SOTAVerified

Metric Learning

The goal of Metric Learning is to learn a representation function that maps objects into an embedded space. The distance in the embedded space should preserve the objects’ similarity — similar objects get close and dissimilar objects get far away. Various loss functions have been developed for Metric Learning. For example, the contrastive loss guides the objects from the same class to be mapped to the same point and those from different classes to be mapped to different points whose distances are larger than a margin. Triplet loss is also popular, which requires the distance between the anchor sample and the positive sample to be smaller than the distance between the anchor sample and the negative sample.

Source: Road Network Metric Learning for Estimated Time of Arrival

Papers

Showing 11761200 of 1648 papers

TitleStatusHype
Bypassing Logits Bias in Online Class-Incremental Learning with a Generative Framework0
CAFENet: Class-Agnostic Few-Shot Edge Detection Network0
Calibrated neighborhood aware confidence measure for deep metric learning0
Threshold-Consistent Margin Loss for Open-World Deep Metric Learning0
Can an unsupervised clustering algorithm reproduce a categorization system?0
EnvId: A Metric Learning Approach for Forensic Few-Shot Identification of Unseen Environments0
Case-based Similar Image Retrieval for Weakly Annotated Large Histopathological Images of Malignant Lymphoma Using Deep Metric Learning0
Catching Image Retrieval Generalization0
Causal Fair Metric: Bridging Causality, Individual Fairness, and Adversarial Robustness0
CDAD-Net: Bridging Domain Gaps in Generalized Category Discovery0
Center Contrastive Loss for Metric Learning0
Centroid-based deep metric learning for speaker recognition0
Challenge report: Recognizing Families In the Wild Data Challenge0
Channel Interaction Networks for Fine-Grained Image Categorization0
Chemical Identification and Indexing in PubMed Articles via BERT and Text-to-Text Approaches0
Class2Simi: A Noise Reduction Perspective on Learning with Noisy Labels0
Class Anchor Margin Loss for Content-Based Image Retrieval0
Classifying All Interacting Pairs in a Single Shot0
Class-Specific Channel Attention for Few-Shot Learning0
CLLMFS: A Contrastive Learning enhanced Large Language Model Framework for Few-Shot Named Entity Recognition0
Closed-Form Training of Mahalanobis Distance for Supervised Clustering0
A Broad Dataset is All You Need for One-Shot Object Detection0
Cluster Head Detection for Hierarchical UAV Swarm With Graph Self-supervised Learning0
CNN Retrieval based Unsupervised Metric Learning for Near-Duplicated Video Retrieval0
Coded Residual Transform for Generalizable Deep Metric Learning0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@198.2Unverified
2Hyp-DINO 8x8R@192.8Unverified
3ResNet-50 + AVSLR@191.5Unverified
4NEDR@191.5Unverified
5ResNet-50 + Intra-Batch (ensemble of 5)R@191.5Unverified
6EfficientDML-VPTSP-G/512R@191.2Unverified
7CCL (ResNet-50)R@191.02Unverified
8ResNet50 + LanguageR@190.2Unverified
9ResNet-50 + MetrixR@189.6Unverified
10ResNet50 + S2SDR@189.5Unverified
#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@191.2Unverified
2STIRR@188.3Unverified
3Recall@k Surrogate Loss (ViT-B/16)R@188Unverified
4ViT-TripletR@186.5Unverified
5ROADMAP (DeiT-S)R@186Unverified
6Hyp-ViTR@185.9Unverified
7Hyp-DINOR@185.1Unverified
8Recall@k Surrogate Loss (ViT-B/32)R@185.1Unverified
9CCL (ResNet-50)R@183.1Unverified
10ROADMAP (ResNet-50)R@183.1Unverified
#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@190.1Unverified
2EfficientDML-VPTSP-G/512R@188.5Unverified
3Hyp-ViTR@185.6Unverified
4Hyp-DINOR@180.9Unverified
5NEDR@174.9Unverified
6CCL (ResNet-50)R@173.45Unverified
7ResNet-50 + AVSLR@171.9Unverified
8ResNet-50 + Intra-Batch ConnectionsR@171.8Unverified
9ResNet50 + LanguageR@171.4Unverified
10ResNet-50 + MetrixR@171.4Unverified
#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@196.7Unverified
2STIRR@195Unverified
3MGAR@194.3Unverified
4Hyp-ViTR@192.5Unverified
5Hyp-DINOR@192.4Unverified
6CCL (ResNet-50)R@192.31Unverified
7Gradient SurgeryR@192.21Unverified
8ResNet-50 + MetrixR@192.2Unverified
9EfficientDML-VPTSP-G/512R@192.1Unverified
10ViT-TripletR@192.1Unverified
#ModelMetricClaimedVerifiedStatus
1HAPPIERAverage-mAP43.8Unverified
2CSLAverage-mAP31Unverified
#ModelMetricClaimedVerifiedStatus
1HAPPIERAverage-mAP38Unverified
2CSLAverage-mAP28.7Unverified
#ModelMetricClaimedVerifiedStatus
1HAPPIERAverage-mAP37Unverified
2CSLAverage-mAP12.1Unverified