Abstract:
A system and method for design and creation of customized output is provided. The method includes establishing a template, developing a base output from the template, and customizing the base output to create a customized output. During each of these steps, the system and method provide flexibility such that the user is able to place and modify content on the template, base product, or output. Further, the system may be configured for collaborative creation of the customized output.
Abstract:
An image sensing system for a vehicle includes an imaging sensor comprising a two-dimensional array of light sensing photosensor elements. The system includes a logic and control circuit comprising an image processor for processing image data derived from the imaging sensor. The logic and control circuit generates at least one control output for controlling at least one accessory of the vehicle. The imaging sensor is disposed at an interior portion of the cabin of the vehicle and preferably has a field of view exterior of the vehicle through a window of the vehicle.
Abstract:
An image sensing system for a vehicle includes an imaging sensor comprising a two-dimensional array of light sensing photosensor elements, and a logic and control circuit comprising an image processor for processing image data derived from the imaging sensor. The logic and control circuit generates at least one control output for controlling at least one light of the vehicle. The imaging sensor is disposed at an interior portion of the cabin of the vehicle proximate the windshield of the vehicle and has a forward field of view to the exterior of the vehicle, preferably through a windshield area that is swept by the windshield wipers. The imaging sensor is generally centrally located along the vehicle axis and is relatively high in the interior of the vehicle.
Abstract:
An image sensing system for a vehicle includes an imaging sensor comprising a two-dimensional array of light sensing photosensor elements and a logic and control circuit comprising an image processor for processing image data derived from the imaging sensor. The imaging sensor is disposed at an interior portion of the vehicle proximate the windshield of the vehicle and has a forward field of view to the exterior of the vehicle that preferably includes a windshield area that is swept by the windshield wipers. The image sensing system senses the presence of an object within the field of view of the imaging sensor the system controls, or supplements the control of, a collision avoidance system of the vehicle.
Abstract:
A vehicle photosensing system includes a photosensor array that is disposed within the interior cabin of the vehicle and having a field of view forward through the windshield of the vehicle. The photosensing system further providing a control for either controlling operation of a vehicle headlight or monitoring a surface condition of the windshield of the vehicle. If controlling the vehicle headlight, preferably the control transitions the headlight from a first beam mode to a second beam mode in response to detection of a headlight and/or a taillight by the photosensor array within its forward field of view. If monitoring a surface condition of the windshield of the vehicle, the photosensing system operates the vehicle's windshield wiper system in response to a signal generated by the control.
Abstract:
A vehicle control system and method includes structure and steps for capturing an image of a front seat of the vehicle and outputting image data corresponding thereto. A processor is provided which receives the image data output form the imaging device, compares the received image data with stored image data, and outputs a vehicle equipment control signal based on the comparison. Preferably, the vehicle equipment control signal controls one or more of airbag activation, mirror reflectance, vehicle lights activation, and vehicle intruder alarms. Preferably, the imaging device comprises a single chip camera disposed adjacent the vehicle rearview mirror.
Abstract:
A system and method for handling system management interrupts in a multi-processor computer is disclosed. When the computer enters system management mode, the method uses the registers of each processor to get currently executing opcode to determine what each processor was doing before the interrupt. The method may have to first translate address information to locate the actual physical location of the currently executing opcode. The registers are stored in memory and the contents of the registers can be used to determine if the current processor caused the system management interrupt. If so, then the method now knows which processor caused the interrupt and can handle the interrupt accordingly. If, however, the processor was not the one that caused the interrupt, or if another processor also caused an interrupt, the method then repeats the above steps for the next processor of the multiprocessor system.