B60W2520/125

Apparatus and method for controlling vehicle
09849877 · 2017-12-26 · ·

An apparatus and method for controlling a vehicle are disclosed. A method for controlling a vehicle by monitoring a driver's state includes: a region setting step for establishing a first steering control region, a first steering warning region, a braking control region, and a first braking warning region of the vehicle; a driver state decision step for determining the driver state by monitoring a state of the driver; and a region resetting step for including, if the driver state is in an abnormal state in the driver state decision step, resetting a first steering control region of the vehicle, a first steering warning region, and a first braking warning region in the region setting region, and thus setting a second steering control region, a second steering warning region, and a second braking warning region.

Sensor plausibility using GPS road information

An apparatus including an interface and a processor. The interface may be configured to receive area data and sensor data from a plurality of vehicle sensors. The processor may be configured to extract road characteristics for a location from the area data, predict expected sensor readings at the location for the plurality of sensors based on the road characteristics, calculate dynamic limits for the sensor data in response to the expected sensor readings and determine a plausibility of the sensor data received from the interface when the vehicle reaches the location. The sensor data may be plausible if the sensor data is within the dynamic limits. A confidence level of the sensor data may be adjusted in response to the plausibility of the sensor data.

Methods for updating autonomous driving system, autonomous driving systems, and on-board apparatuses

Embodiments of the present disclosure relate to the technical field of autonomous driving, and in particular to methods for updating an autonomous driving system, autonomous driving systems, and on-board apparatuses. In the embodiments of the present disclosure, the autonomous driving system, in a manual driving mode, senses the surrounding environment of a vehicle, performs vehicle positioning, and plans a path for autonomous driving for the vehicle. However, the autonomous driving system does not issue an instruction to control the driving of the vehicle. Instead, it compares the path with a path along which a driver drives the vehicle in the manual driving mode to update a planning and control algorithm of the autonomous driving system. As such, the updated autonomous driving system better caters to the driving habits of the driver and improves the driving experience for the driver without compromising the reliability of planning and decision-making of autonomous driving.

CONTROL SYSTEM OF A FOUR-WHEEL DRIVE VEHICLE AND GRADIENT VALUE SETTING DEVICE OF A VEHICLE
20170361847 · 2017-12-21 ·

A control system of a four-wheel drive vehicle and a gradient value setting device of the vehicle is provided so as to reliably control a wheel skid despite the vehicle facing an intersecting direction intersecting a maximum tilt line direction. The vehicle includes an engine, front and rear wheels, an electronic control 4WD coupling, and a control unit. The distribution amount of the driving force to the rear wheels is set by the electronic control 4WD coupling. The control unit determines whether or not the vehicle faces the intersecting direction on the inclined road, and if so, sets the driving force distribution amount so that the difference between the driving force distribution amount to the front wheels and to the rear wheels is smaller as compared with on a flat road, and commands the electronic control 4WD coupling to distribute the driving force by the distribution amount.

TRAVELING ASSISTANCE APPARATUS

A traveling assistance apparatus recognizes a travel road on which a vehicle is traveling, acquires a traveling state of the vehicle, and determines whether or not the vehicle will deviate from the travel road based on the recognition result of the travel road and the traveling state of the vehicle. The apparatus determines whether to perform, as a prevention method for preventing from the travel road, a method in which either of steering control and brake control of the vehicle is performed, or a method in which a period over which either of the steering control and the brake control is performed and a period over which both of the steering control and the brake control are performed are set. The apparatus sets a steering amount for the steering control and a brake amount for the brake control when the deviation prevention control is performed based on the prevention method.

METHOD AND SYSTEM FOR ASSISTING A DRIVER OF A ROAD VEHICLE

The disclosure is related to a method and a system for assisting a driver of a road vehicle. A data processing unit receives data representing at least a relative position of the road vehicle, outputs, through a display device and/or an interior lighting device, a visual alert when the data processing unit determines that the data fulfill a first condition, and outputs, through a sound-emitting device, an audible alert when the data processing unit determines that the data fulfill a second condition after fulfilling the first condition.

COLLISION AVOIDANCE DEVICE

A collision avoidance device includes, for example, a collision avoidance executor, a determiner, and a collision avoidance controller. The collision avoidance executor can execute a collision avoidance function for a vehicle to avoid collision with an object to be avoided. The determiner determines, when a driver operates a steering, whether to be able to avoid the collision with the object to be avoided, based on a turning parameter related to a turning caused by the steering. The determiner determines whether to be able to avoid the collision with the object to be avoided by determining whether a lateral acceleration or a yaw rate serving as the turning parameter is equal to or greater than a first threshold. The collision avoidance controller inhibits the execution of the collision avoidance function when the lateral acceleration or the yaw rate of a vehicle is equal to or greater than the first threshold.

APPARATUS FOR CONTROLLING MOTION OF VEHICLE AND METHOD THEREOF

The present disclosure relates to an apparatus for controlling the motion of a vehicle to improve riding comfort, and a method thereof. According to an embodiment of the present disclosure, a processor may determine a boarding location for a user and may determine a vehicle control signal in consideration of riding comfort according to acceleration or jerk based on the boarding location. A controller may control the vehicle depending on the vehicle control signal.

SYSTEM, METHOD, AND DEVICES FOR REDUCING CONCUSSIVE TRAUMATIC BRAIN INJURIES
20170357241 · 2017-12-14 ·

A system for reducing traumatic brain injuries in players on a sports field includes a number of transmitters worn by at least some of the players; a plurality of sensors configured for placement on or near the sports field for receiving signals transmitted from the transmitters as the players move about on the field; a head-stabilizing component worn by at least one of the players that inhibits relative motion of the player's head when activated; and a processing element coupled with the sensors and in communication with the head-stabilizing component. The processing element determines locations of the players based on the signals transmitted from the transmitters worn by the players, determines if the players are likely to impact one another or an object on the field based on the locations of the players, and transmits an activating signal to the head-stabilizing component to inhibit relative motion of the player's head if the processing element determines the player is likely to impact another player or an object on the sports field.

VEHICLE POSITIONING METHOD VIA DATA FUSION AND SYSTEM USING THE SAME

A vehicle positioning method via data fusion and a system using the same are disclosed. The method is performed in a processor electrically connected to a self-driving-vehicle controller and multiple electronic systems. The method is to perform a delay correction according to a first real-time coordinate, a second real-time coordinate, real-time lane recognition data, multiple vehicle dynamic parameters, and multiple vehicle information received from the multiple electronic systems with their weigh values, to generate a fusion positioning coordinate, and to determine confidence indexes. Then, the method is to output the first real-time coordinate, the second real-time coordinate, and the real-time lane recognition data that are processed by the delay correction, the fusion positioning coordinate, and the confidence indexes to the self-driving-vehicle controller for a self-driving operation.