out.
  • the driving force generation unit 452 may provide a rotational driving force to the roller unit 451.
  • the driving force generator 452 may include a motor.
  • the driving force generator 452 may provide the roller unit 451 with a rotational driving force generated by the motor.
  • the elastic supports 2221a to 2221d may elastically support the transparent flexible display 441 to the housing 2235.
  • the elastic supports 2221a to 2221d may include springs.
  • the elastic supports 2221a to 2221d may closely contact the transparent flexible display 441 in a predetermined direction so that the transparent flexible display 441 and the housing 2235 may not be spaced apart from each other.
  • the tilt adjusting unit 2230 may adjust the tilt of the transparent flexible display 441.
  • the tilt adjusting unit 2230 may be disposed in one region of the housing 2235.
  • the tilt adjusting unit 2230 may adjust the inclination of the exposed area of the transparent flexible display 441 according to the degree of protrusion.
  • 23 to 25 are views referred to for explaining a support module according to an embodiment of the present invention.
  • the vehicle display apparatus 400 may further include a support module 2310, a support module roller 2315, an elastic module 2330, an insertion guide 2335, and an elastic module roller 2340. It may include.
  • the support module 2310 may support an area of the transparent flexible display 441 that is exposed to the inside of the vehicle.
  • the support module 2310 may be formed to be rollable.
  • the support module 2310 may include a plurality of aprons 2311 connected to each other.
  • the support module 2310 may be wound or unwound by the support module roller 2315.
  • Each of the plurality of aprons 2311 may include a magnet 2312.
  • the magnet 2312 may attach the transparent flexible display 441 and the apron.
  • the support module roller 2315 may roll or loosen the support module 2310 through the rotational driving force generated by the motor 2520.
  • the rotational driving force generated by the motor 2520 may be transmitted to the support module 2315 through the driving force transmission unit 2510.
  • the driving force transmission unit 2510 may include a belt 2511 and the gear 2512.
  • the elastic module 2330 may include a plurality of elastic pieces 2230. As illustrated in FIG. 24, the elastic piece 2330 may be inserted into a slot 2331 formed in the apron 2311. Since the slot 2331 formed in the apron 2311 has an under cut structure, it is not inserted because the width of the elastic piece 2330 is larger than the entrance of the slot 2331.
  • the insertion guide 2335 narrows the width of the elastic piece 2330 and can be inserted into the slot 2331.
  • each of the plurality of elastic pieces 2330 is inserted into the slot 2331 formed in the plurality of aprons 2311, thereby maintaining the vertical posture of the support module 2310 due to the elastic force of the elastic pieces 2330.
  • the elastic module roller 2340 may roll or loosen the elastic module 2310 through a rotation driving force generated by a motor (not shown).
  • the transparent flexible display 441 may be attached to the support module 2310 through the plurality of magnets 2312.
  • the transparent flexible display 441 may be exposed to the vehicle interior while being attached to the support module 2310. In this case, the transparent flexible display 441 may maintain a vertical posture.
  • 26A to 26B are views referred to for explaining a support module according to an embodiment of the present invention.
  • the support module 2310 may support a region of the transparent flexible display 441 that is exposed to the inside of the vehicle.
  • the support module 2600 may include a fixing part 2620, a connecting part 2625, and a guide part 2610.
  • the support module 2600 may include a first support module and a second support module.
  • the first supporting module will be described.
  • the second support module may be formed to correspond to the first support module.
  • the fixing unit 2620 may fix an exposed area of the transparent flexible display 441.
  • the fixing unit 2620 may be held while holding a part of the exposed area of the transparent flexible display 441.
  • the fixing unit 2620 may be formed of a transparent material.
  • the fixing part 2620 may be formed of a transparent plastic material.
  • the guide part 2610 may be formed such that the fixing part 2620 is linearly movable.
  • the guide part 2610 may include a groove.
  • the connection part 2625 may be seated in the groove.
  • the fixing unit 2620 may linearly move up and down or left and right along the groove in a state where the connection part 2625 is seated in the groove.
  • the transparent flexible display 441 may be formed in proximity to the front windshield.
  • the fixing part 2620 may be linearly moved in the vertical direction or the left and right directions of the front windshield.
  • the guide portion 2610 may be disposed inside the A-PILLAR.
  • the guide part 2610 may include a first guide part and a second guide part.
  • the first guide part and the second guide part may be disposed inside both A-pillars of the vehicle.
  • the transparent flexible display 441 may be stretched or wound up and down.
  • the first guide part may be disposed on the dashboard, and the second guide part may be disposed on the ceiling.
  • the transparent flexible display 441 may be unfolded or wound in the left and right directions.
  • FIG. 27 is a diagram referred to for describing an operation of exposing a transparent flexible display according to an exemplary embodiment of the present invention.
