SOTAVerified

Cross-Modal Retrieval

Cross-Modal Retrieval (CMR) is a task of retrieving items across different modalities, such as image, text, video, and audio. The core challenge of CMR is the heterogeneity gap, which arises because data from different modalities have distinct representations, making direct comparison difficult. To address this, most CMR methods focus on learning a shared latent embedding space. In this space, concepts from different modalities are projected, allowing their similarity to be measured using a distance metric.

Scene-centric vs. Object-centric Image-Text Cross-modal Retrieval: A Reproducibility Study

Papers

Showing 101125 of 522 papers

TitleStatusHype
Deep Sketched Output Kernel Regression for Structured PredictionCode0
What If We Recaption Billions of Web Images with LLaMA-3?0
Merlin: A Vision Language Foundation Model for 3D Computed TomographyCode3
Separating the "Chirp" from the "Chat": Self-supervised Visual Grounding of Sound and LanguageCode2
No Captions, No Problem: Captionless 3D-CLIP Alignment with Hard Negatives via CLIP Knowledge and LLMs0
Multi-Modal Generative Embedding Model0
CaLa: Complementary Association Learning for Augmenting Composed Image RetrievalCode1
RREH: Reconstruction Relations Embedded Hashing for Semi-Paired Cross-Modal Retrieval0
Towards Cross-modal Backward-compatible Representation Learning for Vision-Language Models0
Distilling Vision-Language Pretraining for Efficient Cross-Modal Retrieval0
MVBIND: Self-Supervised Music Recommendation For Videos Via Embedding Space Binding0
Global–Local Information Soft-Alignment for Cross-Modal Remote-Sensing Image–Text Retrieval0
All in One Framework for Multimodal Re-identification in the Wild0
COM3D: Leveraging Cross-View Correspondence and Cross-Modal Mining for 3D Retrieval0
Understanding Retrieval-Augmented Task Adaptation for Vision-Language Models0
Efficient Remote Sensing with Harmonized Transfer Learning and Modality AlignmentCode2
3SHNet: Boosting Image-Sentence Retrieval via Visual Semantic-Spatial Self-HighlightingCode0
Anchor-aware Deep Metric Learning for Audio-visual Retrieval0
Wills Aligner: Multi-Subject Collaborative Brain Visual Decoding0
Dynamic Self-adaptive Multiscale Distillation from Pre-trained Multimodal Large Model for Efficient Cross-modal Representation LearningCode0
Knowledge-enhanced Visual-Language Pretraining for Computational PathologyCode1
Bridging Vision and Language Spaces with Assignment PredictionCode0
Learning with Noisy Correspondence0
Cross-modal Retrieval with Noisy Correspondence via Consistency Refining and MiningCode1
VXP: Voxel-Cross-Pixel Large-scale Image-LiDAR Place RecognitionCode1
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1MaMMUT (ours)Image-to-text R@170.7Unverified
2VASTText-to-image R@168Unverified
3X2-VLM (large)Text-to-image R@167.7Unverified
4BEiT-3Text-to-image R@167.2Unverified
5XFM (base)Text-to-image R@167Unverified
6X2-VLM (base)Text-to-image R@166.2Unverified
7PTP-BLIP (14M)Text-to-image R@164.9Unverified
8OmniVL (14M)Text-to-image R@164.8Unverified
9VSE-GradientText-to-image R@163.6Unverified
10X-VLM (base)Text-to-image R@163.4Unverified
#ModelMetricClaimedVerifiedStatus
1X2-VLM (large)Image-to-text R@198.8Unverified
2X2-VLM (base)Image-to-text R@198.5Unverified
3BEiT-3Image-to-text R@198Unverified
4OmniVL (14M)Image-to-text R@197.3Unverified
5Aurora (ours, r=128)Image-to-text R@197.2Unverified
6ERNIE-ViL 2.0Image-to-text R@197.2Unverified
7X-VLM (base)Image-to-text R@197.1Unverified
8VSE-GradientImage-to-text R@197Unverified
9ALIGNImage-to-text R@195.3Unverified
10VASTText-to-image R@191Unverified
#ModelMetricClaimedVerifiedStatus
1VLPCook (R1M+)Image-to-text R@174.9Unverified
2VLPCookImage-to-text R@173.6Unverified
3T-Food (CLIP)Image-to-text R@172.3Unverified
4T-FoodImage-to-text R@168.2Unverified
5X-MRSImage-to-text R@164Unverified
6H-TImage-to-text R@160Unverified
7SCANImage-to-text R@154Unverified
8ACMEImage-to-text R@151.8Unverified
9VLPCookImage-to-text R@145.2Unverified
10AdaMineImage-to-text R@139.8Unverified
#ModelMetricClaimedVerifiedStatus
1HarMA (w/ GeoRSCLIP)Mean Recall38.95Unverified
2GeoRSCLIP-FTMean Recall38.87Unverified
3GLISAMean Recall37.69Unverified
4RemoteCLIPMean Recall36.35Unverified
5PE-RSITR (MRS-Adapter)Mean Recall31.12Unverified
6PIRMean Recall24.46Unverified
7DOVEMean Recall22.72Unverified
8SWANMean Recall20.61Unverified
9GaLRMean Recall18.96Unverified
10AMFMNMean Recall15.53Unverified
#ModelMetricClaimedVerifiedStatus
1HarMA (w/ GeoRSCLIP)Image-to-text R@132.74Unverified
2GeoRSCLIP-FTImage-to-text R@132.3Unverified
3GLISAImage-to-text R@132.08Unverified
4RemoteCLIPImage-to-text R@128.76Unverified
5PE-RSITR (MRS-Adapter)Image-to-text R@123.67Unverified
6PIRImage-to-text R@118.14Unverified
7DOVEImage-to-text R@116.81Unverified
8GaLRImage-to-text R@114.82Unverified
9SWANImage-to-text R@113.35Unverified
10AMFMNImage-to-text R@110.63Unverified
#ModelMetricClaimedVerifiedStatus
1CLASS (ORMA)Hits@167.4Unverified
2ORMAHits@166.5Unverified
3Song et al.Hits@156.5Unverified
4CLASS (AMAN)Hits@151.1Unverified
5DSOKRHits@151Unverified
6AMANHits@149.4Unverified
7All-EnsembleHits@134.4Unverified
8MLP1Hits@122.4Unverified
9GCN2Hits@122.3Unverified
#ModelMetricClaimedVerifiedStatus
1NAPRegImage-to-text R@181.9Unverified
2Dual-path CNNImage-to-text R@141.2Unverified
#ModelMetricClaimedVerifiedStatus
1ResNet-18Median Rank565Unverified
2GeoCLAPMedian Rank159Unverified
#ModelMetricClaimedVerifiedStatus
1Dual PathText-to-image Medr2Unverified
#ModelMetricClaimedVerifiedStatus
1NAPRegImage-to-text R@156.2Unverified
#ModelMetricClaimedVerifiedStatus
13SHNetImage-to-text R@185.8Unverified
#ModelMetricClaimedVerifiedStatus
1NAPRegText-to-image R@143Unverified