SOTAVerified

Contrastive Learning

Contrastive Learning is a deep learning technique for unsupervised representation learning. The goal is to learn a representation of data such that similar instances are close together in the representation space, while dissimilar instances are far apart.

It has been shown to be effective in various computer vision and natural language processing tasks, including image retrieval, zero-shot learning, and cross-modal retrieval. In these tasks, the learned representations can be used as features for downstream tasks such as classification and clustering.

(Image credit: Schroff et al. 2015)

Papers

Showing 46514675 of 6661 papers

TitleStatusHype
Dynamic Negative Example Construction for Grammatical Error Correction using Contrastive Learning0
Dynamic Patch-aware Enrichment Transformer for Occluded Person Re-Identification0
Dynamic Policy-Driven Adaptive Multi-Instance Learning for Whole Slide Image Classification0
Dynamic Recognition of Speakers for Consent Management by Contrastive Embedding Replay0
Dynamic Stereotype Theory Induced Micro-expression Recognition with Oriented Deformation0
DynamicTrack: Advancing Gigapixel Tracking in Crowded Scenes0
DyPCL: Dynamic Phoneme-level Contrastive Learning for Dysarthric Speech Recognition0
EAGLE: A Domain Generalization Framework for AI-generated Text Detection0
EAGLE: Contrastive Learning for Efficient Graph Anomaly Detection0
EASE: Entity-Aware Contrastive Learning of Sentence Embedding0
EASEMVC:Efficient Dual Selection Mechanism for Deep Multi-View Clustering0
EA-VTR: Event-Aware Video-Text Retrieval0
EBMs vs. CL: Exploring Self-Supervised Visual Pretraining for Visual Question Answering0
EC^2: Emergent Communication for Embodied Control0
EC2: Emergent Communication for Embodied Control0
ECG Biometric Authentication Using Self-Supervised Learning for IoT Edge Sensors0
ECHO: Environmental Sound Classification with Hierarchical Ontology-guided Semi-Supervised Learning0
EchoPrime: A Multi-Video View-Informed Vision-Language Model for Comprehensive Echocardiography Interpretation0
e-CLIP: Large-Scale Vision-Language Representation Learning in E-commerce0
ECLIPSE: A Resource-Efficient Text-to-Image Prior for Image Generations0
EdgePruner: Poisoned Edge Pruning in Graph Contrastive Learning0
EEG2TEXT-CN: An Exploratory Study of Open-Vocabulary Chinese Text-EEG Alignment via Large Language Model and Contrastive Learning on ChineseEEG0
EEG-based Emotion Recognition via Efficient Convolutional Neural Network and Contrastive Learning0
EEG-Language Modeling for Pathology Detection0
EEG-SCMM: Soft Contrastive Masked Modeling for Cross-Corpus EEG-Based Emotion Recognition0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1ResNet50ImageNet Top-1 Accuracy73.6Unverified
2ResNet50ImageNet Top-1 Accuracy73Unverified
3ResNet50ImageNet Top-1 Accuracy71.1Unverified
4ResNet50ImageNet Top-1 Accuracy69.3Unverified
5ResNet50 (v2)ImageNet Top-1 Accuracy67.6Unverified
6ResNet50 (v2)ImageNet Top-1 Accuracy63.8Unverified
7ResNet50ImageNet Top-1 Accuracy63.6Unverified
8ResNet50ImageNet Top-1 Accuracy61.5Unverified
9ResNet50ImageNet Top-1 Accuracy61.5Unverified
10ResNet50 (4×)ImageNet Top-1 Accuracy61.3Unverified
#ModelMetricClaimedVerifiedStatus
110..5sec1Unverified
#ModelMetricClaimedVerifiedStatus
1IPCL (ResNet18)Accuracy (Top-1)84.77Unverified
#ModelMetricClaimedVerifiedStatus
1IPCL (ResNet18)Accuracy (Top-1)85.55Unverified