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ICLR 2024 — Best Papers & Talks (Benchmarks, Reasoning & Agents) — ft. Graham Neubig, Aman Sanger, Moritz Hardt)

Latent Space: The AI Engineer Podcast

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Challenging Data Norms: The ImageNOT Experiment

This chapter explores the ImageNOT experiment, which contrasts with traditional data replication by creating a dataset that, while mimicking the scale of ImageNet, varies significantly in content quality. The analysis reveals that model performance rankings remain consistent even when using less structured data, challenging the need for meticulous data annotations. Additionally, it discusses the evolution towards multitask and dynamic benchmarks in the context of AI's transition from the ImageNet era to a polymorphic phase.

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