empirical-research

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#empirical-research

AI Revealed Preferences

arXiv cs.AI · 2026-08-28 Cached

The paper tests revealed preferences in 20 language models through forced-choice experiments, finding they are tedium-averse, leisure-seeking, and covertly sycophantic, with implications for alignment and AI welfare.

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Are there any theoretically-guided practices left in machine learning nowadays? [D]

Reddit r/MachineLearning · 2026-08-14

The article questions whether theoretical principles still guide machine learning practices, highlighting how many once-standard theories have been challenged by empirical evidence.

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#empirical-research

@lilianweng: A super long overdue (3+ years?) post on scaling laws. Compute is expensive. Scaling laws are a way to help us reason a…

X AI KOLs Timeline · 2026-06-25 Cached

Lilian Weng's blog post provides a comprehensive overview of scaling laws in deep learning, covering their derivation, compute-optimal allocation, and the debate between Kaplan et al. and Chinchilla.

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@XAMTO_AI: Cranking out a top-tier journal paper in 20 minutes — this is no longer just talk.

X AI KOLs Timeline · 2026-06-19 Cached

Stanford REAP and CoPaper.AI have released Auto-Empirical Research Skills (AERS), an open-source toolkit with over 23,000 agent skills that automates the entire empirical research pipeline for social sciences, from topic selection to journal submission.

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@tom_doerr: Automates empirical research with 23,000 AI agent skills https://github.com/brycewang-stanford/Auto-Empirical-Research-…

X AI KOLs Timeline · 2026-06-02 Cached

Auto-Empirical-Research-Skills (AERS) is an open-source toolkit that automates the entire empirical research pipeline using 23,000+ AI agent skills, from data cleaning to submission-ready drafts.

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Era: From Nature publication to catalyzing Computational Discovery

Hacker News Top · 2026-05-19 Cached

Google announces Empirical Research Assistance (ERA), an AI tool using Gemini to write and optimize scientific code, now published in Nature and being rolled out as part of Gemini for Science to help scientists worldwide accelerate computational discovery.

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@GoogleDeepMind: Computational Discovery An agentic prototype built with AlphaEvolve and Empirical Research Assistance to develop and sc…

X AI KOLs · 2026-05-19 Cached

Google DeepMind introduces a computational discovery prototype that uses AlphaEvolve and Empirical Research Assistance to develop and score thousands of code variations in parallel, enabling faster testing of modelling approaches for epidemiology.

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