Abstract:
The present disclosure relates to a vehicular electronic device including a power supply configured to supply power, an interface configured to receive HD map data on a specific area from a server through a communication device, and a processor configured to continuously generate electronic horizon data on a specific area based on the high-definition (HD) map data in the state of receiving the power and to generate different formats of electronic horizon data depending on whether a preset destination is present or absent.
Abstract:
A path providing device configured to provide a path information to a vehicle includes a communication unit configured to receive, from a server, map information including a plurality of layers of data, an interface unit configured to receive sensing information from one or more sensors disposed at the vehicle, and a processor. The processor is configured to determine an optimal path for guiding the vehicle from an identified lane, generate autonomous driving visibility information based on the sensing information and the determined optimal path, update the optimal path based on dynamic information related to a movable object located on the optimal path and the autonomous driving visibility information, receive different types of sensor data from a plurality of sensors, and update at least one of the autonomous driving visibility information or the optimal path based on information generated by combining at least two types of sensor data.
Abstract:
A washing machine having a plurality of tubs includes a cabinet having a first tub disposed therein, a first door, having a second tub disposed therein, to open and close a laundry introduction opening formed at the cabinet, a second door to open and close a laundry introduction opening of the second tub, a first water supply part and a second water supply part to supply washing water to inside of the first tub and the second tub, respectively, and a first water discharge part and a second water discharge part to discharge washing water from the first tub and the second tub, respectively. This configuration allows a washing process to be performed at a plurality of spaces.
Abstract:
Disclosed is a mobile terminal having a rear input unit disposed on a rear surface of a display unit, and configured to receive a control command by a push input. Especially, the present invention provides a structure capable of preventing a force rather than a user's pressing force from being applied to the rear input unit, and a structure capable of shielding an operation sound generated when a pressing force is applied to the rear input unit.
Abstract:
Systems and techniques are described that provide automated parking assistance for a vehicle. In some implementations, a parking assistance apparatus includes a frequency generator configured to generate a first frequency and a second frequency, and generate at least one synthesized frequency that is synthesized from the first frequency and the second frequency. The apparatus also includes a piezoelectric converter configured to, using piezoelectric effects, transmit ultrasonic waves having the at least one synthesized frequency, and receive reflected ultrasonic waves that result from the transmitted ultrasonic waves being reflected by an object. The apparatus also includes a filter unit configured to detect a predetermined frequency from the reflected ultrasonic waves.
Abstract:
The present invention relates to a depth image obtaining device enabled to obtain a depth image of a subject located at a far distance, and a display device using the same, the depth image obtaining device comprising: a light irradiation part for irradiating light onto a predetermined subject; a light receiving part receiving light reflected from the subject; and a control part for controlling the light irradiation part and the light receiving part. The light irradiation part comprises alight source part for emitting light in a first direction and a reflection part for reflecting the light emitted in the first direction into a second direction.
Abstract:
The present invention provides an apparatus and a method for obtaining a 3D image. The apparatus for obtaining the 3D image, according to one embodiment of the present invention, comprises a light transmitting portion for emitting infrared ray (IR) structured light onto a recognized object; a light receiving portion comprising an RGB-IR sensor for receiving infrared rays and visible light reflected from the recognized object; a processor for obtaining 3D image information including depth information and a visible light image of the recognized object by using each of the infrared rays and the visible light, which are received by the light receiving portion; and a lighting portion for controlling a lighting cycle of the infrared ray (IR) structured light. Also, the present invention further comprises an image recovery portion for recovering a 3D image of the recognized object by using the 3D image information which is obtained by the processor, and a display portion for providing the recovered 3D image on a visual screen. The present invention, by means of the method and the apparatus, for obtaining the 3D image, can adaptively respond to the brightness of ambient light so as to eliminate interference by the RGB-IR sensor. As a result, more accurate 3D images can be obtained regardless of time or place of image capturing, such as night, day, a dark space, or a bright space.
Abstract:
A route provision device, according to one embodiment of the present invention, is provided to each of a plurality of sensors which are provided to a vehicle, wherein, on the basis that the route provision device is provided to the sensors, a processor selectively receives a portion of layers among a plurality of layers, and, on the basis of the types of the sensors which are provided with the route provision device, determines the types of the portion of layers which have been selectively received.
Abstract:
A processor of a route provision apparatus according to an embodiment of the present invention is characterized in outputting map information received from a server, on a rollable display provided in a vehicle, determining a change in the size of a display area of the rollable display, and requesting the server for map information to be displayed on the changed display area, on the basis of the changed size of the display area, and receiving the map information.
Abstract:
A route providing device includes a communication unit configured to receive map information from a server, and a processor configured to determine a lane in which the vehicle is traveling based on image information received from an image sensor, determine an optimal route in lane units for the vehicle based on the determined lane using the map information, generate autonomous driving visibility information by fusing sensing information of one or more sensors of the vehicle with the optimal route, input information related to the vehicle to an artificial neural network when the vehicle enters an area satisfying a preset condition existing on the optimal route, and obtain an updated optimal route as an output of the artificial neural network, wherein the updated optimal route is in units of lanes in the area satisfying the preset condition.