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 226250 of 5044 papers

TitleStatusHype
Co^2L: Contrastive Continual LearningCode1
COCO-LM: Correcting and Contrasting Text Sequences for Language Model PretrainingCode1
CoCoNets: Continuous Contrastive 3D Scene RepresentationsCode1
CoMatch: Semi-supervised Learning with Contrastive Graph RegularizationCode1
Combating Bilateral Edge Noise for Robust Link PredictionCode1
COCOA: Cross Modality Contrastive Learning for Sensor DataCode1
Comparing Self-Supervised Learning Techniques for Wearable Human Activity RecognitionCode1
Concept Generalization in Visual Representation LearningCode1
ConCL: Concept Contrastive Learning for Dense Prediction Pre-training in Pathology ImagesCode1
A benchmark for computational analysis of animal behavior, using animal-borne tagsCode1
CONSAC: Robust Multi-Model Fitting by Conditional Sample ConsensusCode1
A Note on Connecting Barlow Twins with Negative-Sample-Free Contrastive LearningCode1
Consistent Explanations by Contrastive LearningCode1
2nd Place Solution to Facebook AI Image Similarity Challenge Matching TrackCode1
An Unsupervised Sentence Embedding Method by Mutual Information MaximizationCode1
Contextually Affinitive Neighborhood Refinery for Deep ClusteringCode1
Continual Learning, Fast and SlowCode1
Adapting Self-Supervised Vision Transformers by Probing Attention-Conditioned Masking ConsistencyCode1
COMEDIAN: Self-Supervised Learning and Knowledge Distillation for Action Spotting using TransformersCode1
Contrastive Hierarchical ClusteringCode1
Contrastive Learning Inverts the Data Generating ProcessCode1
Context-Aware Sequence Alignment using 4D Skeletal AugmentationCode1
Anatomical Invariance Modeling and Semantic Alignment for Self-supervised Learning in 3D Medical Image AnalysisCode1
Anatomy-aware Self-supervised Learning for Anomaly Detection in Chest RadiographsCode1
Contrastive Neural Processes for Self-Supervised LearningCode1
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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