SOTAVerified

Self-Supervised Learning

Self-Supervised Learning is proposed for utilizing unlabeled data with the success of supervised learning. Producing a dataset with good labels is expensive, while unlabeled data is being generated all the time. The motivation of Self-Supervised Learning is to make use of the large amount of unlabeled data. The main idea of Self-Supervised Learning is to generate the labels from unlabeled data, according to the structure or characteristics of the data itself, and then train on this unsupervised data in a supervised manner. Self-Supervised Learning is wildly used in representation learning to make a model learn the latent features of the data. This technique is often employed in computer vision, video processing and robot control.

Source: Self-supervised Point Set Local Descriptors for Point Cloud Registration

Image source: LeCun

Papers

Showing 43014325 of 5044 papers

TitleStatusHype
Multi-Token Enhancing for Vision Representation Learning0
Multi-view Contrastive Self-Supervised Learning of Accounting Data Representations for Downstream Audit Tasks0
Multi-view Feature Extraction based on Dual Contrastive Head0
Multi-view Feature Extraction based on Triple Contrastive Heads0
Multi-View Subgraph Neural Networks: Self-Supervised Learning with Scarce Labeled Data0
MUSCLE: Multi-task Self-supervised Continual Learning to Pre-train Deep Models for X-ray Images of Multiple Body Parts0
MUSE: Multi-View Contrastive Learning for Heterophilic Graphs0
MusiCoder: A Universal Music-Acoustic Encoder Based on Transformers0
Mutual Information Guided Backdoor Mitigation for Pre-trained Encoders0
MV2MAE: Multi-View Video Masked Autoencoders0
MVCNet: Multiview Contrastive Network for Unsupervised Representation Learning for 3D CT Lesions0
Navigating the Future of Federated Recommendation Systems with Foundation Models0
Near, far: Patch-ordering enhances vision foundation models' scene understanding0
Negative Selection by Clustering for Contrastive Learning in Human Activity Recognition0
NeRFEditor: Differentiable Style Decomposition for Full 3D Scene Editing0
NERULA: A Dual-Pathway Self-Supervised Learning Framework for Electrocardiogram Signal Analysis0
NEST-RQ: Next Token Prediction for Speech Self-Supervised Pre-Training0
NetFlowGen: Leveraging Generative Pre-training for Network Traffic Dynamics0
Neural Algorithmic Reasoners are Implicit Planners0
Neural Inverse Rendering of an Indoor Scene from a Single Image0
Neural Modes: Self-supervised Learning of Nonlinear Modal Subspaces0
Neural spatio-temporal reasoning with object-centric self-supervised learning0
NeuroMoCo: A Neuromorphic Momentum Contrast Learning Method for Spiking Neural Networks0
Neurosymbolic AI - Why, What, and How0
New Test-Time Scenario for Biosignal: Concept and Its Approach0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Pretraining: NoneImages & Text57.5Unverified
2Pretraining: ShEDImages & Text54.3Unverified
3Pretraining: e-MixImages & Text48.9Unverified
#ModelMetricClaimedVerifiedStatus
1ResNet50Accuracy91.7Unverified
2ResNet18Accuracy91.02Unverified
3MV-MRAccuracy89.67Unverified
#ModelMetricClaimedVerifiedStatus
1ResNet50average top-1 classification accuracy93.89Unverified
2ResNet18average top-1 classification accuracy92.58Unverified
#ModelMetricClaimedVerifiedStatus
1ResNet50average top-1 classification accuracy72.51Unverified
2ResNet18average top-1 classification accuracy69.31Unverified
#ModelMetricClaimedVerifiedStatus
1CorInfomax (ResNet50)Top-1 Accuracy82.64Unverified
2CorInfomax (ResNet18)Top-1 Accuracy80.48Unverified
#ModelMetricClaimedVerifiedStatus
1ResNet50average top-1 classification accuracy51.84Unverified
2ResNet18average top-1 classification accuracy51.67Unverified
#ModelMetricClaimedVerifiedStatus
1CorInfomax (ResNet18)Top-1 Accuracy93.18Unverified
#ModelMetricClaimedVerifiedStatus
1CorInfomax (ResNet18)Top-1 Accuracy71.61Unverified
#ModelMetricClaimedVerifiedStatus
1Hybrid BYOL-S/CvTAccuracy67.2Unverified
#ModelMetricClaimedVerifiedStatus
1CorInfomax (ResNet50)Top-1 Accuracy54.86Unverified