User equipment reconfigures antennas to support concurrent radio access technologies, reducing interference and improving resource utilization efficiency.
A communication apparatus transmits constant amplitude signals from multiple antennas while dynamically controlling their phase based on channel information.
A user equipment method stores antenna configurations to maintain transmission and reception beam correspondence.
Segmenting synchronization signal blocks into satellite and beam identifiers reduces resource allocation complexity while maintaining multi-satellite coverage.
A decoding circuit sorts candidate symbols in a search tree to accelerate MIMO signal detection.
User equipment transmits beamforming capability information including switching gaps to the base station.
Terminal device sends a MAC control element indicating a selected beam index to bypass random access delays and confirm recovery.
A network node establishes location information for targeted communication devices to adjust antenna patterns and transmission power.
A test apparatus monitors communication-channel-quality signals to verify correct beam assignment in 5G networks.
Predictive resource scheduling eliminates handover latency and reserve capacity waste by pre-allocating grants based on calculated terminal trajectories.
A specific precoding matrix uses a Kronecker product of separate vertical and horizontal domain codebooks to configure multi-antenna signal transmission.
A user terminal determines leading and secondary beams to combine based on basis beam reference signals.
Electronic device adjusts beamforming training cycles using radio signal detection to manage millimeter wave communication links.
A network node detects object positions via beamforming signal strength analysis to support real-time traffic flow adjustments.
Principal component analysis reduces computational complexity at radio units while maintaining high bandwidth utilization across the front haul interface.
A weight vector substitution system protects power amplifiers from backflow damage during high-power transmit beamforming operations.
Daisy-chained tuner circuits synchronize and constructively combine RF signals to resolve multi-path fading interference.
Base stations adjust beam directions based on service thresholds to balance user distribution and resolve network access imbalances.
Analyzing feedback signal patterns identifies correct system delay, preventing beam divergence and enhancing network performance in fading conditions.
A receiving device calculates correlation values between multiple antenna signals to determine delay offset adjustments for improved signal combining.
Terminal device derives uplink pre-coding from downlink resources, reducing control signaling overhead in New Radio systems.
Frequency-domain beam sweeping using true-time-delay arrays improves localization accuracy while minimizing spectral efficiency overhead.
A user equipment receives dynamic resource block bundling indications to identify contiguous frequency resources for downlink transmissions in subband full duplex slots.
Independent phase shifters suppress local leak interference to improve signal quality without calibration circuits.
An RF abstraction layer encapsulates WLAN frames into wired packets, enabling realistic client-access point simulation without physical hardware.
Spherical interpolator generates beamforming vectors from partial feedback data.
A downlink signal weighted processing device acquires channel impulse responses to determine pre-coding and relay weights.
Base transceiver station applies antenna hopping to carriers by transmitting signals during hop intervals.
A user equipment selects a default path loss reference signal based on an active downlink bandwidth part transmission configuration indicator state.
First device extracts beamforming parameters from PPDU preamble to prepare uplink matrix, eliminating channel sounding overhead and boosting data throughput.
A multi-stage beam scanning method partitions service coverage areas into disjoint cells using non-adaptive patterns transmitted over non-overlapping radio resource slots.
Segmented frame zones support stacked carrier spread spectrum to reduce interference while maintaining spectral efficiency.
Configuring dedicated uplink resources for secondary cells prevents primary cell PRACH overload while maintaining reliable beam failure recovery.
A multicast precoding method selects terminal subgroups based on channel state information to construct constant precoding matrices.
Segmenting physical random access channel configurations reduces transmission overhead for beam recovery requests.
A transmitting device performs autonomous spectrum sensing across multiple beams to determine channel availability without receiver feedback.
Segmenting feedback into intra-cluster CSI and inter-cluster identifiers mitigates interference in high-density deployments.
A base station selects terminal subsets to report channel state information, enabling spatial multiplex communication with reduced signaling overhead.
Wireless terminals exchange directional beam identification data to establish direct communication links using combined directivity directions.
An array antenna system dynamically adjusts beam parameters using real-time sensor feedback to optimize communication links with subscriber devices.
An enhanced bidirectional beam forming protocol delays feedback transmission until high-rate channels are established, utilizing iterative training schemes.
A main beam direction determination device selects secondary candidates from image data of a user wearing a head-mounted display.
PHY layer signaling updates quasi co-location assumptions to resolve the trade-off between rapid beam tracking speed and excessive signaling overhead.
A grid-based reference signal transmission method assigns spatial indexes to user equipment in LTE-A networks.
Base station transmits cell-common signals via multiple directional beams using distinct radio resources for user equipment selection.
A communication device performs equivalent conversion on data signals to cancel interferences among spatially multiplexed streams.
A sidelink discontinuous transmission mechanism performs beam refinement procedures during discovery opportunities to establish transmit and receive beam pairs.
Access points transmit data fields using distinct pilot tone patterns across varying frequency bandwidths to maintain channel measurement accuracy.
A user equipment determines relative phase differences between transmit beams to manage power density exposure.