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Journal of Machine Learning Research
Issue 21
Journal of Machine Learning Research
(JMLR)
-
Issue 21
论文列表
点击这里查看 Journal of Machine Learning Research 的JCR分区、影响因子等信息
卷期号:
Issue 21
发布时间:
卷期年份:
2016
卷期官网:
本期论文列表
LLORMA: Local Low-Rank Matrix Approximation.
原文链接
谷歌学术
必应学术
百度学术
Extracting PICO Sentences from Clinical Trial Reports using Supervised Distant Supervision.
原文链接
谷歌学术
必应学术
百度学术
Convex Regression with Interpretable Sharp Partitions.
原文链接
谷歌学术
必应学术
百度学术
Feature-Level Domain Adaptation.
原文链接
谷歌学术
必应学术
百度学术
An Error Bound for L1-norm Support Vector Machine Coefficients in Ultra-high Dimension.
原文链接
谷歌学术
必应学术
百度学术
A General Framework for Constrained Bayesian Optimization using Information-based Search.
原文链接
谷歌学术
必应学术
百度学术
MLlib: Machine Learning in Apache Spark.
原文链接
谷歌学术
必应学术
百度学术
Blending Learning and Inference in Conditional Random Fields.
原文链接
谷歌学术
必应学术
百度学术
Machine Learning in an Auction Environment.
原文链接
谷歌学术
必应学术
百度学术
Equivalence of Graphical Lasso and Thresholding for Sparse Graphs.
原文链接
谷歌学术
必应学术
百度学术
Penalized Maximum Likelihood Estimation of Multi-layered Gaussian Graphical Models.
原文链接
谷歌学术
必应学术
百度学术
Distributed Coordinate Descent Method for Learning with Big Data.
原文链接
谷歌学术
必应学术
百度学术
On Lower and Upper Bounds in Smooth and Strongly Convex Optimization.
原文链接
谷歌学术
必应学术
百度学术
On the Complexity of Best-Arm Identification in Multi-Armed Bandit Models.
原文链接
谷歌学术
必应学术
百度学术
Operator-valued Kernels for Learning from Functional Response Data.
原文链接
谷歌学术
必应学术
百度学术
On the Estimation of the Gradient Lines of a Density and the Consistency of the Mean-Shift Algorithm.
原文链接
谷歌学术
必应学术
百度学术
Refined Error Bounds for Several Learning Algorithms.
原文链接
谷歌学术
必应学术
百度学术
Estimating Diffusion Networks: Recovery Conditions, Sample Complexity and Soft-thresholding Algorithm.
原文链接
谷歌学术
必应学术
百度学术
The Teaching Dimension of Linear Learners.
原文链接
谷歌学术
必应学术
百度学术
Choice of V for V-Fold Cross-Validation in Least-Squares Density Estimation.
原文链接
谷歌学术
必应学术
百度学术
Compressed Gaussian Process for Manifold Regression.
原文链接
谷歌学术
必应学术
百度学术
Volumetric Spanners: An Efficient Exploration Basis for Learning.
原文链接
谷歌学术
必应学术
百度学术
Extremal Mechanisms for Local Differential Privacy.
原文链接
谷歌学术
必应学术
百度学术
Multivariate Spearman's rho for Aggregating Ranks Using Copulas.
原文链接
谷歌学术
必应学术
百度学术
Stereo Matching by Training a Convolutional Neural Network to Compare Image Patches.
原文链接
谷歌学术
必应学术
百度学术
Bayesian Decision Process for Cost-Efficient Dynamic Ranking via Crowdsourcing.
原文链接
谷歌学术
必应学术
百度学术
Mutual Information Based Matching for Causal Inference with Observational Data.
原文链接
谷歌学术
必应学术
百度学术
Multiple Output Regression with Latent Noise.
原文链接
谷歌学术
必应学术
百度学术
Multi-Objective Markov Decision Processes for Data-Driven Decision Support.
原文链接
谷歌学术
必应学术
百度学术
Minimax Adaptive Estimation of Nonparametric Hidden Markov Models.
原文链接
谷歌学术
必应学术
百度学术
Learning Taxonomy Adaptation in Large-scale Classification.
