Localized interposer memory and TSV links cache configuration bitstreams near programmable logic to cut reconfiguration latency and energy.
Built-in RJ45 cryptography processors harvest power from Ethernet data signals to encrypt traffic and block cable eavesdropping.
Localized bitstream storage on an active interposer and auxiliary chip speeds IC reconfiguration while reducing off-chip transfer energy.
Codeword-to-byte mapping enables selective decompression and decryption, so specific byte ranges can be retrieved without processing full datasets.
Granular encoding assigns security levels to document portions, preserving integrity while avoiding multiple versions and limiting access by authorization.
Transforms input data into target distributions, splits it into dual streams, and adapts compression and security with low overhead.
Transforms data into dyadic distributions, then adapts compression and encryption with feedback to preserve storage efficiency and security.
Codeword-to-byte mapping enables random access to compressed encrypted data without full decompression, preserving security and integrity.
A dyadic transformation matrix compresses and encrypts data in one pass, reducing overhead while protecting against side-channel attacks.
A dyadic distribution compresses and encrypts data while adaptive codebook retraining counters data drift and bandwidth limits.
Audio is split into encrypted fragments with unique keys and sent to remote storage, preserving tamper-proof conversation records.
Multiple CSI sensor streams are merged and packetized for vehicle data links, cutting wiring complexity while preserving reliable high-speed transmission.
Encrypting only NPF code-word boundaries secures compressed data while cutting encryption load and power use in constrained devices.
By encrypting only code-word boundary information in NPF-coded data, this case cuts encryption load and power use in constrained devices.
List source coding plus partial encryption cuts key size needs while keeping encoded data undecodable until the keyed portion arrives.
Multiple Huffman trees and a stream cipher keep video compression efficient while strengthening resistance to chosen-plaintext attacks.
Priority-based media indexing and server-side delivery keep live and recorded video streams synchronized for interactive collaboration.
Adaptive unicast-multicast switching and peer stream replication keep multimedia playback reliable while balancing server load.
Compact 32-bit frame-aware headers let multicast video streams detect lost or out-of-order datagrams while cutting bandwidth overhead.
On-chip bitstream generation uses seeded sequences, masking, encryption, and error correction to avoid off-chip transfer risks and storage overhead.
Selective checking of supplemental messages keeps complex audio and video stream authentication reliable without heavy signature recalculation.
Lookup-table encryption and CRC-based tag verification secure chiplet links while cutting hash, memory, and runtime overhead.
An ALU computes directly on encrypted inputs and outputs, avoiding decryption at computers and reducing attack exposure in distributed processing.
Frame-based bi-lateral LFSR encryption cuts wireless I/O collisions, power use, and response delays while securing packet transmission.
Replacing ZUC MAC for-loops with PCLMULQDQ carry-less multiply speeds tag updates and avoids hardware accelerator complexity.
Store one shared unencrypted media portion plus format-specific encrypted parts to cut storage overhead and avoid real-time re-encryption.
Large streaming ciphertexts force adversaries to store nearly all data, preserving secrecy after key leakage while keeping honest-user storage low.
Cryptographic signatures on each encoded video layer preserve integrity and authenticity even after layer removal, without major bitrate growth.
Integer-oriented cryptographic permutations speed encryption for large streams while enabling near-instant random access and low latency.
A bus interface encrypts and decrypts neural accelerator data streams with ID- and address-based masks to protect weights and inputs without slowing throughput.
Passive monitors detect capture gaps and use cipher resynchronization parameters to restore decryption of encrypted traffic after dropped packets.
Synchronized random data feeds and XOR gates enable fast point-to-point encryption that resists third-party decryption with low complexity.
Normal and redundant rounds are randomly split and compared to detect voltage-glitch faults before cryptographic output.
Difference data lets a second device alter encoded video while a decoder validates the original signatures and content.
A second device records video-processing differences so a decoder can validate original signatures after legitimate stream alterations.
Ordered genomic data blocks use indexed keystream access for partial decryption while preserving privacy during controlled sharing.
Randomized branch encoding obfuscates streaming code against reverse engineering.
Obfuscation rules protect target data while using fewer computing resources than encryption.
This cipher architecture masks data in hardware and splits linear and non-linear operations to resist physical attacks.
This case uses partial tile encryption to secure video bitstreams while reducing decoding dependencies and processing overhead.
A dual-mode cipher engine stalls and reactivates the AXI read channel to manage mixed traffic without protocol violations.
A disposable XOR swap key transforms ciphertext between encryption keys without plaintext exposure or costly HSM hardware.