Abstract:
A rearview display system is provided for a vehicle having: a rear camera generating a rearward video stream, a right camera generating a right stream, and a left camera generating a left stream. The system includes a processing circuit for generating a composite video stream from: (a) the rearward stream and the right stream, (b) the rearward stream and the left stream, and (c) at least the rearward stream. When the composite stream is formed from the rearward stream and the right stream, the rearward stream extends across the whole composite stream with the exception of a right corner where the right stream is superimposed over the rearward stream. When the composite stream is formed from the rearward stream and the left stream, the rearward stream extends across the whole composite stream with the exception of a left corner where the left stream is superimposed over the rearward stream.
Abstract:
A vehicular rearview mirror assembly (600) includes an electrochromic (EC) glass element (303) and a printed circuit board (603) for mounting electrical components. A liquid crystal display (LCD) (615) is mounted to the printed circuit board (603), while a plurality of light emitting diodes (LEDs) (608) are also mounted to the same printed circuit board below the LCD (603) for providing backlighting.
Abstract:
A display system for use in a controlled vehicle is provided, and includes a rearview assembly having a display device located behind a mirror element, a camera system configured to acquire images of a scene external of the controlled vehicle, and a processing system configured to receive a signal representative of the acquired images and to produce an image of the scene on the display device of the rearview assembly, wherein the processing system is further configured to adjust the photosensitivity of the camera system based on an input from at least one of an ambient light sensor and a direct glare sensor.
Abstract:
A display mirror assembly for a vehicle having a front shield including a first side and a second side. A partially reflective, partially transmissive element is mounted on the first side. A rear shield is disposed behind the front shield. A display module is mounted between the front shield and the rear shield and includes in order from the front shield: a display; an optic block; a heat sink having an edge lit PCB mounted along a top edge thereof; and a PCB. The front shield is secured to at least one component of the display module with a first retaining feature and the rear shield is secured to at least one component of the display module with a second retaining feature. A housing at least partially surrounds the front shield, display module, and rear shield.
Abstract:
An imaging and display system for use in a vehicle pulling a trailer, the system including: a trailer camera mounted on the trailer such that the camera is oriented to receive images from a first field of view having a horizontal angle and a vertical angle where the vertical angle is greater than the horizontal angle; an image processor for creating a back-up image and a rearward image from an image captured by the camera, the back-up image corresponding to a second field of view cropped from the lowest portion of the first field of view and the rearward image corresponding to a third field of view cropped from a portion of the first field of view above the lowest portion, the third field of view having a horizontal angle and a vertical angle where the horizontal angle is greater than the vertical angle.
Abstract:
A vehicle display device is disclosed. The device comprises an image sensor comprising an imager configured to capture image data and a display. The display comprises a plurality of display elements forming a display surface. The display surface forms a display perimeter. The display elements surround the image sensor on the display surface such that the image sensor is disposed within the display perimeter.
Abstract:
One embodiment of the invention relates to a trainable transceiver. The trainable transceiver includes a transceiver circuit, a user input device, a battery, and a voltage regulator circuit. The transceiver circuit is configured to reproduce and transmit control signals for operating a plurality of remote electronic devices. The user input device is configured to accept user input. The voltage regulator circuit includes a DC-DC converter configured to step up the battery voltage level, a low leakage switch configured to couple the battery and the DC-DC converter, and a temperature-sensitive current source configured to control the low leakage switch. The battery is configured to power the transceiver circuit, the user input device, and the voltage regulator circuit.
Abstract:
A display mirror assembly for a vehicle includes a front shield having a first side and a second side. A partially reflective, partially transmissive element is mounted on the first side. A rear shield is disposed behind the front shield. A display module is mounted between the front shield and the rear shield and includes in order from the front shield: a display; an optic block; a heat sink having an edge lit PCB mounted along a top edge thereof; and a PCB. The front shield is secured to at least one component of the display module with a first retaining feature and the rear shield is secured to at least one component of the display module with a second retaining feature. A housing at least partially surrounds the partially reflective, partially transmissive element, the front shield, carrier plate, display module, and rear shield.
Abstract:
A system in a vehicle for generating and displaying three-dimensional images may comprise a first imager having a first field of view; a second imager having a second field of view at least partially overlapping the first field of view, the second imager disposed a distance from first imager; and an image signal processor in communication with the first and second imagers; wherein the image signal processor is configured to generate an image having a three-dimensional appearance from the data from the first and second imagers. The first and second imagers may be disposed on a vehicle. The first and second imagers may be configured to capture a scene; and the scene may be exterior to the vehicle.
Abstract:
An imaging system is provided having an HD image sensor, a variable focus lens positioned in front of the image sensor and configured to change at least one optical characteristic in response to an electrical stimulus so as to change a field of view of the image sensor. The imaging system further includes a controller coupled to the variable focus lens and configured to select a field of view of the image sensor by selecting the electrical stimulus to be applied to the variable focus lens.