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Unsupervised Semantic Segmentation With
Unsupervised Semantic Segmentation With 10
Unsupervised Semantic Segmentation With 10
Metrics
mIoU
Results
Performance results of various models on this benchmark
Columns
Model Name
mIoU
Paper Title
Repository
CLS-SEG
35.3
TagCLIP: A Local-to-Global Framework to Enhance Open-Vocabulary Multi-Label Classification of CLIP Without Training
ProxyCLIP
39.2
ProxyCLIP: Proxy Attention Improves CLIP for Open-Vocabulary Segmentation
TagAlign
33.3
TagAlign: Improving Vision-Language Alignment with Multi-Tag Classification
Trident
42.2
Harnessing Vision Foundation Models for High-Performance, Training-Free Open Vocabulary Segmentation
TCL
31.6
Learning to Generate Text-grounded Mask for Open-world Semantic Segmentation from Only Image-Text Pairs
COSMOS ViT-B/16
31.3
COSMOS: Cross-Modality Self-Distillation for Vision Language Pre-training
TTD (TCL)
37.4
TTD: Text-Tag Self-Distillation Enhancing Image-Text Alignment in CLIP to Alleviate Single Tag Bias
TTD (MaskCLIP)
26.5
TTD: Text-Tag Self-Distillation Enhancing Image-Text Alignment in CLIP to Alleviate Single Tag Bias
MaskCLIP
20.6
Extract Free Dense Labels from CLIP
GroupViT (RedCaps)
27.5
GroupViT: Semantic Segmentation Emerges from Text Supervision
ReCo
15.7
ReCo: Retrieve and Co-segment for Zero-shot Transfer
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0 of 11 row(s) selected.
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