SOTAVerified

Representation Learning

Representation Learning is a process in machine learning where algorithms extract meaningful patterns from raw data to create representations that are easier to understand and process. These representations can be designed for interpretability, reveal hidden features, or be used for transfer learning. They are valuable across many fundamental machine learning tasks like image classification and retrieval.

Deep neural networks can be considered representation learning models that typically encode information which is projected into a different subspace. These representations are then usually passed on to a linear classifier to, for instance, train a classifier.

Representation learning can be divided into:

  • Supervised representation learning: learning representations on task A using annotated data and used to solve task B
  • Unsupervised representation learning: learning representations on a task in an unsupervised way (label-free data). These are then used to address downstream tasks and reducing the need for annotated data when learning news tasks. Powerful models like GPT and BERT leverage unsupervised representation learning to tackle language tasks.

More recently, self-supervised learning (SSL) is one of the main drivers behind unsupervised representation learning in fields like computer vision and NLP.

Here are some additional readings to go deeper on the task:

( Image credit: Visualizing and Understanding Convolutional Networks )

Papers

Showing 13511375 of 10580 papers

TitleStatusHype
Advancing Medical Representation Learning Through High-Quality DataCode1
GATCluster: Self-Supervised Gaussian-Attention Network for Image ClusteringCode1
Binning as a Pretext Task: Improving Self-Supervised Learning in Tabular DomainsCode1
GATSBI: Generative Agent-centric Spatio-temporal Object InteractionCode1
CDT: Cascading Decision Trees for Explainable Reinforcement LearningCode1
GCC: Graph Contrastive Coding for Graph Neural Network Pre-TrainingCode1
GCNH: A Simple Method For Representation Learning On Heterophilous GraphsCode1
GCondenser: Benchmarking Graph CondensationCode1
DA-TransUNet: Integrating Spatial and Channel Dual Attention with Transformer U-Net for Medical Image SegmentationCode1
CoMatch: Semi-supervised Learning with Contrastive Graph RegularizationCode1
A robust estimator of mutual information for deep learning interpretabilityCode1
Generalized Contrastive Optimization of Siamese Networks for Place RecognitionCode1
Knowledge Embedding Based Graph Convolutional NetworkCode1
Generalized Radiograph Representation Learning via Cross-supervision between Images and Free-text Radiology ReportsCode1
A Rotated Hyperbolic Wrapped Normal Distribution for Hierarchical Representation LearningCode1
General Neural Gauge FieldsCode1
Combating Representation Learning Disparity with Geometric HarmonizationCode1
Certifiably Robust Graph Contrastive LearningCode1
ProGCL: Rethinking Hard Negative Mining in Graph Contrastive LearningCode1
Generative Pre-Training for Speech with Autoregressive Predictive CodingCode1
A Fair Comparison of Graph Neural Networks for Graph ClassificationCode1
Combating Label Noise in Deep Learning Using AbstentionCode1
ChAda-ViT : Channel Adaptive Attention for Joint Representation Learning of Heterogeneous Microscopy ImagesCode1
GENESIS: Generative Scene Inference and Sampling with Object-Centric Latent RepresentationsCode1
Decoupled Contrastive Learning for Long-Tailed RecognitionCode1
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1SciNCLAvg.81.8Unverified
2SPECTERAvg.80Unverified
3CiteomaticAvg.76Unverified
4Sci-DeCLUTRAvg.66.6Unverified
5SciBERTAvg.59.6Unverified
6BioBERTAvg.58.8Unverified
7CiteBERTAvg.58.8Unverified
#ModelMetricClaimedVerifiedStatus
1top_model_weights_with_3d_21:1 Accuracy0.75Unverified
#ModelMetricClaimedVerifiedStatus
1Resnet 18Accuracy (%)97.05Unverified
#ModelMetricClaimedVerifiedStatus
1Morphological NetworkAccuracy97.3Unverified
#ModelMetricClaimedVerifiedStatus
1Max Margin ContrastiveSilhouette Score0.56Unverified