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    Brand new, In English, Fast shipping from London, UK; Tout neuf, en anglais, expédition rapide depuis Londres, Royaume-Uni;ria9783030170820_dbm

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        Présentation Research In Computational Molecular Biology Format Broché

         - Livre Manga

        Livre Manga - 01/04/2019 - Broché - Langue : Anglais

        . .

      • Editeur : Springer International Publishing Ag
      • Langue : Anglais
      • Parution : 01/04/2019
      • Format : Moyen, de 350g à 1kg
      • Nombre de pages : 352
      • Expédition : 534
      • Dimensions : 23.5 x 15.5 x 20.0
      • ISBN : 3030170829



      • Résumé :
        This book constitutes the proceedings of the 23rd Annual Conference on Research in Computational Molecular Biology, RECOMB 2019, held in Washington, DC, USA, in April 2019. The 17 extended and 20 short abstracts presented were carefully reviewed and selected from 175 submissions. The short abstracts are included in the back matter of the volume. The papers report on original research in all areas of computational molecular biology and bioinformatics.

        Biographie:
        ModHMM: A Modular Supra-Bayesian Genome Segmentation Method.- ...

        Sommaire:
        An Efficient, Scalable and Exact Representation of High-Dimensional Color Information Enabled Via de Bruijn Graph Search.- Identifying Clinical Terms in Free-Text Notes Using Ontology-Guided Machine Learning.- ModHMM: A Modular Supra-Bayesian Genome Segmentation Method.- Learning Robust Multi-Label Sample Specific Distances for Identifying HIV-1 Drug Resistance.- MethCP: Differentially Methylated Region Detection with Change Point Models.- On the Complexity of Sequence to Graph Alignment.- Minimization-Aware Recursive K* (MARK*): A Novel, Provable Algorithm that Accelerates Ensemble-based Protein Design and Provably Approximates the Energy Landscape.- Sparse Binary Relation Representations for Genome Graph Annotation.- How Many Subpopulations is Too Many? Exponential Lower Bounds for Inferring Population Histories.- Efficient Construction of a Complete Index for Pan-Genomics Read Alignment.- Tumor Copy Number Deconvolution Integrating Bulk and Single-CellSequencing Data.- OMGS: Optical Map-based Genome Scaffolding.- Fast Approximation of Frequent k-mers and Applications to Metagenomics.- De Novo Clustering of Long-Read Transcriptome Data Using a Greedy, Quality-Value Based Algorithm.- A Sticky Multinomial Mixture Model of Strand-Coordinated Mutational Processes in Cancer.- Disentangled Representations of Cellular Identity.- RENET: A Deep Learning Approach for Extracting Gene-Disease Associations from Literature.- APPLES: Fast Distance Based Phylogenetic Placement.- De Novo Peptide Sequencing Reveals a Vast Cyclopeptidome in Human Gut and Other environments.- Biological Sequence Modeling with Convolutional Kernel Networks.- Dynamic Pseudo-Time Warping of Complex Single-Cell Trajectories.- netNMF-sc: A Network Regularization Algorithm for Dimensionality Reduction and Imputation of Single-Cell Expression Data.- Geometric Sketching of Single-Cell Data Preserves Transcriptional Structure.- Sketching Algorithms for GenomicData Analysis and Querying in a Secure Enclave.- Mitigating Data Scarcity in Protein Binding Prediction Using Meta-Learning.- Efficient Estimation and Applications of Cross-Validated Genetic Predictions.- Inferring Tumor Evolution from Longitudinal Samples.- Scalable Multi-Component Linear Mixed Models with Application to SNP Heritability Estimation.- A Note on Computing Interval Overlap Statistics.- Distinguishing Biological from Technical Sources of Variation by Leveraging Multiple Methylation Datasets.- GRep: Gene Set Representation via Gaussian Embedding.- Accurate Sub-Population Detection and Mapping Across Single Cell Experiments with PopCorn.- Fast Estimation of Genetic Correlation for Biobank-Scale Data.- Distance-Based Protein Folding Powered by Deep Learning.- Comparing 3D Genome Organization in Multiple Species Using Phylo-HMRF.- Towards a Post-Clustering Test for Didderential Expression.- AdaFDR: a Fast, Powerful and Covariate-Adaptive Approach for Multiple Hypothesis Testing....

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