  • the transparent flexible display 441 may be disposed in the dash board in a state of being rolled about a first axis.
  • the processor 470 may receive a user input through the input unit 420.
  • the processor 470 may receive a voice input 2710.
  • the processor 470 may control a region of the transparent flexible display 441 to be exposed to the vehicle interior.
  • the processor 270 may control the rotational driving force to be generated by the driving force generation unit 452.
  • the rotational driving force generated by the driving force generator 452 may be transmitted to the main roller 2211.
  • the main roller 2211 can rotate.
  • the transparent flexible display 441 connected to the main roller 2211 may be released.
  • an area 441a of the transparent flexible display 441 may be exposed to the vehicle interior.
  • the length of the exposed area 441a of the transparent flexible display may be adjusted.
  • the processor 470 may control the driver 450 to adjust the length of the region 441a of the transparent flexible display 441 that is exposed to the interior of the vehicle.
  • the processor 470 may display information in the exposed area 441a.
  • the processor 470 may display navigation information in the exposed area 441a.
  • FIG. 28 is a diagram referred to for describing an operation of displaying information on an exposed area according to an embodiment of the present invention.
  • the processor 470 may display information.
  • the information may include vehicle related information, driving situation information, and navigation information.
  • the vehicle related information may include vehicle control information for direct control of the vehicle, or vehicle driving assistance information for driving guide to the vehicle driver.
  • vehicle related information may include vehicle state information indicating a current state of a vehicle or vehicle driving information related to driving of the vehicle.
  • the driving condition information may include information about a driving environment or a driving road.
  • the driving environment information may include weather information at the time of driving.
  • the driving road information may include construction information, road congestion information, and the like.
  • the navigation information may include destination information, estimated time of arrival, required time of arrival, route, and the like.
  • FIG. 29 is a diagram referred to for describing an operation of displaying information on exposed areas of a first display and a second display, according to an embodiment of the present invention.
  • the processor 470 may control to display different screens on each of the plurality of transparent displays.
  • the processor 470 may control to display different screens on the exposed areas of the plurality of transparent flexible displays.
  • the transparent flexible display 441 may include a first display 2901 and a second display 2902.
  • the first display 2901 may be a display disposed in close proximity to the driver's seat.
  • the first display 2901 may be disposed in the dashboard in a state in which the first display 2901 is rolled around the first axis.
  • the processor 470 may control a region of the first display 2901 to be exposed to the vehicle interior according to a user input.
  • the processor 470 may display vehicle related information, driving situation information, or navigation information in the exposed area of the first display 2901.
  • the second display 2902 may be a display disposed in proximity to the passenger seat.
  • the second display 2902 may be disposed inside the dash board in a state in which the second display 2902 is rolled around the second axis.
  • the processor 470 may control a region of the second display 2902 to be exposed to the vehicle interior according to a user input.
  • the processor 470 may display predetermined content in the exposed area of the second display 2902.
  • the content may be related to a vehicle such as a video, the Internet, and a game.
  • the processor 470 may control the second display 2902 is exposed to the interior of the vehicle, when the passenger rides. For example, when only the first display 2901 is exposed and a passenger in the passenger seat is detected through the internal camera 195c, the processor 470 may cause the second display 2902 to be located inside the vehicle. Can be controlled to be exposed.
  • FIG. 30 is a view referred to for describing an operation of displaying an image acquired through a camera on a transparent flexible display according to an embodiment of the present invention.
  • the processor 470 may receive image data acquired by the camera 195 through the interface unit 480.
  • the processor 470 may display a screen based on image data on the transparent flexible display 441.
  • the processor 470 may control the rear flexible image of the vehicle to be displayed on the transparent flexible display 441.
  • the transparent flexible display 441 may be disposed inside the door in a state of being rolled around a first axis.
  • the processor 470 may control the area 441a of the transparent flexible display 441 to be exposed to the vehicle interior according to a user input.
  • the processor 470 may display an image captured by the camera 195 in the exposed area 441a.
  • the transparent flexible display 441 may be disposed inside the A-PILLAR while being rolled around a first axis.
  • the processor 470 may control the area 441a of the transparent flexible display 441 to be exposed to the vehicle interior according to a user input.
  • the processor 470 may display an image captured by the camera 195 in the exposed area 441a.
  • the processor 470 may control the rear image 3010 of the vehicle to be displayed on the transparent flexible display 441a disposed in close proximity to the side window glass.
  • the processor 470 may display the rear image 3003 of the vehicle on the transparent flexible display 441a disposed close to the side window glass. Can be controlled.
  • FIG. 31 is a diagram referred to describe a transparent flexible display capable of adjusting an angle and adjusting brightness according to an embodiment of the present invention.
  • an angle of the transparent flexible display 441 may be adjusted.
