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 151–175 of 522 papers

TitleStatusHype
Position-guided Text Prompt for Vision-Language Pre-trainingCode1
Recurrence-Enhanced Vision-and-Language Transformers for Robust Multimodal Document RetrievalCode1
Dense and Aligned Captions (DAC) Promote Compositional Reasoning in VL ModelsCode1
IGLUE: A Benchmark for Transfer Learning across Modalities, Tasks, and LanguagesCode1
Revamping Cross-Modal Recipe Retrieval with Hierarchical Transformers and Self-supervised LearningCode1
Stacked Cross Attention for Image-Text MatchingCode1
Image-text Retrieval via Preserving Main Semantics of VisionCode1
IMPACT: A Large-scale Integrated Multimodal Patent Analysis and Creation Dataset for Design PatentsCode1
VXP: Voxel-Cross-Pixel Large-scale Image-LiDAR Place RecognitionCode1
Learning Relation Alignment for Calibrated Cross-modal RetrievalCode1
A Channel Mix Method for Fine-Grained Cross-Modal RetrievalCode0
CHEF: Cross-modal Hierarchical Embeddings for Food Domain RetrievalCode0
Picture It In Your Mind: Generating High Level Visual Representations From Textual DescriptionsCode0
Cross-Modal Retrieval in the Cooking Context: Learning Semantic Text-Image EmbeddingsCode0
CAMP: Cross-Modal Adaptive Message Passing for Text-Image RetrievalCode0
Alternative Telescopic Displacement: An Efficient Multimodal Alignment MethodCode0
NeighborRetr: Balancing Hub Centrality in Cross-Modal RetrievalCode0
OPT: Omni-Perception Pre-Trainer for Cross-Modal Understanding and GenerationCode0
Bridging Vision and Language Spaces with Assignment PredictionCode0
MXM-CLR: A Unified Framework for Contrastive Learning of Multifold Cross-Modal RepresentationsCode0
Multilingual Vision-Language Pre-training for the Remote Sensing DomainCode0
Multimodal LLM Enhanced Cross-lingual Cross-modal RetrievalCode0
NAPReg: Nouns As Proxies Regularization for Semantically Aware Cross-Modal EmbeddingsCode0
MTFH: A Matrix Tri-Factorization Hashing Framework for Efficient Cross-Modal RetrievalCode0
Balance Act: Mitigating Hubness in Cross-Modal Retrieval with Query and Gallery BanksCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1MaMMUT (ours)Image-to-text R@170.7—Unverified
2VASTText-to-image R@168—Unverified
3X2-VLM (large)Text-to-image R@167.7—Unverified
4BEiT-3Text-to-image R@167.2—Unverified
5XFM (base)Text-to-image R@167—Unverified
6X2-VLM (base)Text-to-image R@166.2—Unverified
7PTP-BLIP (14M)Text-to-image R@164.9—Unverified
8OmniVL (14M)Text-to-image R@164.8—Unverified
9VSE-GradientText-to-image R@163.6—Unverified
10X-VLM (base)Text-to-image R@163.4—Unverified
#ModelMetricClaimedVerifiedStatus
1X2-VLM (large)Image-to-text R@198.8—Unverified
2X2-VLM (base)Image-to-text R@198.5—Unverified
3BEiT-3Image-to-text R@198—Unverified
4OmniVL (14M)Image-to-text R@197.3—Unverified
5Aurora (ours, r=128)Image-to-text R@197.2—Unverified
6ERNIE-ViL 2.0Image-to-text R@197.2—Unverified
7X-VLM (base)Image-to-text R@197.1—Unverified
8VSE-GradientImage-to-text R@197—Unverified
9ALIGNImage-to-text R@195.3—Unverified
10VASTText-to-image R@191—Unverified
#ModelMetricClaimedVerifiedStatus
1VLPCook (R1M+)Image-to-text R@174.9—Unverified
2VLPCookImage-to-text R@173.6—Unverified
3T-Food (CLIP)Image-to-text R@172.3—Unverified
4T-FoodImage-to-text R@168.2—Unverified
5X-MRSImage-to-text R@164—Unverified
6H-TImage-to-text R@160—Unverified
7SCANImage-to-text R@154—Unverified
8ACMEImage-to-text R@151.8—Unverified
9VLPCookImage-to-text R@145.2—Unverified
10AdaMineImage-to-text R@139.8—Unverified
#ModelMetricClaimedVerifiedStatus
1HarMA (w/ GeoRSCLIP)Mean Recall38.95—Unverified
2GeoRSCLIP-FTMean Recall38.87—Unverified
3GLISAMean Recall37.69—Unverified
4RemoteCLIPMean Recall36.35—Unverified
5PE-RSITR (MRS-Adapter)Mean Recall31.12—Unverified
6PIRMean Recall24.46—Unverified
7DOVEMean Recall22.72—Unverified
8SWANMean Recall20.61—Unverified
9GaLRMean Recall18.96—Unverified
10AMFMNMean Recall15.53—Unverified
#ModelMetricClaimedVerifiedStatus
1HarMA (w/ GeoRSCLIP)Image-to-text R@132.74—Unverified
2GeoRSCLIP-FTImage-to-text R@132.3—Unverified
3GLISAImage-to-text R@132.08—Unverified
4RemoteCLIPImage-to-text R@128.76—Unverified
5PE-RSITR (MRS-Adapter)Image-to-text R@123.67—Unverified
6PIRImage-to-text R@118.14—Unverified
7DOVEImage-to-text R@116.81—Unverified
8GaLRImage-to-text R@114.82—Unverified
9SWANImage-to-text R@113.35—Unverified
10AMFMNImage-to-text R@110.63—Unverified
#ModelMetricClaimedVerifiedStatus
1CLASS (ORMA)Hits@167.4—Unverified
2ORMAHits@166.5—Unverified
3Song et al.Hits@156.5—Unverified
4CLASS (AMAN)Hits@151.1—Unverified
5DSOKRHits@151—Unverified
6AMANHits@149.4—Unverified
7All-EnsembleHits@134.4—Unverified
8MLP1Hits@122.4—Unverified
9GCN2Hits@122.3—Unverified
#ModelMetricClaimedVerifiedStatus
1NAPRegImage-to-text R@181.9—Unverified
2Dual-path CNNImage-to-text R@141.2—Unverified
#ModelMetricClaimedVerifiedStatus
1ResNet-18Median Rank565—Unverified
2GeoCLAPMedian Rank159—Unverified
#ModelMetricClaimedVerifiedStatus
1Dual PathText-to-image Medr2—Unverified
#ModelMetricClaimedVerifiedStatus
1NAPRegImage-to-text R@156.2—Unverified
#ModelMetricClaimedVerifiedStatus
13SHNetImage-to-text R@185.8—Unverified
#ModelMetricClaimedVerifiedStatus
1NAPRegText-to-image R@143—Unverified