An intermediary coupling electrode layer compensates for track-to-electrode misalignment to deliver uniform capacitive position detection.
An integrated keyboard layout places shortcut modules above alphabet keys so users can reach them from palm supports without wrist lifting or lateral movement.
Optical pressure sensing turns binary button input into analog signals, enabling finer control and clearer user intent in computing systems.
Opening structures in a single-sheet keyboard light guide plate block light mixing between adjacent color regions without complex assembly.
Sensors and passenger profiles interpret in-cabin gestures, verify action safety, and switch to safer vehicle responses when needed.
Sensors detect oncoming headlights and project counter-phase light into the windshield to cut glare without obscuring emergency lights.
Interior cameras detect head and torso gestures to trigger the needed vehicle vision support view while avoiding false activations.
Sensors track passenger proximity and hand trajectory to cut in-cabin display power use while reducing input errors and driver distraction.
Applied steering wheel vibration and torque variation analysis reveal declining driver physical function before loss of vehicle control.
A planar electrode array tracks key press, release, and gesture inputs through capacitive coupling changes, expanding keyboard input without separate sensors.
Voice, touch, and context analysis help tailor vehicle responses to driver mood, reducing distraction and improving timely in-car information.
A gesture camera lets a vehicle reading light follow a pointing or gripping hand, making light spot positioning more intuitive and precise.
Body contact between separated conductive parts forms a galvanic cell, boosting power for wearable sensing without frequent charging.
A magnetically fixed rotary actuator shifts between screen positions to control different parameters with one knob, reducing control hardware.
An external VR headset accessory adds power, wireless linking, and shared control so mobile users can keep immersion while others monitor content.
Eye and head tracking combine with multi-camera AR glasses to reveal obstructed vehicle views in real time during parking and maneuvering.
ML-driven pre-call analysis surfaces relevant cached context before answer, reducing in-call lookup, call duration, and bandwidth use.
Orientation sensing lets a wireless load control unit adapt touch inputs after flexible mounting, avoiding rewiring and electrician installation.
Passive notch filters let segmented HMD chassis antennas share a common ground plane, avoiding active RF switches, shields, and added weight.
When fog, rain, or snow obscures road objects, a transformed reference image is overlaid on the windshield to restore driver visibility.
Frequency-orthogonal wrist antennas detect skin deformation to capture precise hand gestures with low latency for immersive VR and AR interaction.
Adjustable display height and transparency improve bright-light visibility, while selective side mirror control cuts vehicle power use.
A laterally driven support structure uses elastic members and a connecting shaft to deliver stronger tactile feedback with less vibration loss and noise.
An elastic support portion limits extra operation unit movement in multiple directions without a separate stopper, reducing parts and assembly steps.
Multiple cabin display faces and posture detection keep vehicle information visible as occupants change orientation during autonomous driving.
Physiological and vehicle motion data are fused to detect motion sickness early, enabling autonomous responses that reduce symptom escalation.
A single mini-LED under each key uses a light guide, reflector, and mask to cut hot spots and power draw while keeping keyboard lighting uniform.
Context-aware gesture interpretation lets the same in-vehicle gesture trigger different functions based on vehicle state, reducing gesture learning burden.
A vehicle touch surface combines gesture input and electrostatic or ultrasonic haptics to replace mechanical buttons and support flexible controls.
Displays steering wheel switch regions and live function status ahead of the driver, reducing gaze shifts while clarifying active controls.
Sequential touches on line-arranged vehicle inputs improve gesture recognition accuracy while avoiding costly dedicated sensors.
A layered seal around the piezoelectric haptic element blocks contamination while preserving haptic strength and touch sensitivity.
A split vehicle computing architecture combines common image processing with model-specific applications to cut cost and simplify upgrades.
A solenoid-driven movable core deforms a vibration member and uses elastic return to deliver tactile feedback while preventing loud impact sound.
A temperature sensor and control circuit limit tactile actuator drive as heat rises, preventing low temperature burns during prolonged use.
Peripheral capacitance sensing validates touch size on closely spaced buttons, preventing false inputs from large objects or children's hands.
Eye tracking and scene sensing adjust AR object opacity, contrast, and position to reduce distraction and improve situational awareness.
Wireless biometric feedback lets an external controller power an implant and adjust stimulus timing, intensity, and electrodes in real time.
Adaptive conversation alerts use biosensor and preference data to keep drivers engaged when static warnings lose effect through habituation.
A variable gesture area follows the user's touch position, enabling accurate remote vehicle commands without precise panel input.
