Determining a reference value from a circular buffer manages peak data rates without exceeding coded bit throughput limits.
Receiving nodes report needed repetitions to transmitters, optimizing redundancy levels and reducing resource consumption in wireless coverage.
Selects unicast or broadcast modes for redundancy data in hybrid networks, reducing latency and improving error correction efficiency.
Segmenting failed data packets into sub-packets with shared sequence numbers reduces overhead while ensuring correct packet reordering.
A network device segments global sequence numbers to prioritize encapsulated packets across logical connections.
Removing MAC layers from acknowledgement frames minimizes network resource overheads while maintaining reliable wireless local area network communication.
Segmenting conventional TTIs into shorter intervals minimizes HARQ round trip latency while maintaining backward compatibility with legacy systems.
Terminal device determines HARQ feedback time position using indication information to ensure reliable transmission despite limited uplink resources.
User equipment detects TDD subframe reconfiguration conflicts and adjusts CSI or SRS periodicity, content, or priority to mitigate interference.
A Bluetooth controller tracks reception flags to send negative acknowledgments for lost audio packets.
Dynamic subframe scheduling bundles acknowledgement signals using the downlink assignment index field to reduce uplink control overhead.
Terminal re-establishes RLC entities and selectively transmits unconfirmed PDCP PDUs to reduce transmission delay.
Segmented HARQ state values identify incorrect blocks to reduce signaling overhead and improve system throughput.
Segmenting HE-SIG fields in high efficiency physical protocol data units separates common and user-specific control information.
Physical layer signaling bypasses slow RRC protocols to deliver timely channel quality data for efficient downlink resource management.
Second network device detects bit errors on unidirectional links and generates ISIS packets carrying error information to the first network device.
A hybrid OFDM wireless terminal switches between multi-tone and single-tone transmission modes to optimize power amplifier usage across different base station types.
User equipment transmits point-to-multipoint feedback via shared uplink resources, improving decoding success rates without increasing device complexity.
Frequency hopping across mini-slots transmits redundant data copies in parallel, resolving the trade-off between transmission reliability and latency.
Combines synchronous ACK/NACK signals with asynchronous status messages to resolve the trade-off between feedback speed and reliability.
Mobile terminals calculate throughput estimates to determine RLC status report rates.
Terminal device generates specific transmission feedback information based on received control signals.
A user equipment method sets Time Advance Group identifiers for supplement uplink and non-supplement uplink carriers based on base station configuration.
Sequential PUCCH resource allocation based on lowest eCCE index and device-specific offset reduces blocking probability in TDD LTE networks.
Segmenting multimedia data into Media Processing Units allows dynamic QoS adaptation for mobile networks without end-to-end reservation.
A terminal control circuit manages retransmissions for multiple transport blocks using code block groups.
Combining transport block size and redundant version into a single 7-bit index minimizes quantization errors while maintaining efficient DCI overhead.
Code block group based non-orthogonal multiple access transmission enables precise uplink control information feedback in wireless networks.
Dynamic aggregation frame length adjustment based on detected channel noise reduces inter-frame collisions and improves throughput rates in wireless networks.
A user terminal allocates uplink control channels across FDD and TDD cells to transmit acknowledgement signals and channel quality information.
A user equipment detects an uplink grant and interprets a disabled transport block as an acknowledgement signal.
A terminal device determines the cell group type of a protocol data unit to process radio link faults differently.
Autonomous UE precoding matrix determination for uplink MIMO retransmissions without separate control signaling.
UE determines HARQ-ACK codebooks using group indices and feedback indicators.
Flexible transport block boundaries within a single transmission time interval reduce buffer burdens and latency by allowing partial decoding.
Pre-configured PUCCH parameters support multi-PRB transmissions to meet OCB and PSD limits while maintaining reliable network attachment.
A TCP monitoring device detects and stores Selective Acknowledgement messages to coordinate with reliable data link retransmissions.
A base station transmits RRC configuration for code block group transmission and receives HARQ-ACK feedback from user equipment.
Asynchronous HARQ operations adapt uplink scheduling to variable channel availability, reducing interference with Wi-Fi in unlicensed bands.
Segmenting PUCCH resources into multiple groups with timing advance groups reduces primary cell load while managing configuration complexity.
A wireless network device implements adaptive shortened transmission time intervals to reduce round-trip time.