Zero-Knowledge Mechanisms: Private Commitment to Verifiably Honest Economic Rules
Cryptographic commitment to a hidden mechanism, verifiable via zero-knowledge proofs, enables trustless private economic systems.
Decentralized Commit-Reveal Protocol Eliminates MEV Transaction Ordering Exploits
A new commit-reveal scheme forces block producers to order transactions sight unseen, fundamentally eliminating information-based MEV.
Zero-Knowledge Mechanisms Enable Private Rules with Public Verifiability
This framework introduces a new cryptographic primitive that allows mechanism rules to remain secret while using ZKPs to publicly verify incentive compatibility and outcomes, removing the need for a trusted mediator.
Zero-Knowledge Mechanisms: Private Commitment, Verifiable Execution without Mediators
This research introduces a framework for committing to and executing mechanisms privately, leveraging zero-knowledge proofs to enable verifiable properties without disclosure.
Zero-Knowledge Proofs Enable Private, Verifiable Mechanism Commitment without Mediators
Zero-knowledge proofs enable verifiable commitment to hidden mechanisms, preserving proprietary information and eliminating trusted intermediaries from economic interactions.
Private Mechanism Design through Zero-Knowledge Commitments
This research introduces a novel framework for private mechanism design, enabling verifiable commitment to rules without revealing sensitive information or requiring trusted intermediaries.
Hidden Mechanisms with Zero-Knowledge Proofs for Private Verifiable Commitment
This research enables verifiable, private mechanism execution without mediators, leveraging zero-knowledge proofs to conceal rules while ensuring compliance.
Zero-Knowledge Mechanisms: Private Commitment and Verifiable Execution without Mediators
This research introduces a cryptographic framework enabling mechanism designers to commit to and run hidden mechanisms, leveraging zero-knowledge proofs to ensure verifiable properties and outcomes without disclosing proprietary information or relying on trusted intermediaries.
Zero-Knowledge Proofs Enable Private, Verifiable Mechanism Design without Mediators
This research introduces a framework for committing to and executing mechanisms privately, leveraging zero-knowledge proofs to ensure verifiability without revealing sensitive information.
