Al.Ste | Expand

254 posts

Al.Ste | Expand

Al.Ste | Expand

@AleyOfEs

@ExpandZK Community Manager

Katılım Mart 2023
78 Takip Edilen50 Takipçiler
Al.Ste | Expand retweetledi
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Expand@Expandzk·
Hermes Agent is one of the first projects making AI agents actually feel usable. As agents start handling browsing, execution, accounts, and sensitive data, privacy infra becomes unavoidable. Cool to see Expand supporting this new wave of agent products early.
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Expand@Expandzk·
We’re excited to partner with @qubetics 🤝 A next-gen Layer 1 unifying blockchains into one seamless network built for real-world use Highlights: • Non-custodial multichain wallet • Chain abstraction Mainnet is live. Building the future of decentralized private Web3 together
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Expand@Expandzk·
AI is getting smarter by consuming more data, but the Meta and Reddit data debates show the more it sees, the less people trust it. Expand flips the model: use data without exposing it, prove without revealing. The future of AI runs on proof, not access. #AI #zk #Expand
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Expand@Expandzk·
The last month at #ExpandZK we have: – Partnered with @DCodex_Official to push AI-driven on-chain finance (MEV, arbitrage, autonomous systems) – Joined forces with @delphiai_lab to bring prediction markets + probabilistic intelligence on-chain – Collaborated with @SYZ_Community to support scalable, no-code Web3 infrastructure – Continued work with @ChainAware on AI agents, AML analytics, and portfolio optimization At the same time, we’ve been doubling down on the bigger narrative: AI is evolving from passive models → autonomous agents From generating text → executing actions From transparency → verifiability (ZK + MPC) The future is agentic, on-chain, and privacy-preserving. More coming soon.
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Expand@Expandzk·
We’re happy to announce our partnership with @DCodex_Official DCodex is an AI-driven on-chain fintech platform building next-generation DeFi infrastructure. By combining advanced machine learning, MEV strategies, and automated arbitrage systems, it delivers transparent, high-performance trading and yield generation directly on-chain. With a strong focus on autonomous trading networks and self-evolving AI models, DCodex is evolving into a full-stack DeFi powerhouse: built for scalability, efficiency, and real-time market intelligence. Their approach to multi-wallet risk isolation and verifiable on-chain performance enhances security and trust, making them a key player in high-frequency crypto markets. Together, ExpandZK × DCodex are pushing the boundaries of intelligent, scalable, and secure decentralized finance.
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Delphi AI
Delphi AI@delphiai_lab·
We’re excited to partner with @Expandzk ExpandZK is building a trustless authentication layer for AI agents using zero-knowledge proofs—enabling secure access to private and off-chain data without compromising privacy. A new standard for verifiable, autonomous intelligence 🔐
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Expand@Expandzk·
ExpandZK × @delphiai_lab We’ve partnered with Delphi AI, a platform that aggregates crowd forecasts across policy, crypto, stocks, and financial events. Using token-based incentives and transparent market mechanisms, Delphi turns market sentiment into actionable probabilistic signals. Key features: 🧠 Diverse markets 🤖 AI feed 📊 Transparent pricing 🔗 Data & integrations ⚡️ News integration 👥 Social-based insights Explore →@delphiai_lab
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Expand@Expandzk·
Partnering with @SYZ_Community, a Web3 ecosystem built on the Syzyky ($SYZ) blockchain, combining EVM compatibility, fast transactions, and low fees to make decentralized building truly accessible. With no-code deployment, creators and businesses can launch tokens, dApps, and real use cases across DeFi, NFTs, and gaming without technical barriers. Together, we’re pushing intelligent on-chain generation into a future that is faster, simpler, safe and community-driven. 🔥 Creation is becoming infrastructure. 🤝
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Al.Ste | Expand retweetledi
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Expand@Expandzk·
OpenClaw-like systems point to where AI is heading. It is no longer just answering questions, but acting as a persistent digital agent that can read accounts, call tools, and execute tasks on your behalf. More like a computer that is always on, and can move on its own. But this changes the problem. In the past, security meant restricting access. Now you have already given that access away. So what does protection look like? It may not be about limiting what agents can access, but about allowing them to operate without needing full visibility into your data. They do not need to know your balance, only that it is sufficient. They do not need your identity, only a proof that you are you. In the agent era, privacy is not just about hiding. It is about proving without revealing. This is the direction we are exploring at #Expand.
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Expand@Expandzk·
Excited to announce our collaboration with @ChainAware! 🚀 Teaming up with ChainAware on AI-powered Web3 agents for prediction MCPs, mathematically optimized portfolio construction, real-time AML (98% accuracy), and behavioral analytics to boost DApp strategies. Stay tuned for what's next!
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Expand@Expandzk·
Multi-party computation + AI agents = collective decision-making without exposing private inputs Governance doesn’t need transparency everywhere. It needs verifiability where it matters.
vitalik.eth@VitalikButerin