原文链接
谷歌学术
必应学术
百度学术
Bootstrap-Based Regularization for Low-Rank Matrix Estimation.
原文链接
谷歌学术
必应学术
百度学术
Nonparametric Network Models for Link Prediction.
原文链接
谷歌学术
必应学术
百度学术
Bayesian group factor analysis with structured sparsity.
原文链接
谷歌学术
必应学术
百度学术
On the Characterization of a Class of Fisher-Consistent Loss Functions and its Application to Boosting.
原文链接
谷歌学术
必应学术
百度学术
Noisy Sparse Subspace Clustering.
原文链接
谷歌学术
必应学术
百度学术
CVXPY: A Python-Embedded Modeling Language for Convex Optimization.
原文链接
谷歌学术
必应学术
百度学术
GenSVM: A Generalized Multiclass Support Vector Machine.
原文链接
谷歌学术
必应学术
百度学术
Subspace Learning with Partial Information.
原文链接
谷歌学术
必应学术
百度学术
Distribution-Matching Embedding for Visual Domain Adaptation.
原文链接
谷歌学术
必应学术
百度学术
OLPS: A Toolbox for On-Line Portfolio Selection.
原文链接
谷歌学术
必应学术
百度学术
Improving Structure MCMC for Bayesian Networks through Markov Blanket Resampling.
原文链接
谷歌学术
必应学术
百度学术
Composite Multiclass Losses.
原文链接
谷歌学术
必应学术
百度学术
Analysis of Classification-based Policy Iteration Algorithms.
原文链接
谷歌学术
必应学术
百度学术
A Well-Conditioned and Sparse Estimation of Covariance and Inverse Covariance Matrices Using a Joint Penalty.
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谷歌学术
必应学术
百度学术
Lenient Learning in Independent-Learner Stochastic Cooperative Games.
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谷歌学术
必应学术
百度学术
Bayesian Optimization for Likelihood-Free Inference of Simulator-Based Statistical Models.
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谷歌学术
必应学术
百度学术
Gains and Losses are Fundamentally Different in Regret Minimization: The Sparse Case.
原文链接
谷歌学术
必应学术
百度学术
Exact Inference on Gaussian Graphical Models of Arbitrary Topology using Path-Sums.
原文链接
谷歌学术
必应学术
百度学术
Input Output Kernel Regression: Supervised and Semi-Supervised Structured Output Prediction with Operator-Valued Kernels.
原文链接
谷歌学术
必应学术
百度学术
Learning Theory for Distribution Regression.
原文链接
谷歌学术
必应学术
百度学术
Latent Space Inference of Internet-Scale Networks.
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谷歌学术
必应学术
百度学术
Kernel Mean Shrinkage Estimators.
原文链接
谷歌学术
必应学术
百度学术
A Network That Learns Strassen Multiplication.
原文链接
谷歌学术
必应学术
百度学术
The Statistical Performance of Collaborative Inference.
原文链接
谷歌学术
必应学术
百度学术
Augmentable Gamma Belief Networks.
原文链接
谷歌学术
必应学术
百度学术
Consistent Algorithms for Clustering Time Series.
原文链接
谷歌学术
必应学术
百度学术
Optimal Learning Rates for Localized SVMs.
原文链接
谷歌学术
必应学术
百度学术
Random Rotation Ensembles.
原文链接
谷歌学术
必应学术
百度学术
Newton-Stein Method: An Optimization Method for GLMs via Stein's Lemma.
原文链接
谷歌学术
必应学术
百度学术
Learning Latent Variable Models by Pairwise Cluster Comparison: Part II - Algorithm and Evaluation.
原文链接
谷歌学术
必应学术
百度学术
Guarding against Spurious Discoveries in High Dimensions.
原文链接
谷歌学术
必应学术
百度学术
CrossCat: A Fully Bayesian Nonparametric Method for Analyzing Heterogeneous, High Dimensional Data.
原文链接
谷歌学术
必应学术
百度学术
Trend Filtering on Graphs.
原文链接
谷歌学术
必应学术
百度学术
The Optimal Sample Complexity of PAC Learning.
