Abstract:
A recording head having a plurality of ink discharge element lines arranged thereon is moved in a direction different from the direction of arrangement of the ink discharge elements to conduct a main scan, and at the end of the main scan, a recording medium is moved by a predetermined width in a direction different from the main scan direction to record an image. A record area of the recording head is divided into a plurality (n) of areas and each unit image area on the recording medium is main scanned n times by using the n divided areas of the recording head and thinned images with a print factor of 1/n are sequentially recorded to complete the record of the unit image area. The print factor for the pixels in the boundary area of adjacent unit image areas is lower than the print factor to the entire unit image area in at least one of the n main scans. Thus, the number of pixels recorded by the same main scan in the boundary area is increased. A high quality image without a joint stripe is attained even for a recording medium having a relatively high ink absorption speed.
Abstract:
A digital copying apparatus produces a right reading image with an image reading unit co-mounted on a carriage with an image printing unit. After a width of a document is scanned, either bidirectionally or unidirectionally, and digitized, it is stored in a band memory buffer before it is printed on the next successive sweep. The digitized data stored in the band memory buffer may be processed while it is stored, prior to being printed.
Abstract:
A scanner having a frame assembly for supporting a movable document reading head for scanning movement in a scanning path in a first direction has a document transport to transport a document through the scanner and a drive to move the reading head across the document to read at least a portion of the document, the reading head having an optical imaging assembly including a frame supporting an imaging platen, the scanner including a floating document backstop opposite the imaging platen and extending across the scanning path to precisely position a document on the platen during an imaging operation. In a preferred embodiment the scanner includes a printing head with a comounted printing head.
Abstract:
A compact combined input scanner and output scanner having a frame assembly with a scanning carriage movably mounted for movement in a scanning path in a first direction across the length of said frame assembly. The scanning carriage has co-mounted a reading head secured thereto for scanning a document to produce a digital image of at least a portion of the document and a printing head secured thereto for relative movement with respect to a copy sheet and electrically connected to the reading head for printing a digital image on a copy sheet. The frame assembly includes copy sheet and document transport paths with an indexer to index a document through the document path in a direction transverse to the first direction and to index a copy sheet through the copy sheet path in the opposite transverse direction of indexing of said document.
Abstract:
A facsimile signal converter for mutually converting to each other one of a facsimile signal of one-way scanning and a facsimile signal of two-way scanning for each scanning line, in which a first read head and a second read head are reciprocated for scanning in opposite directions along two spaced but parallel travel paths, respectively, while a write head travels together with the first read head along a travel path developed at the midway between the two travel paths and to be positioned on the same line perpendicular to each of the two parallel travel lines. A recording medium is shifted by a certain length in a direction perpendicular to the travel paths for each scanning of the first read head and the second read head. In case of using an endless recording medium, it is alternately shifted by a first length and a second length twice the first length. Each of the certain length and the first length is equal to half the space between the two travel paths.
Abstract:
A disclosed optical scanning device includes a light beam generating unit configured to generate a light beam; a light beam deflecting unit configured to receive the light beam and deflect/emit the light beam with a deflecting mirror; a light beam ON/OFF control unit configured to control the light beam generating unit so that the light beam deflected by the light beam deflecting unit is turned ON/OFF in a particular light beam scanning region while the light beam is being reciprocally scanned; and a light beam scanning time measuring unit configured to obtain a measurement value by measuring a time at which the light beam passes a reference point provided on an edge part of the entire light beam scanning region that is away from a center part of the entire light beam scanning region. Timings at which the light beam is turned ON/OFF are controlled in accordance with the measurement value.
Abstract:
Method for scanner control in at least one scan axis in a laser scanning microscope, the scan field being divided into partial area, a first image of at least one partial area produced by a forward scan being compared with a second image of the partial area produced by a back scan and a correction value for the scanner control determined from the deviation between the first and second image.
Abstract:
Provided are a method and apparatus for removing show-through from a scanned image. The method includes scanning at least one line in a medium at a first intensity in a first scanning operation; scanning the at least one line in the scanning medium at a second intensity different from the first intensity, in a second scanning operation; and removing show-through from an image obtained during the first scanning operation based on a difference in a show-through effect between images obtained during the first and second scanning operations.
Abstract:
In bi-directional imaging, such as bi-directional printing, a driving mechanism scans a light beam through a scan path across an imaging window. A controller enables transmission of video data to a modulator when the light beam is positioned for imaging on the imaging window. Video data is transmitted to the modulator when the light beam is traveling in a forward direction or a reverse direction across the imaging window, whereby a modulated light beam is capable of producing an image when traveling in the forward or reverse directions. The controller adjusts scan durations or image rasterization rates to ensure that each scan is properly aligned with the prior and subsequent scan.
Abstract:
A method for detecting scanner phase error in a bidirectional scanned beam imager includes obtaining first and second images derived from respective first and second scan directions, comparing apparent image feature positions in the first and second images, and calculating a phase error corresponding to a difference between the apparent image feature positions. The comparison may include multiplying frequency domain transformations of the images.