Abstract:
A device that includes a processor and a memory, the memory storing instructions executable by the processor such that the device is programmed to identify a wearable device and a set of vehicle data from a vehicle. The user device sends a human machine interface (HMI) message to the wearable device. The HMI message is based at least in part on the set of vehicle data.
Abstract:
A method for making a purchase using a vehicle computing system includes receiving input to the vehicle computing system instructing order initiation. The method also includes receiving a selection at the vehicle computing system of a merchant from which to order. The method further includes receiving an order at the vehicle computing system, determining an address of the merchant to which the order was placed and providing directions to the address. These can be provided as, for example, turn by turn directions spoken and/or displayed on a nav display. Finally, the exemplary method includes processing a payment for the order.
Abstract:
A vehicle computer system comprising a wireless transceiver configured to send a nomadic device human machine interface to a nomadic device in a web browser format. The vehicle computer system further comprises a vehicle server utilizing a contextual data aggregator that utilizes vehicle data and off-board data to generate a dynamic human machine interface, the server further configured to generate an in-vehicle human machine interface for output on a vehicle display and generate the nomadic device human machine interface for the nomadic device to display.
Abstract:
A computer-implemented method includes providing an interface on a wireless device corresponding to an interface for vehicle infotainment system control. The method also includes providing simulated functionality of controls on the interface, such that activation of a control informs a user of what would occur if the control were activated on a vehicle interface. Further, the method includes saving at least one user setting input into the interface. The method additionally includes transferring the saved setting to a vehicle computing system (VCS) for use in infotainment system control when the wireless device is in communication with the VCS.
Abstract:
Methods and apparatus for external vehicle illumination management are disclosed herein. An example method includes receiving, at a first processor of a mobile device, vehicle data. The vehicle data is to be transmitted to the first processor from a second processor of a vehicle. The example method includes analyzing the vehicle data and mobile device data generated by the mobile device. The example method includes generating an alert for headlamp usage of the vehicle based on the analysis and presenting the alert via the mobile device.
Abstract:
Enhanced ridehail systems and methods are disclosed herein. A method can include determining a pattern of a patterned object associated with a ridehail stand from images obtained by a vehicle camera, determining presence of a user at the ridehail stand using the images when at least a portion of the patterned object is being obscured by the user or when the user is detected using a sensor of the vehicle, and causing the vehicle to stop at the ridehail stand when the presence of the user is determined.
Abstract:
A system includes a processor configured to detect a wireless signature indicating an animal presence within a predefined proximity to a vehicle. The processor is also configured to issue an alert to vehicle occupants responsive to the wireless signature detection, the alert varying based on detected signal strength. The wireless signature may be transmitted from a BLE or RFID device provided to an animal affixed to a collar, for example, or from an RFID chip embedded in an animal.
Abstract:
A vehicle computer system comprising a wireless transceiver configured to send a nomadic device human machine interface to a nomadic device in a web browser format. The vehicle computer system further comprises a vehicle server utilizing a contextual data aggregator that utilizes vehicle data and off-board data to generate a dynamic human machine interface, the server further configured to generate an in-vehicle human machine interface for output on a vehicle display and generate the nomadic device human machine interface for the nomadic device to display.
Abstract:
A passive authentication method includes, in response to receiving a requested action from a first user, obtaining a set of sensor data and categorizing first sensor data of the set of sensor data into a first modality of a set of modalities. The method includes, for the first modality of the set of modalities, determining a distance value by applying a first modality model to the first sensor data and comparing the distance value to a first verified value of the first user for the first modality. The method includes, based on the comparison, determining a first authentication decision of the distance value. The method includes, in response to the first authentication decision indicating the first sensor data corresponds to the first user, performing the requested action.
Abstract:
A vehicle includes a horn, a plurality of exterior lights, and at least one controller. The at least one controller is configured to grant vehicle system access to a nomadic device paired to the vehicle, and in response to receiving a message that contains data identifying a source of the message while the vehicle is in a key-off state from a nomadic device not paired to the vehicle, activate the horn and exterior lights according to respective patterns.