  • the exposed area 441a of the transparent flexible display 441 may form an angle with the dashboard in the YZ plane.
  • the Y axis may be the full width direction (W)
  • the Z axis may be the full length direction (L).
  • An angle of the exposed area 441a of the transparent flexible display 441 may be adjusted according to the line of sight of the user.
  • the processor 470 may control the degree of protrusion of the tilt adjuster 2230.
  • the processor 470 may adjust the inclination of the exposed area 441a with the dashboard by controlling the degree of protrusion of the inclination adjuster 2230.
  • the processor 470 may control the inclination of the exposed area 441a so that the user may look at the front and simultaneously stare at the screen displayed on the exposed area 441a.
  • the processor 470 may control the inclination of the exposed area 441a such that the direction of the user's line of sight and the angle of the exposed area 441a on the YZ plane are 80 ° or more and 100 ° or less.
  • the processor 470 may adjust the brightness of the transparent flexible display 441 according to the amount of light irradiated into the vehicle interior. For example, the processor 470 may darken the transparent flexible display 441 in proportion to the amount of light irradiated into the vehicle. By darkening the entire transparent flexible display 441, the visibility of the displayed content can be improved.
  • 32 is a diagram referred to describe an operation of a transparent flexible display when collision information with an object is received according to an embodiment of the present invention.
  • the processor 470 may receive collision information with an object through the interface unit 480.
  • the camera 195 may detect a collision with an object.
  • a radar, a rider (LiDAR), or an ultrasonic sensor included in the sensing unit 760 may detect a collision with an object.
  • the processor 470 may control the transparent flexible display 441 not to be exposed through the driver 450.
  • the processor 470 may control the driver 450 to control the transparent flexible display 441 to be disposed in a state in which the transparent flexible display 441 is rolled around a predetermined axis. As a result, damage to the transparent flexible display 441 due to an accident can be prevented.
  • FIG 33 is a diagram referred to for describing an operation of displaying POI information on a transparent flexible display according to an embodiment of the present invention.
  • the vehicle display apparatus 400 may communicate with a user's mobile terminal 250 through the communication unit 410.
  • the processor 470 may receive the user's interest information from the mobile terminal 250 through the communication unit 410.
  • the mobile terminal 250 may accumulate and store information corresponding to a website, an SNS keyword, and a text message keyword that a user accesses.
  • the mobile terminal 250 may extract the user's interest information based on the stored information.
  • the processor 470 may receive the interest information from the mobile terminal 250.
  • the processor 470 may display points of interest (POIs) 3311, 3312, 3313, and 3314 corresponding to the interest information in the exposed area 441a of the transparent flexible display.
  • POIs points of interest
  • FIG. 34 is a diagram referred to for describing an operation of displaying TBT information on a transparent flexible display according to an embodiment of the present invention.
  • the processor 470 may display navigation information on the exposed area 441a of the transparent flexible display 441.
  • the navigation information may include TBT (Turn by Turn) information.
  • the processor 470 may display the TBT information 3410 to match the actual lane.
  • the processor 470 may give a perspective to the TBT image 3410 and display it.
  • the processor 470 may three-dimensionally display the TBT image 3410.
  • the processor 470 may display the height of the TBT image 3410 to match the perspective of the actual lane. In this case, the width of the TBT image may be displayed to be smaller according to the height.
  • FIG. 35 is a diagram referred to for describing an operation of displaying distance information with an object on a transparent flexible display according to an embodiment of the present invention.
  • the processor 470 may receive distance information with respect to an object through the interface unit 480.
  • the distance information may be detected through the camera 195, the radar, the rider, and the ultrasonic sensor.
  • the processor 470 may display distance information with at least one object in the exposed area of the transparent flexible display.
  • FIG. 36 illustrates a case in which the transparent flexible display is disposed on the front sheet according to an embodiment of the present invention.
  • the transparent flexible display 441 may be disposed inside the front sheet while being rolled around a first axis.
  • the processor 470 may receive a user input through the input unit 420.
  • the processor 470 may receive a voice input 3605.
  • the processor 470 may control a region of the transparent flexible display 441 to be exposed to the vehicle interior.
  • the exposed area 441a may be exposed along the rear of the head rest of the front seat.
  • the processor 270 may control the rotational driving force to be generated by the driving force generation unit 452.
  • the rotational driving force generated by the driving force generator 452 may be transmitted to the main roller 2211.
  • the main roller 2211 can rotate.
  • the transparent flexible display 441 connected to the main roller 2211 may be released.
  • an area 441a of the transparent flexible display 441 may be exposed to the vehicle interior.
  • the length of the exposed area 441a of the transparent flexible display may be adjusted.
