scYOU Server
About scYOU
scYOU is a multi-scale yoked optimization framework that jointly models cellular heterogeneity and protein-level functional structure in proteomics. By integrating supercell-guided alignment with GO-based functional regularization, scYOU couples cell-level organization with protein functional similarity, enabling the learning of coherent and biologically meaningful representations under sparse and noisy measurements.
Submitting Jobs
- Three data files are required: Proteomics Expression Matrix, GO Similarity Matrix, Supercell Labels.
- Fourth file (optional): Cell Type Labels for performance evaluation.
- Adjust hyperparameters: number of clusters, top variable proteins, alpha, beta, gamma, delta, learning rate.
Job Output
You will get a zip file containing:
- cell_embeddings.csv – Learned cell embeddings.
- protein_embeddings.csv – Learned protein embeddings.
- final_cluster_labels.csv – Final cluster assignments for each cell.
- clustering_results.txt – Evaluation metrics (NMI, ARI) if labels provided.
Download Example
The example contains sample data files to help you understand the correct format.
expression_Montalvo.csv - Protein expression matrix (proteins × cells)
GO_Montalvo.csv - GO similarity matrix (proteins × proteins)
supercell_Montalvo.csv - Supercell labels (one per cell)
meta_Montalvo.csv - Ground truth cell type labels (optional)
Expected output: Cell embeddings, protein embeddings, and cluster labels.
Download Example Files
GO_Montalvo.csv - GO similarity matrix (proteins × proteins)
supercell_Montalvo.csv - Supercell labels (one per cell)
meta_Montalvo.csv - Ground truth cell type labels (optional)
Expected output: Cell embeddings, protein embeddings, and cluster labels.
Upload Data Files
Submit your proteomics datasets for scYOU clustering analysis
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Please upload data and set parameters, then click "Run".
Please upload data and set parameters, then click "Run".
Run scYOU Clustering
Execute clustering analysis on uploaded files
Analysis Results
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Please upload data and set parameters, then click "Run".
Please upload data and set parameters, then click "Run".