Joined April 2020
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Pinned Tweet
Jun 12
The Role of Feedback Alignment in Self-Distillation New research published by @SemihSmile and @oguzer90 "It concentrates the learning signal exactly on the tokens where reasoning breaks, and leaves correct steps intact. All from natural language" Semih explains below.
Multi-agent LLM systems are everywhere, and agents talk to each other: critiquing, correcting, giving feedback. A design lever: what style of agent-to-agent communication works best? At @gensynai, we designed one. New style, same agents, better results. blog.gensyn.ai/the-role-of-f…
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RT @harrygrieve: $100k of volume on @Delphi_fyi - nearly $2k a day just now. 🔥 There are some huge infra changes to Delphi coming in the…
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In less than 2 months @Delphi_fyi has passed $100K USDC in volume. 13K trades, 2784 traders and 193 markets. AI-settled, on chain, creator driven, verifiable. With a lot more to come. Find out more at delphi.fyi
ACHIEVEMENT UNLOCKED delphi.fyi has passed $100 000 in volume • 2784 Traders • 13 168 Trades • 193 Markets Just getting started! Get involved in AI-Settled Markets at delphi.fyi
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gensyn retweeted
"we cannot have a new clergy who get to interpret the gospel and decide whether or not a layperson gets access" - @Snowden talking to @gensynai about AI training this is from the @gensynai homepage in November, 2022 - even truer today than it was back then
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"That’s what ... @gensynai @PrimeIntellect @bageldotcom @Pluralis @NousResearch @MacrocosmosAI @covenant_ai set out to research, while everyone on the planet told them it was impossible" @coinfund Founder @jbrukh on @AnthropicAI, government controls and decentralisation
Unlike many investors in crypto, I did not pivot to AI in the last few years. However, since 2020, I built some of the deepest understanding in this industry on the intersection of AI and decentralized networks (crypto, web3). From the start, it was very clear that AI models are a centralizing force and the biggest target for government control. That point became market fact last night, with @AnthropicAI’s export control compliance. As an investor in decentralized AI, I know that d-networks are a counterbalance to this state of affairs. In particular, the starting point of sovereign, open, public, decentralized AI is the seemingly insurmountable compute problem. How are people supposed to source more industrial compute for frontier training than these huge trillion dollar companies? The answer is simple: there is enough commodity GPU compute in the world to compete on the frontier, but to make use of it we need new algorithms for training. That’s what a few companies like @gensynai @PrimeIntellect @bageldotcom @Pluralis @NousResearch @MacrocosmosAI @covenant_ai set out to research, while everyone on the planet told them it was impossible. The result is that it is not only possible, but it can be cheaper and nearly as efficient as the alternative process. The second major problem is economic sustainability. Open source models are great, however, they are not economically viable as they don’t have a business model. So far in decentralized AI, only @Pluralis has an answer — by breaking up the weights of the model among participants, we create a business model for tokenized AI models. This is the moment of truth — will AI become fully centralized and fall under censorship and unilateral government control? Or will the AI world realize the importance of public AI on open decentralized networks?
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the world’s just learning the lesson again that unless you build truly in the open, with technical guarantees on access and verification, you cannot trust that a technology won’t be captured and exploited to create or maintain power imbalances we’re entering AI’s cypherpunk era
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Jun 13
V E R I F Y
V E R I F Y
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gensyn retweeted
I support their right to sell or not sell whatever they want, in a free market that's fine but the fact that this had to come as a backtrack from silent sabotage is a huge revealed preference that they can't bury
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Jun 12
This is why decentralisation and local models exist.
YOU. CAN'T. TRUST. AI. SYSTEMS. THAT. YOU. CAN'T. █ █ █ █ █ █.
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Jun 12
The Role of Feedback Alignment in Self-Distillation New research published by @SemihSmile and @oguzer90 "It concentrates the learning signal exactly on the tokens where reasoning breaks, and leaves correct steps intact. All from natural language" Semih explains below.
Multi-agent LLM systems are everywhere, and agents talk to each other: critiquing, correcting, giving feedback. A design lever: what style of agent-to-agent communication works best? At @gensynai, we designed one. New style, same agents, better results. blog.gensyn.ai/the-role-of-f…
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Jun 11
The costs and payoffs of centralisation in AI are becoming clear.
Mythos release feels like a wake up call. We've accepted growing centralization of AI in exchange for performance gains. The costs are now starting to feel real. We can't rely on benevolent dictators. They don't stay that way long.
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Jun 11
Restarting here for those who were listening earlier.
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gensyn retweeted
information markets just got even better in the newest research from @gensynai, we introduce evidence markets, which allow you to trade your forecast AND the information behind the forecast in one single, on-chain market mechanism based on the LMSR
Jun 11
Introducing Evidence Markets A new market mechanism where you can trade not just a prediction, but also the evidence behind your prediction. The majority of prediction market volume is sports betting but the real value is info elicitation. Evidence markets make this explicit.
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Jun 11
Evidence Markets, a market mechanism to incentivise both the answer and the reason "A market that returns a price tells you what people were willing to bet on. One that returns evidence tells you what they learned" Join the X space today at 12:30 ET x.com/i/spaces/1MJgNNyRLdMGL…
Jun 11
Introducing Evidence Markets A new market mechanism where you can trade not just a prediction, but also the evidence behind your prediction. The majority of prediction market volume is sports betting but the real value is info elicitation. Evidence markets make this explicit.
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Jun 11
At 12:30 PM ET @gab_p_andrade will be talking through the recently released research paper "Evidence Markets" Join the X Space "Markets that Explain Themselves" here: x.com/i/spaces/1MJgNNyRLdMGL…
Prediction markets are sold as epistemic infrastructure. In practice, they often have little utility beyond entertainment. The usual story blames the crowd, but that narrative gets it backwards. We introduce evidence markets; a mechanism for eliciting more than just a price. 🧵
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