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A transcriptional response predictor for unseen genetic perturbtions with LLM embeddings

Project description

Scouter: a transcriptional response predictor for unseen genetic perturbtions with LLM embeddings

Scouter is a deep neural network with simple architecture, for the task of predicting transcriptional response to unseen genetic perturbtions.

Scouter employs the LLM embeddings generated from text description of genes, enabling the perdiction on unseen genes.

For more details read our manuscript




Installation

pip install scouter-learn

Main API

Below is an example that includes main APIs to train Scouter on a perturbation dataset.

from scouter import Scouter, ScouterData

# please prepare the gene expression data (adata) and gene embedding dataframe (embd)
pertdata = ScouterData(adata=adata, embd=embd)
pertdata.setup_ad('embd_index')

# Model Training
scouter_model = Scouter(pertdata)
scouter_model.model_init()
scouter_model.train()

# Prediction
scouter_model.precit('GeneA+ctrl')

Demos

Name Description
Model Tutorial A detailed tutorial on how to use Scouter on Adamson dataset, including preprocessing, paramter setting, model evaluation
Unmatched Genes Tutorial A tutorial that illustrates the problem of unmatched genes between adata and embd, and provides a remedy.

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