An in-panel ESD circuit uses discharge transistors between driving power and data lines to protect display-area pixels and improve yield.
A reflective LCD, oxide-semiconductor transistors, and nonvolatile memory cut power use so portable electronics keep working under weak inductive charging.
Current amplitude modulation with a wavelength correcting layer and independent gamma correction suppresses color drift and flicker in high-definition displays.
An external light sensor adjusts liquid crystal drive voltage and polarization to keep a vehicle display visible to passengers, not drivers.
An edge-shifted pixel layout with smaller edge lighting regions reduces bright and dark seam lines in tiled displays.
A virtual surround view overlays drive assist target scenes at matching display positions so occupants can better understand assisted maneuvers.
Asymmetric road-surface shading and icons show the set following position, making adaptive cruise distance easier to grasp.
Overlapping spare mounting pads let defective LED chips be laser removed and remounted, improving display pixel repair yield without extra space.
Staggered light-emitting units and zigzag driving lines create a grid-like layout that improves mini LED display light uniformity.
Auxiliary and dummy stages in the non-display area overlap data lines to shrink panel gaps and improve image continuity in tiled displays.
A three-region display substrate places driving circuits outside the light-transmissive area to simplify wiring and improve full-screen uniformity.
Ferroelectric thin-film storage retains display image data without continuous refreshing, cutting power use and preserving output after power loss.
Different output wire widths and dummy lines help display drivers handle higher current, limit overheating, and keep chip size compatible.
Separate gate drivers run divided panel regions at different frequencies to improve display consistency and functional flexibility.
Integrated sensor terminals and layered signal lines let MiniLED and MicroLED arrays monitor temperature and brightness to prevent overheating.
A simplified shift register layout cuts overlapping wiring and parasitic capacitance, enabling narrower display bezels with stable signal quality.
Alternating PWM duty cycles over multiple pulses gives DC-DC illumination control finer output precision and reduces ToF phase/depth errors.
Parallel sub-TFT ESD paths raise current capacity while limiting parasitic capacitance, reducing signal delay in narrow-bezel display panels.
RGB light-emitting elements use different active-layer materials to avoid wavelength conversion layers, simplifying display fabrication and lowering cost.
Protective films and supporting glass keep flexible panel edges flat after lift-off, enabling precise seam control in large spliced displays.
A heat radiation member linked through an intermediate-film opening cools display elements and blocks impurity diffusion for stable luminance.
A metal seal ring and inorganic barrier stack in the RDL blocks moisture ingress, protects wiring from corrosion, and enables crack detection.
Moisture-blocking encapsulation around substrate surfaces and side lines helps prevent electrode corrosion and wiring migration in LED displays.
A connected electronic plate updates vehicle information remotely while content moderation keeps displays compliant across jurisdictions.
A temporary-substrate LED interposer combines fabrication and luminous inspection, cutting process complexity and separating defective dies early.
Recirculated light and diffuser micro-optics improve directional micro-LED backlight uniformity while reducing mura, Moiré, and power use.
Adjusts mirror angle with mapped depth data to keep HUD virtual images aligned with the external scene despite user eye-height changes.
Time-division multiplexing lets LED driving chip pins carry both address and display signals, cutting pin count and module cost.
Periodic switch-current sampling and time averaging improve light-load output current sensing while cutting quiescent current and silicon area.
By calculating degradation from each pixel group's light-emitter count, compensation preserves luminance uniformity and reduces after-images.
Sensing pixel transistor characteristics in turn-off regions enables faster hybrid-mode compensation and more consistent OLED luminance.
Electrically isolated LED cell blocks with separate controllers sharpen brightness and beam control while cutting unnecessary power use.
Overlapping alignment electrodes, contactors, and via-linked storage capacitors improve pixel connection reliability while limiting display defects.
Alternating-field driving and wavelength down-conversion enable full-color μLED output without chip-electrode contact, cutting bonding complexity and cost.
