B60Y2300/09

VISUAL OBSTACLE AVOIDANCE METHOD FOR ROBOT MOWER, ROBOT, CONTROL DEVICE, AND STORAGE MEDIUM
20200229344 · 2020-07-23 ·

The present application discloses a visual obstacle avoidance method for a robot mower, which includes the following steps: acquiring self motion parameters of the robot mower; acquiring image information in front of the robot mower; collecting motion characteristic parameters of a obstacle in the image information according to the acquired image information; acquiring distance characteristic parameters between the robot mower and the obstacle. According to the motion characteristic parameters, the self motion parameters and the distance characteristic parameters, whether the robot mower needs to avoid is determined, and if the robot mower does not need to avoid the obstacle, the original driving path is executed. The present application also discloses a robot mower and a readable storage medium.

Adaptive brake control system for ground support equipment, and method of retrofitting thereof

An adaptive brake control system for use in Ground Support Equipment (GSE) including a speed control system. The adaptive brake control system includes a distance sensor adapted to measure a distance from an edge of the GSE to an external object and a speed senor adapted to measure a ground speed of the GSE. An actuator, such as a brake actuator, is adapted to cause the speed control system of the GSE to slow or stop the GSE. A controller is functionally associated with the distance sensor, the speed sensor, and the actuator. The controller is adapted to receive inputs from the distance sensor and the speed sensor, and, based on the received inputs, to trigger the actuator to affect slowing or stopping of the GSE.

Emergency braking system, emergency braking method and semitrailer
20190322273 · 2019-10-24 ·

The present disclosure provides an emergency braking system, an emergency braking method and a semitrailer, capable of improving the braking effect of the vehicle, thereby achieving improved safety for the vehicle. The system includes: a sensor component configured to collect sensed information on an environment where a semitrailer is located; and a braking controller configured to determine whether there is a risk of collision for the semitrailer based on the sensed information, and if so, calculate a maximum adhesive force that can be provided by a road surface the semitrailer is currently on, determine a first braking pressure corresponding to each wheel based on the maximum adhesive force and axle load information, and transmit to a braking system a first braking instruction carrying the first braking pressure for each wheel.

VEHICLE SYSTEMS AND METHODS FOR PROVIDING TURN ASSISTANCE AT AN INTERSECTION

Vehicle systems and methods for assisting a driver making a turn at an intersection are disclosed. In one embodiment, a vehicle includes a plurality of sensors configured to output a plurality of operational signals, one or more processors, and one or more non-transitory memory modules communicatively coupled to the one or more processors. The processors store machine-readable instructions that, when executed, cause the one or more processors to receive a signal indicating a driver of the vehicle is attempting to make a turn at an intersection. The processors are further caused to access a behavioral profile that is representative of the intersection. The processors are also caused to develop a perception as well as a risk associated with the intersection based on the plurality of operational signals from the plurality of sensors and the behavioral profile of the intersection. The processors are further caused to calculate at least one maneuver.

DRIVER ASSISTANCE SYSTEM FOR A MOTOR VEHICLE
20190263395 · 2019-08-29 ·

A driver assistance system and a method for operating this driver assistance system, where signals of at least one surround sensor provided on the vehicle are evaluated, and if the evaluation reveals an increased probability of a collision with a detected object, emergency braking is automatically triggered and carried out, and in the event of an increased probability of a collision with a detected object, which lies above a second threshold value, the current vehicle position is stored, or the vehicle position within a predefined period of time after exceedance of the second threshold value is stored, and in the event of traveling through the spatial area about the vehicle position again, the stored information is taken into account for the triggering or the preparation of a warning of danger or emergency braking.

IMPLEMENT ATTACHMENT APPARATUS AND POWER TAKE-OFF

A powered implement system having a ground utility robot, at least one three-point hitch, a means to connect the at least one three-point hitch to at least one end of the ground utility robot, at least one power take-off on the ground utility robot that is connectable to at least one implement, and where the ground utility robot controls and powers the at least one power take-off.

Vehicle with anti-collision safety system

A vehicle having an electronic, automatic transmission incorporates a safety stop system. A position sensor or sensors are mounted onto the vehicle and are in communication with an electric controller. The electric controller in turn is operatively connected to the actuation solenoids in the hydraulic transmission. When a safety violation occurance is detected, then the electric controller either slows the speed of the vehicle or stops the vehicle through the transmission.

SURROUNDINGS MONITORING APPARATUS

A surroundings monitoring apparatus obtains the position of an object from a captured image of a region in a heading direction of a vehicle, and obtains a position obtainment accuracy. When the distance between the object and the vehicle becomes relatively short, the position obtainment accuracy increases. However, the distance between the object and the vehicle becomes shorter, the position obtainment accuracy may decrease. Therefore, if collision avoidance control is performed for an object selected on the basis of the position obtainment accuracy, there is a possibility that the collision avoidance control is not performed for an object which is most likely to collide with the vehicle. In view of this, the apparatus obtains, for each object, a required deceleration which is the magnitude of acceleration necessary for stoppage at a position before the object, and performs the collision avoidance control for an object which is the largest in the required deceleration.

DRIVE ASSIST APPARATUS
20190023241 · 2019-01-24 ·

A drive assist apparatus includes a detector and a traveling controller. The detector detects an operation target of automatic emergency braking of a vehicle. The traveling controller includes a calculator and a determiner, and controls the automatic emergency braking on the basis of a result of the detection performed by the detector. The calculator calculates each of a target deceleration rate and a variation rate. The target deceleration rate is a target value of a deceleration rate of the automatic emergency braking. The variation rate is a rate of variation in the deceleration rate required for the deceleration rate of the automatic emergency braking to reach the target deceleration rate. The determiner determines a contact risk of the vehicle with the operation target on the basis of the target deceleration rate. The calculator increases the variation rate when the contact risk is determined by the determiner as being relatively high.

System and method for preventing contact between a truck cab and a fifth wheel trailer

A system according to the present disclosure includes a trailer distance module, a trailer contact module, a trailer distance module, and at least one of a driver warning module, a brake control module, and a steering control module. The trailer distance module determines a distance from a cab of a truck to a fifth wheel trailer attached to the truck based on an input from a sensor. The trailer contact module identifies potential contact between the trailer and the truck cab based on the cab-to-trailer distance. The driver warning module warns a driver of the potential contact. The brake control module applies a brake of at least one of the truck and the trailer when potential contact is identified. The steering control module increases an amount of driver effort required to steer the truck in at least one direction when potential contact is identified.