Periodic time-varying QC-LDPC convolutional coding cuts FEC complexity and error floors while enabling high-throughput optical transmission.
Interdependent ECC across two data directions improves nonvolatile memory recovery when a first decoding pass cannot correct all errors.
Selective LDPC bit repetition and parity puncturing improve decoding reliability while limiting transmitter complexity in digital broadcasting.
Approximating non-uniform symbols with a Gaussian and searching an extended lattice cuts decoding complexity while preserving MAP-level accuracy.
Intentional error insertion and a second EDAC signature expose spoofing and tampering while preserving source data integrity in real time.
Multiple pilot sequences and iterative decoding correct phase slips in a receiver, preserving demodulation and error-correction performance.
Address-based reversible data modification embeds error handling into memory write-read paths, improving integrity without extra memory space.
Parity-based TID checks keep host and memory module counters synchronized while cutting DDR channel overhead and catching transaction errors earlier.
Hamming weight range information helps polar code receivers decode codewords with lower signaling overhead and less latency.
By embedding error correction inside cipher rounds, this case avoids redundancy exposure and limits error propagation on noisy channels.
Segmented LDPC encoding for SCMA reduces matrix storage and decoder complexity while supporting low-error transmission in low-SNR links.
Selective LDPC parity-bit repetition and puncturing improve broadcast decoding while limiting the transmission-efficiency loss from longer codewords.
E8 lattice constellation coding boosts spectral efficiency and coding gain for 100 Gbps links while keeping latency and power dissipation low.
Multi-reliability regenerating codes mix data across messages to improve distributed storage recovery while reducing repair bandwidth and hardware cost.
A QC-MDPC McEliece key encapsulation scheme resists quantum and CCA2 attacks while reducing key size, computation, and side-channel risk.
Error-probability-guided candidate bit generation improves biometric hash matching while limiting entropy loss and verifier workload.
Using four or fewer twinax pairs, this case shows how full-duplex multi-rate links cut wiring cost and complexity while sustaining 100 Gbps transmission.
Error-protected payload encoding improves satellite detection and recovery of low-power tracking messages in noisy, congested channels.
Using four or fewer twinax pairs, this case shows how PAM4 processing enables 100 Gbps full-duplex links with lower power and latency.
Multi-level E8 lattice decoding with binary and non-binary product codes raises data rate while limiting latency and power dissipation.
MRR erasure codes mix data messages with different reliability needs to cut repair bandwidth and improve recovery after node failures.
Selective LDPC codeword repetition and parity puncturing improve broadcast decoding reliability while balancing transmitter complexity and overhead.
MAC-authenticated LT and Raptor coding resists selective corruption while keeping encoding and decoding near linear time.
Shortening and puncturing patterns let one LDPC parity-check matrix support multiple codeword lengths while preserving reliability in high-order modulation.
Modulation-aware shortening and puncturing let one LDPC matrix support varied codeword lengths while preserving decoding reliability and memory efficiency.
Multiple pilot sequences and decoding feedback correct phase slips during demodulation, preserving synchronization and decoding performance.
Periodic time-varying QC-LDPC check matrices improve optical FEC gain and throughput while keeping decoding complexity manageable.
Rate de-matching, user mask removal, and Viterbi metrics improve HS-SCCH part 1 detection while lowering false alarms and missed detections.
Scrambled LDPC test patterns cut second full-media writes while preserving signal amplitude and phase for reliable media defect detection.
Complementary LDPC semi-codewords and OFDM improve in-band digital radio reception under interference and fading while preserving analog compatibility.
Error-corrected PUF codes let a semiconductor recover decryption keys locally, blocking key leakage and insider access paths.
Random extra digits are added before [n, m] encoding to obscure code patterns, improving error correction security against wiretapping.
Accelerated Chien search and two-mode RS decoding cut processing time and complexity while correcting high-error decision-codewords.
Threshold-based control predicts when Reed-Solomon list decoding is needed, improving decoding speed while limiting hardware resource use.
Random vector concatenation masks transmitted data patterns, adding wiretap resistance while preserving error-correction encoding.
A pipelined Reed-Solomon decoder uses soft information and threshold-based list control to cut decoding time and power in constrained hardware.
Programmable PCS and FEC modules let one communication circuit handle multiple Ethernet data rates while reducing separate hardware and resource use.
Multiple EDAC remainders are attached to transformed source data to detect deliberate tampering beyond conventional error correction.
Recursive aging bit patterns help correct long-term PUF drift with less redundancy, lowering circuit complexity and power use.
A pipelined Reed-Solomon list decoder uses parallel syndrome updates and iterative validity checks to boost correction while cutting memory use.
A pipelined Reed-Solomon decoder uses soft information and threshold control to avoid unnecessary list decoding, cutting time and hardware load.
Uses the scrambler polynomial to cancel replicated errors, reducing FEC strength and payload bandwidth in self-synchronous links.
A randomized Fourier transform enables spectrally concentrated codes to correct heavy noise with basic arithmetic on low-power devices.
A WLAN receiver detects voice packets and switches to redundancy-based Viterbi decoding to improve accuracy without raising overall decoder complexity.
CSI feedback steers systematic bits to the strongest antenna and rotates constellation phase to improve mobile MIMO decoding.
A dual-mode Reed-Solomon decoder uses accelerated Chien search and selective list decoding to cut processing time while correcting high-error codewords.
A sub-matrix error detection mechanism estimates individual memory portion error propensities to enable targeted remedial operations.