  • the processor 470 may control the driver 450 to adjust the length of the region 441a of the transparent flexible display 441 that is exposed to the interior of the vehicle.
  • the processor 470 may display content in the exposed area 441a.
  • the content may be a vehicle, such as a video, the Internet, or a game.
  • FIG. 37 is a block diagram referred to describe a vehicle display apparatus according to another embodiment of the present invention.
  • 38 is a diagram referred to for describing a display unit according to an exemplary embodiment of the present invention.
  • the vehicle display apparatus 400 may include a communication unit 410, an input unit 420, a memory 430, a display unit 440, a sound output unit 448, a driver 450,
  • the sensing unit 460 may include a processor 470, an interface unit 480, and a power supply unit 490.
  • the vehicle display apparatus of FIG. 37 has a difference in configuration or operation of the vehicle display apparatus of FIG. 19, the processor 470, and the display unit 440.
  • the main configuration will be described.
  • the configuration of the vehicle display apparatus of FIG. 37 except for the processor 470 and the display unit 440 is the same as that of the vehicle display apparatus of FIG. 19.
  • the display unit 440 may include an A-Pillar display 445 and a rolling display 446.
  • the filler display 445 may be disposed in the A-pillar 3801 of the vehicle.
  • the rolling display 446 may be an embodiment of the transparent flexible display 441 described with reference to FIG. 19.
  • the rolling display 446 may be rolled up from the apiler 3801 toward the front windshield 3802 or the side window glass 3803.
  • the rolling display 446 may be configured to be deformable by an external force.
  • the deformation may be at least one of bending, bending, folding, twisting, and curling the transparent flexible display 441.
  • the display area of the rolling display 446 becomes flat.
  • the display area may be a curved surface.
  • the information displayed in the second state may be visual information output on a curved surface.
  • Such visual information is implemented by independently controlling light emission of a sub-pixel disposed in a matrix form.
  • the unit pixel refers to a minimum unit for implementing one color.
  • the rolling display 446 may be placed in a curved state (for example, a vertically or horizontally curved state) rather than a flat state in the first state. In this case, when an external force is applied to the rolling display 446, the rolling display 446 may be deformed into a flat state (or less curved state) or more curved state.
  • the rolling display 446 may be combined with a touch sensor to implement a flexible touch screen.
  • the processor 470 may perform control corresponding to the touch input.
  • the flexible touch screen may be configured to detect a touch input not only in the first state but also in the second state.
  • the rolling display 446 may have a predetermined transparency.
  • the rolling display 446 is a transparent thin film elecroluminescent (TFEL), transparent organic light-emitting diode (OLED), transparent liquid crystal display (LCD), transparent transparent display, transparent light emitting diode (LED) display It may include at least one of. Transparency of the rolling display 446 may be adjusted under the control of the processor 470.
  • the rolling display 446 may include a first rolling display 3810 and a second rolling display 3820.
  • the first rolling display 3810 may be wound around the front windshield 3802 from the pillar 3801.
  • the second rolling display 3820 may be rolled up from the apiler 3801 toward the side window glass 3803.
  • the second rolling display 3820 may include a third rolling display and a fourth rolling display.
  • the third rolling display may be rolled up to the left side window glass 3803 from the left apiler.
  • the fourth rolling display may be rolled up toward the right side windshield 3803 from the right apiler.
  • the afiller display 445 may be integrally formed with the rolling display 446.
  • the driving unit 450 may adjust the length of an area of the rolling display 446 that is exposed to the interior of the vehicle. For example, the driving unit 450 may adjust the deployment area of the rolling display 446.
  • the driving unit 450 may include a roller unit 451, a driving force generating unit 452, an elastic support unit (2221a to 2221d in FIG. 22), and an inclination adjustment unit (2230 in FIG. 22).
  • the roller unit 451 may adjust the length of an area exposed to the outside through rotation by being in contact with the rolling display 446.
  • the roller unit 451 may be in contact with the rolling display 446 to adjust the deployment area through rotation.
  • the roller unit 451 may include a main roller (2211 in FIG. 22) and a sub roller (2212a to 2211f in FIG. 22).
  • the main roller (2211 of FIG. 22) may be connected to the driving force generator 452.
  • the main roller (2211 of FIG. 22) can accommodate the rotational driving force generated by the driving force generation unit 452.
  • the sub rollers 2212a to 2212f of FIG. 22 may be disposed between the rolling display 446 and the housing.
  • the sub rollers 2212a to 2212f of FIG. 22 may reduce the frictional force with the housing 2235 of FIG. 22 when the rolling display 446 is drawn in or taken out.
  • the driving force generation unit 452 may provide a rotational driving force to the roller unit 451.
  • the driving force generator 452 may include a motor.
  • the driving force generator 452 may provide the roller unit 451 with a rotational driving force generated by the motor.
