Base station transmits NAICS assistance information to terminal devices for neighbor cell interference cancellation.
A communication node determines K1 time-frequency resources to send preambles across non-overlapping slots.
A sniffer radio monitors OFDMA resource unit statistics in real-time, replacing dedicated emulation radios to reduce system complexity.
A common search space configuration mechanism transmits cell-specific downlink control information via a master information block.
A user terminal selects PUCCH resources for UCI transmission using DCI fields and implicit signaling.
A sequence-based physical uplink control channel maps user equipment data to complex sequences without modulation.
Concentric ring clustering segments constellation points to lower Peak-to-Average Power Ratio while maintaining high data transmission efficiency.
Interleaving enhanced resource element groups across non-adjacent blocks to boost channel frequency diversity.
A wireless device segments physical uplink control channel resources into multiple groups to distribute signaling load across primary and secondary cells.
Dynamic slot structure adaptation prevents uplink-downlink conflicts, improving throughput for half-duplex UEs.
A base station generates a combined pilot sequence for unicast and multicast subframes to enable accurate channel estimation across time-multiplexed data.
A CP-OFDM decoding method combines time-aligned data sets to increase signal-to-noise ratio.
Feature sets index user equipment capabilities, reducing signaling overhead and ensuring consistency across radio access technologies.
Mapping CP-OFDM pilots via comb intervals resolves resource utilization bottlenecks by enabling waveform multiplexing over shared uplink resources.
A 4x EHT-LTF sequence design reduces peak-to-average power ratio in distributed-tone resource units.
A medium access control control element indicates a selected spatial relation from a pre-configured pool for sounding reference signal transmission.
A WLAN frame physical header embeds channel state information across aggregated bands to synchronize station transmissions.
FH/SS-OFDMA segments frequency bands into subcarrier groups to reduce pilot load and maintain orthogonality in uplink cellular environments.
Segmenting subframes allows intermediate nodes to decode data without interfering with user equipment transmissions, reducing latency.
Codeword-based random access multiplexes preambles via code division, resolving undecodable transmission collisions in dense NB-IoT networks.
Base station performs channel access per subband to identify idle channels, improving resource allocation efficiency.
A wireless communication system configures time-frequency resources and subcarrier spacing to optimize data transmission efficiency.
An anchor carrier transmits allocation information for non-anchor carriers to reduce blind decoding attempts.
Segmenting resource pools into distinct SBFD and uplink configurations resolves bandwidth conflicts while enhancing sidelink throughput.
Pairing a TDD downlink carrier with an FDD uplink carrier eliminates asymmetric coverage gaps at cell edges while avoiding terminal device complexity.
Per-carrier search thresholds reduce unnecessary inter-frequency measurements, lowering latency and power consumption.
Port-dependent sequence initialization varies reference signal parameters across code division multiplexing groups to reduce peak-to-average power ratio.
A broadband wireless system allocates data bursts using sub-frequency bands and band AMC subchannels to adapt transmission parameters.
User equipment determines target radio access technology types from network configuration to measure specific regions.
Processor applies Maximum Sensitivity Degradation values to transceiver reference sensitivity during Evolved Universal Terrestrial Radio Access New Radio Dual Connectivity operation.
Stationary phase tracking reference signals enable accurate relative phase error calculation across multiple symbols.
Segmenting downlink control channels into common and user equipment-specific search spaces reduces interference while enhancing scheduling flexibility.
Primary cell transmits SIB13 information for secondary cells, reducing signaling overhead while maintaining service continuity.
Segmented modcode partitions resolve header overhead trade-offs, ensuring reliable control signaling across wide dynamic range satellite channels.
Segmenting control channels resolves the trade-off between reduced communication latency and undefined timing reliability in shortened TTI operations.
UE compares maximum processing time against wait periods to resolve feedback completeness versus processing time constraints.
Dynamic PRS configuration adjusts repetition and power based on device type, resolving narrowband bandwidth constraints that limit IoT positioning accuracy.
A user equipment receives transmission configuration indicator activation information to map carriers to transmit receive point mode values.
A base station dynamically selects between multi-carrier and single-carrier multiplexing schemes based on user equipment channel conditions.
Dynamic frequency adjustment narrows intervals between ONU signals, resolving interference risks while maximizing PON spectrum usage.
Outermost sub-bands use smaller intervals to reduce out-of-band leakage, avoiding large guard bands and lowering RF device costs.
A PDMA transmitter rotates modulation constellations per data layer to separate overlapping symbols.
Mapping pilots to the delay-Doppler domain resolves interference between channel estimation accuracy and bandwidth efficiency.
Configuring multiple scheduling component carriers enables failover switching between signaling entities, reducing latency when decoding failures occur.
Dynamic mapping direction selection resolves transmission reliability issues when supporting CP-OFDM waveforms and frequency hopping in uplink shared channels.
Mobile terminal selects weighting parameters for reference signal samples to minimize inter-cell interference impact.
The method reduces signaling overhead and channel design complexity by dynamically adjusting multiplexing parameters based on traffic requirements.