A staggered OLED subpixel layout increases FMM tolerance, reduces crosstalk, and maintains even brightness distribution.
Pixel and touch electrodes share one layer to enable self-capacitance in-cell sensing while simplifying OLED display structure and timing.
An auxiliary pattern flattens the stepped low-potential line to prevent second-electrode contact hole defects and reddish display defects.
Backside driver circuits and through-substrate conductive paths let micro-LED pixels pack closer, raising resolution while reducing complexity.
Intersecting gate and drive lines let LCD subpixels and micro LEDs share routing, reducing splice gaps, wiring area, and light loss.
Inductive coupling between pixel and light-emitting circuits removes contact resistance, improving luminance, efficiency, and element life.
Dynamic LDO voltage control senses load current and output voltage to cut power use while keeping electronic operation stable.
Extended low-potential power layers and side lines route ESD to protection circuits, improving tiled display durability while keeping seams less visible.
Overlapping first and second power lines shield the data line and transistor to suppress parasitic capacitance and preserve target luminance.
A light-transmissive BT plate lets single-sided LED chips emit through both sides, simplifying wiring and removing PCB and external IC needs.
Real-time heuristics adapt mobile and cloud app interfaces for vehicle displays, reducing driver distraction without per-app approval.
A connector between pixel nodes enables easier defect detection during display testing, improving manufacturing yield with low power overhead.
Overlapping one panel's pad area above the next panel reduces tiled-display seams while avoiding hole-forming damage to substrate layers.
Multi-layer signal and connection lines with bridge metals free active area for under-display cameras and sensors while preserving transmittance.
Side guide protrusions constrain substrate tilt during conductive paste printing, improving side-line straightness and tiled panel yield.
Shared detection lines between adjacent OLED subpixel rows cut overlap with data lines, lowering parasitic capacitance and short-circuit risk.
Outer and inner discharge lines with a linked discharge circuit divert static charge and plasma overcurrent to prevent deposition defects.
Charge-storing transistor capacitors protect OLED panel crack detect lines from static buildup while preserving crack detection accuracy.
Pixel driving chips use time-division writing to deliver high current density for micro-LED array substrates with better brightness uniformity and lower power.
Dual sensors and PID motor control keep rotational speed and phase aligned with image output for smoother, more stable POV display rendering.
Different heat dissipation structures balance LED group temperatures in a projection light source, helping maintain luminance and extend lifespan.
A larger anode line contact area helps under-display pixels discharge static electricity quickly and avoid electrostatic damage near the camera region.
Metal thin-wire detection electrodes and translucent drive electrodes enable full-screen fingerprint sensing while preserving micro LED image quality.
Counterbalanced resistance in multiple display panel power lines reduces local voltage drop differences and alleviates non-uniform emission.
An extended storage electrode overlaps the data line to cut parasitic capacitance, reduce vertical crosstalk, and improve OLED gray scale control.
An RGB LED matrix with integrated electric components and encapsulation adds sensing, orientation indication, and heat dissipation in compact displays.
A single conductive layer replaces overlapping backlight wiring to avoid shorts and opens while improving luminance uniformity and stability.
Separated cascade input and reset lines in panel gap regions simplify gate drive routing, improving sub-pixel stability and pixel density.
By placing cell test pins in the bonding region under chip on film, this case prevents post-cut exposure, erosion, and short circuits.
Multiple pixel circuits drive one OLED light unit in low-density camera regions to restore brightness uniformity while preserving transmittance.
Feedback signal lines return distal common electrode voltage for compensation, reducing delay, distortion, and image sticking in large narrow-bezel displays.
Independently tested microLED tiles form larger displays without full die redesign, improving yield, cost, and size flexibility.
A thinner low-stiffness bridge center absorbs stretch stress, reducing fracture risk and signal line breakage in display substrates.
