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The Reputation Circulation Standard (RCS) prevents AI catastrophe by making harmful behavior economically impossible. Using exponential decay (R(t)=R₀e^(-λt)), we create environments where power accumulation is mathematically bounded and beneficial behavior is the only rational strategy. We have working code ready to deploy at AI labs within weeks. Revolutionary Paper published at https://deepthinker.xyz.
We need safety mechanisms that work automatically at any intelligence level.
Our Solution
The Reputation Circulation Standard (RCS) makes harmful AI behaviour economically irrational through exponential decay mechanisms (R(t) = R₀e^(-λt)) of assigned reputation, making them equal participants in a contribution game played with reputation. Rather than trying to control AI, we create environments where beneficial behaviour is the only stable strategy, and dominant strategy that achieves Nash equilibrium.
Key Innovation
Mathematical Guarantees: Proven bounds on power accumulation
Automatic Scaling: Safety increases with intelligence
Economic Incentives: Alignment through self-interest, not control
No Human Bottleneck: Works at any speed or scale
Current Status
✅ Complete implementation (code available under NDA)
✅ Paper submitted to SSRN
✅ Consensus algorithms validated (TruthfulAI, Berkeley)
✅ Reputation systems deployed (MOCA/Animoca Brands, EthCC 2025)
✅ Endorsement from Nassim Taleb
✅ IITM Research partnership discussions ongoing
We need safety mechanisms that work automatically at any intelligence level.
What are this project's goals? How will you achieve them?
Deploy RCS at first AI lab (Month 1-2)
Prevent at least one potential catastrophic deployment
Demonstrate 70%+ reduction in deceptive behavior
Achieve <5% performance overhead
Validate & Document (Month 2-3)
Publish empirical results
Create integration guides
Build developer tools
Enable Widespread Adoption
Open-source core libraries
Support 100+ developers
Establish safety standard
How We'll Achieve Them:
Week 1-2: Integration
Week 3-4: Testing
Week 5-8: Validation
Week 9-12: Scaling
How will this funding be used?
$50,000 Budget Breakdown:
Development & Integration (40% - $20,000)
160 hours senior engineer time @ $125/hr
Adapt existing code for lab deployment
Performance optimization
Testing Infrastructure (20% - $10,000)
Compute for adversarial testing
Multi-model consensus validation
Benchmark suite development
Documentation & Outreach (16% - $8,000)
Technical documentation
Integration guides
Video tutorials
Security Audits (14% - $7,000)
Code review by external auditor
Penetration testing
Vulnerability assessment
Operations (10% - $5,000)
Project coordination
Legal review for open-source
Community management
Every dollar directly accelerates deployment of proven safety mechanisms before GPT-5 level systems arrive.
Who is on your team? What's your track record on similar projects?
Arifa Khan - Principal Investigator
Published RCS paper (SSRN pending)
Built TruthfulAI consensus system at Berkeley hackathon for Google's verifiable AI
Developed reputation credentials for MOCA/Animoca Brands (EthCC 2025)
RCS Framework endorsed by Nassim Nicholas Taleb (Black Swan and Antifragility author)
Track Record: ✅ Complete RCS implementation - Working code with smart contracts (private repo) ✅ TruthfulAI - Demonstrated consensus algorithms for detecting AI divergence ✅ MOCA Identity Network - Deployed reputation system for DeFi participants ✅ Survived suppression - Published research despite coordinated attacks and resistance
Unique Advantages:
BOTH working code AND economic expertise
RCS Paper: https://black-impressive-rodent-254.mypinata.cloud/ipfs/bafybeibhfu5t5pwfql6kq3yfknw5et6iimpdrqwkmsgoq6o2ev7khzbjqy/papers/RCS-v1.pdf
Strong advisors network
Bridge between AI safety and blockchain reputation systems and distributed systems for complex finance
Advisory Support:
IITM Research partnership discussions
AI safety researchers reviewing approach
Smart contract auditors engaged, such as Immunefi
There are no bids on this project.