Spaced sub-bias scan lines with connectors disperse doping-process charge and protect display transistors and pixels.
Different refresh rates cause uneven brightness; region-specific initial voltages restore luminance consistency across the panel.
This case combines conductive layers and shared vias to compact pixel drive circuits, improving aperture ratio and resolution.
A one-drive-many pixel layout overlaps reset transistors with light emitters to improve transmittance in camera-hole regions.
This pixel circuit uses N-type oxide TFT reset paths to limit leakage, stabilize voltages, and reduce OLED flicker and afterimages.
A patterned metal and metal oxide meta-layer reduces light loss while improving interfacial adhesion in display devices.
Valid and dummy sensing periods help isolate sensing-current noise, improving subpixel luminance uniformity while reducing power use.
A current-driving structure uses first and second currents across LED zones to improve brightness control without gray-level loss.
Symmetric grooves, lower metal patterns, and encapsulation reduce diffraction while preserving light transmission for optical components.
A temperature sensor adjusts refresh timing to limit high-temperature display deterioration while balancing display quality and power use.
Capacitive compensation reflects high-voltage differences between emission periods to stabilize the driving TFT and maintain luminance.
This case varies cathode and organic-layer thicknesses to improve light extraction while maintaining wide viewing angles.
Pixel islands and dummy subpixels simplify alignment and driving while reducing crosstalk in wide-angle glasses-free 3D displays.
This gate driver selectively connects control nodes to vary stage frequency, reducing power use for still images in partial display areas.
Threshold-based OLED dithering improves low-luminance image uniformity while easing source-driver and pixel-circuit constraints.
A lower metal line avoids gate-layer overlap to reduce display interference.
A third-transistor voltage configuration secures negative shift margin, reducing leakage and supporting reliable display operation.
A feedback unit monitors gate-driver-on-array scan signals to identify simultaneous gate-line driving behind grainy screens.
This case adjusts terminal control colors from picture tone, warmth, luminance, and color proportion for consistent visuals.
Through-hole interlayers transmit ultrasound to detect under-cured adhesive beneath bezels before display assembly is complete.
The display switches to frequency-aligned refresh rates when a stylus approaches, preserving uplink reception and continuous handwriting.
This case integrates service data and feedback in one interface, updating the related service while reducing user operations.
This display panel places light emitters in sensor-transparent regions and routes driving circuits outside them for better sensor access.
This case links sensors across body parts to aggregate impedance and provide granular composition data without bulky equipment.
A sensing leakage-prevention circuit and current limiter stabilize pull-up voltage and curb transient current in AMOLED gate driving.
A sensing switch and circuit detect low-voltage changes through data lines, enabling color-specific compensation for uniform luminance.
Timed shared sensing aligns pixel correction and prevents uneven display images.
A net-shaped display uses elastic connections between display units to improve stretchability and protect organic and inorganic layers.
Dual emitters and lens areas enable local viewing-angle control.
A temperature detection structure monitors light-emitting device positions and guides luminance compensation to limit high-temperature color deviation.
A sensing circuit compares output and target currents, switching gains to stabilize the driving voltage line and reduce flicker.
Bridge lines connect main and sub-data lines across pixel rows and columns, supporting uniform voltage and reduced dead space.
A TFT subpixel circuit combines drive-transistor amplitude control with comparator-based pulse width modulation for micro-LED reliability.
Asymmetric drive IC placement and timing adjustment compensate signal delays for uniform voltage charging across the display panel.
An elastic filler in the pixel-separating groove distributes bending stress while preserving signal-line current and insulation.
This case uses polymer-defined particle regions to create a visible grid while preserving glass-like clarity and minimizing tint and haze.
Repair driving circuits restore defective OLED pixels while preserving brightness and uniformity.
In non-rectangular displays, selective scan-line load elements compensate for length-dependent loads and improve brightness uniformity.
This case uses capacitors, resistors, or transistors to divide pixel voltage, improving viewing angle while preserving aperture ratio.
Capacitor and transistor paths compensate luminance variation to reduce OLED flicker.
This case uses stored threshold-voltage values to reduce sensing time, power use, and luminance variation during display driving.
This case captures sequential optical holograms and reconstructs live 3D scenes, preserving depth cues for more immersive display.
Partitioned backlight gain compensation preserves LCD color saturation as brightness rises.
Redundant gamma amplifiers alternate across rows and frames to cancel offset voltage and reduce display artifacts.
Integrate gate drive circuits and tunable units on-substrate to reduce driver-chip dependence.
A staggered ESD layout routes charge to conductors while preserving protection in the limited border space of irregular displays.
Integrated gate and light-emitting control signals reduce GOA space for narrower display borders.
This case adjusts a second display supply voltage from frame grayscale extremes and polarity to reduce power consumption without flicker.
This case arranges selector TFTs, video lines, and drain lines to limit frame growth and interference on non-rectangular LCD panels.
A dedicated switching element and off-control signal suppress sensor-area pixel emission while preserving normal display operation.
A light-shield support substrate positions an ultrasonic fingerprint sensor beneath an electroluminescence display panel.
