Abstract:
An apparatus includes a driven object, a motor configured to function as a driving source of the driven object, a scanning unit configured to cause the driven object to move, and include a first pulley to which the motor is connected, a second pulley disposed opposing to the first pulley, and a member stretched around the first pulley and the second pulley, an acquisition unit configured to acquire position information of the driven object, and a signal generation unit configured to generate a periodic signal for controlling driving of the motor based on the position information acquired by the acquisition unit, wherein the signal generation unit increases a period of the signal to be generated, as a length of the member to which a pulling force is applied becomes shorter.
Abstract:
A method of producing an image that can eliminate an fθ lens is provided. This method of producing an image includes producing the image from a plurality of dots with varying intervals that are to be formed by linearly scanning an image forming surface with light that has been modulated using image data for producing by a polygon mirror that rotates at a constant angular velocity, and generating, before the producing the image, the image data for producing to form the image with the plurality of dots with varying intervals from original image data that forms a target output image with a plurality of dots with constant intervals. The step of generating the image data for producing includes setting a state of a first dot included in the plurality of dots with varying intervals at a state of a second dot that is included in the plurality of dots with constant intervals obtained from the original data and is at a position that is close to a position of the first dot.
Abstract:
This invention is directed to an image printing apparatus which can print images without any halfway offset or obverse/reverse pixel offset at a low cost. An image printing apparatus includes a clock generating section which generates a dot clock as the basis of each pixel forming an image, an image printing section which prints a one-line image in a main scanning direction in accordance with image data with reference to the dot clock output from the clock generating section, and prints a one-page image by repeating in the sub-scanning direction one-line image printing performed in the main scanning direction, and a clock control section which changeably controls the frequency of the dot clock during scanning of one line in the main scanning direction.
Abstract:
A memory read control unit (606) reads out image data of one pixel from a memory (603) in synchronism with a clock signal. On the basis of the image data of one pixel, a converting unit (604) converts the density of a corresponding pixel into digital data of a plurality of bits and stores the digital data in a shift register (606). A pixel-piece insertion and deletion control unit (607) inserts data of one bit into the shift register or deletes data of one bit from the shift register. The pixel-piece insertion and deletion control unit (607) estimates a data storing state in the shift register and controls image data read-out from the memory (603) in accordance with the estimated data storing state.
Abstract:
A system and method for spatially matching the output of two imaging stations in an electro-photographic device by using a second order polynomial curve and a third order polynomial curve to approximate the non-linearity errors between the two imaging stations and using the second order polynomial curve and the third order polynomial curve to modify the frequency of a pixel clock.
Abstract:
A frequency modulation device for use in an image forming apparatus. The image formation apparatus includes an image carrier and a laser device for scanning the image carrier along a plurality of scan lines. Each scan line is divided into segments having segment boundaries in which the same segment boundary in adjacent scan lines are offset. The frequency modulation device generates frequency data for use in modulating the input image data, which is utilized by the laser device to scan the image carrier, which permits output of an electrophotograph of high image quality by suppressing segment boundaries caused by moiré fringes or color shifting to below a level at which such boundaries are not visually detectable.
Abstract:
In one embodiment, the present invention provides a scan line controller for use with a laser scanning device. The scan line controller includes a pulse width modulator system to receive a pulse code, including a first pulse width modulator to receive a first dot clock and a second pulse width modulator to receive a second dot clock, and to provide a video driver signal to a laser unit to provide a scan line from the video driver signal. The scan line controller further includes a space insertion/deletion unit configured to adjust a scan line length by inserting or deleting one or more delays into the first and the second dot clocks.
Abstract:
An apparatus for forming a pattern has a light source, a scanning unit, a memory, a pulse data selector, a control pulse signal generator, a control pulse signal generator, a writing pulse signal generator, and an optical modulator. The time-interval detector detects successively a time-interval that is a pass-time of the beam in each of a series of fine sections. The pulse data selector selects a set of pulse data, corresponding to the detected time-interval, from a series of sets of pulse data. The control pulse signal generator successively generates a sequence of control pulse signals in accordance with the selected set of pulse data.
Abstract:
An apparatus for forming a pattern has a light source, a scanning unit, a memory, a pulse data selector, a control pulse signal generator, a control pulse signal generator, a writing pulse signal generator, and an optical modulator. The time-interval detector detects successively a time-interval that is a pass-time of the beam in each of a series of fine sections. The pulse data selector selects a set of pulse data, corresponding to the detected time-interval, from a series of sets of pulse data. The control pulse signal generator successively generates a sequence of control pulse signals in accordance with the selected set of pulse data.
Abstract:
In one embodiment, the present invention provides a scan line controller for use with a laser scanning device. The scan line controller includes a pulse width modulator system to receive a pulse code, including a first pulse width modulator to receive a first dot clock and a second pulse width modulator to receive a second dot clock, and to provide a video driver signal to a laser unit to provide a scan line from the video driver signal. The scan line controller further includes a space insertion/deletion unit configured to adjust a scan line length by inserting or deleting one or more delays into the first and the second dot clocks.