End-to-end machine learning pipeline for peptide database search
Project description
ProteoRift Python Package
End-to-end machine learning pipeline for peptide database search in mass spectrometry proteomics.
Installation
pip install proteorift
Quick Start
Using Sample Data
from proteorift import ProteoRiftSearch
# Initialize and run with sample data
searcher = ProteoRiftSearch()
results = searcher.search_with_sample_data()
print(f"Results saved to: {results['output_dir']}")
Using Your Own Data
from proteorift import ProteoRiftSearch
# Initialize search
searcher = ProteoRiftSearch()
# Run peptide database search
results = searcher.search(
mgf_dir="path/to/your/spectra", # Directory with MGF files
peptide_db="path/to/your/database", # Directory with FASTA files
output_dir="./results"
)
Custom Parameters
searcher = ProteoRiftSearch(
precursor_tolerance=10,
precursor_tolerance_type="ppm",
charge=3,
length_filter=True,
device="cuda" # or "cpu", "auto"
)
results = searcher.search(mgf_dir="...", peptide_db="...")
Command Line Interface
# Run search with sample data
proteorift search-sample --output-dir ./results
# Run search with your data
proteorift search \
--mgf-dir path/to/spectra \
--peptide-db path/to/database \
--output-dir ./results \
--tolerance 10 \
--charge 3
# Download models only
proteorift download-models
Output
ProteoRift generates Percolator-compatible PIN files:
target.pin- Target peptide-spectrum matchesdecoy.pin- Decoy peptide-spectrum matches
System Requirements
- Python: 3.8 or higher
- GPU: 12GB+ VRAM recommended (CPU also supported)
- OS: Linux, macOS, or Windows
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