We asked @_seanli of @MagicNewton about the concept of a trusted agent and untrusted agent. "I like to describe trusted agents through analogies" "It's like a self-driving vehicle where you set a destination and parameters like speed, and the car follows through to get you from point A to point B." "In the middle, you want a secure computer that does the task based on your parameters, and no one should be able to tamper with that" "Everything is recorded in the verifiable part, every turn and action is recorded like in a flight black box with a notarized log where you can check if they did the correct actions afterwards." 🦣 "That's the ZK proof part, and underneath we use @SuccinctLabs and @RiscZero for the infrastructure."
NEW EP: Sean Li on Application Abstraction, Verifiable Agents, and AI’s Trust Problem A new UX for onchain interactions is being built before our eyes. In today's episode of Mammoth May 🦣, @ayyyeandy sits down with @_seanli of @MagicNewton to explore: > Why 80% of DApp Interfaces Will Disappear > How To Build AI Agents That Can't Go Rogue > Cryptographic Proofs vs. Traditional Trust Models > From Embedded Wallets to Verifiable Agents > The Future of Natural Language Crypto UX > Why Web3 Infra Ousts Web2 for AI Full episode links below. Timestamps: 00:00 Intro 01:13 Mantle Ad 01:54 Sean’s Music to Tech Journey 07:16 Embedded Wallets & Starting Magic 14:54 AI x Crypto Landscape 19:11 Trusting AI Agents 24:46 Agent to Agent Interactions 28:49 Omni Ad 29:17 UX Abstraction Evolution 32:51 Newton’s Value Accrual Model 37:04 Trusting Tools With Your Capital 40:25 Enforcing Agent Guardrails 44:20 AI Ethics 48:32 Newton’s Upcoming Roadmap 53:32 Privacy in AI 58:19 Future of Newton
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