Abstract:
Provided are a vehicle control device capable of displaying a high quality seamless image without data transmission delay and a difference in image quality between a plurality of displays, and a method thereof. The vehicle control device includes a plurality of different displays installed in a vehicle and a controller generating a first image having a plurality of pieces of first information, generating a second image having a plurality of pieces of second information, merging the first and second images, dividing the merged image into a plurality of images, and displaying the plurality of divided images on a plurality of displays, respectively.
Abstract:
A vehicle including a plurality of displays disposed at different positions inside the vehicle, each display including a touch screen and a cover layer on a top surface of the touch screen, the cover layer of a corresponding display having a color characteristic based on an interior part of the vehicle having the display such that when the corresponding display is off, the corresponding display appears hidden; a sensor configured to detect a seat location of a person seated in the vehicle; and a controller configured to selectively control the plurality of the displays based on the detect seat location of the person seated in the vehicle.
Abstract:
The present disclosure relates to an XR device and a method for controlling the same, and more particularly, is applicable to a 5G communication technology field, a robot technology field, an autonomous technology field and an artificial intelligence (AI) technology field. The method for controlling an XR device of a vehicle comprises acquiring a camera view by capturing an image in front of the vehicle; acquiring position information of the vehicle by detecting a position of the vehicle, acquiring movement information of the vehicle by detecting movement of the vehicle, and providing navigation of an augmented reality (AR) mode displaying at least one virtual object for guiding a path by overlapping the at least one virtual object on the camera view based on at least the position information of the vehicle or the movement information of the vehicle, wherein the step of providing navigation further comprises performing calibration based on the camera view, a vanish point of a road and a bonnet line of the vehicle included in the camera view, or the movement information of the vehicle.
Abstract:
The present disclosure relates to a vehicle control device (800) provided in a vehicle (100, 200) and a method for controlling the vehicle (100, 200). The vehicle control device (800) provided in a vehicle (100, 200) is a vehicle control device (800) for controlling a vehicle (100, 200) having a display (251), including: a communication unit (400, 810) receiving vehicle driving information; and a processor calculating whether the vehicle (100, 200, 910) is able to overtake another vehicle (920, 930, 940, 950, 960) present within a predetermined range in relation to the vehicle (100, 200, 910) on the basis of the vehicle driving information when a predetermined condition is satisfied, wherein the processor extracts an overtaking available area (1010) within the predetermined range and controls the communication unit (400, 810) to guide the overtaking available area (1010, 1110, 1120, 1130, 1200) through the display.
Abstract:
A DTaaS server according to the present invention is a Digital Twin as a Service (DTaaS) server that is provided outside a vehicle and provides a Mixed Reality Automotive Meta Service (MR AMS), and comprises: a DTaaS API that calls a function for communication with an MR service device provided in a vehicle; a database that stores a digital twin map and a renderable 3D polygon map provided by the MR service device; and a processor which, on the basis of location information of the vehicle received from the MR service device, transmits a 3D polygon map corresponding to the location information to the MR service device through the DTaaS API.
Abstract:
The present invention relates to an image output device mounted on a vehicle to implement augmented reality. One or more of an autonomous driving vehicle, a user terminal, and a server of the present invention can be linked to an artificial intelligence module, a drone (unmanned aerial vehicle, UAV), a robot, an augmented reality (AR) device, a virtual reality (VR) device, a device related to 5G services, etc.
Abstract:
Disclosed is a mobile terminal that provides an augmented reality navigation screen in a state of being hold in a vehicle, the mobile terminal including: at least one camera configured to obtain a front image; a display; and at least one processor configured to calibrate the front image, and to drive an augmented reality navigation application so that the augmented reality navigation screen including at least one augmented reality (AR) graphic object and the calibrated front image is displayed on the display.
Abstract:
A mixed reality automotive meta service (MR AMS) server of the present invention is provided outside a vehicle, and provides an MR AMS. The MR AMS server comprises: an API which is an interface that calls a function for communicating with an MR AMS client provided in the vehicle; a service aggregation manager that requests and receives, from a service provider, context corresponding to a request received from the MR AMS client; and a data integrated manager that loads, from a database, a three-dimensional asset corresponding to the received context.
Abstract:
The present invention relates to a route guidance device comprising: a communication unit for communicating with a cloud server; an interface unit for receiving sensing information obtained by sensing a driving state of a vehicle and an image of a surrounding environment of the vehicle, which includes a road image; an AR module for rendering AR information by using sensing information and POI information received from the cloud server; an MR module for rendering MR information including a virtual object on the basis of sensing information and map information received from the cloud server; and a processor for controlling the interface unit to cause displaying, on the display unit, of an AR view image including AR information or an MR view image including MR information, detecting a view image matching a driving situation of the vehicle on the basis of sensing information in a state where a first view image among the AR view image and the MR view image is displayed, and controlling the display unit of the vehicle to switch the view image to a second view image differing from the first view image if the detected view image is different from the first view image.
Abstract:
The present invention provides a route guiding device and a route guiding system. A route guiding device, according to one embodiment of the present invention, comprises: a communication unit which communicates with a cloud server; an interface unit which receives, from at least one sensor provided in a vehicle, a camera image including an image of a road on which the vehicle drives, and sensing information obtained by sensing a driving state of the vehicle; an MR module which renders MR information including at least one virtual object, on the basis of the camera image, the sensing information, and map information received from the cloud server; and a processor which controls the interface unit such that an MR view image including the MR information is displayed on a display unit of the vehicle, wherein the processor outputs, as a replay image, an MR view image reproduced when the vehicle was driving in the past, on the basis of satisfaction of a specific condition.