Handles creating, reading and updating training events.

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            "name": "Python scripts for bioinformatics and Linux",
            "shortName": "Scripts en Python pour la bioinformatique et environnement Linux",
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            "name": "Introduction to Structural variant detection analyses",
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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": "Objectives :\n    Knowing the principles and advantages of the Linux system\n    Knowing how to use the main bash commands\n    Knowing how to launch programs with arguments\n    Acquiring autonomy to perform bioinformatics analysis on the command line.\n",
            "homepage": "http://www.pf-bird.univ-nantes.fr/training/",
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            "description": "Bilille propose des formations en partenariat avec CNRS Formation Entreprises à destination des chercheur-euse-s, enseignant-e-s-chercheur-euse-s, ingénieur-e-s, technicien-ne-s en biologie et médecine. \r\n\r\nObjectifs :\r\n- Comprendre les principes des méthodes d'analyse de données de séquençage à haut débit (NGS)\r\n- Comprendre les paramètres des méthodes et leur impact sur les résultats\r\n- Apprendre à identifier les outils d'analyse en fonction du jeu de données\r\n- Être autonome pour analyser des données dans un gestionnaire de workflow comme Galaxy\r\n- Savoir manipuler les fichiers de lecture de séquençage : extraction, préparation, filtrage / nettoyage\r\n- Savoir évaluer la qualité des données de séquençage\r\n- Savoir analyser des données de séquençage de génomes (avec ou sans génome de référence) et prendre du recul sur le protocole expérimental\r\n- Savoir analyser des données de RNA-seq (avec ou sans génome de référence) et prendre du recul sur le protocole expérimental",
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