The search functionality is under construction.
The search functionality is under construction.

Author Search Result

[Author] Tomokazu SHIGA(7hit)

1-7hit
  • Address Power Reduction Method for High-Resolution Plasma Display Panels Using Address Data Smoothing Based on a Visual Masking Effect

    Masahiko SEKI  Masato FUJII  Tomokazu SHIGA  

     
    PAPER

      Vol:
    E99-C No:11
      Page(s):
    1277-1282

    This paper proposes an address power reduction method for plasma display panels (PDPs) using subfield data smoothing based on a visual masking effect. High-resolution, high-frame-rate PDPs have large address power loss caused by parasitic capacitance. Although the address power is reduced by smoothing the subfield data, noise is generated. The proposed method reduces the address power while maintaining the image quality by choosing the smoothing area of the address data based on the visual masking effect. The results of subjective assessment for the images based on smoothed address data indicate that image quality is maintained.

  • A Study on a Priming Effect in AC-PDPs and Its Application to Low Voltage and High Speed Addressing

    Makoto ISHII  Tomokazu SHIGA  Kiyoshi IGARASHI  Shigeo MIKOSHIBA  

     
    PAPER-Plasma Displays

      Vol:
    E84-C No:11
      Page(s):
    1673-1678

    A priming effect is studied for a three-electrode, surface-discharge AC-PDP, which has stripe barrier ribs of 0.22 mm pitch. It was found that by keeping the interval between the reset and address pulses within 24 µs, the data pulse voltage can be reduced while the data pulse width can be narrowed due to the priming effect. By adopting the primed addressing technique to the PDP, the data pulse voltage was reduced to 20 V when the data and scan pulse widths were 1 µs. Alternatively, the data pulse width could be narrowed to 0.33 µs when the data pulse voltage was 56 V. 69% of the TV field time could be assigned for the display periods with 12 sub-fields, assuring high luminance display.

  • Reduction of Image Degradation due to Viewing Angle in Adaptive Dimming Technique Open Access

    Seiji OGAKI  Kazuma SAKAKIBARA  Tomokazu SHIGA  

     
    INVITED PAPER

      Vol:
    E93-C No:11
      Page(s):
    1572-1576

    An adaptive dimming technique controls both LCD panel transmittance and its backlight luminance adequately and locally according to the input TV signal. The technique reduces the power consumption and also improves the picture quality. However, a steep change in backlight luminance distribution due to the application of the technique causes image degradation around the boundary of the segments when the LCD is viewed from an angle. The main factor of image degradation is the illumination of a pixel by neighboring pixel's corresponding backlight when the LCD is viewed from an angle rather than normal direction. From the subjective evaluation of image quality and computer simulation, it is found that the gradient of the backlight luminance variation to luminance at the border of the segment should be less than 0.022 per pixel in order to suppress the image degradation.

  • Driving Techniques for Long Sustain Gap AC PDP Using LaB6 Cathode

    Tomokazu SHIGA  Masao ONO  Shinichi HARA  Satoshi KUSAKARI  Yoshifumi AMANO  

     
    PAPER

      Vol:
    E92-C No:11
      Page(s):
    1353-1357

    A replacement of an expensive MgO protective layer with relatively inexpensive Lanthanum Hexa Boride (LaB6) has already been proposed. Since LaB6 is not transparent, unlike MgO, the LaB6 panel employs a long sustain gap structure. Since the sustain gap is 2.6 times larger than the distance between sustain and address electrodes, different driving methods from those of the conventional PDPs have to be adopted. For the driving technique of the sustain period, an application of delayed auxiliary pulses on A electrode and the overlap sustain pulse drive are proposed. Luminance degradation with higher sustain frequency driving can be compensated by use of a 2step sustain pulse driving. Low reset luminance and low address voltage are achieved with a square-ramp technique for the reset period. TV operation is successfully realized on AC PDP which incorporated the LaB6 cathodes.

  • Power Reduction of OLED Displays by Tone Mapping Based on Helmholtz-Kohlrausch Effect

    Tomokazu SHIGA  Soshi KITAHARA  

     
    PAPER

      Vol:
    E100-C No:11
      Page(s):
    1026-1030

    The Helmholtz-Kohlraush effect is a visual characteristic that humans perceive color having higher saturation as brighter. In the proposed method, the pixel value is reduced by increasing the saturation while maintaining the hue and value of HSV color space, resulting in power saving of OLED displays since the power consumption of OLED displays directly depends on the pixel value. Although the luminance decreases, brightness of image is maintained by the Helmholtz-Kohlraush effect. In order to suppress excessive increase of saturation, the increase factor of saturation is reduced with an increase in brightness. As maximum increase factor of saturation, kMAX, increases, more power is reduced but unpleasant color change takes place. From the subjective evaluation experiment with the 23 test images consisting of skin, natural and non-natural images, it is found that kMAX is less than 2.0 to suppress the unpleasant color change. When kMAX is 2.0, the power saving is 8.0%. The effectiveness of the proposed technique is confirmed by using a smart phone having 4.5 inches diagonal RGB AMOLED display.

  • FOREWORD Open Access

    Tomokazu SHIGA  

     
    FOREWORD

      Vol:
    E100-C No:11
      Page(s):
    942-942
  • High-Speed Drive Waveforms of PDPs with Wall-Charge Elimination, Write-Address Scheme

    Takateru SAWADA  Tomokazu SHIGA  Shigeo MIKOSHIBA  

     
    INVITED PAPER

      Vol:
    E89-C No:10
      Page(s):
    1395-1399

    A high-speed drive technique is introduced in which addressing is done by eliminating, instead of accumulating, the wall charges. In the proposed scheme, wall charges are accumulated in all the cells in advance, and then the address discharges take place in selected cells to eliminate the wall charges. Sustain discharges are generated in these cells. In order to realize the proposed address scheme, re-designing of a setup waveforms was necessary. The data pulse of 1.33 µs wide and 84 V was realized in a Ne+10%Xe PDP. A contrast of 3,600:1 was obtained by providing one setup period in a TV field.