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 14011425 of 5044 papers

TitleStatusHype
REB: Reducing Biases in Representation for Industrial Anomaly DetectionCode1
SimTriplet: Simple Triplet Representation Learning with a Single GPUCode1
Evaluating Self-Supervised Learning via Risk DecompositionCode1
SelfAugment: Automatic Augmentation Policies for Self-Supervised LearningCode1
Civil Rephrases Of Toxic Texts With Self-Supervised TransformersCode1
SiT: Self-supervised vIsion TransformerCode1
Exchange means change: an unsupervised single-temporal change detection framework based on intra- and inter-image patch exchangeCode1
BEATs: Audio Pre-Training with Acoustic TokenizersCode1
A Self-supervised Method for Entity AlignmentCode1
Measuring Visual Generalization in Continuous Control from PixelsCode1
CLARA: Multilingual Contrastive Learning for Audio Representation AcquisitionCode1
Extending and Analyzing Self-Supervised Learning Across DomainsCode1
Evaluation of Speech Representations for MOS predictionCode1
A Fast Knowledge Distillation Framework for Visual RecognitionCode1
EvRepSL: Event-Stream Representation via Self-Supervised Learning for Event-Based VisionCode1
Exploring Image Augmentations for Siamese Representation Learning with Chest X-RaysCode1
Masked Autoencoders are Robust Data AugmentorsCode1
CoLES: Contrastive Learning for Event Sequences with Self-SupervisionCode1
Every Node is Different: Dynamically Fusing Self-Supervised Tasks for Attributed Graph ClusteringCode1
Evidence of Vocal Tract Articulation in Self-Supervised Learning of SpeechCode1
Masked Contrastive Learning for Anomaly DetectionCode1
Masked Autoencoders in 3D Point Cloud Representation LearningCode1
RecDCL: Dual Contrastive Learning for RecommendationCode1
SatVision-TOA: A Geospatial Foundation Model for Coarse-Resolution All-Sky Remote Sensing ImageryCode1
Self-Retrieval: End-to-End Information Retrieval with One Large Language ModelCode1
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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