Lattice-Based Signatures Secure Blockchain against Quantum Attack Overhead Challenge
Lattice-based cryptography replaces vulnerable ECDSA, securing digital signatures against quantum computers while managing significant data overhead.
Benchmarking Post-Quantum Signatures Reveals Significant Resource Cost
Research quantifies the critical trade-off between quantum-safe cryptography and on-chain resource consumption, guiding the migration roadmap.
Post-Quantum Signatures Secure Blockchains, Benchmarking Performance Exceeds Current Standards
Benchmarking NIST-PQC algorithms reveals minimal overhead and superior verification speed, securing blockchain authenticity against future quantum threats.
Benchmarking Post-Quantum Signatures Secures Blockchain against Quantum Attack
Quantifying the performance of NIST-standardized post-quantum signature schemes proves that long-term, quantum-resistant blockchain security is computationally viable.
Post-Quantum Cryptography Secures Blockchain Consensus against Quantum Threats
Integrating NIST-standardized lattice-based cryptography into consensus algorithms is the necessary architectural shift ensuring long-term ledger security against future quantum adversaries.
Code-Based Zero-Knowledge Proofs for Post-Quantum Cryptographic Resilience
This research pioneers novel zero-knowledge proof protocols, including HammR and CROSS, leveraging coding theory to secure digital signatures against emerging quantum threats.