SOTAVerified

Dimensionality Reduction

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

( Image credit: openTSNE )

Papers

Showing 25012525 of 3304 papers

TitleStatusHype
A Generative-Discriminative Basis Learning Framework to Predict Clinical Severity from Resting State Functional MRI Data0
Space-Time Extension of the MEM Approach for Electromagnetic Neuroimaging0
Recurrent Neural Networks for Long and Short-Term Sequential Recommendation0
A Trace Lasso Regularized L1-norm Graph Cut for Highly Correlated Noisy Hyperspectral Image0
Tree-structured multi-stage principal component analysis (TMPCA): theory and applications0
Isolation Kernel and Its Effect on SVM0
Unsupervised Metric Learning in Presence of Missing DataCode0
Non-Gaussian Component Analysis using Entropy Methods0
Parametric generation of conditional geological realizations using generative neural networksCode0
Channel Charting: Locating Users within the Radio Environment using Channel State Information0
Structured Bayesian Gaussian process latent variable model: applications to data-driven dimensionality reduction and high-dimensional inversionCode0
A GPU-Oriented Algorithm Design for Secant-Based Dimensionality Reduction0
A Supervised Geometry-Aware Mapping Approach for Classification of Hyperspectral Images0
Learning Low-Dimensional Temporal Representations0
Using pseudo-senses for improving the extraction of synonyms from word embeddings0
Illuminating Generalization in Deep Reinforcement Learning through Procedural Level GenerationCode0
Grassmannian Discriminant Maps (GDM) for Manifold Dimensionality Reduction with Application to Image Set Classification0
Extension of PCA to Higher Order Data Structures: An Introduction to Tensors, Tensor Decompositions, and Tensor PCA0
SuperPCA: A Superpixelwise PCA Approach for Unsupervised Feature Extraction of Hyperspectral ImageryCode0
Analysis of Cellular Feature Differences of Astrocytomas with Distinct Mutational Profiles Using Digitized Histopathology Images0
Overlapping Sliced Inverse Regression for Dimension Reduction0
Parallel Transport Unfolding: A Connection-based Manifold Learning Approach0
Virtual Codec Supervised Re-Sampling Network for Image Compression0
Generalizing Correspondence Analysis for Applications in Machine Learning0
A Latent Variable Approach to Gaussian Process Modeling with Qualitative and Quantitative FactorsCode0
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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