Quantitative visual exploration of scRNA-seq data


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Documentation for package ‘scBubbletree’ version 1.6.0

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scBubbletree-package The R package scBubbletree
d_500 Dataset: 500 PBMCs
d_ccl Dataset: scRNA-seq data of 3,918 cells from 5 adenocarcinoma cell lines
get_bubbletree_dummy Build bubbletree given matrix A and vector cs of externally generated cluster IDs
get_bubbletree_graph Louvain clustering and hierarchical grouping of k' clusters (bubbles)
get_bubbletree_kmeans k-means clustering and hierarchical grouping of k clusters (bubbles)
get_cat_tiles Visualization of categorical cell features using tile plots
get_gini Gini impurity index computed for a clustering solution and a vector of categorical cell feature labels
get_gini_k Gini impurity index computed for a list of clustering solutions obtained by functions get_k or get_r and a vector of categorical cell feature labels
get_k Finding optimal number k of clusters
get_num_tiles Visualization of numeric cell features using tile plots
get_num_violins Visualization of numeric cell features using violin plots
get_r Finding optimal clustering resulution r and number of communities k'
scBubbletree The R package scBubbletree