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Image Retrieval On Cirr
Image Retrieval On Cirr
评估指标
(Recall@5+Recall_subset@1)/2
评测结果
各个模型在此基准测试上的表现结果
Columns
模型名称
(Recall@5+Recall_subset@1)/2
Paper Title
Repository
SPN4CIR
82.69
Improving Composed Image Retrieval via Contrastive Learning with Scaling Positives and Negatives
SPN4CIR (SPRC)
82.69
Improving Composed Image Retrieval via Contrastive Learning with Scaling Positives and Negatives
SPRC2
82.66
Sentence-level Prompts Benefit Composed Image Retrieval
SPRC
81.39
Sentence-level Prompts Benefit Composed Image Retrieval
Candidate Set Re-ranking
80.9
Candidate Set Re-ranking for Composed Image Retrieval with Dual Multi-modal Encoder
CaLa
78.74
CaLa: Complementary Association Learning for Augmenting Composed Image Retrieval
CASE (Pre-trained on LaSCo.Ca)
78.25
Data Roaming and Quality Assessment for Composed Image Retrieval
CASE
77.5
Data Roaming and Quality Assessment for Composed Image Retrieval
VISTA (base)
75.9
VISTA: Visualized Text Embedding For Universal Multi-Modal Retrieval
TG-CIR (Wen et al., 2023)
75.6
Target-Guided Composed Image Retrieval
-
CLIP4Cir (v3)
75.10
Composed Image Retrieval using Contrastive Learning and Task-oriented CLIP-based Features
BLIP4CIR+Bi
72.59
Bi-directional Training for Composed Image Retrieval via Text Prompt Learning
CLIP4Cir (v2)
69.09
Conditioned and Composed Image Retrieval Combining and Partially Fine-Tuning CLIP-Based Features
-
CLIP4Cir
63.87
Effective Conditioned and Composed Image Retrieval Combining CLIP-Based Features
-
CIRPLANT
45.88
Image Retrieval on Real-life Images with Pre-trained Vision-and-Language Models
ARTEMIS
43.05
ARTEMIS: Attention-based Retrieval with Text-Explicit Matching and Implicit Similarity
MMRet-MLLM
-
MegaPairs: Massive Data Synthesis For Universal Multimodal Retrieval
0 of 17 row(s) selected.
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