activity
20162026
most citedDiscrete Event, Continuous Time RNNs

30 citations · 80 across the 30 of their papers we have counts for

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Showing 2024Show all

10 papers · 1 filter

cs.LG2024

Can foundation models actively gather information in interactive environments to test hypotheses?

Danny P. Sawyer, Nan Rosemary Ke, Hubert Soyer +9

Foundation models excel at single-turn reasoning but struggle with multi-turn exploration in dynamic environments, a requirement for many real-world challenges. We evaluated these…

cs.LG2024

Improving Discrete Optimisation Via Decoupled Straight-Through Estimator

Rushi Shah, Mingyuan Yan, Michael Curtis Mozer +1

The Straight-Through Estimator (STE) is the dominant method for training neural networks with discrete variables, enabling gradient-based optimisation by routing gradients through…

cs.CL2024

Racing Thoughts: Explaining Contextualization Errors in Large Language Models

Michael A. Lepori, Michael C. Mozer, Asma Ghandeharioun

The profound success of transformer-based language models can largely be attributed to their ability to integrate relevant contextual information from an input sequence in order to…

cs.CV20243 cited

Aligning Machine and Human Visual Representations across Abstraction Levels

Lukas Muttenthaler, Klaus Greff, Frieda Born +6

Deep neural networks have achieved success across a wide range of applications, including as models of human behavior and neural representations in vision tasks. However, neural ne…

cs.CV2024

Zero-Shot Object-Centric Representation Learning

Aniket Didolkar, Andrii Zadaianchuk, Anirudh Goyal +4

The goal of object-centric representation learning is to decompose visual scenes into a structured representation that isolates the entities. Recent successes have shown that objec…

cs.AI20241 cited

AI-Assisted Generation of Difficult Math Questions

Vedant Shah, Dingli Yu, Kaifeng Lyu +8

Current LLM training positions mathematical reasoning as a core capability. With publicly available sources fully tapped, there is unmet demand for diverse and challenging math que…