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Integer Linear Programming in Computational and Systems Biology

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Release : 2019-06-13
Genre : Computers
Kind : eBook
Book Rating : 768/5 ( reviews)

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Book Synopsis Integer Linear Programming in Computational and Systems Biology by : Dan Gusfield

Download or read book Integer Linear Programming in Computational and Systems Biology written by Dan Gusfield. This book was released on 2019-06-13. Available in PDF, EPUB and Kindle. Book excerpt: This hands-on tutorial text for non-experts demonstrates biological applications of a versatile modeling and optimization technique.

Integer Linear Programming in Computational and Systems Biology

Download Integer Linear Programming in Computational and Systems Biology PDF Online Free

Author :
Release : 2019-06-13
Genre : Computers
Kind : eBook
Book Rating : 253/5 ( reviews)

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Book Synopsis Integer Linear Programming in Computational and Systems Biology by : Dan Gusfield

Download or read book Integer Linear Programming in Computational and Systems Biology written by Dan Gusfield. This book was released on 2019-06-13. Available in PDF, EPUB and Kindle. Book excerpt: Integer linear programming (ILP) is a versatile modeling and optimization technique that is increasingly used in non-traditional ways in biology, with the potential to transform biological computation. However, few biologists know about it. This how-to and why-do text introduces ILP through the lens of computational and systems biology. It uses in-depth examples from genomics, phylogenetics, RNA, protein folding, network analysis, cancer, ecology, co-evolution, DNA sequencing, sequence analysis, pedigree and sibling inference, haplotyping, and more, to establish the power of ILP. This book aims to teach the logic of modeling and solving problems with ILP, and to teach the practical 'work flow' involved in using ILP in biology. Written for a wide audience, with no biological or computational prerequisites, this book is appropriate for entry-level and advanced courses aimed at biological and computational students, and as a source for specialists. Numerous exercises and accompanying software (in Python and Perl) demonstrate the concepts.

Application of Linear and Integer Programming to Three Challenging Problems in Computational Biology

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Release : 2021
Genre :
Kind : eBook
Book Rating : /5 ( reviews)

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Book Synopsis Application of Linear and Integer Programming to Three Challenging Problems in Computational Biology by : Hooman Zabeti

Download or read book Application of Linear and Integer Programming to Three Challenging Problems in Computational Biology written by Hooman Zabeti. This book was released on 2021. Available in PDF, EPUB and Kindle. Book excerpt: Linear Programming (LP) and Integer Linear Programming (ILP) have increasingly been used in computational and systems biology methods in the past 24 years. From RNA and protein structure prediction to analyzing biological networks, ILP and ILP-based methods provide natural, easy to maintain, and extendable solutions for many NP-hard biological optimization problems. This thesis aims to provide solutions to three challenging problems in system biology, infectious disease, and epidemiology. First, we present a four-step framework to verify and diagnose elemental balance violation in metabolic networks. Identifying such violations can be specifically challenging since chemical formulas of the metabolites in a metabolic network are often partially or entirely left unspecified. However, our framework is able to detect such violations efficiently and makes suggestions for correction without the need for specifying the chemical formula for each metabolite. We have applied our framework to a collection of 94 previously published metabolic network models and successfully detected elemental balance violations in 46 of them. Next, we introduce INGOT-DR, an interpretable classifier for predicting drug resistance. Our classifier utilizes group testing and Boolean compressed sensing to provide highly accurate and interpretable predictions, which could be helpful to investigate the mechanism of drug resistance in pathogenic bacteria such as Mycobacterium tuberculosis. Our method is also flexible enough to be optimized for various evaluation metrics at the same time. INGOT- DR has been tested for predicting drug resistance on five first-line and seven second-line antibiotics used for treating tuberculosis and showed higher or comparable accuracy to commonly used machine learning models for phenotype-genotype prediction. Our method was also able to identify variants located in genes previously reported to be associated with drug resistance. Finally, we present GroupTesing, a modular software platform for a comprehensive evaluation of non-adaptive group testing strategies. This software can perform the evaluation in both a noiseless setting and in the presence of single or multiple realistic noise sources modeled on published experimental observations, which makes them applicable to polymerase chain reaction (PCR) tests, the dominant type of tests for SARS-CoV-2.

Linear Programming

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Release : 2003-01-01
Genre : Mathematics
Kind : eBook
Book Rating : 84X/5 ( reviews)

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Book Synopsis Linear Programming by : Saul I. Gass

Download or read book Linear Programming written by Saul I. Gass. This book was released on 2003-01-01. Available in PDF, EPUB and Kindle. Book excerpt: Comprehensive, well-organized volume, suitable for undergraduates, covers theoretical, computational, and applied areas in linear programming. Expanded, updated edition; useful both as a text and as a reference book. 1995 edition.

Protein Interaction Networks

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Release : 2009-04-06
Genre : Computers
Kind : eBook
Book Rating : 032/5 ( reviews)

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Book Synopsis Protein Interaction Networks by : Aidong Zhang

Download or read book Protein Interaction Networks written by Aidong Zhang. This book was released on 2009-04-06. Available in PDF, EPUB and Kindle. Book excerpt: The analysis of protein-protein interactions is fundamental to the understanding of cellular organization, processes, and functions. Proteins seldom act as single isolated species; rather, proteins involved in the same cellular processes often interact with each other. Functions of uncharacterized proteins can be predicted through comparison with the interactions of similar known proteins. Recent large-scale investigations of protein-protein interactions using such techniques as two-hybrid systems, mass spectrometry, and protein microarrays have enriched the available protein interaction data and facilitated the construction of integrated protein-protein interaction networks. The resulting large volume of protein-protein interaction data has posed a challenge to experimental investigation. This book provides a comprehensive understanding of the computational methods available for the analysis of protein-protein interaction networks. It offers an in-depth survey of a range of approaches, including statistical, topological, data-mining, and ontology-based methods. The author discusses the fundamental principles underlying each of these approaches and their respective benefits and drawbacks, and she offers suggestions for future research.

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