A UE selects usable uplink and SBFD slots, then sizes the transport block from slot-specific resource elements for reliable multi-slot transmission.
By splitting inter-frequency measurement gaps into downlink time periods, the UE can receive serving-cell data and cut URLLC latency.
RedCap terminals adapt common PDSCH reception to bandwidth and TBS limits, enabling partial receive or stop modes with better scheduling accuracy.
When uplink HARQ-ACK repetitions collide with downlink transmissions, delayed selective repetition preserves reliability while avoiding extra retransmission resources.
Flexible NR scheduling sends a physical channel across multiple time units with varying link directions to improve resource use and cut slot waste.
Configurable HARQ feedback and preamble repetition help NR random access adapt to RSRP, improving resource use and access performance.
Intra-slot channel inference for PUSCH Type B repetition helps base stations improve uplink reliability without losing scheduling flexibility.
Preconfigured uplink grant sets let a terminal pick suitable parameters and release unused resources, cutting latency and signaling.
Dynamic PUSCH muting selects resource element patterns from DCI and RB density settings to cut cross-link interference with less data loss.
Preconfigured candidate uplink resource sets improve allocation reliability while limiting signaling and resource management complexity.
Network indication of SBFD and non-SBFD reception symbols keeps terminal and base station aligned for multi-slot PDSCH reception.
Time-overlap-aware PDSCH scheduling limits frequency resources for unicast and multicast decoding, easing UE processing and HARQ-ACK timing.
Pre-configured target-cell uplink resources let terminals transmit without RACH during handover, improving uplink reliability and timing.
Variable XR packet sizes are matched to transport block sizing with indication messages to cut radio resource waste and wearable power use.
Sub-carrier puncturing and rearrangement enable sub-PRB LTE MTC uplink transmission with lower PAPR, better multiplexing, and legacy hardware compatibility.
A unified messaging stack abstracts BLE, Wi-Fi, and Ethernet differences to keep embedded device communication secure, portable, and vendor-neutral.
Maps transport block coded bits across multiple subbands and spatial layers to improve frequency diversity, throughput, and spectrum use.
Flexible configured grant timing aligns uplink resources with periodic XR frame arrival to cut transmission delay and improve system performance.
A split fast and slow datapath cuts memory-copy overhead in one-to-many TCP splicing, improving throughput, latency, and CPU load balance.
Restricting UCI in the first PUSCH time unit and puncturing or rate matching later parts reduces uplink data loss and base station mismatch.
A split fast-path and slow-path TCP splicing design cuts memory copies, balances CPU cores, and boosts one-to-many throughput.
Using configuration subsets tied to different sidelink start positions, UEs cut interference while improving direct resource allocation.
Non-overlapping sub-resource pools let sidelink UEs report CSI on selected bandwidth, improving multiplexing while limiting sensing power.
Excluding SB-FD slots with overlapping uplink and non-uplink subbands clarifies UE operation and improves wireless resource use.
An aggregator reshapes buffered TDD uplink and downlink allocations across time periods to avoid fronthaul capacity peaks and over-dimensioning.
A unified messaging layer routes end-node traffic across mixed embedded interfaces while preserving end-to-end encryption and low memory use.
Subband-aware VRB-to-PRB interleaving separates RBs across overlapping full duplex slots to avoid conflicts, cut latency, and improve spectrum use.
RF condition thresholds trigger switching between proactive and reactive uplink scheduling to cut latency while preserving battery life and capacity.
Rule-based FDRA, TDRA, and slot muting helps UE avoid SBFD cross-link interference while preserving synchronization with network nodes.
Postponing OCC-coded uplink transmissions around reception gaps helps preserve orthogonality, reduce interference, and sustain multiplexing capacity.
Scaling PUSCH resource elements from HD-slot PRBs clarifies transport block sizing across mixed FD and HD repeated uplink slots and reduces errors.
UE capability reporting lets the network assign subband resources that protect downlink reception from SBFD uplink interference.
By placing the switching period on lower-priority or non-PUCCH resources, this case improves multi-band spectrum use and protects uplink quality.
Skipping mixed FD and HD uplink repetitions keeps frequency resources, power, and beam usage consistent for simpler PUSCH transmission.
Network-indicated uplink modes let terminals switch between hopping and non-hopping on unlicensed bands to improve flexibility and efficiency.
UE capability reporting lets the network schedule SBFD subbands and filters to protect downlink reception from uplink interference.
Separate DL and UL subbands with RRC and DCI signaling let PDSCH rate matching avoid active uplink bands and improve full-duplex throughput.
Determining switching-period placement across multiple frequency resources helps preserve uplink quality and avoid wasting spectrum during band switching.
Uplink latency feedback adjusts downlink timing at PDU-set granularity to keep XR motion-to-photon delay within target RTT limits.
Reference frequency and time resource numbers keep PSSCH transport block size consistent across initial and retransmissions in sidelink unlicensed systems.