Handles creating, reading and updating training events.

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            "description": "With the rise in high-throughput sequencing technologies, the volume of omics data has grown exponentially in recent times and a major issue is to mine useful knowledge from these data which are also heterogeneous in nature. Machine learning (ML) is a discipline in which computers perform automated learning without being programmed explicitly and assist humans to make sense of large and complex data sets. The analysis of complex high-volume data is not trivial and classical tools cannot be used to explore their full potential. Machine learning can thus be very useful in mining large omics datasets to uncover new insights that can advance the field of bioinformatics.\r\n\r\nThis 2-day course will introduce participants to the machine learning taxonomy and the applications of common machine learning algorithms to omics data. The course will cover the common methods being used to analyse different omics data sets by providing a practical context through the use of basic but widely used R libraries. The course will comprise a number of hands-on exercises and challenges where the participants will acquire a first understanding of the standard ML processes, as well as the practical skills in applying them on familiar problems and publicly available real-world data sets.",
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            "description": "This training session, organized jointly with the Sigenae platform, is designed to help you deal with NGS data, in particular Roche 454 and Illumina Solexa technologies. You will discover the new sequence formats, the new assembly formats and the known biases of these technologies. You will use mapping on reference genome software, polymorphisms detection (with the GATK pipeline), polymorphisms annotation and alignment visualization software. Organized jointly by the Sigenae and bioinfo genotoul platforms.\n",
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            "name": "Modules Biologie École Doctorale SVSAE",
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            "description": "Les UE de bioinformatique de la spécialité AMD sont ouvertes aux doctorants de l'école doctorale SVSAE dans le cadre de leur formation doctorale. 3 UE sont particulièrement suivies : UE « Programmation en perl », UE « Bioistatistiques et programmation sous R » et UE « Génomique et bioinformatique ». Les formations continues proposées dans le domaine de la bioinformatique sont également ouvertes aux étudiants de l'Ecole Doctorale, et permettent de valider un module de biologie. Forme 2 à 3 doctorants par an.\n \n",
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            "description": "URGI organizes a BYOD-­style (Bring Your Own Data) training course on manual curation of transposable elements reference sequences obtained with REPET pipelines.\n",
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            "description": "This training session has been designed to give you an overview of the methods and tools used to de novo assemble transcriptomic short reads. You will learn how to pre-process your raw data (fastq files), how an assembler works and how to use it. Finally you will learn how to assess the quality of your assemblies in order to choose the best one. Organized jointly by the Sigenae and bioinfo genotoul platforms.\n",
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            "description": "Bilille, la plateforme de bioinformatique, biostatistique et bioanalyse de la métropole lilloise, propose chaque année un cycle de formation d'introduction à l'analyse des données de séquençage à haut débit.\r\nCe cycle est composé des modules suivants, à la carte : \r\n- Analyses ADN\r\n- Analyses de variants\r\n- Métagénomique\r\n- Analyses ChIP-seq\r\n- Analyses RNA-seq\r\nLes fiches descriptives sont accessibles sur le site de bilille. Chaque module comprend des présentations générales et des séances pratiques sur ordinateur, avec Galaxy.\r\n\r\nLes objectifs du module Analyses ADN sont :\r\n- Apprendre à manipuler des données de séquençage d’ADN\r\n- Réaliser des contrôles de qualité et du nettoyage des lectures\r\n- Présenter les méthodes et outils d'alignement\r\n- Réaliser des contrôles de qualité et des alignements sur une référence\r\n- Introduction à l’assemblage des lectures sans référence\r\n- Utiliser la plateforme Galaxy pour ces analyses",
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