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Dictionary Learning

Dictionary Learning is an important problem in multiple areas, ranging from computational neuroscience, machine learning, to computer vision and image processing. The general goal is to find a good basis for given data. More formally, in the Dictionary Learning problem, also known as sparse coding, we are given samples of a random vector $y\in\mathbb{R}^n$, of the form $y=Ax$ where $A$ is some unknown matrix in $\mathbb{R}^{n×m}$, called dictionary, and $x$ is sampled from an unknown distribution over sparse vectors. The goal is to approximately recover the dictionary $A$.

Source: Polynomial-time tensor decompositions with sum-of-squares

Papers

Showing 125 of 823 papers

TitleStatusHype
Improving Dictionary Learning with Gated Sparse AutoencodersCode3
HyperSteer: Activation Steering at Scale with HypernetworksCode2
Monet: Mixture of Monosemantic Experts for TransformersCode2
Identifying Functionally Important Features with End-to-End Sparse Dictionary LearningCode2
SINDy-RL: Interpretable and Efficient Model-Based Reinforcement LearningCode2
Deep TEN: Texture Encoding NetworkCode2
Decomposing MLP Activations into Interpretable Features via Semi-Nonnegative Matrix FactorizationCode1
DB-KSVD: Scalable Alternating Optimization for Disentangling High-Dimensional Embedding SpacesCode1
Towards Understanding the Nature of Attention with Low-Rank Sparse DecompositionCode1
Dynamic Dictionary Learning for Remote Sensing Image SegmentationCode1
Efficient Dictionary Learning with Switch Sparse AutoencodersCode1
Measuring Progress in Dictionary Learning for Language Model Interpretability with Board Game ModelsCode1
GroupCDL: Interpretable Denoising and Compressed Sensing MRI via Learned Group-Sparsity and Circulant AttentionCode1
A Concept-Based Explainability Framework for Large Multimodal ModelsCode1
SC-MIL: Sparsely Coded Multiple Instance Learning for Whole Slide Image ClassificationCode1
Combating the Curse of Multilinguality in Cross-Lingual WSD by Aligning Sparse Contextualized Word RepresentationsCode1
A Personalized Zero-Shot ECG Arrhythmia Monitoring System: From Sparse Representation Based Domain Adaption to Energy Efficient Abnormal Beat Detection for Practical ECG SurveillanceCode1
Vector Quantisation for Robust SegmentationCode1
Decomposed Linear Dynamical Systems (dLDS) for learning the latent components of neural dynamicsCode1
Poisson2Sparse: Self-Supervised Poisson Denoising From a Single ImageCode1
Mixed noise reduction via sparse error constraint representation of high frequency image for wildlife imageCode1
Gabor is Enough: Interpretable Deep Denoising with a Gabor Synthesis Dictionary PriorCode1
Sensing Theorems for Unsupervised Learning in Linear Inverse ProblemsCode1
Attribute Group Editing for Reliable Few-shot Image GenerationCode1
A Structured Dictionary Perspective on Implicit Neural RepresentationsCode1
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