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QCBio Research Seminar: Zhiqian Zhai (Li JJ), Graduate Student in Statistics

December 15, 2022 @ 1:30 pm - 2:00 pm

TITLE: “Supervised capacity preserving mapping: a clustering guided visualization method for scRNA-seq data.”

ABSTRACT: Recently, various computational methods have been developed to analyze the scRNAseq data, such as clustering and visualization. However, current visualization methods, including t-SNE and UMAP, are challenged by the limited accuracy of rendering the geometric relationship of populations with distinct functional states. Most visualization methods are unsupervised, leaving out information from the clustering results or given labels. This leads to the inaccurate depiction of the distances between the bona fide functional states. In particular, UMAP and t-SNE are not optimal to preserve the global geometric structure. They may result in a contradiction that clusters with near distance in the embedded dimensions are in fact further away in the original dimensions. Besides, UMAP and t-SNE cannot track the variance of clusters. Through the embedding of t-SNE and UMAP, the variance of a cluster is not only associated with the true variance but also is proportional to the sample size. Here, we present supCPM, a robust supervised visualization method, which separates different clusters, preserves the global structure and tracks the cluster variance.

 

Details

Date:
December 15, 2022
Time:
1:30 pm - 2:00 pm
Event Category:

Organizer

QCBio

Venue

Boyer Hall 159

Details

Date:
December 15, 2022
Time:
1:30 pm - 2:00 pm
Event Category:

Organizer

QCBio

Venue

Boyer Hall 159