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SOTA
图像聚类
Image Clustering On Cifar 100
Image Clustering On Cifar 100
评估指标
ARI
Accuracy
NMI
Train Set
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
ARI
Accuracy
NMI
Train Set
Paper Title
Repository
TURTLE (CLIP + DINOv2)
0.834
0.898
0.915
-
Let Go of Your Labels with Unsupervised Transfer
PRCut (DinoV2)
-
0.789
0.856
-
Deep Clustering via Probabilistic Ratio-Cut Optimization
-
PRO-DSC
-
0.773
0.824
-
Exploring a Principled Framework For Deep Subspace Clustering
-
TEMI CLIP ViT-L (openai)
0.612
0.737
0.799
Train
Exploring the Limits of Deep Image Clustering using Pretrained Models
TEMI DINO ViT-B
0.533
0.671
0.769
Train
Exploring the Limits of Deep Image Clustering using Pretrained Models
ITAE
0.5053
0.6502
0.771
Test
Improving Image Clustering with Artifacts Attenuation via Inference-Time Attention Engineering
-
SPICE*
0.422
0.584
0.583
Train
SPICE: Semantic Pseudo-labeling for Image Clustering
HUME
0.377
0.555
-
Train
-
-
DPAC
0.393
0.555
0.542
-
Deep Online Probability Aggregation Clustering
SPICE-BPA
0.402
0.550
0.560
-
The Balanced-Pairwise-Affinities Feature Transform
TCL
0.357
0.531
0.529
Train
Twin Contrastive Learning for Online Clustering
IMC-SwAV (Best)
0.361
0.519
0.527
Train
Information Maximization Clustering via Multi-View Self-Labelling
SCAN
0.333
0.507
0.486
Train
SCAN: Learning to Classify Images without Labels
IMC-SwAV (Avg+-)
0.337
0.49
0.503
-
Information Maximization Clustering via Multi-View Self-Labelling
ConCURL
0.303
0.479
0.468
Train
Representation Learning for Clustering via Building Consensus
SCAN (Avg)
0.301
0.459
0.468
Train
SCAN: Learning to Classify Images without Labels
C3
0.275
0.451
0.434
-
C3: Cross-instance guided Contrastive Clustering
MMDC
-
0.446
0.418
-
Multi-Modal Deep Clustering: Unsupervised Partitioning of Images
CoHiClust
0.299
0.437
0.467
-
Contrastive Hierarchical Clustering
CC
0.266
0.429
0.431
-
Contrastive Clustering
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