Beam angle information provides absolute angular direction to user equipment for efficient beamforming implementation.
Hybrid beamforming segments analog and digital functions to reduce signaling load while maintaining high-resolution coverage in high-frequency bands.
Multiple description coding combines feedback reports to enhance channel state accuracy in wireless systems.
Selective aggregation of uplink signals from high-quality transmission reception points improves signal quality while reducing fronthaul bandwidth usage.
Zadoff-Chu sequences generate orthogonal training signals for simultaneous multi-point transmission.
Configuring single-antenna devices as a virtual MIMO array resolves the contradiction between improving spectral efficiency and increasing device complexity.
Segmenting channel state information via AI models reduces transmission overhead while maintaining measurement precision across wireless layers.
Segmenting beam failure instance counters by transmission reception point enables accurate concurrent failure detection without ambiguous simultaneous checks.
A user equipment receiver determines common parameters from multiple transmit-receive points to perform unified frequency and time tracking loop operations.
A joint channel state information reference signal transmission mechanism enables multi-point wireless communication.
Vertical transmission angle adjustment reduces adjacent base station interference in TDD systems without decreasing power or restricting coverage area.
A dual-connectivity architecture routes data through split bearers across primary and secondary cells to enhance transmission throughput.
Adjusts outer loop precoder phase based on ACK/NACK responses to resolve destructive inter-point signal combining and minimize link adaptation offset.
User equipment shares beam applicability information with cooperating devices to reduce processing burden and communication overhead.
Controller calculates optimal beamforming vectors using dirty-paper coding to maximize data rates in distributed antenna systems.
A distributed antenna system controller uses OpenFlow to dynamically manage traffic transmission policies across network units.
Cooperation mode steers data through device-to-device relay links to overcome vehicular penetration loss.
Controlling node filters radio nodes by signal quality to exclude poor channels, reducing interference and re-transmissions.
Distributed communication units in a series chain select high-quality radio signals to reduce hardware complexity and interface requirements.
A distributed antenna system integrates multiple communication signals using a single optical cable.
Assigning a single scrambling sequence across multiple cells reduces reserved radio resource regions and minimizes message exchange among cooperating nodes.
A user equipment identifies trigger states using a control resource set pool index to differentiate signals from multiple transmission and reception points.
Dynamic cell selection reduces interference at the cell edge by switching serving cells based on real-time signal-to-noise ratios.
Segmenting the network into floating coordinated multipoint cells reduces inter-cell interference while lowering backhaul costs and synchronization complexity.
Determines quasi co-location behavior based on C-RNTI scrambling and subframe type to reduce signaling overhead while maintaining channel estimation precision.
A user cooperative communication method uses erroneously decoded relay packets as side information to assist destination decoding.
A relay link setup method selects a relay station using beam forming data to transfer data frames between source and destination stations.
Transmitting apparatus embeds identification information in physical layer signaling to identify channel bonding groups and individual frequency bands.
Segmenting MIMO signal processing into independent subsystems reduces remote unit complexity while maintaining network capacity.
Network device configures TRP-specific open-loop power boosting values for uplink PUSCH transmissions.
A terminal device receives separate configuration information for distinct control resource sets to detect specific candidate sets.
A coordination set determination method uses path loss difference to select cells for coordinated multi-point transmission.
User equipment autonomously adjusts quasi co-location assumptions based on parameter estimates to optimize demodulation performance.
Configuring measurement reference signals with quasi-co-location indicators to support uplink multi-user MIMO communications.
Measuring NR-SS and CSI-RS resolves the absence of CRS in New Radio systems, enabling accurate channel quality assessment and efficient cell handover.
Multi-cell multi-point SU-MIMO transmission coordinates multiple eNBs to deliver four independent data layers to a single user equipment receiver.
User equipment detects primary and secondary synchronization signals across multiple beamformed subbands to acquire downlink transmit beams.
Dynamic configuration indication replaces worst-case assumptions, reducing overhead while maintaining reliability in coordinated multipoint transmissions.
Configures mutually orthogonal muted resource element patterns to enable precise interference measurement in coordinated multi-point transmission environments.
A control apparatus selects transmitter stations based on predicted communication quality to maintain data transmission.
Segmenting antenna resources into dynamic groups that share information across cells to increase wireless capacity without adding hardware complexity.
A user equipment receives multiple CORESETPoolIndexes to configure physical downlink control channel monitoring across transmission points.
Defining a signal quality range with a best received signal quality upper border prevents unnecessary serving transmission point switching in CoMP scenarios.
A wireless base station selects terminal and antenna combinations based on reception power levels to optimize multi-user transmission.
A distributed scheduling method infers throughput parameters from mobile station feedback to coordinate transmission resources across multiple base stations.
A reverse trigger system uses a common station to relay trigger frames between initializer and coordinated access points.
A DSA transmitter repeats complex signals within primary bands to enable reliable secondary communication.
A base station control system manages cooperative signal transmission between adjacent cells to improve data rates for edge users.
A user equipment assigns frequency domain resource blocks to multiple transmission configuration indication states using a single downlink control information message.
A dynamic antenna pairing system selects optimal pairs based on received signal strength measurements.