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 58515875 of 6661 papers

TitleStatusHype
Multi-View Pre-Trained Model for Code Vulnerability Identification0
MuSCLe: A Multi-Strategy Contrastive Learning Framework for Weakly Supervised Semantic Segmentation0
MUSE: Multi-View Contrastive Learning for Heterophilic Graphs0
Music Era Recognition Using Supervised Contrastive Learning and Artist Information0
MuSiCNet: A Gradual Coarse-to-Fine Framework for Irregularly Sampled Multivariate Time Series Analysis0
Mutual Contrastive Low-rank Learning to Disentangle Whole Slide Image Representations for Glioma Grading0
Mutual Information Guided Optimal Transport for Unsupervised Visible-Infrared Person Re-identification0
MvCo-DoT:Multi-View Contrastive Domain Transfer Network for Medical Report Generation0
NCL: Textual Backdoor Defense Using Noise-augmented Contrastive Learning0
A Contrastive Learning Approach for Training Variational Autoencoder Priors0
Nearest-Neighbor Inter-Intra Contrastive Learning from Unlabeled Videos0
Needle: A Generative AI-Powered Multi-modal Database for Answering Complex Natural Language Queries0
Negative as Positive: Enhancing Out-of-distribution Generalization for Graph Contrastive Learning0
Negative Metric Learning for Graphs0
Negative Prototypes Guided Contrastive Learning for WSOD0
Negative Selection by Clustering for Contrastive Learning in Human Activity Recognition0
Neighbor Does Matter: Density-Aware Contrastive Learning for Medical Semi-supervised Segmentation0
Neighborhood Consensus Contrastive Learning for Backward-Compatible Representation0
Neighborhood Contrastive Learning for Scientific Document Representations with Citation Embeddings0
Neighbour Contrastive Learning with Heterogeneous Graph Attention Networks on Short Text Classification0
NERULA: A Dual-Pathway Self-Supervised Learning Framework for Electrocardiogram Signal Analysis0
Neural Slot Interpreters: Grounding Object Semantics in Emergent Slot Representations0
NeuroCine: Decoding Vivid Video Sequences from Human Brain Activties0
NeuroLIP: Interpretable and Fair Cross-Modal Alignment of fMRI and Phenotypic Text0
NeuroMoCo: A Neuromorphic Momentum Contrast Learning Method for Spiking Neural Networks0
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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