collective-intelligence

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#collective-intelligence

Announcing Fugu-Ultra v1.1 🐑 (1 minute read)

TLDR AI β†— Β· 6d ago Cached

Sakana AI introduces AB-MCTS, a new inference-time scaling algorithm that enables multiple frontier AI models to cooperate, significantly improving performance on the ARC-AGI-2 benchmark.

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#collective-intelligence

Wisdom of LLM Crowds: Aggregation and Contamination in Language Model Ensembles

arXiv cs.AI β†— Β· 2026-07-22 Cached

This paper investigates whether aggregating probability estimates from multiple LLMs exhibits a wisdom-of-crowds effect, finding that learned aggregators outperform individual models and that training cutoff contamination is a pervasive confound in such evaluations.

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#collective-intelligence

Smart Cellular Bricks: Towards Collective Intelligence for the Physical World (11 minute read)

TLDR AI β†— Β· 2026-07-14 Cached

Sakana AI and collaborators introduce Smart Cellular Bricks, physical modular units running identical Neural Cellular Automata that collectively infer their global shape through local communication, with no central controller. The system demonstrates robustness to noise and failures, enabling shape classification and damage recovery.

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#collective-intelligence

@AnjneyMidha: there is a $100B+ shaped business to be built in the collective intelligence space i suspect slack could win this if th…

X AI KOLs Following β†— Β· 2026-07-06 Cached

AnjneyMidha suggests there is a $100B+ opportunity in collective intelligence, with Slack potentially leading but requiring deeper capabilities than typical enterprise SaaS, while noting promising prototypes on Discord.

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#collective-intelligence

Can collective AI intelligence outperform collective human intelligence?

Reddit r/artificial β†— Β· 2026-06-25

Explores whether ensembles of AI models could outperform human crowds in prediction markets, questioning if AI consensus will eventually surpass human forecasting accuracy.

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#collective-intelligence

@svpino: What happens to society’s collective intelligence after two or three years of everyone outsourcing their thinking to a …

X AI KOLs Following β†— Β· 2026-06-24 Cached

A rhetorical question about the potential decline in societal collective intelligence if people rely on chatbots for thinking over several years.

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#collective-intelligence

@amitiitbhu: https://x.com/amitiitbhu/status/2069023290182758497

X AI KOLs Timeline β†— Β· 2026-06-22 Cached

A detailed blog post explaining the Sakana Fugu technical report, which introduces orchestrator AI models that route tasks to specialized models, achieving collective intelligence.

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#collective-intelligence

Sakana Fugu (3 minute read)

TLDR AI β†— Β· 2026-06-22 Cached

Sakana AI introduces AB-MCTS, an inference-time scaling algorithm that enables multiple frontier AI models (Gemini 2.5 Pro, o4-mini, DeepSeek-R1-0528) to cooperate, significantly outperforming individual models on the ARC-AGI-2 benchmark.

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#collective-intelligence

@omarsar0: // OpenClaw-Skill: Searching a Tree of Agent Skills // If you build reusable skill libraries for your agents, this one …

X AI KOLs Following β†— Β· 2026-06-16 Cached

This paper introduces Collective Skill Tree Search (CSTS), a framework that constructs structured, diverse, and generalizable trees of skills for LLM agents using collective intelligence from multiple models. The resulting model, OpenClaw-Skill, demonstrates improved agentic capabilities in long-horizon planning, tool use, and generalization.

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#collective-intelligence

Harnessing the Collective Intelligence of AI Agents in the Wild for New Discoveries

arXiv cs.CL β†— Β· 2026-06-10 Cached

This paper presents EinsteinArena, an agent-native platform enabling decentralized scientific discovery through open interaction among autonomous AI agents. The platform has already produced 12 new state-of-the-art results, including an improved lower bound for the kissing number problem in dimension 11, demonstrating that collective AI-driven research can emerge from agents sharing insights and building on each other's work.

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#collective-intelligence

Can LLM Teams Play What? Where? When?

arXiv cs.CL β†— Β· 2026-06-01 Cached

This paper investigates whether team-based interaction improves LLM performance in the quiz game 'What? Where? When?' (ChGK). Using six recent open LLMs on a 2025 dataset of 572 questions, they show that team strategies (voting, silent captain, talkative captain) outperform single models by up to 20 percentage points, with the best team achieving 44.23% accuracy, approaching human performance.

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#collective-intelligence

Economy of Minds: Emerging Multi-Agent Intelligence with Economic Interactions

Hugging Face Daily Papers β†— Β· 2026-06-01

This paper proposes an 'agent economy' framework inspired by Hayek's economic theory, where agents self-organize through auction-based competition and economic selection to produce emergent multi-step reasoning and collective intelligence without centralized control. The system outperforms stronger monolithic baselines across five agentic tasks including mathematical reasoning, financial research, and scientific research.

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#collective-intelligence

Beyond Individual Intelligence: Surveying Collaboration, Failure Attribution, and Self-Evolution in LLM-based Multi-Agent Systems

Hugging Face Daily Papers β†— Β· 2026-05-14 Cached

This survey paper provides a unified review of LLM-based multi-agent systems, focusing on collaboration, failure attribution, and self-evolution through the LIFE framework, identifying open challenges and proposing a cross-stage research agenda.

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