A micro LED display module uses a light transmissive substrate to drive individual pixels via a driver chip block.
A substrate configuration isolates sensor element circuits from static electricity protection paths using dedicated mounting terminals.
A dummy pixel replicates thin film structures to enable electrical testing without damaging the organic light emitting display.
Method manages communication between electronic and wearable devices using distance and position feedback to enhance data exchange efficiency.
Blue light emitting diodes paired with phosphor conversion reduce manufacturing costs while maintaining brightness and eliminating hot spots.
Alternating first and third sub-pixel groups along column axes with second sub-pixels positioned on perpendicular bisectors.
Segmented gate lines lower resistance and parasitic capacitance while increasing aperture ratio.
A source driver digital-analog converter generates target initialization voltage from packet information.
A gamma correction apparatus measures optical characteristics of display panels to generate precise gray level-wise gamma data.
A liquid crystal display array substrate employs a second switching element to control sub-pixel electrodes when primary control fails.
An integrated display and sensing apparatus shares pixel circuits on a single substrate to free space for optical sensing elements.
A liquid crystal display pixel electrode uses varying width, angle, and separation distance in the white sub-pixel to adjust transmittance-voltage curves.
Segmented back gate signals control pixel currents in foldable display areas to reduce power consumption.
A display device integrates a driving chip and conductive vias within a housing to reduce the non-display area.
Dynamic voltage swings separate impurities between electrodes, eliminating short-circuit defects and improving product reliability.
A rotatable structure with multiple light field sub-displays creates realistic three-dimensional representations.
A pixel driving circuit uses preset and compensation units to stabilize node voltages.
Segmented driving circuit modules manage node voltages via transistor switching, resolving complexity-reliability trade-offs in LCD panels.
An OLED display panel controls specific pixels to a non-active state based on touch signals.
A pixel driving circuit manages voltage supply to suppress bright spot defects in electroluminescent displays.
A pixel driving circuit reset unit maintains the drive transistor in an off state during power-on to prevent abnormal activation.
A proximity sensor positioned under a display screen uses angled optical paths to minimize crosstalk.
Detects driving transistor threshold voltages by adjusting data and reference signals, resolving analog-to-digital converter range limits.
A display electrode features extending and bending portions that shape dark patterns to stabilize luminous variation across gray levels.
Column inversion drive schemes apply opposite signal polarities to transparent and green filter pixels, suppressing flicker while lowering energy usage.
A remote presentation server adapts document formats to user terminal configurations for seamless display.
Auxiliary and reference transistors on horizontal lines equalize voltage distribution to eliminate luminance unevenness in organic light-emitting displays.
Variable gate insulator thickness in AMOLED substrates reduces parasitic capacitance and prevents electrode short-circuiting at crossing regions.
An adaptive overdrive control circuit dynamically adjusts image compression and driving signals based on moving or still content.
A display device design featuring a data line drive circuit with an opening defining layer between the conductive layer and common electrode.
A pixel circuit manages scan signals via switching units to support flexible scanning modes.
Constant current regulation controls RGB LED brightness, reducing power consumption and heat generation while extending lifespan.
Silicon-based OLED panel arranges same-color sub-pixels in pixel islands, reducing driving circuit complexity while boosting resolution.
A pixel circuit stabilizes current supply to light-emitting elements through threshold voltage compensation.
A liquid crystal display apparatus uses a common electrode potential controlling circuit to change potentials into pulse shapes.
A pixel circuit uses a shared conductive layer to drive transistors and store charge.
Power line protrusions overlap pixel electrodes to resolve uneven conductive layers and enhance luminous efficiency.
Integrating light sensing pixels into the display panel eliminates separate sensors, enabling accurate blood pressure measurement on portable screens.
A display device sets reference compensation voltages for each pixel during image holding periods to stabilize node voltage levels.
Segmented step voltages regulate power supply levels, resolving brightness adjustment precision limits without increasing circuit complexity.
Controllable opacity filter pixels selectively block natural light to eliminate ghosting, while eye tracking maintains registration accuracy.
Adjusting pigment compositions in red and green resists aligns WLED emission spectra with sRGB standards, resolving color deviation issues.
A shift register unit pull-down sustaining sub-circuit maintains node potential using series transistor structures to eliminate inverters.
Segmenting data lines to connect specific pixel sets reduces logic power consumption by minimizing the frequency of data signal polarity changes.
Sequential region illumination identifies defective pixels via current ratios for precise AMOLED screen repair.
A display driver analyzes pixel clusters to select between YUV and quantized RGB formats.
Segmented driving electrodes reduce time constants in sensor-equipped display devices, enabling faster position detection on larger panels.
A liquid crystal display apparatus divides frame periods into segments for simultaneous image output and optical input detection.
Dual subpixel drivers alternate frame-by-frame to sample threshold voltages and offset data signals.
A driving circuit controls OLED pixels by jumping reference, reset, and data voltages to manage transistor states during power-up sequences.