A positioning substrate and detachable bonded connectors improve panel alignment, uniform gaps, and Micro-LED display assembly repairability.
Switching transistors let shared test points selectively measure bump compression resistance, freeing pad space for narrower bezels and higher aperture ratio.
Bias signals are generated from gate control signals through integrated logic circuits, removing a separate IC and reducing pixel array cost and complexity.
Conductive polymer and insulating gap-filling layers help vertically align light-emitting elements, improving optical efficiency and easing display fabrication.
Integrated PWM in a shift register adjusts gate and light-emitting pulse widths to improve pixel driving without added control circuitry.
Multiple positive and negative power access paths shorten transmission distance, lower line impedance, and keep large displays uniformly bright.
Precompensation and split transistor timing preserve data-voltage accuracy and constant luminance during high-speed, variable-refresh driving.
Pressure sensing and gradient correction align the pressurization header for more accurate LED attachment with fewer display panel defects.
Stacked conductive layers route signals across non-display openings without short circuits, supporting thinner display bezels.
Voice content is added to the projected non-voice app page, avoiding app switching and encoder resets that cause display delay.
Segmented data line sections cut parasitic capacitance and raise pixel charging speed, helping narrow-bezel LCD panels avoid vertical crosstalk.
Vertically stacked pixel capacitors increase charge margin for high-frequency, high-resolution displays while limiting added process steps.
Position- and interaction-aware console display control enables remote vehicle operation and seamless switching between in-vehicle modes.
Specific slit widths and edge/common electrode exposure balance alignment-layer resistance, reducing FFS afterimage and flicker.
Optical isolation on wafer-mesh cavity walls enables precise converter fill for tightly spaced LED pixels with reduced crosstalk.
A split gate-insulator structure cuts parasitic capacitance and kick-back voltage in OLED compensation transistors for more uniform pixel current.
Blue sub-pixels use larger driving transistor ratios and asymmetric wiring to raise brightness while preserving white balance at high gray scales.
Blind spot and ambient light sensing dim an electro-optic exterior mirror to cut vehicle glare without costly rear-facing cameras.
A data connection line and parasitic capacitance equalize delayed signals across a through portion, enabling independent pixel control.
Integrated feedback wiring monitors and adjusts pixel driving voltage through stable insulating-layer contact to keep brightness uniform.
Light-absorbing supporter surfaces at the fold axis suppress reflection and transmission defects, keeping foldable display brightness uniform.
Dual sub-TFTs and stacked shielding layers improve pixel control while limiting display power use and circuit complexity.
Dynamic voltage control across dual TFT panels boosts luminance and color expression while reducing motion blur in backlit displays.
A through-hole display layout uses data lines in different layers to support under-display cameras while reducing line load and preserving screen area.
Lens arrays and a refractive medium project clear 3D driving information in front of the cluster while reducing dizziness and eye fatigue.
A UV-cured resin layer thicker than the light shielding layer fills the step, improves adhesion, and helps prevent bubbles, peeling, and moisture invasion.
Adjacent LED and touch electrode regions in each sub-pixel improve capacitance sensing while preserving light emission and optional force input.
Temporary RDL and on-chip test routing enable parallel probing of pixel driver donor wafers, cutting test time and screening out bad dies.
Switching among three inductor paths lets a display power supply match current demand, cutting power loss and helping prevent flicker.
A vehicle display mirrors content into selectable side regions so drivers can operate hard-to-reach screen areas without direct touch.
Overlapping lead wiring in different metal layers balances bus line loads around a camera notch to suppress display luminance variation.
Vertical signal routing through interconnect substrates and conductive bonding shrinks inactive display borders without panel bending.
A split control and non-control beam lets the detector isolate light source drift from phase control errors and maintain laser focus.
Vertical stacking of signal and power lines shrinks display peripheral routing while supporting stable gate-start transmission and lower power use.
