A terminal determines feedback bit length based on scheduled code block groups to reduce signaling overhead.
Multiplying CAZAC code sequences by a uniform factor increases orthogonal code availability and reduces band variations in mobile communication systems.
Cross-carrier scheduling directs uplink control information to secondary cells, bypassing primary cell subframe restrictions.
Speculative uplink transmissions across multiple HARQ processes reduce latency by interrupting redundant retransmissions upon early positive acknowledgment.
User equipment receives interference signal parameters from a base station to reconstruct and remove unwanted signals during device-to-device communication.
A terminal configures uplink control channel resources to transmit Hybrid Automatic Repeat Request acknowledgments on sidelink.
A wireless terminal dynamically modifies transmission resource arrangements during ongoing repeat transmissions to adapt to changing channel conditions.
A frame failure counter tracks invalid starting sequence numbers in access points to identify malicious stations.
A downlink control method transmits modulation and coding scheme information alongside swapping indicators for multiple codewords.
A subframe structure divides time into microframes to enable dynamic uplink-downlink configurations.
A terminal device autonomously selects a target network slice using locally stored configuration information to enable direct access.
Communication device handles reception in a TDD carrier and transmission via an FDD carrier using specific subframe configurations.
Network node sends second allocation information to identify excluded data blocks alongside initial uplink resource assignments.
Information processing apparatus associates time stamps with demand response requests to preserve original sending times.
A beam control method multiplexes reference signals across antenna ports to enable terminals in direct communication to determine optimal precoding.
A CAN transceiver monitors bit timings to detect signal glitches in data frames.
A PDCP layer method detects Hyper Frame Number de-synchronization by counting error packets against a reference value to trigger a security reset.
Encapsulating control messages in a cloud protocol reduces infrastructure complexity while maintaining network reliability.
An access node synchronizes Automatic Repeat Request states between source and target nodes to eliminate service interruptions during handovers.
A single timer detects timeouts by resetting on each access request and acknowledgment in sequential storage systems.
An inverse multiplexer scheduler calculates propagation time differences to direct data across multiple network links.
Negative acknowledgement sequence number ranges in radio link control status reports track consecutive missing segments without excessive network overhead.
Source eNodeB forwards processed data to target eNodeB, eliminating 27.5 ms reprocessing delays.
Local quality assessment at remote radio access points decides re-transmissions without decoding, reducing backhaul load and device complexity.
An asymmetric beamforming training method schedules sector sweeps during data transfer intervals to reduce power consumption.
A state control unit manages three data transmission states to optimize resource allocation in mobile radio systems.
User equipment sorts acknowledgement bits by sequence to distinguish conventional from unconventional signals, reducing transmission bit quantity.
Joint source-coding of packet numbers with channel parameters optimizes code word space utilization in UMTS uplink transmissions.
Dynamic modulation selection adapts QPSK or higher orders to payload size, resolving the trade-off between spectral efficiency and transmission reliability.
Geographical database predicts link interruptions to schedule buffer refilling, reducing satellite bandwidth consumption.
Selective triggering of standalone high speed dedicated physical control channels prevents resource wastage and scheduling delays in wireless networks.
Terminal device determines maximum feedback bit count via downlink control information fields for single slot transmission.
Segmenting PHICH resources by codeword index and modulation scheme prevents collisions during multi-codeword MIMO transmissions.
Broker monitors subscriber liveness via periodic status requests and suppressed responses, reducing unnecessary multicast packet transmissions.
A cellular network node determines a communication timeout point based on message transmission time to manage data delivery.
Base station maps multiple downlink control channels to a single uplink carrier for HARQ feedback.
Server defines access technology selection profiles to guide client device switching between Wi-Fi and cellular networks.
A hybrid HARQ method segments synchronous and asynchronous transmissions to optimize resource allocation in mobile communication systems.
A user equipment transmits HARQ-ACK responses using subframes configured as uplink across all serving cells.
User equipment exchanges minimum time offset indications with network entities to enable reliable communication paths through assisting nodes.
Information processing apparatus adds notification information to request frames for accurate data frame reception confirmation.
A base station segments transmission frames into slots to identify actual gaps and transmit non-overlapping data.
Early termination signal stops repeated physical uplink shared channel transmissions after successful decoding, reducing power consumption and latency.
Triggering messages schedule target reception and acknowledgment slots to confirm successful bandwidth part switching without uplink grants.
A spectrum resource control unit allocates exclusive and shared radio resources to coordinate multi-operator access in wireless networks.
AP sends UL MU poll frames to synchronize multiple stations, resolving timing errors exceeding 100 nanoseconds during simultaneous data reception.
Dynamic HARQ period selection resolves latency-reliability trade-offs while maintaining LTE compatibility.
A MAC layer retransmission method uses incremental redundancy blocks to adapt error correction capacity based on channel conditions.
Base station decodes grant-free uplink transmissions using unique MA signatures to identify redundancy versions, resolving latency and reliability trade-offs.