  • the elastic support part 2221a to 2221d of FIG. 22 may elastically support the rolling display 446 to the housing 2235.
  • the tilt adjusting unit 2230 of FIG. 22 may adjust the tilt of the rolling display 446.
  • the processor 470 may control the deployment of the rolling display 446.
  • the processor 470 may control the driving unit 450 to control the entry or withdrawal of the rolling display 446.
  • the processor 470 may control the length of an area exposed to the vehicle interior of the rolling display 446.
  • the processor 470 may control the deployment of the rolling display 446 according to the input signal received through the input unit. For example, the processor 470 may control the deployment of the rolling display 446 according to a user's button input or touch input received through the user input unit 421. For example, the processor 470 may control the development of the rolling display 446 according to the voice input of the user received through the sound input unit 422.
  • the processor 470 may control a screen displayed on the rolling display 446 according to the development degree detected by the length detector 463. For example, the processor 470 may control the size of the screen according to the degree of development. For example, the processor 470 may control an area displayed on the screen according to the degree of development.
  • the processor 470 may control a screen displayed on the apiler display 445 or the rolling display 446.
  • the processor 470 may maintain the first content display.
  • the second display may be further controlled to display the second content on the rolling display 446.
  • the display area is an area where content can be displayed.
  • the display area may be an area where the rolling display 446 is exposed to the vehicle interior.
  • the processor 460 maintains the first content display and is narrow.
  • the user may control not to display a part of the first content as much as the display area.
  • the processor 470 may control the screen displayed on the filler display 445 according to the development degree of the rolling display 446.
  • the afiller display 445 may include a touch sensor.
  • the processor 470 may control the deployment of the rolling display 445 according to an input signal received through the touch sensor included in the apiler display 445.
  • the processor 470 may control a screen displayed on the apiler display 445 or the rolling display 446 according to an input signal received through the touch sensor included in the apiler display 445.
  • the input signal may include tap, touch and hold, double tap, drag, pan, flick, and drag and drop.
  • “Tab” refers to an operation in which the user touches the screen very quickly using a finger or a touch stylus.
  • Touch & hold refers to an operation in which a user touches a screen using a finger or a touch stylus and maintains a touch input for a threshold time or more.
  • Double tab refers to an operation in which the user quickly touches the screen twice using a finger or a touch stylus.
  • drag refers to an operation of moving a finger or a touch tool to another position on the screen while the user touches a finger or a touch tool on the screen and maintains a touch.
  • Panning refers to a case where a user performs a drag operation without selecting an object.
  • “Flick” refers to a user dragging very quickly using a finger or a touch tool.
  • Drag and drop refers to an operation in which a user drags an object to a predetermined position on the screen and releases it using a finger or a touch tool.
  • the processor 470 may receive object sensing information through the interface unit 480.
  • the sensing unit 125 or the camera 195 may generate object sensing information by detecting an object located near the vehicle.
  • the processor 470 may control the image corresponding to the object to be displayed on the apiler display 445 or the rolling display 446 in response to the object sensing information.
  • the processor 470 may receive motion information of the object.
  • the sensing unit 125 or the camera 195 may generate object motion information by tracking the motion of the object.
  • the processor 470 may control to change the display area of the image corresponding to the object in response to the motion information.
  • the processor 470 may receive first motion information through the interface unit 480.
  • the first movement information may be information in which an object moves in the direction of the front windshield 3802 or the side window glass 3803 from the apiler 3801 based on the driver.
  • the processor 470 may control to move the image corresponding to the object displayed on the apiler display 455 to the rolling display 446 in response to the first motion information.
  • the processor 470 may receive second motion information through the interface unit 480.
  • the second movement information may be information in which the object moves in the direction of the apiler 3801 in the direction of the front windshield 3802 or the side window glass 3803 based on the driver.
  • the processor 470 may control to move the image corresponding to the object displayed on the rolling display 446 to the apiler display 445 in response to the second motion information.
  • the rolling display 446 can be deployed toward the side window glass 3803 on the first rolling display 3810 and the apiler 3801 which are rolled up to the front windshield 3802 from the apiler 3801.
  • the second rolling display 3820 may be wound up.
  • the processor 470 may control different contents to be displayed on the apiler display 445, the first rolling display 3810, and the second rolling display 3820.
  • the processor 470 may receive user gaze information from the internal camera 195c through the interface unit 480.
  • the processor 470 may display content on the second rolling display 3820 when the user's gaze faces the side window glass 3803.
  • the processor 470 may display a vehicle rear image obtained by the rear camera on the second rolling display 3820 when the user's gaze points toward the side window glass 3803.
  • the processor 470 may receive turn signal information through the interface unit 480.