Integrated sensing in cascaded gamma reference op-amp outputs detects abnormal current early and protects display driving circuits from overcurrent.
Dual scan timing with overlap voltage adjustment reduces color deviation and keeps luminance stable during variable refresh driving.
A demultiplexer and sample-and-hold layout cuts data pad count, widens pad pitch, and prevents IC bonding failures in high-resolution panels.
Simulation-guided black voltage setting tunes panel luminance per display while lowering power use and reducing data voltage swing.
A dummy-region TEG structure enables in-process defect detection in micro LED display panels, improving yield through earlier inspection.
Multi-area electrode contact near the separator and connecting line improves OLED panel connection reliability and helps reduce degradation-driven afterimages.
Area-based pixel compensation cuts per-pixel voltage calculations while preserving brightness uniformity on high-resolution display panels.
A switchable e-paper layer turns black when the rear display is on, hiding woodgrain interference while preserving a premium off-state look.
Coupled and decoupled compensation paths offset oxide TFT threshold drift, stabilizing pixel driving current and display output.
Variable diaphragms adjust projection light flux to keep HUD images clear and comfortable across changing ambient light conditions.
Memristive pixel storage replaces leaking capacitors in active-matrix LED displays, stabilizing analog brightness and reducing refresh needs.
Area control lines and progressive scanning cut transmission load and parasitic effects, enabling high refresh rates on large display substrates.
Regional gate-signal control lets display panel areas run at different frequencies, cutting power use during partial still-image display.
Independent blanking and display control in one shift register cuts OLED gate driver area while supporting higher resolution and narrower bezels.
Independent overlap regions enable targeted laser cutting of shorted display lines, preserving driving circuit operation and improving yield.
Switchable shared output pads let one display data driver handle data and sensing paths, cutting panel-specific driver cost and complexity.
Row-group initialization during blank-period pixel sensing prevents unintended light emission while enabling compensation for pixel electrical variation.
Parallel sub-transistors raise pixel driving current for brighter display panels while preserving turn-on speed and narrow-bezel layout.
Alternating gate driver stages share clock signals and cover multiple pixel rows to cut display panel power use and dead space.
Overlapping gate and source signal periods cuts transmission data per unit time while preserving image quality in non-integer-fold height display.
An overlapping conductive pattern balances parasitic capacitance in a display pixel circuit to limit kickback-driven gate voltage drop and leakage.
A conductive chromic nail layer changes color by heat or current, reducing reapplication while enabling synchronized control and data exchange.
A multi-transistor pixel circuit uses capacitive storage and phased control to improve display quality while keeping power use low and response fast.
Surface protrusions on oxide TFT channel regions scatter light to limit photoelectric threshold shifts and keep display pixels stable.
Overlapping a lower pattern with the driving voltage line forms a capacitor that stabilizes LED anode voltage and improves image quality.
Camera-tracked viewpoint changes and coordinated image control preserve motion parallax while avoiding oblique viewing for stable 3D depth.
A high-frequency polarity alternation period between low and high refresh modes cuts visible flicker while limiting display power use.
Dummy registers and vias in rounded-corner gate-drive regions reduce blank-area etching unevenness and stabilize signal transmission.
Positive substrate bias in metal oxide scan transistors shifts threshold voltage, cutting leakage current and improving switching accuracy.
Bent-wing heat exchangers with embedded heat pipes move display-panel heat outward, improving HMD comfort and thermal protection.
Narrow and wide pixels with separate driving channels switch viewing angles for built-in privacy without removable screen damage.
A transistor stage circuit cuts scan driver power use and mounting area by timing node connections to regulate output voltage.
A reduced-component PWM pixel circuit preserves internal threshold compensation while improving integration and emission control in high-resolution displays.
Changing phase offsets across hologram frames balances driving voltage in spatial light modulators, reducing pixel sticking without harming reconstruction quality.
A dual-density pixel layout accommodates front cameras and sensors while preserving display quality and improving screen-to-panel ratio.