Observer position detection lets a vehicle light module orient projected images for clear viewing from different inside or outside positions.
A support member isolates panel noise while preserving touch vibration and pressure sensing for more accurate vehicle display input.
Rear-side images switch automatically from gaze direction while noise-filtered eye tracking improves hands-free viewing convenience.
Capacitive touch gestures and illuminated feedback let one wall control dimming, color, presets, and scenes across electrical loads.
A rotating main rod and sliding side rods stiffen clickpad corners so tactile switches still trigger under end or corner presses.
A retinal scanner tracks driver eye movement to auto-adjust vehicle mirrors, reducing blind spots, distraction, and setup time.
When gaze data is unavailable, this vehicle display control case switches to a likely-viewed screen to keep hazard information visible.
A head-tracked grid highlight shows the viewed boundary on screen, helping users align cursor movement with faster, more precise input.
Eye-tracking glint reflections detect prescription lens inserts in VR headsets, enabling rendering correction for distortion and FOV mismatch.
Event-driven keyframe transmission cuts virtual meeting energy use while preserving video quality during speech and gesture activity.
Gaze location and object depth define a focused search area, cutting image-processing cost and time while preserving relevant extraction.
Attachable keys with aligned mounting and electrical contacts make keyboard layouts easy to assemble, reconfigure, and customize.
Color-resolved image sizing aligns different wavelengths in a virtual image display to suppress lens-induced chromatic aberration.
A head-mounted eye tracker cuts camera power by reading images only within camera-trackable eye ranges and lowering bitrate outside them.
Audio and optic sensor fusion in a wristband recognizes fine finger gestures for comfortable XR control with lower computational load.
Finger proximity and gesture sensing let users trigger touch, click, scale, and swipe actions on virtual 3D objects more intuitively.
Gaze direction and user position are recorded to pause stereoscopic AR playback when users move away and resume it with aligned viewing.
Predicted gesture labels and virtual touch regions let digital humans map user gestures to selections, trigger actions, and add haptic feedback.
By recognizing clocks in the surroundings, the display aligns schedule information with real-world position and time for easier use.
Voice input and focus events narrow portrait targets on large smart-fridge screens, cutting duplicate processing and recognition time.
Gyroscope and accelerometer sensing lets a portable controller detect user posture and position, enabling context-aware information output.
Software-based server editing combines buffered multi-stream video into live content, avoiding bulky switchers and location constraints.
Multiple MR devices share real-space recognition and linked virtual objects so users can place, replace, and edit the same scene collaboratively.
Projected light patterns on vehicle interiors give HMDs stable visual features for accurate pose tracking in low light and featureless motion.
When user pose and scene content barely change, prior-frame transformation skips full XR rendering to lower power use and extend endurance.
Selective, audio-synced tactile pulses improve media feedback and alert recognition while reducing haptic energy use and input burden.
Controller state alerts shift between LED and HMD display notifications, dimming the controller display to cut wasted power.
A transparent waveguide collects and directs glint-tracking light in AR headsets, reducing bulky beam-splitter optics and view obstruction.
Dynamic break volumes and movement segment checks improve XR drag and scroll accuracy by avoiding false contact and motion loss.
Real-time gaze, voice, and hand detection makes XR virtual assistants more natural while limiting shared user activity data to protect privacy.
A mounted dual-part controller switches between wired and wireless host links while delivering physical input and feedback for handheld gaming.
Integrated optics, display, sensors, and biometric input create immersive AR headwear while limiting complexity through shared optical elements.
Gaze and behavior analysis trigger real-time recommendation switching, improving in-store engagement without requiring user actions.
Configuration states are shown inside the interaction image, letting players switch teams or equipment without breaking immersion.
Infrared reflector optics in the frame support enable precise AR gaze tracking without enlarging the rim or reducing user comfort.
Real-time SSVEP feedback changes visual cues based on EEG gaze classification to improve concentration and detection performance.
Micro-movement sensing and vibrotactile feedback simulate virtual object weight while keeping the contact element stationary for safer immersion.
Multiple targeting criteria and adaptive selection regions cut false eye-gaze selections and improve UI selection stability.
By placing eye-tracking sensors in the display optical path, this case reduces HMD occlusion and enables more accurate gaze tracking.
Redirecting eye light at a light-guide substrate enables accurate gaze tracking without blocking the viewer's natural field of view.
Generative audio on an earbud DSP replaces full track playback during sleep to mask ambient sound, cut power use, and reduce distracting transitions.
