Submitted by zanzagaes2 t3_10xt36j in MachineLearning
mrtransisteur t1_j7xt1e5 wrote
You want to model:
p(cluster =c | img)
p(c1 == c2 | dist(c1, c2) = d, img1 in c1, img2 in c2)
You could try a couple things:
-
Frechet Inception Distance but instead of Inception model you use the medical CNN activations
-
distance metric learning
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hdbscan/umap/etc for clustering
-
persistent homology based topological data analysis methods for finding clusters
-
masked autoencoders for good feature extraction
-
JEPA style architecture
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