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decima-data
Dataset Summary
This dataset contains gene expression predictions and associated genomic features formatted as an AnnData object. It is designed for use with the Decima framework to support tasks such as gene expression prediction and genomic sequence modeling. The data provides a comprehensive view of expression across various tissues, organs, and disease states, primarily centered on human brain atlas data.
For more details, please refer to the original paper: https://www.biorxiv.org/content/10.1101/2024.10.09.617507v3.
Dataset Structure
The dataset is an AnnData object with dimensions: 8,856 observations (pseudobulks) × 18,457 variables (genes).
Data Fields
In .obs (Observation metadata):
| Column | Description |
|---|---|
cell_type |
Specific cell type label |
tissue |
Tissue of origin |
organ |
Organ of origin |
disease |
Clinical status or condition (e.g., healthy) |
study |
Source study identifier |
dataset |
Source dataset identifier |
region |
Anatomical region |
subregion |
Specific anatomical subregion |
celltype_coarse |
Broad cell type classification |
n_cells |
Number of cells aggregated into the pseudobulk |
total_counts |
Total read count |
n_genes |
Number of genes detected |
size_factor |
Sum after normalization |
train_pearson |
Pearson correlation on training set |
val_pearson |
Pearson correlation on validation set |
test_pearson |
Pearson correlation on test set |
In .var (Metadata for variables/genes):
| Column | Description |
|---|---|
chrom |
Chromosome |
start |
Genomic start coordinate (hg38) |
end |
Genomic end coordinate (hg38) |
strand |
Genomic strand (+/-) |
gene_type |
Gene biotype (e.g., protein coding) |
frac_nan |
Fraction of missing values |
mean_counts |
Average expression counts |
n_tracks |
Number of pseudobulks expressing the gene |
gene_start |
Gene start position |
gene_end |
Gene end position |
gene_length |
Total length of the gene |
gene_mask_start |
Start of the gene mask in the input sequence |
gene_mask_end |
End of the gene mask in the input sequence |
frac_N |
Fraction of ambiguous bases (N) in the input |
fold |
Borzoi fold assignment |
dataset |
Split assignment (e.g., train, test) |
gene_id |
Ensembl gene identifier |
pearson |
Overall Pearson correlation |
size_factor_pearson |
Pearson correlation using size factor |
ensembl_canonical_tss |
Canonical Transcription Start Site |
Data Layers
.layers['preds']: Predicted values from the Decima model..layers['v1_rep0']through.layers['v1_rep3']: Predictions from four model replicates.
Usage
import anndata
from huggingface_hub import hf_hub_download
file_path = hf_hub_download(
repo_id="Genentech/decima-data",
repo_type="dataset",
filename="metadata.h5ad"
)
adata = anndata.read_h5ad(file_path)
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