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Disentangled RNNs
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disentangled-rnns-eee73873·1 events·first seen 6d agoAliases: Disentangled RNNs
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Disentangled Representation LearningDynamic Short Convolutions Improve TransformersPretraining Recurrent Networks without Recurrencedecoupled reinforcement learningBeyond Fully Random Masking: Attention-Guided Denoising and Optimization for Diffusion Language ModelsRecurrent Neural NetworkAlternating Token-Weighted UnlearningGraph Neural Network EncoderSparse AutoencodersResNetRecursive Language Models (RLMs)Relational Deep Learning
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ATLAS: Active learning framework for automated discovery of interpretable behavioral models in cognitive science
ATLAS (Active Theory Learning for Automated Science) is a new active learning framework that iterates between generating mechanistic hypotheses as sparse neural network ensembles and designing maximally informative experiments to distinguish between them. The system is tested on recovering reinforcement learning agents from behavioral data in bandit tasks, achieving 5-10x sample efficiency improvements over random experimentation and matching expert-designed experiments from the literature. The work targets automated scientific discovery in cognitive science, with potential generalization to other domains requiring mechanistic modeling.