原文链接
谷歌学术
必应学术
百度学术
Convergence of an Alternating Maximization Procedure.
原文链接
谷歌学术
必应学术
百度学术
Convex Calibration Dimension for Multiclass Loss Matrices.
原文链接
谷歌学术
必应学术
百度学术
Regularized Policy Iteration with Nonparametric Function Spaces.
原文链接
谷歌学术
必应学术
百度学术
A General Framework for Consistency of Principal Component Analysis.
原文链接
谷歌学术
必应学术
百度学术
Exploration of the (Non-)Asymptotic Bias and Variance of Stochastic Gradient Langevin Dynamics.
原文链接
谷歌学术
必应学术
百度学术
Approximate Newton Methods for Policy Search in Markov Decision Processes.
原文链接
谷歌学术
必应学术
百度学术
Universal Approximation Results for the Temporal Restricted Boltzmann Machine and the Recurrent Temporal Restricted Boltzmann Machine.
原文链接
谷歌学术
必应学术
百度学术
DSA: Decentralized Double Stochastic Averaging Gradient Algorithm.
原文链接
谷歌学术
必应学术
百度学术
Integrated Common Sense Learning and Planning in POMDPs.
原文链接
谷歌学术
必应学术
百度学术
Multiscale Adaptive Representation of Signals: I. The Basic Framework.
原文链接
谷歌学术
必应学术
百度学术
Classification of Imbalanced Data with a Geometric Digraph Family.
原文链接
谷歌学术
必应学术
百度学术
MOCCA: Mirrored Convex/Concave Optimization for Nonconvex Composite Functions.
原文链接
谷歌学术
必应学术
百度学术
Conditional Independencies under the Algorithmic Independence of Conditionals.
原文链接
谷歌学术
必应学术
百度学术
Synergy of Monotonic Rules.
原文链接
谷歌学术
必应学术
百度学术
Estimation from Pairwise Comparisons: Sharp Minimax Bounds with Topology Dependence.
原文链接
谷歌学术
必应学术
百度学术
Challenges in multimodal gesture recognition.
原文链接
谷歌学术
必应学术
百度学术
Consistent Distribution-Free $K$-Sample and Independence Tests for Univariate Random Variables.
原文链接
谷歌学术
必应学术
百度学术
Optimal Estimation of Derivatives in Nonparametric Regression.
原文链接
谷歌学术
必应学术
百度学术
Probabilistic Low-Rank Matrix Completion from Quantized Measurements.
原文链接
谷歌学术
必应学术
百度学术
Linear Convergence of Randomized Feasible Descent Methods Under the Weak Strong Convexity Assumption.
原文链接
谷歌学术
必应学术
百度学术
Stable Graphical Models.
原文链接
谷歌学术
必应学术
百度学术
Scalable Learning of Bayesian Network Classifiers.
原文链接
谷歌学术
必应学术
百度学术
Sparsity and Error Analysis of Empirical Feature-Based Regularization Schemes.
原文链接
谷歌学术
必应学术
百度学术
Practical Kernel-Based Reinforcement Learning.
原文链接
谷歌学术
必应学术
百度学术
Statistical-Computational Tradeoffs in Planted Problems and Submatrix Localization with a Growing Number of Clusters and Submatrices.
原文链接
谷歌学术
必应学术
百度学术
One-class classification of point patterns of extremes.
原文链接
谷歌学术
必应学术
百度学术
A Bounded p-norm Approximation of Max-Convolution for Sub-Quadratic Bayesian Inference on Additive Factors.
原文链接
谷歌学术
必应学术
百度学术
Distributed Submodular Maximization.
原文链接
谷歌学术
必应学术
百度学术
L1-Regularized Least Squares for Support Recovery of High Dimensional Single Index Models with Gaussian Designs.
原文链接
谷歌学术
必应学术
百度学术
On the Influence of Momentum Acceleration on Online Learning.
原文链接
谷歌学术
必应学术
百度学术
Support Vector Hazards Machine: A Counting Process Framework for Learning Risk Scores for Censored Outcomes.
原文链接
谷歌学术
必应学术
百度学术
Learning Planar Ising Models.
