Segmented bearer parts nest to reduce length while maintaining large-screen display area, resolving portability trade-offs.
A thermally conductive heat spreader moves heat from a primary chassis to a secondary chassis in dual-chassis computing devices.
Segmenting displays into transmissive and reflective modes reduces power consumption by activating only the necessary screen for interrupt events.
Angle-based form detection resolves the contradiction between large display area and high device complexity by automatically switching screen configurations.
Segments the on-vehicle display into dedicated areas for mobile terminal applications, resolving complexity in simultaneous multi-app visibility.
Segmenting the display into flexible modules resolves the contradiction between large screen usability and small size portability.
A wireless sink device filters touch movement inputs through a user input back channel to prevent undesired operations during screen magnification.
Dynamic audio processing adapts to device form factor changes by selecting components based on graphical user interface location.
Source device transmits application data and display information to a sink device for intelligent rendering on larger screens.
A setting system synchronizes configuration data between a mobile terminal and a connected display device to enable direct user adjustments.
Processor compares actual shell angle against target values to trigger reminding devices, preventing misuse while conserving battery power.
Segmenting the screen into regions reduces bandwidth consumption while maintaining real-time desktop sharing on mobile terminals.
A heat diffusion member integrates into a foldable device hinge housing to manage thermal loads within the flexible display assembly.
Dynamic screen configuration negotiation adapts content presentation to diverse multi-display setups, resolving inefficiencies in heterogeneous device sharing.
Dynamic screen activation resolves the contradiction between device complexity and information visibility by activating only needed displays.
Hinge torque opposes input stress on touch panels, preventing unexpected closure and maintaining stable opened state.
A wireless communication method segments channel access into dedicated intervals to maintain stable data links between paired devices.
A driver integrated circuit routes selective color signals to a monochrome sub-panel, ensuring compatible signal distribution across different pixel densities.
Sliding screens cover exposed hinge modules and eliminate separation gaps to create a seamless continuous display.
A thin nickel titanium hinge enables tight folding without compromising the hermetic seal required for small form factor devices.
A mobile terminal controller rotates display content based on acceleration sensor data to maintain uniform viewing direction.
A mobile terminal controller displays event-specific application icon groups on the display module for immediate user selection.
A hinge-connected dual display mobile terminal uses a switching icon on the second screen to select and switch operation targets between displays.
A portable electric device uses a biaxial hinge to pivot a sub-body, resolving physical strain from limited operation modes.
A pivot and slide hinge mechanism positions foldable displays close together, eliminating the spacing that disrupts single-image perception.
Time-division multiplexing on a shared signal line reduces hinge size and printed wiring board area while maintaining display control reliability.
A mobile device control section adjusts display brightness based on detected user inclination to conserve energy.
An offset swivel axis in a portable device enables two closed states, allowing display access while keys remain protected.
Segmenting the device into separate units resolves the contradiction between compact portability and sufficient display area for information visibility.
A multi-fold mobile device adjusts its graphical user interface based on physical panel configuration changes.
Virtual display objects manage external connections without hardware coupling, resolving dynamic display management limitations.
A nested hinge structure minimizes gaps between displays in the unfolded state while preventing protrusion when folded.
An adjustable screw connection in a biaxial hinge corrects positional misalignment between device bodies, reducing manufacturing costs.
Extending the frame in depth houses wiring inside a chamber, preventing wide splicing seams from shielding components.
A multi-processor mobile device uses a segmented operating system to run mobile and desktop modules on separate processors.
A unified desktop interface integrates handheld and PC functionalities across multiple display areas.
A rotation connection component uses a sliding clamp to link two bases, concealing the shaft to resolve portability and aesthetic trade-offs.
Side-by-side display units resolve visibility and information loss trade-offs by showing an enlargement frame alongside magnified content.
An active mobile device cover integrates a display and touch screen to provide visual alerts and user input capabilities.
Merging a manipulation unit into the hinge cover maximizes display area by eliminating separate button space requirements.
A foldable electronic device detects a flip gesture to switch content presentation between primary and secondary screens.
A touch panel interface moves applications to enable object transfer between simultaneously displayed apps.
A mobile terminal controller moves display objects from a front main region to a lateral auxiliary region.
Parallel link members rotate to roll a flexible display, reducing external force and internal complexity.
Magnetic attraction positions the keyboard on the second display panel, resolving portability and input convenience trade-offs.
Foldable and slidable portions in a mobile device expose multiple screens, resolving the trade-off between multitasking capability and compact storage volume.
A control unit manages multiple touch displays using simultaneous multi-point gestures to enable intuitive screen switching.
Segmenting the display system into independent units resolves the trade-off between expanded screen area and device complexity.
Segmenting the display into independent screens resolves visual clutter and input conflicts on compact handheld devices.
Sensor fusion simulates a virtual sensor to measure the included angle between dual screens, resolving Hall device inaccuracy and motion interference.