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DOE OSTI · code-165883

JGI-Trichoderma v1.0

Abstract

There is a series of Python and bash scripts to parse genomics datasets used to evaluate the coevolution of gene families and the feature importance of gene families using an SVM classifier. - Cover analysis: takes a list of single-copy genes in a set of genomes, aligns and builds the gene trees to determine if two gene families have a signature of covariation with one another. It parses the files to run phykit cover script described here: https://jlsteenwyk.com/PhyKIT/usage/index.html - SVM-classifier: This Python script is an SVM-based genomic classifier designed for biological data analysis. It combines machine learning with feature selection to identify important genomic markers and classify biological samples. Core Functionality: The script uses Support Vector Machines from scikit-learn to classify genomic data, incorporating SelectKBest for automated feature selection and leave-one-out cross-validation for performance assessment. It operates in multiple modes: feature ranking, optimal combination discovery, and sample prediction. Primary Applications: Genomic sample classification and biomarker discovery Feature importance analysis in high-dimensional biological datasets Prediction of sample categories based on genomic profiles Research applications requiring robust classification of biological data Key Advantages: High-dimensional handling: SVMs excel with genomic data's typical high feature-to-sample ratios Integrated feature selection: Reduces noise and computational overhead while identifying key markers Probability estimation: Provides confidence scores essential for biological interpretation Validation robustness: Leave-one-out cross-validation ensures reliable performance metrics Operational flexibility: Multiple analysis modes support different research phases from exploration to prediction

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BibTeXRIS

Stecca Steindorff, Andrei [Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States)], Grigoriev, Igor [Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States); USDOE Joint Genome Institute (JGI), Berkeley, CA (United States)], Salamov, Asaf [Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States)], Haridas, Sajeet [Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States)], Albert, Ryan [Lawrence Berkeley National Laboratory (LBNL), Berkeley, CA (United States)]. 2025-10-01. JGI-Trichoderma v1.0. https://doi.org/10.11578/dc.20251002.6

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