A card-based power agent and data-center policy function adjust vRAN dormancy while preserving low latency and jitter.
This case shows how UE indications of power reduction from overlapping uplinks improve network coordination of power and scheduling.
This cellular uplink case switches between CP-OFDM and DFT-s-OFDM using SINR and power headroom to improve coverage and power use.
A dormant-state UE inhibits secondary-cell PDCCH monitoring and selectively processes positioning signals to reduce power and latency.
This case shows how UEs and base stations adjust positioning power and resources to balance accuracy, interference, and energy use.
The case enables or disables SL DRX between terminals based on device needs, balancing power savings with effective sidelink transmission.
OS-chipset API mapping simplifies UE access-layer control for power and throughput.
This case encodes hybrid RX-TX time differences in device replies to position Ambient IoT devices with less synchronization and reporting overhead.
A first symbol set gives Wi-Fi devices time to switch from low to high power mode before data reception, preserving performance.
A radio network node adapts paging by class and network conditions to balance service availability, efficiency, and energy use.
This case configures UE power-saving modes using traffic and device parameters, reducing waste as wireless conditions change.
This case links CBR measurement to SCS-defined slots, helping NR-V2X UEs set PSSCH power for clearer congestion control.
Base stations signal system information changes during non-broadcast periods, reducing repeated requests, device energy use, and latency.
This case spaces received power levels through selective control and successive cancellation, reducing interference and energy use.
MAC-CE updates map PUSCH pathloss reference signals to SRI power-control sets for more accurate headroom reporting.
An energy management entity analyzes xApp and rApp consumption trends, then adjusts scheduling or configurations to reduce RIC energy use.
This case uses MAC-level identifier checks and conditional decoding to reduce power use while preserving selective STA wake-up.
Scheduled TWT/RAW ACK windows combine feedback across WTRUs and TIDs, reducing WLAN access overhead and delay.
This case coordinates RTT and retransmission timers so sidelink UEs monitor PDCCH in time while limiting DRX power use.
The network dynamically regulates terminal uplink power to preserve average RF exposure compliance and prevent transmission drops.
A multi-radio WLAN transceiver balances station associations and reduces power on less-needed radios without congestion.
Nearby devices share Bluetooth quality data before UWB ranging, selecting one responder to preserve accuracy and limit power use.
This case uses channel-aware UE power adjustment and feedback to sustain sidelink connectivity while reducing interference.
AI agents and MEC layers turn real-time electromagnetic sensing into actionable spectrum decisions for lower-latency 5G resource use.
This case detects source-target uplink conflicts and prioritizes transmission to preserve data during reliable DAPS handovers.
This SUDAS case uses URU relays and centralized resource allocation to improve indoor throughput despite MIMO penetration losses.
A firmware-hardware power hierarchy uses domain sensors to reduce voltage drops and electrical noise while controlling SoC temperature.
This case groups random access responses and uses DCI scheduling to reduce PDSCH transport block size, modulation order, and bit rate.
Bitmap-based RB-set selection focuses PDCCH monitoring on available resources, reducing UE power use in NR unlicensed bands.
Shared uplink positioning occasions let idle UEs report location data with less signaling and batch processing at the location server.
This case adjusts PDCCH monitoring across DRX cycles to reduce detection power while preserving data scheduling awareness.
Modified downlink grants trigger A-SRS on auxiliary uplink carriers, improving channel estimation while coordinating uplink resources.
A unified uplink grant adjusts transmission power across consecutive subframes to balance throughput, signaling overhead, and interference.
An added DCI RS indication selects SSB or CSI-RS power references, resolving PRACH path loss ambiguity in NR random access.
This case uses DRX active windows for PDCCH monitoring, balancing UE power savings with reliable, responsive wireless service.
This case uses disjoint SRS frequency locations and bandwidth parts to improve channel estimation while managing power and interference.
This case defines A-MPR values by region and modulation scheme to control NR V2X sidelink power under FCC requirements.
Mode-specific RLM parameter sets help UEs maintain beam failure detection accuracy as network energy-saving modes change.
Dynamic power estimates use mean and variance to prevent HSDPA signal saturation.
This case partitions PSSCH mini-slots and updates beta offsets to balance UE reception reliability, spectral efficiency, and interference.
APs advertise congestion, delay, and membership limits with restricted TWT schedules, enabling STAs to improve power management and latency.
A Bluetooth master module adjusts packet intervals or releases slave links when the mobile device leaves range, extending battery life.
The controller uses navigation routes to activate needed off-state base stations, balancing communication continuity with lower energy use.
A power-saving monitoring pattern aligns UE opportunities with C-DRX active intervals to shorten PDCCH monitoring and extend battery life.
This case uses common beams, BFD counters, and TCI-state resets to reduce false triggers and restore NR connectivity after beam failure.
A low-power wake-up radio identifies transmitter fingerprints before activating the main radio, reducing unnecessary IoT battery use.
This case uses beam separation, numerology, and dynamic scaling to manage NR uplink power limits and interference.
The terminal switches measurement states and resets, runs, or stops related counters and timers for RLM and BFD measurements.
FOCOM coordinates rApp recommendations, workload relocation, and IMS shutdown commands to improve O-RAN energy efficiency.
