Abstract:
A component for a vehicle interior is disclosed; a method for producing the component is also disclosed. The component comprises a base and a cover comprising an exterior surface providing the visible surface and an interior surface; the visible surface at the cover may comprise a display operated by light source/panel configured to present an image at an image presentation area. The image presentation area may comprise a formed image presentation area; the formed image presentation area may comprise at least one formed hole formation segment comprising at least one formed hole formation based on a hole pattern segment for a pattern image area. The image presentation area of the cover may comprise each formed hole formation comprising formed hole formation segments; each formed hole formation may comprise an opening through the cover generally corresponding to a hole of the hole pattern segment. A composite visual effect may be presented at the cover of the component; the external surface of the cover may comprise a surface effect such as by a veneer configured to provide a visual effect; the formed image presentation area is configured to provide a visual effect such as by the image illuminated at the display from the light source/panel. The formed hole formations for the image presentation area of the cover may comprise laser-formed openings formed through the internal surface and external surface of the cover.
Abstract:
A method of producing a component for a vehicle interior is disclosed. The method may comprise placing a liner in a forming tool, placing a heater element on the liner, applying a foam material, and forming the heater element on a substrate. Adhesive may be applied to the heater element and liner. The liner may comprise a tool liner configured to facilitate removal of the component from the forming tool. The tool liner may remain in the forming tool when the component is removed from the forming tool. The tool liner may be re-usable. The adhesive/tape may comprise a pressure-sensitive adhesive with suitable adhesion for the heater element/mat without requiring activation; the adhesive/tape may comprise a side with lower adhesion to the mold liner (temporary adhesion) and with higher adhesion to the body of the heater element/mat (permanent adhesion). A pre-fix tool may be used.
Abstract:
A vehicle interior component is disclosed. The component may comprise a base and a core comprising a core structure. The core may provide functional features such as resilience, passage of illumination and/or passage of air flow. The core structure may comprise a framework of resilient elements, a matrix of projections or spring members/elements, a lattice, a set of sheets, curved sheets, a set of layers, a multi-layer framework, etc.; the core structure may comprise any of a variety of forms (including composite forms) configured to provide intended overall and/or localized variation in physical properties for the component (e.g. comfort/feel, resilience/compressibility, rigidity/stiffness, strength, mass/weight, shape/form, fit, manufacturability/assembly, material properties/selection, light-transmissibility/translucence, air/scent flow, ornamental effect/appearance, etc.). The core may be configured for efficient production by additive manufacturing processes and/or thermoforming, molding, etc. The component may comprise a console, panel, occupant support, etc.
Abstract:
A component for a vehicle interior is disclosed. The component may be illuminated and may comprise a cover formed on a substrate. The substrate and/or cover may be at least partially light-transmissive. The cover may present a visual and/or surface effect on its exterior surface. The visual effect may comprise an illumination effect when illuminated. The cover may comprise a base layer formed on a cover layer. The cover may comprise a coating formed on the cover layer. The cover may present a texture visible through the coating. The cover may comprise a set of light-transmissive sections to provide illumination. The light-transmissive sections may comprise voids, holes or openings in the cover. The cover may comprise a deposited material formed on the substrate. The deposited material may comprise resin. The deposited material may comprise a form on the substrate. A method of forming the component is also disclosed.
Abstract:
Various embodiments disclosed herein provide for facilitating demodulation reference signal configuration and adaptation. According an embodiment, a system can comprise generating a demodulation reference signal configuration that defines location of a demodulation reference signal in frequency domain and time domain, selecting a time domain pattern and a frequency domain pattern based on the demodulation reference signal configuration and allocating resources for the demodulation reference signal on at least one physical shared channel based on the time domain pattern and frequency domain pattern.
Abstract:
This application generally relates to capturing and aligning panoramic image and depth data. In one embodiment, a device is provided that comprises a housing and a plurality of cameras configured to capture two-dimensional images, wherein the cameras are arranged at different positions on the housing and have different azimuth orientations relative to a center point such that the cameras have a collective field-of-view spanning up to 360° horizontally. The device further comprises a plurality of depth detection components configured to capture depth data, wherein the depth detection components are arranged at different positions on the housing and have different azimuth orientations relative to the center point such that the depth detection components have the collective field-of-view spanning up to 360° horizontally.
Abstract:
Systems and techniques for processing and/or transmitting three-dimensional (3D) data are presented. A partitioning component receives captured 3D data associated with a 3D model of an interior environment and partitions the captured 3D data into at least one data chunk associated with at least a first level of detail and a second level of detail. A data component stores 3D data including at least the first level of detail and the second level of detail for the at least one data chunk. An output component transmits a portion of data from the at least one data chunk that is associated with the first level of detail or the second level of detail to a remote client device based on information associated with the first level of detail and the second level of detail.
Abstract:
Systems and methods promoting an authoritative version (AVR) of copyrighted media content over one or more non-authoritative versions of the copyrighted media content relative to relevancy of the copyrighted media content to a search query are presented. An example system includes a matching component configured to identify copyrighted media content included in a video and a promoting component configured to promote in connection with a search query an authoritative version of the copyrighted media content over one or more non-authoritative versions of the copyrighted media content relative to relevancy of the copyrighted media content to the search query
Abstract:
A system and method for a live streaming platform that can redundantly process input streams in parallel ingestion pipelines is disclosed herein. Ingested input streams in the parallel pipelines can be segmented using a segmentation function that creates identical segments in each of the streams in the pipelines. If errors occur, or there are disruptions in one or more of the input streams or pipelines, the live streaming platform can ensure that segments are identifiable and different parts of the pipelines can join a main stream at different points in time without disruption.
Abstract:
System(s) and method(s) for magnetic resonance imaging and spectroscopy, and magnetic resonance spectroscopic imaging (MRSI) are provided. A unified heteronuclear coil system includes a volume coil tuned to detect a first nuclei and a butterfly coil tuned to detect a second nuclei for simultaneous detection of both the first nuclei and the second nuclei signals from human breast tissue and perform MRIS. First nuclei and second nuclei each include 1H, 13C, 31P, 23Na, and 19F. The heteronuclear coil system affords detection of NMR-detectable chemicals specific to cancerous breast tissue to improve breast cancer diagnostic specificity. Adjustment of the heteronuclear coil system to detect various nuclei, combined with a specific pulse excitation sequence, facilitates chemical analysis that provides for chemical discrimination and characterization of compounds present in cancerous and other breast tissue as well as healthy breast physiology.