A sensing system measures pixel sensitivity properties to adjust data voltages, reducing visual artifacts from manufacturing variations.
A display unit uses orthogonal polarization to switch between positive and negative outputs.
A voltage divider circuit conditions signals from a light sensing touch substrate to expand the operational working window.
A timing controller adjusts sensing periods for OLED pixels based on degradation speed to optimize voltage transfer times.
Integrated touch and fingerprint sensors calculate skin moisture levels using combined sensing signals.
A driving backplane stabilizes OLED brightness using a power line with a row-direction shielding part and overlapping compensation transistor channels.
A display control device outputs a full-angle image via pixel-thinning alongside a high-detail partial region view on the same screen.
Embedding the fingerprint module in a functional FPC via a glue film opening eliminates dedicated carriers and prevents light leakage.
A silicone polymer coating with mixed chain lengths resolves the contradiction between dispersion stability and charging properties in electrophoretic displays.
Surrounding the first relay electrode with power supply wiring shields the gate node from data line noise, preventing luminance unevenness.
A digital driving circuit generates analog voltage levels for display segments using pulse density modulation and inherent capacitance.
A driver chip calculates optimal voltage multiplying relationships to generate precise base voltages for display modes.
Dynamic voltage shifting resolves analog-to-digital converter overflow errors, ensuring accurate sensing of OLED driving characteristics.
Calculates compensated brightness for camera regions and attenuated values for normal areas to maintain uniform display quality.
A hybrid display merges an emissive panel with a variable transmission electrophoretic layer to modulate light output.
A dual gate array substrate design segments display units into same-color sub-pixels coupled to shared data lines.
Segmented shift register design reduces noise in LTPO circuits to address low charge mobility.
A touch operation device detects gestures on a display screen to generate control instructions for switching picture-in-picture positions and signal sources.
A foldable display device uses nested support substrates with protrusion patterns inserted into opening patterns to enhance structural integrity.
A pixel circuit uses a transfer capacitor to hold the driving gate electrode voltage during emission periods.
A bidirectional driving circuit enables forward and reverse scanning to maintain operational stability in display panels.
Color filters block unwanted light from a dichroic prism, eliminating ghosting and contrast deterioration in display devices.
A 5T1C OLED pixel driving circuit isolates current flow from threshold voltage variations using dynamic scan signal control.
Integrating data compensation units with pixel circuits balances line loads to reduce bezel size while maintaining display consistency.
An anti-crosstalk pad blocks spacer-scattered light, preventing crosstalk and improving fingerprint detection accuracy.
Varying initialization voltage based on data voltage reduces threshold voltage deviation and mitigates flicker at low grayscale levels.
A communication module enables real-time pattern data transmission to LED eyeglasses for immediate display.
A pixel sensing circuit integrator extends operation using a second signal to secure stable output voltages.
Cyclically adjusting power supply voltage prevents grayscale inversion and reduces consumption during frame periods.
Timing control alternates display and touch phases while switches couple odd and even lines, reducing parasitic capacitance without increasing IC size.
Segmented driving transistor channels compensate for excimer laser annealing non-uniformities, eliminating line mura in organic electroluminescence displays.
A pick-up tool places untested and tested LED dies on display substrates to enable high-accuracy parallel transfer.
A display panel integrates transmissive and reflective regions using a unified common electrode configuration to control liquid crystal molecules.
A voltage compensation module stabilizes driving current in OLED displays by adjusting gamma voltage based on measured threshold variations.
Test pads connect to scan lines for waveform analysis, enabling accurate short-circuit detection and repair localization in OLED displays.
Grayscale compensation adjusts brightness across consecutive frames to eliminate flickering artifacts caused by excessive frame rate jumps.
A graphics override intercepts command streams to enforce visual paradigms across applications.
Timing controller assigns complementary colors to dimming areas, suppressing color breakup during viewpoint changes.
Gate driving circuit removes multiplexers to reduce layout area and bezel width while preventing switching element deterioration.
Voronoi partitioned virtual cells direct specific colors to distinct viewing angles, overcoming narrow color gamuts in multi-directional displays.
A de-multiplexer circuit distributes data signals to multiple OLED data lines using sequential switch activation.
Placing a driving voltage line between the anode and gate electrode of adjacent pixels prevents electrical interference that disrupts target luminance.
A liquid crystal display device applies distinct drive voltages to local and remaining panel areas to control transmissivity.
Vertical circuit layer stacking reduces conductive line length to improve signal transmission accuracy in slim bezel designs.
Segmented common voltage buses with different levels support dot inversion driving to eliminate image sticking and crosstalk in LTPS displays.
A display control circuit adjusts clock signals to minimize power consumption during low-frequency driving pause periods.
Cutting initialization voltage lines isolates defective pixels from adjacent units, preventing leakage current rise and maintaining display quality.
Segmenting OLED subpixels into dedicated voltage groups reduces transistor voltage drop and extends device lifetime while maintaining color balance.
A source driver adjusts bias current amplitudes across output channels to reduce power consumption in display apparatus.