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 51–100 of 1648 papers

TitleStatusHype
Metric Learning with Progressive Self-Distillation for Audio-Visual Embedding Learning—0
Cooperative Decentralized Backdoor Attacks on Vertical Federated Learning—0
Anomaly Triplet-Net: Progress Recognition Model Using Deep Metric Learning Considering Occlusion for Manual Assembly Work—0
From Age Estimation to Age-Invariant Face Recognition: Generalized Age Feature Extraction Using Order-Enhanced Contrastive Learning—0
Towards Adversarially Robust Deep Metric Learning—0
MetricDepth: Enhancing Monocular Depth Estimation with Deep Metric Learning—0
Towards understanding how attention mechanism works in deep learning—0
Towards structure-preserving quantum encodings—0
Sensitive Image Classification by Vision Transformers—0
Bringing Multimodality to Amazon Visual Search System—0
Three Things to Know about Deep Metric Learning—0
Why and How: Knowledge-Guided Learning for Cross-Spectral Image Patch MatchingCode1
DUET: Dual Clustering Enhanced Multivariate Time Series ForecastingCode5
Enhancing Interpretability Through Loss-Defined Classification Objective in Structured Latent Spaces—0
Image Retrieval Methods in the Dissimilarity Space—0
Multi-Level Correlation Network For Few-Shot Image ClassificationCode0
Metric-DST: Mitigating Selection Bias Through Diversity-Guided Semi-Supervised Metric LearningCode0
Enhancing Few-Shot Learning with Integrated Data and GAN Model Approaches—0
Integrating Deep Metric Learning with Coreset for Active Learning in 3D SegmentationCode0
Scalable Deep Metric Learning on Attributed Graphs—0
Globally Correlation-Aware Hard Negative GenerationCode1
Outliers resistant image classification by anomaly detection—0
Fast unsupervised ground metric learning with tree-Wasserstein distance—0
Metric Learning for Tag Recommendation: Tackling Data Sparsity and Cold Start Issues—0
State Chrono Representation for Enhancing Generalization in Reinforcement LearningCode0
Metric Learning for 3D Point Clouds Using Optimal Transport—0
Few-shot Open Relation Extraction with Gaussian Prototype and Adaptive Margin—0
Learning to Generate and Evaluate Fact-checking Explanations with Transformers—0
GSSF: Generalized Structural Sparse Function for Deep Cross-modal Metric LearningCode0
PReP: Efficient context-based shape retrieval for missing parts—0
Geometry-Aware Generative Autoencoders for Warped Riemannian Metric Learning and Generative Modeling on Data ManifoldsCode0
Audio-based Kinship Verification Using Age Domain Conversion—0
GLRT-Based Metric Learning for Remote Sensing Object Retrieval—0
DAAL: Density-Aware Adaptive Line Margin Loss for Multi-Modal Deep Metric LearningCode0
MARs: Multi-view Attention Regularizations for Patch-based Feature Recognition of Space TerrainCode1
FlashMix: Fast Map-Free LiDAR Localization via Feature Mixing and Contrastive-Constrained Accelerated TrainingCode1
SeqNet: Sequential Networks for One-Shot Traffic Sign Recognition With Transfer LearningCode0
Zero-Shot Skeleton-based Action Recognition with Dual Visual-Text Alignment—0
A Bottom-Up Approach to Class-Agnostic Image Segmentation—0
Efficient and Discriminative Image Feature Extraction for Universal Image RetrievalCode1
MeLIAD: Interpretable Few-Shot Anomaly Detection with Metric Learning and Entropy-based Scoring—0
A Riemannian Approach to Ground Metric Learning for Optimal Transport—0
LabellessFace: Fair Metric Learning for Face Recognition without Attribute Labels—0
Transferable Selective Virtual Sensing Active Noise Control Technique Based on Metric LearningCode0
DiffusionPen: Towards Controlling the Style of Handwritten Text GenerationCode2
Look One and More: Distilling Hybrid Order Relational Knowledge for Cross-Resolution Image Recognition—0
Large Margin Prototypical Network for Few-shot Relation Classification with Fine-grained Features—0
Towards Fine-Grained Webpage Fingerprinting at Scale—0
Improved Diversity-Promoting Collaborative Metric Learning for Recommendation—0
Evidential Transformers for Improved Image Retrieval—0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@198.2—Unverified
2Hyp-DINO 8x8R@192.8—Unverified
3ResNet-50 + AVSLR@191.5—Unverified
4NEDR@191.5—Unverified
5ResNet-50 + Intra-Batch (ensemble of 5)R@191.5—Unverified
6EfficientDML-VPTSP-G/512R@191.2—Unverified
7CCL (ResNet-50)R@191.02—Unverified
8ResNet50 + LanguageR@190.2—Unverified
9ResNet-50 + MetrixR@189.6—Unverified
10ResNet50 + S2SDR@189.5—Unverified
#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@191.2—Unverified
2STIRR@188.3—Unverified
3Recall@k Surrogate Loss (ViT-B/16)R@188—Unverified
4ViT-TripletR@186.5—Unverified
5ROADMAP (DeiT-S)R@186—Unverified
6Hyp-ViTR@185.9—Unverified
7Hyp-DINOR@185.1—Unverified
8Recall@k Surrogate Loss (ViT-B/32)R@185.1—Unverified
9CCL (ResNet-50)R@183.1—Unverified
10ROADMAP (ResNet-50)R@183.1—Unverified
#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@190.1—Unverified
2EfficientDML-VPTSP-G/512R@188.5—Unverified
3Hyp-ViTR@185.6—Unverified
4Hyp-DINOR@180.9—Unverified
5NEDR@174.9—Unverified
6CCL (ResNet-50)R@173.45—Unverified
7ResNet-50 + AVSLR@171.9—Unverified
8ResNet-50 + Intra-Batch ConnectionsR@171.8—Unverified
9ResNet50 + LanguageR@171.4—Unverified
10ResNet-50 + MetrixR@171.4—Unverified
#ModelMetricClaimedVerifiedStatus
1Unicom+ViT-L@336pxR@196.7—Unverified
2STIRR@195—Unverified
3MGAR@194.3—Unverified
4Hyp-ViTR@192.5—Unverified
5Hyp-DINOR@192.4—Unverified
6CCL (ResNet-50)R@192.31—Unverified
7Gradient SurgeryR@192.21—Unverified
8ResNet-50 + MetrixR@192.2—Unverified
9EfficientDML-VPTSP-G/512R@192.1—Unverified
10ViT-TripletR@192.1—Unverified
#ModelMetricClaimedVerifiedStatus
1HAPPIERAverage-mAP43.8—Unverified
2CSLAverage-mAP31—Unverified
#ModelMetricClaimedVerifiedStatus
1HAPPIERAverage-mAP38—Unverified
2CSLAverage-mAP28.7—Unverified
#ModelMetricClaimedVerifiedStatus
1HAPPIERAverage-mAP37—Unverified
2CSLAverage-mAP12.1—Unverified