Compressed baseband over switched Ethernet links preserves timing and RF coverage while easing capacity limits between controllers and remote radio heads.
Dynamic TBS calculation uses temporary information bits and code rate to cut unnecessary bits and improve 5G transmission reliability.
Separate AGC paths and dynamic antenna reassociation improve high-priority signal detection while preserving packet reception bandwidth.
Alternating interleaved code bit sequences improves 5G base station and terminal communication while balancing reliability and coding complexity.
Fixed interleaving regions let 5G network devices map VRBs orthogonally to PRBs, avoiding overlap-driven congestion and collisions.
Centralized baseband scheduling over switched Ethernet links remote radio units to improve indoor RF coverage, capacity, and synchronization.
Code rate-based TBS calculation reduces unnecessary bits and improves LDPC decoding and resource allocation in wireless transmission.
Compact encoding of latitude, longitude, altitude, and heading enables near-real-time situational awareness over low-bandwidth SBD links.
Shared internal and inter-chip signal rings carry status and fault data across processing chips, cutting signal-line space and monitoring overhead.
A mixed-format PPDU combines legacy and non-legacy headers to raise WiGig data rates while preserving IEEE 802.11 backward compatibility.
A PDCP header indicator lets receivers distinguish ROHC and EHC, avoiding decompression failures while reducing 5G header overhead.
Dynamic chunk sizing between core and edge nodes improves compression efficiency and cuts delay for small content and initial TCP transfers.
By matching polar code length to channel load size, this case removes rate matching to cut encoding latency, complexity, and loss.
Combining control channel elements with type indicators and CRC checks improves radio resource assignment and decoding across varying channel conditions.
Combining multiple control channel elements improves LTE radio resource assignment flexibility while lowering decoding complexity.
Matching polar mother code length to channel load removes rate matching, cutting encoding overhead, latency, and complexity.
Organizing data blocks into multiple strands enables parallel optical FEC with lower error rates than product or braided codes.
LDPC coding and transport block segmentation improve 5G channel reliability while supporting variable lengths and coding rates.
Scrambled hash-based abbreviated addresses shorten Sector Sweep frames, reducing 802.11ad SLS time as sector counts increase.
Selective FEC based on allowable packet delay improves wireless backhaul quality while limiting latency in mixed radio networks.
Non-uniform scalar quantization cuts parametric stereo bit use by matching step sizes to auditory sensitivity while preserving sound quality.
Perceptual non-uniform quantization uses finer steps in sensitive audio ranges to cut bit consumption without degrading reconstructed sound quality.
A single-pass TBS calculation removes cyclic dependencies, avoids padding bits, and keeps code blocks byte-aligned in wireless communication.
Shortened sector sweep frames use scrambled hashed addresses to cut SLS time and speed beamforming in multi-sector 802.11ad links.
Downlink control signaling announces upcoming uplink subframes, letting LTE adapt TDD timing on unlicensed bands and coexist better with WiFi.
A mixed-format PPDU adds a non-legacy header to raise WiGig data rates while preserving IEEE 802.11 WLAN backward compatibility.
Cross-layer channel and decompressor state estimates let ROHC adapt compression levels to improve payload efficiency and reduce failures.
A split MAC PDU length field and extended header indicator avoid parsing overhead, improving decoding efficiency for large wireless packets.
Variable CRC lengths cut wireless channel overhead for small traffic while lowering false alarm probability for high-reliability transmissions.
Dynamic interleaver type allocation in IDMA improves uplink decoding by reducing inter-cell interference and adding 5G radio access flexibility.
Soft and sliced phase checks catch bit errors that pass CRC in wireless packets, helping protect higher-level functions from false clean data.
Adaptive delivery unit sizing lets edge nodes request compressed data more efficiently, improving core-edge transfer speed and delay.
A secondary base station intercepts uplink data and sends shortened redundant streams to improve BER, PER, and data rate.
Organizing optical data into independently coded strands improves parallel FEC throughput while lowering error rates versus product and braided codes.
A transparent gateway decrypts Iub packet data for stream de-duplication, then re-encrypts it to boost WCDMA throughput without reconfiguration.
Predetermined transport block sizes keep segmented turbo code blocks uniform, avoiding dummy bits and improving wireless transmission efficiency.
Common strings are preloaded into shared buffers so CIoT headers and payloads can be sent as identifiers, reducing small-packet overhead.
A mixed-format PPDU uses legacy preamble fields and an NG60 header to boost WiGig throughput while preserving IEEE 802.11 compatibility.
Applies perceptual non-uniform quantization to spatial audio parameters, lowering bit use while preserving reconstructed sound quality.
Dynamic quantization bit control cuts C-RAN fronthaul data rates on fiber links, easing capacity bottlenecks as remote units scale.
Compact null bit tracking cuts memory accesses in wireless rate matching while preserving correct bit ordering and transmission start position.