Abstract:
A white-level correcting unit makes an image reading unit read a white reference board, and sets a parameter corresponding to a value read by the image reading unit. A carriage includes a light source that irradiates the document, and moves in a sub-scanning direction with respect to a document to be read. When shifting to an energy-saving mode, the image reading device moves the carriage to a position of the white reference board before entering to the energy-saving mode.
Abstract:
A scanning device includes a first chassis, a second chassis and a calibration mechanism. The first chassis is for scanning one side of a document. The second chassis is for scanning the other side of the document. The second chassis is movably disposed opposite the first chassis. The calibration mechanism is for calibrating the color depth of the scan image. The calibration mechanism includes a calibration sheet and an elastic member. One end of the elastic member is fixed in the scanning device. The second chassis exerts a force on the calibration sheet to generate a relative movement between the calibration sheet and the first chassis. When the second chassis ceases exerting the force, the elastic member releases a resilient force for moving the calibration sheet to a starting position. The first chassis performs dynamic calibration by the relative movement between the first chassis and the calibration sheet.
Abstract:
An image reading apparatus comprises a correcting mechanism for correcting an output signal from a reading unit in accordance with a reference level. The correcting mechanism includes a reference element for setting the reference level and a drive mechanism for rocking the reference element between a first position in which the reference element is advanced to a reading position and a second position in which the reference element is retreated from the reading position. The drive mechanism includes a rotating member that is continuously rotated in one direction. As the rotating member rotates, the reference element rocks between the first and second positions, thereby executing correction of the output signal before image information recorded on a recording medium is read.
Abstract:
A multiple-background device for a scanner and a calibration device utilizing the same principle are disclosed. The multiple-background device includes a shaft, a low-reflectance portion and a high-reflectance portion are formed along the length of the shaft. Thereby the shaft can provide various background colors, and the optical module can acquire a plurality of scan lines by means of rotating the shaft for image calibration.
Abstract:
An optical scanner includes a first reference white board and a second reference white board perpendicular to two sides of a glass window that holds an object to be scanned. When the optical scanner is powered on, the optical module scans the first reference white board and the second reference white board to obtain data of image quality test and brightness variations in Y direction first, and through software compensation and correction, to obtain a normal digital image data thereby to achieve rapid preview and scanning.
Abstract:
The image reader according to the present invention is able to set the accurate threshold level free of influence of dirt and dust even when the reference nullwhitenull level is requested for shading correction during the acceleration while the carriage is being accelerated without increasing the averaging frequency when the reflected light from the white board is read for shading correction. In addition, because the distance between the head end of the transparent glass and the home position as well as the distance between the home position and the reading window are shortened, the size of the image reader is reduced.
Abstract:
The present invention relates to a method for controlling an image scanner for reading images by moving an image sensor. Specifically, the present invention relates to a control method for detecting the boundary between a white region and a black region formed at a predetermined place in accordance with a signal output from the image sensor and determining the home position of the image sensor in accordance with the position of the boundary. Particularly, the present invention is an invention for providing a control method for preventing erroneous recognition due to influence of external light. The above objects are achieved by methods of the present invention such as a method for confirming whether, when an output signal probably showing a black region is obtained, the same detection result is obtained again at another position in the black region, a method for excluding the vicinity of a housing end subject to external light from a read range, and a method for previously generating a threshold for detecting a black region in accordance with a signal output from an image sensor to use the value of the signal.
Abstract:
In order to shorten a time for preliminary original reading which is performed prior to reading of an original image, an image reading apparatus of the present invention scans an original mounted on a platen glass by a scan optical system that moves to the original and reads a scanned image of the original by using a CCD sensor, the apparatus having a function to perform a preliminary original read operation for automatically deciding a density of the original before the reading operation of the original image, wherein the preliminary original reading is performed while the scan optical system in an idling state is moving from a read standby position to an image read operation start position; a white background level correction operation of the CDD sensor is performed after collection of original density data by the preliminary original read operation; and a result of the correction is reflected on the original density data obtained by the preliminary original reading to control the decision of the original density.
Abstract:
A scanner comprises a transparent platen mounted on a housing, and an object-imaging device within the housing mounted for longitudinal movement relative to the platen and an object supported thereby. The object-imaging device is rotatable about a transverse axis and comprises an aperture for receiving light reflected from the object. The object-imaging device has a travel distance between a home end position and a back end position, the travel distance comprising a central portion and at least one end portion. The scanner further comprises a mechanism operatively associated with the object-imaging device for rotating the device about the transverse axis thereof in response to movement of the device within the at least one end portion of the travel distance, the device being rotated in a direction so that the light-receiving aperture is rotated away from the central portion of the travel distance. There is also provided a method of scanning an object placed on the platen of a scanner, the scanner comprising an object-imaging device translatable relative to the platen between a home position and a back end position remote from the home position, the scanner further comprising a calibration means at the home position. The method comprises scanning the object in a scanning direction with the object-imaging device while translating the object-imaging device from the home position to the back end position, translating the object-imaging device in a return direction toward the home position, rotating the object-imaging device within a home end portion of the travel of the object-imaging device, and calibrating the object-imaging device within the home end portion of the travel thereof.
Abstract:
An image processing apparatus, method, and computer program product including a carriage for carrying an image reading device; a white plate arranged above a track of the carriage, and read by the image reading device for adjusting a reading level; a home position sensor to detect the position of the carriage; and a controller to control the movement of the carriage. The controller is configured to determine the direction of movement of the carriage based on the output of the home position sensor, and to perform a tentative homing operating when the home position sensor changes its output after the carriage is moved.