原文链接
谷歌学术
必应学术
百度学术
A Consistent Information Criterion for Support Vector Machines in Diverging Model Spaces.
原文链接
谷歌学术
必应学术
百度学术
Multi-Task Learning for Straggler Avoiding Predictive Job Scheduling.
原文链接
谷歌学术
必应学术
百度学术
Jointly Informative Feature Selection Made Tractable by Gaussian Modeling.
原文链接
谷歌学术
必应学术
百度学术
Complexity of Representation and Inference in Compositional Models with Part Sharing.
原文链接
谷歌学术
必应学术
百度学术
A Characterization of Linkage-Based Hierarchical Clustering.
原文链接
谷歌学术
必应学术
百度学术
Domain-Adversarial Training of Neural Networks.
原文链接
谷歌学术
必应学术
百度学术
Model-free Variable Selection in Reproducing Kernel Hilbert Space.
原文链接
谷歌学术
必应学术
百度学术
BayesPy: Variational Bayesian Inference in Python.
原文链接
谷歌学术
必应学术
百度学术
String and Membrane Gaussian Processes.
原文链接
谷歌学术
必应学术
百度学术
Learning Algorithms for Second-Price Auctions with Reserve.
原文链接
谷歌学术
必应学术
百度学术
Decrypting "Cryptogenic" Epilepsy: Semi-supervised Hierarchical Conditional Random Fields For Detecting Cortical Lesions In MRI-Negative Patients.
原文链接
谷歌学术
必应学术
百度学术
Spectral Methods Meet EM: A Provably Optimal Algorithm for Crowdsourcing.
原文链接
谷歌学术
必应学术
百度学术
Low-Rank Doubly Stochastic Matrix Decomposition for Cluster Analysis.
原文链接
谷歌学术
必应学术
百度学术
Learning with Differential Privacy: Stability, Learnability and the Sufficiency and Necessity of ERM Principle.
原文链接
谷歌学术
必应学术
百度学术
On the Consistency of the Likelihood Maximization Vertex Nomination Scheme: Bridging the Gap Between Maximum Likelihood Estimation and Graph Matching.
原文链接
谷歌学术
必应学术
百度学术
RLScore: Regularized Least-Squares Learners.
原文链接
谷歌学术
必应学术
百度学术
Weak Convergence Properties of Constrained Emphatic Temporal-difference Learning with Constant and Slowly Diminishing Stepsize.
原文链接
谷歌学术
必应学术
百度学术
Patient Risk Stratification with Time-Varying Parameters: A Multitask Learning Approach.
原文链接
谷歌学术
必应学术
百度学术
Consistency of Cheeger and Ratio Graph Cuts.
原文链接
谷歌学术
必应学术
百度学术
New Perspectives on k-Support and Cluster Norms.
原文链接
谷歌学术
必应学术
百度学术
Large Scale Online Kernel Learning.
原文链接
谷歌学术
必应学术
百度学术
Neyman-Pearson Classification under High-Dimensional Settings.
原文链接
谷歌学术
必应学术
百度学术
Measuring Dependence Powerfully and Equitably.
原文链接
谷歌学术
必应学术
百度学术
Kernel Estimation and Model Combination in A Bandit Problem with Covariates.
原文链接
谷歌学术
必应学术
百度学术
Covariance-based Clustering in Multivariate and Functional Data Analysis.
原文链接
谷歌学术
必应学术
百度学术
Optimal Estimation and Completion of Matrices with Biclustering Structures.
原文链接
谷歌学术
必应学术
百度学术
A New Algorithm and Theory for Penalized Regression-based Clustering.
原文链接
谷歌学术
必应学术
百度学术
Dimension-free Concentration Bounds on Hankel Matrices for Spectral Learning.
原文链接
谷歌学术
必应学术
百度学术
A Practical Scheme and Fast Algorithm to Tune the Lasso With Optimality Guarantees.
原文链接
谷歌学术
必应学术
百度学术
The Asymptotic Performance of Linear Echo State Neural Networks.
原文链接
谷歌学术
必应学术
百度学术
Cross-Corpora Unsupervised Learning of Trajectories in Autism Spectrum Disorders.