Head-position detection switches speaker inputs and adjusts channel levels to keep stereo balance, avoid distortion, and limit sound leakage.
Pattern recognition in media content links virtual data to real-time images, enabling 3D AR playback with richer user interaction.
Large AR objects shift from terminal-fixed to world coordinates so they stay visible without blocking the real-world view.
Driver gaze defines regions of interest so vehicle sensors prioritize outside objects, improving detection precision and reducing false detections.
AR tasks combine mobile-device path tracking with facial or audio features to support more objective cognitive-state detection.
Adjustable straps and sliding temple housings redistribute weight and facial pressure, reducing fatigue during prolonged medical interventions.
Imaging and location tracking let a wearable identify items and deliver context-specific information by display, projection, or audio.
Dynamic thresholds let the RAN tune encoded voice, video, and gesture data for reliable, low-latency control of XR and IoT devices.
Low-resolution camera views can weaken distant-object detection; gaze prediction and saliency maps update voxel occupancy probabilities for clearer vehicle perception.
Usage data triggers relevant app actions on the lock or home screen, reducing navigation inputs, access time, and battery use.
Bending sensors trigger context-aware pre-rendering of the next application screen before a fold threshold, reducing transition delays.
A modal authorization window captures user input in immersive mixed reality, sends it to the web service, and returns an access token.
Relative M-bit values reduce pen-to-sensor traffic while the sensor restores precise writing-pressure data for multi-pen operation.
Eye tracking identifies the attendee a speaker is looking at, then displays prompts to clarify intent in group calls.
Segmented eyepiece regions with different optical powers let one light-guiding layer present virtual images at two focal distances.
Remote operators receive network alerts, join shared AR/VR rooms, and use gesture or voice commands to resolve 5G issues faster.
A display circuit provides an omnidirectional image larger than the screen and adjusts the visible area based on sensor-detected device orientation.
A mobile augmented reality system calculates view shift locations using sensor data to retrieve pre-captured images from a central database.
A computing device interface opens menu structures by touching the screen and releasing a finger over a movable selection area.
Bone conduction vibration detection through inertial measurement units enables discreet voice command input without airborne audio leakage.
Transaction account data drives personalized promotion delivery without additional user registration.
Segmented handheld keyboard panels adjust to hand contours, reducing pronation strain during data input.
A contactless thermal stimulus device delivers cold sensation through infrared radiation without physical skin contact.
Lateral vibration generator offset from manipulation part center reduces device thickness while maintaining in-plane vibration evenness.
SLM arrays replace bulky optical elements by synthesizing light fields that simulate in-focus objects, reducing device complexity.
A portable device extracts keywords from electronic book text to map and apply personalized visual, audible, or tactile attributes to content objects.
A display device detects connected source devices and generates presentation data to map interfaces to media streams.
A mirror display device superimposes virtual product models onto a user's reflection using an OLED layer.
A game controller maps acceleration data to swing strength using a defined conversion range around a reference point.
Sensor modules detect proximity and gestures to initiate touchless operations, eliminating disruptive voice or touch inputs.
A touchscreen interface dynamically reveals specific key sets within window portions to optimize display space usage.
A multifactor authentication system combines real-world and virtual environment gestures to generate secure tokens.
Dual touch interfaces generate a three-dimensional segment from spatial input locations, enabling intuitive 3D manipulation of virtual objects.
A flexible array substrate design abuts circuit bonding to one edge, enabling frameless display panels.
A hybrid touchless control mechanism uses camera-based hand tracking to enable gesture-driven interface navigation without physical contact.
Electronic device detects wireless audio mode to automatically adjust noise cancelling function status.
Two-phase gesture selection overcomes physical boundary constraints to enable precise 3D volume interaction in augmented reality environments.
A head-mounted display control unit lowers clarity in captured image data to conceal sensitive content within non-display regions.
Synchronized graphical user interfaces render media streams with text to enable direct selection, resolving complex metadata tagging workflows.
Multi-touch gestures determine neutral vowels centered around consonant keys, reducing keystrokes and error rates on compact screens.
A phase computing device determines space coordinates and calculates initial phases for ultrasonic vibrators to maximize energy densities at specific points.
Radar, depth, and optical sensors enable gesture recognition to reduce driver distraction while maintaining low power consumption.
A keyboard with pivotable keying modules allows users to adjust splay angles and tenting for ergonomic positioning.
Stacked user interface representations enable smooth transitions via intensity-based edge gestures, reducing input requirements and conserving power.
A media guidance application adjusts sensory stimulation intensity based on user biometric data to match intended emotional states.