Offset trimming with polarity-switching multiplexers compensates gamma amplifier offset without chopping flicker or auto-zero current overhead.
A locking control circuit lets the storage node bypass the drive path, enabling faster, more stable data writing in display pixels.
A resistor-string ramp generator and delay stages improve micro LED brightness accuracy while preserving fast pixel response.
Symmetric coordinate mapping applies edge-only pixel compensation to correct curved screen color deviation while limiting processing load.
Size-based correction data normalizes optical sensor current in display panels, improving fingerprint and illuminance sensing reliability.
A side-surface connection line overlapping pad grooves preserves electrical continuity by resisting manufacturing stress and line deformation.
A recess pattern between adjacent pixels preserves circuit layout space while overlapping semiconductor layers improve impact resistance.
Pixel mobility and temperature sensing during early power-on frames enables fast abnormality detection and automatic shutdown to reduce short-circuit fire risk.
A mesh of common and driving voltage lines cuts panel voltage drop and crosstalk, improving luminance uniformity and color stability.
Dual antenna signals calculate stylus eraser tilt to define a precise screen erasure area while preserving compatibility across digitizer technologies.
A parallel dual-driver pixel circuit uses current splitting to keep micro LED brightness stable and efficient across low and high display levels.
Integrated sequential drivers store digital data on-chip, easing tiny pixel placement while enabling high-density display assembly.
Intensity gradients inside micro-LED pixel assemblies smooth fine symbols and video edges without raising display resolution or computational load.
Temperature- and gray-scale-based red-pixel compensation removes Mini LED sticking images and reduces color shift from heat.
An asymmetrical pixel structure arranges RGB subpixels to enhance cognitive fill factor in organic light emitting displays.
A display panel driver adjusts luminance gain based on accumulated pixel deterioration to extend component lifetime.
A display panel driving method segments the screen into charging regions with unique digital codes to generate specific gamma voltages.
A differential pre-drive circuit uses swing and offset resistors to shape output signals.
A light transmission quantity adjustment unit dynamically modulates optical properties to manage illumination output.
A display device updates test voltage based on current direction to measure organic electroluminescent element characteristics.
A partial frame buffer RAM derives overdrive voltages from current pixel data, eliminating large look-up tables and reducing silicon area.
Liquid crystal display diodes generate voltage from incoming light to enable image capture, eliminating separate cameras and reducing device complexity.
A display driving method divides gray scale data into two groups to adjust light source intensities for each hue.
A display panel driving method converts default grayscale voltages to target voltages with higher bit depths.
Segmented GOA units deliver matched gate driving signals to ensure uniform threshold voltage compensation across OLED pixel rows.
A display device switches between real-time sensing and temperature-based compensation modes to maintain image quality across varying driving frequencies.
Segmenting object groups via distinct instruction correspondences resolves the contradiction between operational efficiency and selection complexity.
Dynamic threshold comparison prevents unintended backlight shutdowns caused by voltage drops, ensuring stable liquid crystal display operation.
Pull-down transistor reduces clock line heating and extends circuit lifetime.
A charging circuitry uses a switch sub-circuitry to decouple power from the driving sub-circuitry during idle periods.
A bidirectional scanning gate drive circuit enables flexible forward and backward scanning modes in liquid crystal display panels.
Replacing mechanical vibration with an electrically driven liquid crystal layer, this approach eliminates moving parts while reducing wear and noise.
Embedding polarity control information in the image data stream eliminates extra pins and reduces circuit costs while maintaining effective signal inversion.
Adjusting liquid crystal pretilt angles mitigates dark state light leakage at horizontal and vertical viewing angles while maintaining frontal image contrast.
Segmented backlight control increases dark region gradations and peak luminance while managing power consumption constraints.
A leader-follower LED drive system employs a star connection to reduce terminal count, suppressing signal transmission delays that degrade light intensity.