原文链接
谷歌学术
必应学术
百度学术
Are Random Forests Truly the Best Classifiers?
原文链接
谷歌学术
必应学术
百度学术
Should We Really Use Post-Hoc Tests Based on Mean-Ranks?
原文链接
谷歌学术
必应学术
百度学术
Multiscale Dictionary Learning: Non-Asymptotic Bounds and Robustness.
原文链接
谷歌学术
必应学术
百度学术
Multi-task Sparse Structure Learning with Gaussian Copula Models.
原文链接
谷歌学术
必应学术
百度学术
Combinatorial Multi-Armed Bandit and Its Extension to Probabilistically Triggered Arms.
原文链接
谷歌学术
必应学术
百度学术
JCLAL: A Java Framework for Active Learning.
原文链接
谷歌学术
必应学术
百度学术
Variational Inference for Latent Variables and Uncertain Inputs in Gaussian Processes.
原文链接
谷歌学术
必应学术
百度学术
Estimating Causal Structure Using Conditional DAG Models.
原文链接
谷歌学术
必应学术
百度学术
Sparse PCA via Covariance Thresholding.
原文链接
谷歌学术
必应学术
百度学术
On Quantile Regression in Reproducing Kernel Hilbert Spaces with the Data Sparsity Constraint.
原文链接
谷歌学术
必应学术
百度学术
Learning Latent Variable Models by Pairwise Cluster Comparison: Part I - Theory and Overview.
原文链接
谷歌学术
必应学术
百度学术
Minimax Rates in Permutation Estimation for Feature Matching.
原文链接
谷歌学术
必应学术
百度学术
Joint Structural Estimation of Multiple Graphical Models.
原文链接
谷歌学术
必应学术
百度学术
Local Network Community Detection with Continuous Optimization of Conductance and Weighted Kernel K-Means.
原文链接
谷歌学术
必应学术
百度学术
Hybrid Orthogonal Projection and Estimation (HOPE): A New Framework to Learn Neural Networks.
原文链接
谷歌学术
必应学术
百度学术
Learning Using Anti-Training with Sacrificial Data.
原文链接
谷歌学术
必应学术
百度学术
A Statistical Perspective on Randomized Sketching for Ordinary Least-Squares.
原文链接
谷歌学术
必应学术
百度学术
The Constrained Dantzig Selector with Enhanced Consistency.
原文链接
谷歌学术
必应学术
百度学术
mlr: Machine Learning in R.
原文链接
谷歌学术
必应学术
百度学术
A Gibbs Sampler for Learning DAGs.
原文链接
谷歌学术
必应学术
百度学术
Variational Dependent Multi-output Gaussian Process Dynamical Systems.
原文链接
谷歌学术
必应学术
百度学术
Scalable Approximate Bayesian Inference for Outlier Detection under Informative Sampling.
原文链接
谷歌学术
必应学术
百度学术
Consistency and Fluctuations For Stochastic Gradient Langevin Dynamics.
原文链接
谷歌学术
必应学术
百度学术
How to Center Deep Boltzmann Machines.
原文链接
谷歌学术
必应学术
百度学术
Multiple-Instance Learning from Distributions.
原文链接
谷歌学术
必应学术
百度学术
Data-driven Rank Breaking for Efficient Rank Aggregation.
原文链接
谷歌学术
必应学术
百度学术
On the properties of variational approximations of Gibbs posteriors.
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谷歌学术
必应学术
百度学术
Integrative Analysis using Coupled Latent Variable Models for Individualizing Prognoses.
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谷歌学术
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百度学术
Loss Minimization and Parameter Estimation with Heavy Tails.
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谷歌学术
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百度学术
Iterative Hessian Sketch: Fast and Accurate Solution Approximation for Constrained Least-Squares.
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谷歌学术
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百度学术
Differentially Private Data Releasing for Smooth Queries.
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谷歌学术
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百度学术
Efficient Computation of Gaussian Process Regression for Large Spatial Data Sets by Patching Local Gaussian Processes.
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谷歌学术
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百度学术
Pymanopt: A Python Toolbox for Optimization on Manifolds using Automatic Differentiation.