  • the processor 470 may display the content on the second rolling display 3820 corresponding to the turn signal direction. For example, when a turn signal input in a left direction is received, the processor 470 may display content on the third rolling display 3820 corresponding to the left window glass. For example, when the turn signal input is received in the right direction, the processor 470 may display the content on the fourth rolling display corresponding to the right window glass.
  • the processor 470 may display content on the second rolling display 3820 according to the user's gaze and turn signal information.
  • the processor 470 may receive the open or closed state information of the window through the interface unit 480.
  • the processor 470 may control the second rolling display 3820 to be wound when the window is opened. This is to prevent damage of the second rolling display when the window is opened.
  • the processor 470 may control the second rolling display 3820 to be expanded when the window is closed again.
  • the processor 470 may control the first rolling display 3810 to be deployed in response to the degree of the second rolling display 3820 being rolled up.
  • the processor 470 may receive weather information from the sensing unit 125 that senses a weather condition through the interface unit 480.
  • the illumination sensor and the humidity sensor included in the sensing unit 125 of the vehicle 100 may sense weather information.
  • the processor 470 may receive weather information from the external server 260 through the communication unit 410.
  • the processor 470 may receive image data from the camera 195 through the interface unit 480.
  • the processor 470 may receive vehicle rear image data from the rear camera through the interface unit 480.
  • the processor 470 may display an image corresponding to the vehicle rear image data on the second rolling display 446.
  • the vehicle rear image may be displayed on the second rolling display 446 to help safe driving.
  • the processor 470 may display an image corresponding to the rear image data of the vehicle on the second rolling display 3820 when the user's gaze is directed toward the side window glass 3803 in a rain or snow state. .
  • the processor 470 may display an image corresponding to the rear image data of the vehicle on the second rolling display 3820 corresponding to the turn signal direction. have.
  • the processor 470 may control the message reception information to be displayed on the apiler display 445 when the message is received from the external device through the communication unit 410.
  • the processor 470 may control to display the detailed content of the message on the first rolling display 446 when a user input is received or stopped.
  • the user input may be received through the input unit 420 or may be received through a touch sensor included in the afiller display 445.
  • the second rolling display 446 includes a third rolling display that is rolled up to the left side window glass from the left apiler and a fourth rolling display that is rolled up to the right side window glass from the right apiler can do.
  • the processor 470 may display an image corresponding to the image data acquired through the camera disposed in front of the first rolling display 3810.
  • the processor 470 may display an image corresponding to the image data acquired through the camera disposed in the rear or left side on the third rolling display.
  • the processor 470 may display an image corresponding to the image data acquired through the camera disposed in the rear or right side on the fourth rolling display.
  • 39A to 39B are views referred to for describing a display unit according to an exemplary embodiment of the present invention.
  • 39A to 39B are top view images centering on an apiler.
  • the filler display 445 may be disposed on the filler.
  • the driving unit 450 may include a first driving unit 450a and a second driving unit 450b.
  • the first rolling display 3810 may be connected to the first driver 450a.
  • the processor 470 may control the development of the first rolling display 3810 by controlling the first driver 450a.
  • the first rolling display 3810 may be deployed in the front windshield direction a in the apiler.
  • the second rolling display 3810 may be connected to the second driver 450b.
  • the processor 470 may control the development of the second rolling display 3820 by controlling the second driver 450b.
  • the second rolling display 3820 may be deployed in the side window glass direction b in the a pillar.
  • the first driver 450a may be disposed at a portion where the apiler and the front wind shield are connected to each other.
  • the first driver 450a may be formed of a transparent material.
  • the second driver 450b may be disposed at a portion where the apiler and the side window glass are connected to each other.
  • the second driver 450b may be formed of a transparent material.
  • the driving unit 450 may include a third driving unit 450c and a fourth driving unit 450d.
  • the first rolling display 3810 may be connected to the third driver 450c.
  • the processor 470 may control the development of the first rolling display 3810 by controlling the third driver 450c.
  • the filler display 445 may be integrally formed with the first rolling display 3810.
  • the first rolling display 3810 may be deployed and may be deployed in the front windshield direction c while covering the apiler.
  • an area covering the apiler of the first rolling display 3810 may be referred to as an apiler display 445.
  • the second rolling display 3810 may be connected to the fourth driver 450d.
  • the processor 470 may control the development of the second rolling display 3820 by controlling the fourth driver 450d.
  • the second rolling display 3820 can be deployed in the side window glass direction d by the apiler.
  • the filler display 445 may be integrally formed with the second rolling display 3820.
  • the second rolling display 3810 may be unfolded and may be deployed in the side window glass direction while covering the apiler.
  • the second rolling display 3820 may be referred to as an agitation display 445 that covers the apiler.
  • the first rolling display 3810 may be deployed in the side window glass direction in the apiler.