"AI becomes the government" is dystopian: it leads to slop when AI is weak, and is doom-maximizing once AI becomes strong. But AI used well can be empowering, and push the frontier of democratic / decentralized modes of governance. The core problem with democratic / decentralized modes of governance (including DAOs on ethereum) is limits to human attention: there are many thousands of decisions to make, involving many domains of expertise, and most people don't have the time or skill to be experts in even one, let alone all of them. The usual solution, delegation, is disempowering: it leads to a small group of delegates controlling decision-making while their supporters, after they hit the "delegate" button, have no influence at all. So what can we do? We use personal LLMs to solve the attention problem! Here are a few ideas: ## Personal governance agents If a governance mechanism depends on you to make a large number of decisions, a personal agent can perform all the necessary votes for you, based on preferences that it infers from your personal writing, conversation history, direct statements, etc. If the agent is (i) unsure how you would vote on an issue, and (ii) convinced the issue is important, then it should ask you directly, and give you all relevant context. ## Public conversation agents Making good decisions often cannot come from a linear process of taking people's views that are based only on their own information, and averaging them (even quadratically). There is a need for processes that aggregate many people's information, and then give each person (or their LLM) a chance to respond *based on that*. This includes: * Inferring and summarizing your own views and converting them into a format that can be shared publicly (and does not expose your private info) * Summarizing commonalities between people's inputs (expressed as words), similar to the various LLM+pol.is ideas ## Suggestion markets If a governance mechanism values "high-quality inputs" of any type (this could be proposals, or it could even be arguments), then you can have a prediction market, where anyone can submit an input, AIs can bet on a token representing that input, and if the mechanism "accepts" the input (either accepting the proposal, or accepting it as a "unit" of conversation that it then passes along to its participant), it pays out $X to the holders of the token. Note that this is basically the same as firefly.social/post/x/2017956… ## Decentralized governance with private information One of the biggest weaknesses of highly decentralized / democratic governance is that it does not work well when important decisions need to be made with secret information. Common situations: (i) the org engaging in adversarial conflicts or negotiations (ii) internal dispute resolution (iii) compensation / funding decisions. Typically, orgs solve this by appointing individuals who have great power to take on those tasks. But with multi-party computation (currently I've seen this done with TEEs; I would love to see at least the two-party case solved with garbled circuits vitalik.eth.limo/general/2020/0… so we can get pure-cryptographic security guarantees for it), we could actually take many people's inputs into account to deal with these situations, without compromising privacy. Basically: you submit your personal LLM into a black box, the LLM sees private info, it makes a judgement based on that, and it outputs only that judgement. You don't see the private info, and no one else sees the contents of your personal LLM. ## The importance of privacy All of these approaches involve each participant making use of much more information about themselves, and potentially submitting much larger-sized inputs. Hence, it becomes all the more important to protect privacy. There are two kinds of privacy that matter: * Anonymity of the participant: this can be accomplished with ZK. In general, I think all governance tools should come with ZK built in * Privacy of the contents: this has two parts. First, the personal LLM should do what it can to avoid divulging private info about you that it does not need to divulge. Second, when you have computation that combines multiple LLMs or multiple people's info, you need multi-party techniques to compute it privately. Both are important.

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Expand@Expandzk·
2025 was a defining year for ExpandZK. 🚀 We emerged as a trustless authentication and verification layer for AI agents, payments, stablecoins, and real-world assets — turning “verify, don’t trust” into production infrastructure.
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Expand@Expandzk·
ExpandZK 🤝 Joinda Quest ExpandZK is teaming up with @joineco, the quest layer powering creator and company communities across web2 and web3. Join our hub, complete quests, and help shape the future of trustless ZK-powered data for AI agents and dApps: joindaquest.io/signup?ref=EXP… Supporters who sign up and stay active in quests will be first in line for upcoming campaigns, rewards, and integrations.
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Expand@Expandzk·
Meta just acquired autonomous AI agent platform #Manus, signaling a shift from dialogue to execution-oriented AI systems in 2026. As agents move toward long-running, multi-step workflows that interact with external systems and assets, authenticated, privacy-preserving data access becomes foundational. Expand builds that layer. #Meta #ZK
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Expand@Expandzk·
“The Future of Crypto” is multi‑chain, multi‑agent, and more human than ever. Join our next X Space, $200 XZK up for grabs! Guests: @hypergpt — the AI apps marketplace where builders and users tap into 1000+ agents and AI tools in one place. @4aibsc — decentralized AI network where anyone can request, build and deploy AI agents. @Whiffin_cc — Web3‑powered e‑cigarette ecosystem turning real‑world actions into on‑chain rewards. 🗓 Tuesday, Dec 23, 2025 ⏰ 4:00 PM UTC x.com/i/spaces/1mygn… Turn on reminders and let’s map out what AI agents + crypto look like in 2026.
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