SOTAVerified

Dimensionality Reduction

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

( Image credit: openTSNE )

Papers

Showing 251300 of 3304 papers

TitleStatusHype
Nested Diffusion Models Using Hierarchical Latent Priors0
A Dataset Similarity Evaluation Framework for Wireless Communications and Sensing0
Deep Learning, Machine Learning, Advancing Big Data Analytics and Management0
An Automated Data Mining Framework Using Autoencoders for Feature Extraction and Dimensionality Reduction0
Traversing the Subspace of Adversarial Patches0
Enhancing the conformal predictability of context-aware recommendation systems by using Deep Autoencoders0
Noncommutative Model Selection for Data Clustering and Dimension Reduction Using Relative von Neumann Entropy0
Deep Learning for GWP Prediction: A Framework Using PCA, Quantile Transformation, and Ensemble Modeling0
Autoencoder Enhanced Realised GARCH on Volatility Forecasting0
HiCat: A Semi-Supervised Approach for Cell Type Annotation0
Swin fMRI Transformer Predicts Early Neurodevelopmental Outcomes from Neonatal fMRI0
Navigating the Effect of Parametrization for Dimensionality ReductionCode1
Circuit design in biology and machine learning. II. Anomaly detection0
FAST-Splat: Fast, Ambiguity-Free Semantics Transfer in Gaussian Splatting0
K-means Derived Unsupervised Feature Selection using Improved ADMM0
Hierarchical Trait-State Model for Decoding Dyadic Social Interactions0
Exploring the Manifold of Neural Networks Using Diffusion Geometry0
Dimension Reduction via Sum-of-Squares and Improved Clustering Algorithms for Non-Spherical Mixtures0
Feature Selection for Network Intrusion Detection0
Generative Spatio-temporal GraphNet for Transonic Wing Pressure Distribution Forecasting0
Neuc-MDS: Non-Euclidean Multidimensional Scaling Through Bilinear FormsCode0
Towards a Fairer Non-negative Matrix Factorization0
Expected Information Gain Estimation via Density Approximations: Sample Allocation and Dimension Reduction0
AstroM^3: A self-supervised multimodal model for astronomy0
White-Box Diffusion Transformer for single-cell RNA-seq generationCode0
ClusterGraph: a new tool for visualization and compression of multidimensional dataCode0
Firm Heterogeneity and Macroeconomic Fluctuations: a Functional VAR model0
Poor Man's Training on MCUs: A Memory-Efficient Quantized Back-Propagation-Free Approach0
On the Inherent Robustness of One-Stage Object Detection against Out-of-Distribution DataCode0
Theoretically informed selection of latent activation in autoencoder based recommender systems0
Interpretable and Efficient Data-driven Discovery and Control of Distributed Systems0
Understanding Contrastive Learning via Gaussian Mixture Models0
You are out of context!0
XNB: Explainable Class-Specific NaIve-Bayes ClassifierCode0
Detection and tracking of gas plumes in LWIR hyperspectral video sequence data0
How Do Flow Matching Models Memorize and Generalize in Sample Data Subspaces?0
Temporal Streaming Batch Principal Component Analysis for Time Series Classification0
Dimension reduction via score ratio matching0
Golden Ratio-Based Sufficient Dimension Reduction0
DMT-HI: MOE-based Hyperbolic Interpretable Deep Manifold Transformation for Unspervised Dimensionality ReductionCode1
Enhancing Graph Attention Neural Network Performance for Marijuana Consumption Classification through Large-scale Augmented Granger Causality (lsAGC) Analysis of Functional MR Images0
Omics-driven hybrid dynamic modeling of bioprocesses with uncertainty estimation0
Doubly Non-Central Beta Matrix Factorization for Stable Dimensionality Reduction of Bounded Support Matrix Data0
Enhancing literature review with LLM and NLP methods. Algorithmic trading case0
Simultaneous Dimensionality Reduction for Extracting Useful Representations of Large Empirical Multimodal Datasets0
A Wavelet Diffusion GAN for Image Super-Resolution0
Learning Precise, Contact-Rich Manipulation through Uncalibrated Tactile Skins0
Hyperboloid GPLVM for Discovering Continuous Hierarchies via Nonparametric Estimation0
Learning signals defined on graphs with optimal transport and Gaussian process regression0
A Kernelization-Based Approach to Nonparametric Binary Choice Models0
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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