Critical settings are extracted and shown in a prominent screen region so users can verify changing processing information without clutter.
A ferrite-core multilayer coil and tuned resonance circuit boost stylus signal coupling, enabling precise touch recognition with less panel complexity.
Coil-shaped electrode lines cut coupling noise while enabling capacitive finger sensing and inductive pen sensing in touch displays.
A press-and-hold touch with in-area release and gauge feedback filters accidental screen input and improves command reliability.
Awarded RFP data from comparable venues is analyzed to reveal competitor wins, missed event opportunities, and stronger targeting decisions.
A detachable mouse and laser pointer module cuts extra hardware, weight, and manufacturing cost while preserving flexible use across devices.
Selective trace-line activation across sensing phases reduces display-layer noise and improves touch accuracy and sensing reliability.
Monolithic touch-driver circuits on the pixel substrate cut external IC count, lower cost, and free bezel space in high-resolution displays.
Overlaid capacitive and pressure sensors let an electronic pen side switch handle multiple input states accurately without hurting grip or causing errors.
Pen-pressure-based mode switching lets a sensor controller keep active pen accuracy while preserving touch input near the panel surface.
An optical sensor, pressure sensing, and nested internal layout turn a pen stylus into a mouse without separate buttons or devices.
A multi-electrode sensor layer and lower conductive layer detect touch and pen input without a separate digitizer, avoiding added thickness and weight.
Timed visual indicators confirm touch selection, drag, and resize actions, reducing repeat attempts and unnecessary processor use.
A spaced battery-to-PCB layout with soldered electrode tips absorbs impact forces and reduces conductor stress in slim electronic pens.
Non-linear and switch circuitry let a stylus modulate detectable signals and force input while avoiding power-hungry active electronics.
Phase-inverted signals across touch sensor sub-areas create destructive interference that reduces EMI and improves input sensing accuracy.
Changing touch scan direction by key hot zone location shortens sampling time and improves response speed without higher hardware cost.
Weak capacitive edge signals are restored before peak and threshold evaluation, improving valid touch area detection accuracy.
A nonlinear range selector lets users browse and configure visible plot panes precisely across hundreds or thousands of plots.
By extracting preset-frequency touch components instead of full scan data, this circuit cuts bus bandwidth and processor power while preserving touch accuracy.
Position codes embedded in light-blocking touch areas enable precise coordinate detection with less calculation, power use, and drive complexity.
A unified input engine shares user entries across physical and virtual keyboards while loading only current-type data to cut memory use and switching time.
Independent sensing coil layers span the fold area to keep pen position detection accurate while simplifying connector routing and improving folding durability.
Eye and hand tracking streamline AR media capture, cutting complex inputs, cognitive load, and battery drain during preview and recording.
A touch insulating layer covers the encapsulation top and side faces to prevent patterning damage and preserve OLED panel sealing.
Simultaneous boundary transmit signals improve touch sensitivity and accuracy in divided sensing areas while managing sensor layout complexity.
Varying connector thickness across touch electrode directions reduces resistance imbalance and improves touch sensitivity uniformity in displays.
Button-state combinations let a mouse trigger copy, cut, and paste directly, reducing multi-step clicks and keyboard coordination.
An elastic biasing key mechanism and angled trigger switch cut click force, speed response, and suppress wobble for durable mouse input.
Conductive barrier ribs and sensor layers within OLED encapsulation cut RC delay while simplifying mask-free touch integration.
Speed-based touch prediction shows subsequent strokes only when useful, reducing display latency without degrading trajectory accuracy.
Finger touch movement on a 3D operation part is used to detect tilt through capacitive sensing, avoiding added pressure sensors and cost.
Temporarily expanding target split screens to full screen captures richer app interfaces and improves screenshot quality in multi-app display mode.
By integrating RF pen reception into the infrared touch frame, this case removes external receivers, saves space, and improves signal transmission.
An isolation structure separates first and touch electrodes, integrating touch into the OLED panel while reducing thickness and short-circuit risk.
Automatic styling of small image elements generates matched backgrounds faster, improving image quality in cluttered or plain scenes.
Predefined trigger conditions and modification programs let AR objects change appearance at a geolocation, increasing interactivity without static limits.
Strategic discontinuities in curved-display sensor mesh cells balance light obscuration to improve color and brightness uniformity.
Capacitance sensing tracks conductive parts inside a knob to auto-determine installation position and avoid manual coordinate updates.
Ratio-indicating icons let users resize split-screen windows within one application, replacing fixed layouts with flexible display control.
Dragging a dock affordance into the display opens split-view multitasking with visual feedback, reducing complex touch sequences on handheld screens.
Dual-touch hold selects a screen region so a mobile terminal can capture or record only that area without full-screen editing.
Multilayer sensor wiring and a surrounding light blocking member cut reflected light from inactive-area traces to reduce display pattern see-through.
Multiple test sections are imaged and compared with a master sample to set print colors before production, cutting downtime and proof waste.
Laser feedback interferometry detects eye velocity and optical path changes from one sample, enabling low-power, high-speed gesture recognition.
Stacked conductive layers and through-connections route touch wiring in one direction, shrinking bezel area while maintaining sensitivity.
Multiple signal observation windows separate same-name signals by source, reducing wrong selections and speeding multi-channel tracking.
Ray casting on a prebuilt 3D map lets users select real locations or objects as waypoints, enabling virtual content to move and interact more naturally.
Alternating double-layer touch lines in display corner regions shrink peripheral width and pitch while reducing shorts and etching defects.
A projection-and-stopper structure limits pen body travel during knock operation to prevent coil contact and keep magnetic flux stable.