Encrypted Transactions and Randomized Ordering Mitigate Maximal Extractable Value
New MEV-resistant protocol combines transaction encryption with execution randomization, fundamentally removing validator control over profitable ordering.
Sublinear Prover Space Unlocks Practical Zero-Knowledge Verifiable Computation
A novel cryptographic equivalence reframes ZKP generation as a Tree Evaluation problem, quadratically reducing prover memory for constrained devices.
Linear Prover Time Unlocks Practical Zero-Knowledge Proof Scalability
A new ZKP argument system achieves optimal linear prover time, dramatically lowering the cost barrier for large-scale verifiable computation.
Succinct State Proofs Decouple Verification from State Bloat
A novel polynomial commitment scheme enables constant-size cryptographic proofs of the entire blockchain state, resolving the critical state synchronization bottleneck and preserving decentralization.
FRI Proximity Tests Enable Transparent Logarithmic Data Availability Sampling
FRI-based Data Availability Sampling provides a transparent, post-quantum path to scalable light client verification with logarithmic communication overhead.
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.
Vector-Code Commitments Unlock Transparent Logarithmic-Time Zero-Knowledge Proof Verification
A new Vector-Code Commitment scheme uses algebraic codes to create transparent, logarithmic-time verifiable proofs, radically improving ZKP scalability.
Linear-Time Prover SNARK with Constant Proof Size Achieves ZKP Optimality
Samaritan introduces a multilinear polynomial commitment scheme that achieves the theoretical optimum: linear prover time and constant proof size for scalable verifiable computation.
Dynamic Vector Commitments Enable Sublinear State Updates and Stateless Clients
A new algebraic commitment primitive achieves sublinear state updates, fundamentally solving the efficiency bottleneck for large-scale stateless blockchain architecture.
