most citedAre Emergent Abilities of Large Language Models a Mirage?

133 citations · 192 across the 13 of their papers we have counts for

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cs.LG2024

In-Context Learning of Energy Functions

Rylan Schaeffer, Mikail Khona, Sanmi Koyejo

In-context learning is a powerful capability of certain machine learning models that arguably underpins the success of today's frontier AI models. However, in-context learning is c…

cs.LG20241 cited

Quantifying Variance in Evaluation Benchmarks

Lovish Madaan, Aaditya K. Singh, Rylan Schaeffer +5

Evaluation benchmarks are the cornerstone of measuring capabilities of large language models (LLMs), as well as driving progress in said capabilities. Originally designed to make c…

cs.LG2024

Towards an Improved Understanding and Utilization of Maximum Manifold Capacity Representations

Rylan Schaeffer, Victor Lecomte, Dhruv Bhandarkar Pai +10

Maximum Manifold Capacity Representations (MMCR) is a recent multi-view self-supervised learning (MVSSL) method that matches or surpasses other leading MVSSL methods. MMCR is intri…

cs.LG202412 cited

Is Model Collapse Inevitable? Breaking the Curse of Recursion by Accumulating Real and Synthetic Data

Matthias Gerstgrasser, Rylan Schaeffer, Apratim Dey +11

The proliferation of generative models, combined with pretraining on web-scale data, raises a timely question: what happens when these models are trained on their own generated out…

cs.LG202326 cited

Self-Supervised Learning of Representations for Space Generates Multi-Modular Grid Cells

Rylan Schaeffer, Mikail Khona, Tzuhsuan Ma +3

To solve the spatial problems of mapping, localization and navigation, the mammalian lineage has developed striking spatial representations. One important spatial representation is…

cs.LG20234 cited

Deceptive Alignment Monitoring

Andres Carranza, Dhruv Pai, Rylan Schaeffer +2

As the capabilities of large machine learning models continue to grow, and as the autonomy afforded to such models continues to expand, the spectre of a new adversary looms: the mo…