Abstract:
A camera array, an imaging device and/or a method for capturing image that employ a plurality of imagers fabricated on a substrate is provided. Each imager includes a plurality of pixels. The plurality of imagers include a first imager having a first imaging characteristics and a second imager having a second imaging characteristics. The images generated by the plurality of imagers are processed to obtain an enhanced image compared to images captured by the imagers. Each imager may be associated with an optical element fabricated using a wafer level optics (WLO) technology.
Abstract:
A camera array, an imaging device and/or a method for capturing image that employ a plurality of imagers fabricated on a substrate is provided. Each imager includes a plurality of pixels. The plurality of imagers include a first imager having a first imaging characteristics and a second imager having a second imaging characteristics. The images generated by the plurality of imagers are processed to obtain an enhanced image compared to images captured by the imagers. Each imager may be associated with an optical element fabricated using a wafer level optics (WLO) technology.
Abstract:
A camera array, an imaging device and/or a method for capturing image that employ a plurality of imagers fabricated on a substrate is provided. Each imager includes a plurality of pixels. The plurality of imagers include a first imager having a first imaging characteristics and a second imager having a second imaging characteristics. The images generated by the plurality of imagers are processed to obtain an enhanced image compared to images captured by the imagers. Each imager may be associated with an optical element fabricated using a wafer level optics (WLO) technology.
Abstract:
A camera array, an imaging device and/or a method for capturing image that employ a plurality of imagers fabricated on a substrate is provided. Each imager includes a plurality of pixels. The plurality of imagers include a first imager having a first imaging characteristics and a second imager having a second imaging characteristics. The images generated by the plurality of imagers are processed to obtain an enhanced image compared to images captured by the imagers. Each imager may be associated with an optical element fabricated using a wafer level optics (WLO) technology.
Abstract:
A camera array, an imaging device and/or a method for capturing image that employ a plurality of imagers fabricated on a substrate is provided. Each imager includes a plurality of pixels. The plurality of imagers include a first imager having a first imaging characteristics and a second imager having a second imaging characteristics. The images generated by the plurality of imagers are processed to obtain an enhanced image compared to images captured by the imagers. Each imager may be associated with an optical element fabricated using a wafer level optics (WLO) technology.
Abstract:
An apparatus and a method for operating the same. The apparatus includes N light guide portions. Each light guide portion of the N light guide portions includes a first light guide end and a second light guide end. If an image enters the N light guide portions through the N first light guide ends, then the image goes through the N light guide portions and exits through the N second light guide ends undistorted. The apparatus further includes N image devices. The N image devices are in one-to-one close proximity to the N second light guide ends. If an image exits the N light guide portions through the N second light guide ends, then the image essentially completely enters the N image devices.
Abstract:
An optical imaging device for obtaining an image of a stationary image placed on an at least partially transparent platform. In one embodiment, the optical imaging device includes at least one illuminating plate having at least one open cell, at least one imaging head received in the at least one open cell of the at least one illuminating plate, and a light source adapted for emitting a light, where the at least partially transparent platform, the at least one illuminating plate, and the light source are arranged such that when in operation, a light emitted from the light source is directed into the at least one illuminating plate so that the light is evenly spread toward the at least partially transparent platform, reflected off the stationary image placed on the at least partially transparent platform and received by the at least one image head to obtain the image of the stationary image placed on the at least partially transparent platform.
Abstract:
A scanner has a housing, and a glass piece positioned over the housing and covering portions of the interior of the housing, with the glass piece adapted to support an image to be scanned. The scanner further includes a sensor positioned inside the housing below the glass piece, and a light source positioned inside the housing below the glass piece in a manner to direct a light beam at the glass piece so that the light beam is reflected off the glass piece and is received by the sensor to capture the image to be scanned. As a result, the entire image is captured at the same time by the sensor.
Abstract:
An apparatus for transforming the shape of an image in a way that utilizes substantially all the available pixels for both the image generated and the sensor to which the image is projected, is disclosed. Also disclosed is an apparatus and method to reduce or eliminate substantially any blurring associated with a non-planar focal plane associated with an image generated from a curved mirror, particularly when some portions of the image are focused on the plane of the sensor and other portions are blurred. Loss of image resolution is eliminated, thereby achieving desired fiber optic image mapping, by the present invention for coherent and incoherent fiber optic cables.
Abstract:
Coherence of an optical fiber bundle with randomly different geometries at its two ends is achieved electronically. A photosensitive random access memory is used as a sensor array to determine the addresses of fiber at which light exits when light is sequentially directed into consecutive fibers at the other end. The addresses are stored in a ROM and used to provide coherence of an otherwise unordered fiber optic bundle having one end formed in a linear array, for example, and used to scan documents. A printer also is described using electronically achieved coherence.