SOTAVerified

Dimensionality Reduction

Dimensionality reduction is the task of reducing the dimensionality of a dataset.

( Image credit: openTSNE )

Papers

Showing 17511800 of 3304 papers

TitleStatusHype
[Re] Explaining Groups of Points in Low-Dimensional RepresentationsCode0
Exploring the Geometry and Topology of Neural Network Loss Landscapes0
Spike and slab Bayesian sparse principal component analysis0
Federated Learning over Wireless Device-to-Device Networks: Algorithms and Convergence Analysis0
POD-DL-ROM: enhancing deep learning-based reduced order models for nonlinear parametrized PDEs by proper orthogonal decomposition0
Accuracy and Privacy Evaluations of Collaborative Data Analysis0
Probability distributions for analog-to-target distances0
Contrastive analysis for scatterplot-based representations of dimensionality reduction0
Hyperspectral Image Classification: Artifacts of Dimension Reduction on Hybrid CNNCode0
Novel Recording Studio Features for Music Information Retrieval0
Domain-Dependent Speaker Diarization for the Third DIHARD Challenge0
Feature Selection Using Reinforcement Learning0
Machine Learning in LiDAR 3D point clouds0
Sparsistent filtering of comovement networks from high-dimensional data0
Does a Hybrid Neural Network based Feature Selection Model Improve Text Classification?0
HyperNTF: A Hypergraph Regularized Nonnegative Tensor Factorization for Dimensionality Reduction0
Unsupervised Imputation of Non-ignorably Missing Data Using Importance-Weighted Autoencoders0
Multi-view Data Visualisation via Manifold LearningCode0
Generalized Image Reconstruction over T-AlgebraCode0
Multi-point dimensionality reduction to improve projection layout reliability0
Joint Dimensionality Reduction for Separable Embedding Estimation0
Entangled Kernels -- Beyond Separability0
Physics-aware, probabilistic model order reduction with guaranteed stability0
VoxelHop: Successive Subspace Learning for ALS Disease Classification Using Structural MRI0
Classification of Schizophrenia from Functional MRI Using Large-scale Extended Granger Causality0
Data augmentation and feature selection for automatic model recommendation in computational physics0
Scaling Up Bayesian Uncertainty Quantification for Inverse Problems using Deep Neural Networks0
Towards glass-box CNNs0
Large-scale Augmented Granger Causality (lsAGC) for Connectivity Analysis in Complex Systems: From Computer Simulations to Functional MRI (fMRI)0
Smile and Laugh Expressions Detection Based on Local Minimum Key Points0
Order Embeddings from Merged Ontologies using Sketching0
Large-Scale Extended Granger Causality for Classification of Marijuana Users From Functional MRI0
Analyzing movies to predict their commercial viability for producers0
A Linearly Convergent Algorithm for Distributed Principal Component AnalysisCode0
Protecting Big Data Privacy Using Randomized Tensor Network Decomposition and Dispersed Tensor Computation0
Factor Analysis, Probabilistic Principal Component Analysis, Variational Inference, and Variational Autoencoder: Tutorial and Survey0
A new parsimonious method for classifying Cancer Tissue-of-Origin Based on DNA Methylation 450K data0
On the Importance of Distraction-Robust Representations for Robot Learning0
Graph Learning via Spectral Densification0
Graph Neural Network Acceleration via Matrix Dimension Reduction0
Deep Manifold Computing and Visualization Using Elastic Locally Isometric Smoothness0
Selective Sensing: A Data-driven Nonuniform Subsampling Approach for Computation-free On-Sensor Data Dimensionality Reduction0
Divergence Regulated Encoder Network for Joint Dimensionality Reduction and ClassificationCode0
Manifold learning with arbitrary normsCode0
Stochastic Approximation for Online Tensorial Independent Component Analysis0
A method to integrate and classify normal distributionsCode0
Unsupervised Functional Data Analysis via Nonlinear Dimension ReductionCode0
Explicitly Encouraging Low Fractional Dimensional Trajectories Via Reinforcement LearningCode0
Exploiting Vulnerability of Pooling in Convolutional Neural Networks by Strict Layer-Output Manipulation for Adversarial Attacks0
Upper and Lower Bounds on the Performance of Kernel PCA0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1UDRNClassification Accuracy90.9Unverified
2tSNEClassification Accuracy51.5Unverified
3IVISClassification Accuracy46.6Unverified
4UMAPClassification Accuracy41.3Unverified
#ModelMetricClaimedVerifiedStatus
1UDRNClassification Accuracy71.1Unverified
2QSClassification Accuracy68Unverified