Ordered antenna coordinate reporting lets a radio unit handle irregular arrays while cutting power waste, storage load, and activation latency.
Beam steering parameters let a repeater adapt to obstructed links, improving signal quality, coverage, and network reach.
Preloaded register banks let phased array channels switch beam patterns nearly simultaneously while also controlling per-channel power use.
Reversing LEO transmit and receive spectrum avoids GEO co-channel interference while enabling overhead links with narrow beams and nulls.
A passive 3D-printed metasurface re-steers millimeter-wave beams into blind spots and indoor areas to expand base station coverage.
Beamforming phase shifts are moved to lower frequency, simplifying phased array I/Q LO generation while preserving accurate 90° separation.
Different transmit and receive subarray counts are handled by aligning OAM weights and modes, simplifying decoding and improving link reliability.
A portable battery-powered BDA with indoor, outdoor, and interface-box antennas restores reliable radio coverage in building dead zones during emergencies.
Pre-calibrated phase control uses temperature, position, and satellite data to keep phased array antennas stable in cold and vibration.
Vertical upper and lower antenna arrays spread mmWave service across a building face while improving coverage uniformity and resource allocation.
A switching network lets fewer RFICs drive multiple feed antennas, cutting array cost and complexity while preserving beam reconfiguration.
A repeater and intelligent reflective surface route mmWave signals around obstructions to improve NLOS coverage and reduce path loss.
Ray-traced passive metasurfaces redirect mmWave signals around blockage to extend coverage and raise throughput with low-cost deployment.
Beam-to-null power differencing detects real jammers with a single sensor while reducing false alarms and coordination burden.
Dynamic-state-guided conical scanning adjusts beam radius to keep moving mobile apparatuses aligned and preserve bandwidth continuity.
Integrated vector generators replace lossy RF phase shifters and hybrids to enable dual-beam polarization control across multiple bands.
Linear main-reflector motion plus IPA beam steering lets a confocal antenna adjust coverage and gain on orbit while maintaining beam integrity.
Customized amplitude and phase weighting cuts near-field coupling to rooftop PIM sources while preserving base station capacity and spectral efficiency.
Digital backends apply time-delay beamforming across metasurface tiles to create simultaneous wideband beams with less RF hardware.
Hybrid digital-analog beamforming lets adjacent sub-arrays switch among 1×4T4R, 2×4T4R, and 4×4T4R modes without hardware changes.
Periodic slots create separate feeder and leaky channels in one cable, enabling indoor MIMO coverage with lower construction complexity.
Directional performance maps guide phased array antenna placement and reorientation to avoid obstructions, improve signal quality, and reduce dropouts.
Dynamically switched antenna elements improve V/W-band satellite reception and beam tracking without bulky phased arrays or mechanical steering.
A compact precoding matrix indication scheme matches uplink MIMO codebook subsets to UE coherence capability, reducing signaling overhead.
Non-linear node spacing cuts phased array node count while preserving beam width and interference rejection across a wide frequency range.
Decomposing phased-array AWV tables into elevation- and azimuth-based parts cuts IC storage while preserving precise beamforming and switching.
A three-mode pointing approach uses almanac data, power-maximizing scans, and triangulation to improve antenna accuracy without extra RF sources.
Received signals from multiple satellites let a steerable antenna resolve its physical orientation and reduce avoidance-angle interference.
Dynamic antenna tilt extends inclined-orbit satellite coverage toward polar regions while limiting scan loss and avoiding extra satellites.
Bandwidth-centered IRS phase settings reduce beam squint, energy loss, and frequency distortion in reflected wireless signals.
Multiple antenna arrays share a lens array to keep concurrent beams separated, expanding coverage and throughput without more elements.
Frequency-selective beam splitting lets a smart repeater redirect subcarrier-based beams to multiple UEs, improving 5G NLoS coverage.
Shared or co-located short pins let same-frequency PIFA/IFA antennas sit closer together while reducing coupling and preserving MIMO isolation.
Multiple feed sources and two curved reflectors keep plane-wave amplitude distribution stable over a wide angular sector while reducing antenna cost.
Preloaded register sets let phased array channels switch beam patterns together, while power control reduces DC consumption.
A moving line of drones relays line-of-sight signals over long distances, overcoming curvature limits while maintaining high-speed, reliable links.
Circular polarization lets repeaters avoid antenna orthogonality, improving signal reception and coverage in blocked or fading areas.
Multi-feed parabolic antennas and onboard routing let random-orbit satellites maintain reliable radio links without attitude control.
Selective switching between RF lens beam states cuts beam overlap interference and sustains high SINR across wide mobile coverage.
A rotationally symmetric electrode layout with liquid crystal tuning aligns reflected phases for horizontal and vertical waves.
Dynamic switching between omni and vertical array antennas focuses Wi-Fi energy toward clients to cut interference and power waste.
A stacked waveguide network integrates transmit, receive, and thermal modules to cut antenna part count, assembly complexity, and size.
Adjacent satellite spots expand to replace a failed beam area, preserving coverage and spectral reuse without redundant RF chains.
Multiple beam weight sets separate relay communication and radar imaging, improving image formation in overlapping spot beam coverage.
A Butler matrix beam forming network creates simultaneous 360° antenna coverage without scanning, improving detection reliability and reducing sidelobes.
Selective sub-array coupling in lens antenna MIMO cuts RF chain cost and power while preserving high data rates over mmWave channels.
A few active LIS sensors use compressive sensing and deep learning to cut channel-training overhead without full baseband hardware.
A Kalman filter and local beam search keep a phased array antenna aligned with moving satellites without bulky mechanical steering.
Dynamic beamforming and feedback help smart repeaters raise signal strength while limiting interference to neighboring cells.
Preconfigured beam-direction and time-domain mapping lets terminals place pilot signals directly, avoiding sweeping and reducing delay and power consumption.
UE compares detected and predicted beams, reports invalid TCI configurations to the base station, and supports beam failure recovery.
QoS-specific machine learning models select beam prediction procedures for each service type, reducing signaling overhead and UE power use.
Fixed frequency plans limit satellite flexibility; dynamic spectrum reconfiguration reallocates capacity as demand and coverage needs change.
This case balances uplink signaling overhead and reliability with SFBC open-loop precoding plus SRS and differential TPMI feedback.
Location-based timing helps moving-cell networks prepare handovers and reduce connection loss.
Physical measurements verify satellites before communication, resisting counterfeit objects.
This case uses per-panel uplink grants in one DCI to coordinate simultaneous PUSCHs while reducing signaling overhead and processing time.
A gNB adjusts SSB phase and amplitude using UE location and signal reports to improve coverage without adding cell towers.
An LwM2M server uses UE location and satellite policies to govern resource access across regulatory boundaries.
This case combines SSB-based early CQI, UE retransmission preferences, and multi-layer MIMO for responsive NR multicast links.
MAC CE and DCI signaling separates directional beam states, reducing update ambiguity for DL and UL transmissions.
Specialized satellites reduce onboard complexity while gateway relays connect different protocols for broader user access.
Beamforming-aware point selection streamlines interference calculation for spectrum sharing.
A single unified beamforming matrix consolidates multi-link sounding and feedback, reducing airtime use and temporal decay.
A two-level reconstruction architecture cancels full-duplex self-interference while reducing RF tap count, hardware complexity, and cost.
A shared input branch and integrated RF receive circuits enable simultaneous satellite and wireless communication without interference.