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谷歌学术
必应学术
百度学术
Double or Nothing: Multiplicative Incentive Mechanisms for Crowdsourcing.
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谷歌学术
必应学术
百度学术
On Bayes Risk Lower Bounds.
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谷歌学术
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百度学术
Towards More Efficient SPSD Matrix Approximation and CUR Matrix Decomposition.
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谷歌学术
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百度学术
SPSD Matrix Approximation vis Column Selection: Theories, Algorithms, and Extensions.
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谷歌学术
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百度学术
Large Scale Visual Recognition through Adaptation using Joint Representation and Multiple Instance Learning.
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谷歌学术
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百度学术
A Differential Equation for Modeling Nesterov's Accelerated Gradient Method: Theory and Insights.
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谷歌学术
必应学术
百度学术
Neural Autoregressive Distribution Estimation.
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谷歌学术
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百度学术
Revisiting the Nystrom Method for Improved Large-scale Machine Learning.
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谷歌学术
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百度学术
ERRATA: On the Estimation of the Gradient Lines of a Density and the Consistency of the Mean-Shift Algorithm.
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谷歌学术
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百度学术
Structure-Leveraged Methods in Breast Cancer Risk Prediction.
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谷歌学术
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百度学术
Control Function Instrumental Variable Estimation of Nonlinear Causal Effect Models.
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谷歌学术
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百度学术
A Variational Approach to Path Estimation and Parameter Inference of Hidden Diffusion Processes.
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谷歌学术
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百度学术
Harry: A Tool for Measuring String Similarity.
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谷歌学术
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百度学术
e-PAL: An Active Learning Approach to the Multi-Objective Optimization Problem.
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谷歌学术
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百度学术
Semiparametric Mean Field Variational Bayes: General Principles and Numerical Issues.
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谷歌学术
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百度学术
Hierarchical Relative Entropy Policy Search.
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谷歌学术
必应学术
百度学术
Stability and Generalization in Structured Prediction.
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谷歌学术
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百度学术
The Benefit of Multitask Representation Learning.
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谷歌学术
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百度学术
Knowledge Matters: Importance of Prior Information for Optimization.
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谷歌学术
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百度学术
Bayesian Leave-One-Out Cross-Validation Approximations for Gaussian Latent Variable Models.
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谷歌学术
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百度学术
Addressing Environment Non-Stationarity by Repeating Q-learning Updates.
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谷歌学术
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百度学术
Online Trans-dimensional von Mises-Fisher Mixture Models for User Profiles.
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谷歌学术
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百度学术
Quasi-Monte Carlo Feature Maps for Shift-Invariant Kernels.
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谷歌学术
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百度学术
Monotonic Calibrated Interpolated Look-Up Tables.
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谷歌学术
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百度学术
Adaptive Lasso and group-Lasso for functional Poisson regression.
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谷歌学术
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百度学术
Rate Optimal Denoising of Simultaneously Sparse and Low Rank Matrices.
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谷歌学术
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百度学术
Scaling-up Empirical Risk Minimization: Optimization of Incomplete $U$-statistics.
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谷歌学术
必应学术
百度学术
Causal Inference through a Witness Protection Program.
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谷歌学术
必应学术
百度学术
The LRP Toolbox for Artificial Neural Networks.
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谷歌学术
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百度学术
A Unified View on Multi-class Support Vector Classification.
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谷歌学术
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百度学术
An Emphatic Approach to the Problem of Off-policy Temporal-Difference Learning.
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谷歌学术
必应学术
百度学术
Bipartite Ranking: a Risk-Theoretic Perspective.
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谷歌学术
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百度学术
Bayesian Policy Gradient and Actor-Critic Algorithms.
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谷歌学术
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百度学术
A Closer Look at Adaptive Regret.
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谷歌学术
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百度学术
Cells in Multidimensional Recurrent Neural Networks.
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谷歌学术
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百度学术
StructED: Risk Minimization in Structured Prediction.
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谷歌学术
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百度学术
Characteristic Kernels and Infinitely Divisible Distributions.
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谷歌学术
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百度学术
Bayesian Graphical Models for Multivariate Functional Data.
