Abstract:
A non-contact sensing system including a bio-radar sensor configured to detect a heart rate and/or a respiration rate of a user of a driving apparatus is provided. In some embodiments, a bio-radar sensor may be arranged in a seat of the driving apparatus. A processor may be provided in the driving apparatus to process the signals received from the bio-radar sensor. The processor can monitor the heart rate, respiration rate, and/or any other physiology signs of the user. The processor can compare the detected heart rate and/or the respiration rate of the user with a preset heart rate threshold of the user. The processor can determine whether the heart rate and/or the respiration rate of the user is abnormal. In some embodiments, the processor can be configured to transmit a status indicating the heart rate and/or respiration rate of the user is detected abnormal to a remote control center.
Abstract:
Embodiments facilitate wireless charging of the EV by using a charging method that employs higher voltages with higher power transmission rate than induction wireless charging. A few charging methods satisfying such criteria are provided: including microwave and laser charging. Components may be designed to facilitate charging of EVs using such methods. For example, components may be designed to create a vacuum between a power transmitter fixed to parking spot and a power receiver fixed to the EV. The microwave or laser may be transmitted through this vacuum.
Abstract:
Systems and methods for automatically parking a vehicle are described including receiving a request from a user to park a vehicle. A database including parking availability information is searched based at least in part on the request and location information associated with the user. An available parking space is determined based on the results of the search, and information related to the available parking space is sent to the user. When confirmation is received from the user indicating that that the vehicle is to be parked in the available parking space, a status of the available parking space is changed to unavailable, and guidance information related to the available space to the user. The vehicle then autonomously navigates to the parking space using the guidance information.
Abstract:
Embodiments are provided for facilitating communications with a vehicle through an unmanned aerial vehicle (UAV). The UAV can be configured to track vehicles traveling in an area covered by the UAV. An identification of the vehicle can be acquired after the vehicle is tracked by the UAV. The vehicle identification can be used to determine communication capability of the vehicle. Based on the determined communication capability of the vehicle, a communication request can be initiated by the UAV. The vehicle can determine either accept the communication request from the UAV or turn it down. If the vehicle accepts the communication request from the UAV, information intended for the vehicle, for example from another vehicle, can be forwarded to the vehicle by the UAV.
Abstract:
Embodiments are provided for providing location positioning service for locating a transportation apparatus through a UAV network. A location center may be employed to receive a location service request for locating a specific transportation apparatus. After receiving such a request, the location center may inquire a location database for last known location of the requested transportation apparatus. Based on the last known location of the requested transportation apparatus, the location center may predict one or more areas in which the requested transportation apparatus may be currently in. Based on the prediction, the location center may be configured to generate one or more control instructions to one or more UAVs in the UAV network to locate the requested transportation apparatus in those areas.
Abstract:
A read-once record medium includes a data substrate having a control data zone and a data zone with pre-record data. In addition, a sensitive layer is disposed above the data substrate and a refractive layer is disposed above the sensitive layer. An adhesive layer is disposed above the refractive layer and a transparent substrate is disposed above the adhesive layer. As a result, the structure of the sensitive layer or the data substrate will be destroyed when laser beams with a specified power a emitted from an optical storage device pass through the data substrate and focus on the sensitive layer. The laser beams will be reflected by the sensitive layer and cannot be recognized by the optical storage device.
Abstract:
The present invention relates to a read-once record medium that comprises a data substrate, a sensitive layer; a reflective layer, an adhesive layer and a transparent substrate; thereby, the structure of the sensitive layer or the data substrate will be changed when laser beams with specific power emitted from an optical storage device pass through the data substrate and focus on the sensitive layer, and the laser beams will be reflected by the sensitive layer and can not be recognized by the optical storage device.
Abstract:
Embodiments are provided for facilitating communications with a vehicle through an unmanned aerial vehicle (UAV). The UAV can be configured to track vehicles traveling in an area covered by the UAV. An identification of the vehicle can be acquired after the vehicle is tracked by the UAV. The vehicle identification can be used to determine communication capability of the vehicle. Based on the determined communication capability of the vehicle, a communication request can be initiated by the UAV. The vehicle can determine either accept the communication request from the UAV or turn it down. If the vehicle accepts the communication request from the UAV, information intended for the vehicle, for example from another vehicle, can be forwarded to the vehicle by the UAV.
Abstract:
Embodiments can facilitate parcel delivery to a driving apparatus. In one embodiment, for facilitating such, the driving apparatus can a secured component, a communication component, a circuit, a processor, and/or any other component. The secured component may be openable through a code and contents within the secured component can be accessed when it is open. The communication component can be configured to communicate with a remote device. The remote device may include a remote computer server, a computing device associated with a user of the driving apparatus, and/or any other remote device. The processor can be configured to receiving a delivery indication that a parcel is to be delivered to the driving apparatus and facilitate unlocking the secured component through the code associated with the secured component.
Abstract:
Embodiments are provided for providing location positioning service for locating a transportation apparatus through a UAV network. A location center may be employed to receive a location service request for locating a specific transportation apparatus. After receiving such a request, the location center may inquire a location database for last known location of the requested transportation apparatus. Based on the last known location of the requested transportation apparatus, the location center may predict one or more areas in which the requested transportation apparatus may be currently in. Based on the prediction, the location center may be configured to generate one or more control instructions to one or more UAVs in the UAV network to locate the requested transportation apparatus in those areas.