  • 40A-40B are diagrams referred to for explaining a rolling display deployment operation, in accordance with an embodiment of the invention.
  • the display unit 440 may include an apiler display 445 and a rolling display 446.
  • the rolling display 446 may include a first rolling display 3810 and a second rolling display 3820.
  • the processor 470 may control the deployment of the rolling display 446 when a user input is received.
  • the processor 470 may control a screen displayed on the rolling display 446.
  • the user input may be an input received through the input unit 420.
  • the user input may be an input received through a touch sensor included in the apillar display 445.
  • the length detector 463 may detect the development of the rolling display.
  • the processor 470 may control a screen displayed on the rolling display 446 according to the degree of development.
  • the processor 470 maintains the display of the first content 4020.
  • the second content 4030 may be further displayed on the rolling display 446.
  • the processor 470 may control the display of the first content 4020 so that a part of the first content is not displayed as much as the area that is narrowed.
  • 41 is a view referred to for describing an operation of displaying an image corresponding to a detected object, according to an embodiment of the present invention.
  • the processor 470 may receive object sensing information from the sensing unit 125 that senses an object through the interface unit 480.
  • the processor 470 may control the image 4010 corresponding to the object to be displayed on the apiler display 445 or the rolling display 446 in response to the object sensing information.
  • the processor 470 may receive motion information of the object.
  • the processor 470 may control the display area of the image 4010 to be changed in response to the motion information.
  • the processor 470 may receive first motion information through the interface unit 480.
  • the first motion information may be information about the object moving from the apiler 3801 toward the front windshield 3802 (from 4101 to 4102) based on the driver.
  • the processor 470 may control to move the image 4110 corresponding to the object displayed on the apiler display 455 to the rolling display 446 (from 4101 to 4102) in response to the first motion information. .
  • the processor 470 may output an alarm 4120.
  • the processor 470 may receive second motion information through the interface unit 480.
  • the second movement information may be information moving from 4103 to 4101 in the direction of the apiler 3801 in the side window glass 3803 direction based on the driver.
  • the processor 470 may control to move (from 4103 to 4101) the image 4110 corresponding to the object displayed on the rolling display 446 to the apiler display 445 in response to the second motion information. .
  • the processor 470 may output an alarm 4120.
  • FIG. 42 is a view referred to for explaining a screen control operation according to a user input according to an embodiment of the present invention.
  • the processor 470 may include the following descriptions.
  • the development of the rolling display 446 can be controlled.
  • the processor 470 may control the screens 4230 and 4250 displayed on the rolling display 446. .
  • the processor 470 may control the message reception information 4210 to be displayed on the apiler display 445.
  • the processor 470 may display the other party's picture 4210 on the filler display 445.
  • the processor 470 may display the content 4230 of the received message on the rolling display 446. . As illustrated at 4202, the processor 470 displays the text message content received from the counterpart mobile terminal 250 on the rolling display 445.
  • the processor 470 may perform an operation corresponding to the second user input. As illustrated at 4203, the processor 470 scrolls and displays the text message content in response to the second user input.
  • FIG. 43 is a diagram referred to for describing an operation of displaying a camera acquired image on a rolling display according to an embodiment of the present invention.
  • the processor 470 may display an alarm 4310 on the apiler display 445 or the rolling display 446, as illustrated at 4301.
  • the processor 470 may alarm the second rolling display 3820. 4310 may be displayed.
  • the processor 470 may display the second rolling display 3820.
  • the alarm 4310 may be displayed.
  • the processor 470 may display an image acquired through the camera 195 on the apiler display 445 or the rolling display 446, as illustrated at 4302.
  • the processor 470 may display an image corresponding to the rear image data of the vehicle on the second rolling display 3820. Can be.
  • the processor 470 displays an image corresponding to the rear image data of the vehicle on the second rolling display 3820 corresponding to the turn signal direction. can do.
  • FIG. 44 is a view referred to for explaining an unfolding operation of a rolling display corresponding to window opening according to an embodiment of the present invention.
  • the processor 470 may receive open or closed state information of a window through the interface unit 480.
  • the processor 470 may control the second rolling display 3820 to be wound when the window is opened. This is to prevent damage of the second rolling display when the window is opened.
  • the first rolling display 3810 may be controlled to be developed in response to the degree of the second rolling display 3820 being wound.
  • the processor 470 may control the second rolling display 3820 to be unfolded when the window is closed again.
  • 45 is a view referred to for describing an operation of displaying an alarm on an apiler display or a rolling display, according to an embodiment of the present invention.
  • the processor 470 may display a color on the apiler display 445 or the rolling display 446 to output an alarm.
  • the processor 470 may display a predetermined color on the filler display 445 in response to a collision time with the object. For example, when the object and the collision prediction time are within the first range, the processor 470 may display the color of the apiler display 445 as the first color. In addition, when the collision prediction time with the object is within the second range, the processor 470 may display the color of the apiler display 445 as the second color.