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谷歌学术
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百度学术
Quantifying Uncertainty in Random Forests via Confidence Intervals and Hypothesis Tests.
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谷歌学术
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百度学术
Importance Weighting Without Importance Weights: An Efficient Algorithm for Combinatorial Semi-Bandits.
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谷歌学术
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百度学术
Modelling Interactions in High-dimensional Data with Backtracking.
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谷歌学术
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百度学术
Gradients Weights improve Regression and Classification.
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谷歌学术
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百度学术
Herded Gibbs Sampling.
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谷歌学术
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百度学术
Structure Learning in Bayesian Networks of a Moderate Size by Efficient Sampling.
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谷歌学术
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百度学术
Rounding-based Moves for Semi-Metric Labeling.
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谷歌学术
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百度学术
Electronic Health Record Analysis via Deep Poisson Factor Models.
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谷歌学术
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百度学术
Bounding the Search Space for Global Optimization of Neural Networks Learning Error: An Interval Analysis Approach.
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谷歌学术
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百度学术
Iterative Regularization for Learning with Convex Loss Functions.
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谷歌学术
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百度学术
fastFM: A Library for Factorization Machines.
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谷歌学术
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百度学术
Non-linear Causal Inference using Gaussianity Measures.
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谷歌学术
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百度学术
Online PCA with Optimal Regret.
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谷歌学术
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百度学术
A Unifying Framework in Vector-valued Reproducing Kernel Hilbert Spaces for Manifold Regularization and Co-Regularized Multi-view Learning.
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谷歌学术
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百度学术
Multiplicative Multitask Feature Learning.
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谷歌学术
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百度学术
Learning the Variance of the Reward-To-Go.
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谷歌学术
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百度学术
bandicoot: a Python Toolbox for Mobile Phone Metadata.
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谷歌学术
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百度学术
Megaman: Scalable Manifold Learning in Python.
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谷歌学术
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百度学术
Theoretical Analysis of the Optimal Free Responses of Graph-Based SFA for the Design of Training Graphs.
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谷歌学术
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百度学术
Structure Discovery in Bayesian Networks by Sampling Partial Orders.
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谷歌学术
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百度学术
LIBMF: A Library for Parallel Matrix Factorization in Shared-memory Systems.
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谷歌学术
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百度学术
Fused Lasso Approach in Regression Coefficients Clustering - Learning Parameter Heterogeneity in Data Integration.
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谷歌学术
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百度学术
Interleaved Text/Image Deep Mining on a Large-Scale Radiology Database for Automated Image Interpretation.
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谷歌学术
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百度学术
MEKA: A Multi-label/Multi-target Extension to WEKA.
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谷歌学术
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百度学术
End-to-End Training of Deep Visuomotor Policies.
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谷歌学术
必应学术
百度学术
Minimum Density Hyperplanes.
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谷歌学术
必应学术
百度学术
Multi-scale Classification using Localized Spatial Depth.
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谷歌学术
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百度学术
Distinguishing Cause from Effect Using Observational Data: Methods and Benchmarks.
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谷歌学术
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百度学术
A Note on the Sample Complexity of the Er-SpUD Algorithm by Spielman, Wang and Wright for Exact Recovery of Sparsely Used Dictionaries.
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谷歌学术
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百度学术
The Factorized Self-Controlled Case Series Method: An Approach for Estimating the Effects of Many Drugs on Many Outcomes.
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谷歌学术
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百度学术
Spectral Ranking using Seriation.
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谷歌学术
必应学术
百度学术
An Information-Theoretic Analysis of Thompson Sampling.
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谷歌学术
必应学术
百度学术
Adjusting for Chance Clustering Comparison Measures.
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谷歌学术
必应学术
百度学术
An Online Convex Optimization Approach to Blackwell's Approachability.
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谷歌学术
必应学术
百度学术
True Online Temporal-Difference Learning.
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谷歌学术
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百度学术
Dual Control for Approximate Bayesian Reinforcement Learning.
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谷歌学术
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百度学术
Wavelet decompositions of Random Forests - smoothness analysis, sparse approximation and applications.
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谷歌学术
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百度学术