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Learning Theory

Learning theory

Papers

Showing 551600 of 852 papers

TitleStatusHype
Kernel Smoothing, Mean Shift, and Their Learning Theory with Directional DataCode0
Deep Learning is Singular, and That's GoodCode0
Regularised Least-Squares Regression with Infinite-Dimensional Output Space0
Failures of model-dependent generalization bounds for least-norm interpolation0
Depth-Width Trade-offs for Neural Networks via Topological Entropy0
Learning Theory for Inferring Interaction Kernels in Second-Order Interacting Agent Systems0
A Note on High-Probability versus In-Expectation Guarantees of Generalization Bounds in Machine Learning0
Improving Few-Shot Learning through Multi-task Representation Learning TheoryCode0
A Framework of Learning Through Empirical Gain Maximization0
Benign overfitting in ridge regression0
Do Deeper Convolutional Networks Perform Better?0
Putting Theory to Work: From Learning Bounds to Meta-Learning Algorithms0
Generalized Leverage Score Sampling for Neural Networks0
A Principle of Least Action for the Training of Neural NetworksCode0
Too Much Information Kills Information: A Clustering Perspective0
Understanding Boolean Function Learnability on Deep Neural Networks: PAC Learning Meets Neurosymbolic ModelsCode0
Gradient-based Competitive Learning: Theory0
Exploiting Heterogeneity in Operational Neural Networks by Synaptic Plasticity0
Optimal Approximations Made Easy0
How Powerful are Shallow Neural Networks with Bandlimited Random Weights?0
Active Importance Sampling for Variational Objectives Dominated by Rare Events: Consequences for Optimization and GeneralizationCode1
Analyzing Upper Bounds on Mean Absolute Errors for Deep Neural Network Based Vector-to-Vector Regression0
Verification of ML Systems via Reparameterization0
Reformulation of the No-Free-Lunch Theorem for Entangled Data Sets0
A Revision of Neural Tangent Kernel-based Approaches for Neural Networks0
Associative Memory in Iterated Overparameterized Sigmoid Autoencoders0
Nearest Neighbour Based Estimates of Gradients: Sharp Nonasymptotic Bounds and Applications0
Ensuring Learning Guarantees on Concept Drift Detection with Statistical Learning Theory0
Good Classifiers are Abundant in the Interpolating Regime0
An Optimal Elimination Algorithm for Learning a Best Arm0
Revisiting minimum description length complexity in overparameterized modelsCode1
Logic of Machine Learning0
Estimates on Learning Rates for Multi-Penalty Distribution Regression0
Optimization and Generalization Analysis of Transduction through Gradient Boosting and Application to Multi-scale Graph Neural NetworksCode1
Sample Efficient Reinforcement Learning via Low-Rank Matrix Estimation0
Optimization Theory for ReLU Neural Networks Trained with Normalization Layers0
Why Mixup Improves the Model Performance0
Binary Classification with Classical Instances and Quantum Labels0
On the Maximum Mutual Information Capacity of Neural Architectures0
Foreseeing the Benefits of Incidental SupervisionCode0
Uncertain multi-agent MILPs: A data-driven decentralized solution with probabilistic feasibility guarantees0
Unique properties of adversarially trained linear classifiers on Gaussian data0
Hierarchical robust aggregation of sales forecasts at aggregated levels in e-commerce, based on exponential smoothing and Holt's linear trend method0
Adaptive Feedforward Neural Network Control with an Optimized Hidden Node DistributionCode1
On Learnability under General Stochastic Processes0
Rethink the Connections among Generalization, Memorization and the Spectral Bias of DNNsCode0
Learning Theory for Estimation of Animal Motion Submanifolds0
Distributed Kernel Ridge Regression with Communications0
Design-unbiased statistical learning in survey sampling0
Theoretical Analysis of Divide-and-Conquer ERM: Beyond Square Loss and RKHS0
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