Subarray EIRP masks limit cellular interference with airplane altimeters and satellite services.
A contactless power coil unit uses a leaking flux detecting coil to identify displacement between primary and secondary windings.
Nodes deactivate RX and TX circuits during unused TDMA time slots, reducing energy consumption while maintaining data communication reliability.
Conditional lifting detection logic prevents false positives during upright positioning, conserving power by suspending checks when the device is stationary.
User terminal allocates transmission power to specific timing advance groups during uplink communication.
Segmenting power control into frequency domain subcarrier spacing and time domain TPC commands resolves pathloss estimation inaccuracies.
A reduced monitoring state configures diminished RF chains and channel monitoring to conserve user equipment battery resources.
Narrowband IoT user equipment evaluates link quality during reception gaps to enable autonomous sleep modes.
Transmitting wake-up signals over a single carrier reduces resource waste and terminal power consumption while ensuring continuous spectrum availability.
A network handover driver filters disconnection messages from the Connection Manager to reduce power consumption during frequent 2G and 3G transitions.
A network entity transitions between energy modes by deactivating synchronization signal blocks to reduce power consumption.
Terminals select dedicated pilots to indicate modulation settings, reducing uplink air interface resource wastage and avoiding pilot collisions.
Multiple transmit chains combine to deliver required uplink power levels, resolving insufficient single-chain capability in marginal coverage areas.
Local devices measure uplink interference and calculate access probabilities to autonomously select carriers and adjust transmission power.
User equipment drops uplink transmissions that exceed maximum permissible exposure thresholds, maintaining gradient vector aggregation reliability.
Frequency hopping and repetition transmission improve downlink coverage by 20 dB for machine type communication terminals with single receive chains.
A communication data processing system monitors power consumption to determine speed limit parameters that control electronic device transmission rates.
Dynamic sleep mode collapses or sources power rails based on battery voltage, preventing inrush current shutdowns during wake transitions.
BToIP protocols extend Bluetooth range by routing control signals over Wi-Fi networks while maintaining low audio power consumption.
Segmenting the address space into tiles lowers power consumption while maintaining high sector utilization for localized data access.
Power headroom reporting enables dynamic control that resolves crosslink interference in simultaneous transmit modes.
A control circuit determines prediction deviations and correction factors for remote unit groups in a wireless distribution system.
A mobile station estimates transmit power margins to evaluate E-TFC states for efficient uplink data transmission.
Iterative registration and dynamic EIRP adjustment resolve interference constraints while maximizing channel availability in controlled spectrum environments.
A user equipment soft combines scheduling signals from multiple cells to improve detection performance in mobile communication systems.
A terminal device determines a target monitoring occasion set for power saving signals to optimize resource allocation.
UE stops PDCCH monitoring on secondary cells during inactivity to save power while keeping the cell active and avoiding reactivation latency.
A charging unit stabilizes SIM voltage during base station searches, preventing communication failures caused by power fluctuations.
An energy aware network slicing system selects computing platforms and assigns cores within power constraints to optimize resource usage.
Infrastructure element adjusts transmission power using node metrics to mitigate environmental obstructions.
User equipment adapts channel state information measurement resources based on maximum multiple-input multiple-output layer indications.
A first node configures distinct measurement objects for synchronization signals and channel state information-reference signals to enable adaptive downlink reception.
Voltage pulses enable bidirectional wake-up signaling across two-wire connections without activating high-speed data controllers.
Electronic device determines path loss ratio across multiple antennas to optimize transmission power distribution.
A power allocation matrix assigns transmit energy to individual data streams based on Channel Quality Indicators.
A communications processor estimates user-perceived voice quality to dynamically adjust transmission parameters.
Second connection resume procedure handles connection reject messages to reduce signaling overhead and power consumption for inactive terminals.
A communications device indicates active mode periods to the network, enabling temporary wake-ups for data reception without requiring round trip time knowledge.
SGSN embeds notification indicators in routing area update accept messages to reduce paging resource consumption while minimizing delivery delays.
Dynamic power allocation adjusts transmit levels per service to resolve uplink bit error rate issues caused by varying antenna attenuation.
Decomposing complex polygonal geo-fences via Quadtree segmentation reduces CPU cycles and battery drain by limiting distance calculations to relevant segments.
A transmitter unit switches to constant amplitude envelope modulation during power transitions.
Configuring a single SRS resource set with multiple TCI-states reduces implementation complexity by avoiding excessive SRS resources for multi-TRP coordination.
A wireless client station estimates signal strengths and determines path losses based on received power and transmit data.
Radio transmission devices initiate paging directly to activate idle terminals.
A control module manages diversity receive chains in mobile devices by enabling or disabling them based on idle time and transmit activity.
A User Equipment determines a buffer status table based on control messages to generate Medium Access Control Packet Data Units.
A tilt sensor detects device orientation to dynamically adjust transceiver scanning intervals, reducing unnecessary energy consumption during vehicle travel.
Wireless communication module detects near field device presence to wake computing platform from deep sleep without manual input.
An interruption module cuts receiver power during idle slots, reducing energy use while maintaining QoS.