  • the processor 470 may display information in a state in which a predetermined color is displayed on the apiler display 445.
  • 46A to 46D are exemplary views referred to for describing an operation of displaying externally identifiable information on a transparent flexible display or a rolling display according to an embodiment of the present invention.
  • the processor 470 may display information on the transparent flexible display 441 or the rolling display 446.
  • the processor 470 may display information in a state where the transparent flexible display 441 or the rolling display 446 is deployed. In this case, the information may be displayed to be identified from the outside of the vehicle.
  • the information may be information required by an outsider, not a vehicle occupant.
  • the processor 470 may display information based on a direction from the outside toward the vehicle 100. In this case, when viewed from the inside of the vehicle, the information may be displayed in an inverted form.
  • the processor 470 may include the disabled parking vehicle information 4601, the infant boarding information 4602, the parking time information 4603, the predetermined area accessibility information 4604, and the user contact information ( 4605 may be displayed to be visible from the outside of the vehicle.
  • the present invention described above can be embodied as computer readable codes on a medium in which a program is recorded.
  • the computer-readable medium includes all kinds of recording devices in which data that can be read by a computer system is stored. Examples of computer-readable media include hard disk drives (HDDs), solid state disks (SSDs), silicon disk drives (SDDs), ROMs, RAMs, CD-ROMs, magnetic tapes, floppy disks, optical data storage devices, and the like. This also includes implementations in the form of carrier waves (eg, transmission over the Internet).
  • the computer may include processors 180 and 470 or a controller 770. Accordingly, the above detailed description should not be construed as limiting in all aspects and should be considered as illustrative. The scope of the invention should be determined by reasonable interpretation of the appended claims, and all changes within the equivalent scope of the invention are included in the scope of the invention.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Transportation (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Physics & Mathematics (AREA)
  • Automation & Control Theory (AREA)
  • Remote Sensing (AREA)
  • Radar, Positioning & Navigation (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Human Computer Interaction (AREA)
  • Mathematical Physics (AREA)
  • Fittings On The Vehicle Exterior For Carrying Loads, And Devices For Holding Or Mounting Articles (AREA)

Abstract

La présente invention concerne un dispositif d'affichage, pour un véhicule, qui comporte : une unité d'affichage comprenant un dispositif d'affichage à montant en A, disposé dans un montant en A, et un dispositif d'affichage à enroulement, enroulé de telle sorte que le dispositif d'affichage à enroulement peut être déroulé du montant en A vers le pare-brise avant ou une vitre de fenêtre latérale; un processeur pour commander le déroulement du dispositif d'affichage à enroulement, ainsi qu'un écran affiché sur le dispositif d'affichage à montant en A ou le dispositif d'affichage à enroulement.
PCT/KR2015/012227 2014-12-10 2015-11-13 Dispositif d'affichage de véhicule et véhicule le comprenant WO2016093502A1 (fr)

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
KR10-2014-0177581 2014-12-10
KR1020140177581A KR101965881B1 (ko) 2014-12-10 2014-12-10 차량 운전 보조 장치 및 이를 구비한 차량
KR10-2015-0123757 2015-09-01
KR1020150123757A KR101809924B1 (ko) 2015-09-01 2015-09-01 차량 디스플레이 장치 및 이를 구비한 차량

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WO2016093502A1 true WO2016093502A1 (fr) 2016-06-16
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CN109641522B (zh) * 2016-08-02 2020-04-17 奥迪股份公司 用于控制车辆的显示设备的方法和具有显示设备的车辆
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TWI738869B (zh) * 2016-09-28 2021-09-11 日商瑞薩電子股份有限公司 影像處理模組
CN109552198A (zh) * 2017-09-26 2019-04-02 恩坦华产品有限责任公司 多位置电子智能遮阳罩
US10769971B2 (en) 2018-06-01 2020-09-08 Lg Electronics Inc. Display device
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US10410549B1 (en) 2018-06-01 2019-09-10 Lg Electronics Inc. Display device
CN110080136B (zh) * 2019-04-26 2023-07-25 南京航空航天大学 一种车辆侧翻智能防护系统及其控制方法
CN110080136A (zh) * 2019-04-26 2019-08-02 南京航空航天大学 一种车辆侧翻智能防护系统及其控制方法
CN113085741A (zh) * 2020-01-08 2021-07-09 Lg电子株式会社 车载显示装置
CN113085741B (zh) * 2020-01-08 2023-06-30 Lg电子株式会社 车载显示装置
CN113782020A (zh) * 2021-09-14 2021-12-10 合众新能源汽车有限公司 车内语音交互方法和系统

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