Handles creating, reading and updating training events.

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            "name": "Phylogenomy and selection pressure ",
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            "description": "This training session is organized by the bios4Biol CATI.\nMorning : phylogenomics\nThe morning course will provide insigths about sampling problems in phylogenomics studies (genes, species) and methodological aspects of phylogenomics studies with two major focus on super-matrix and super-tree methods.\nAfternoon : selection pressure\nThe afternoon course will be dedicated to the use of the PAML4 package in order to study selection pressures in a sequence alignment.\n",
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            "id": 104,
            "name": "Initiation à la programmation en R",
            "shortName": "",
            "description": "Se familiariser avec R dans le but d’utiliser ce logiciel pour faire des modèles linéaires\n",
            "homepage": "",
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            "id": 69,
            "name": "Methods for phylogenetics trees construction",
            "shortName": "",
            "description": "This training session is organized by the bios4Biol CATI and aims at training participants to construct and interpret phylogenetic trees.\nYou will discover how to choose an evolutionary model and a phylogenetic inference method (among distance, parsimony, maximum likelihood and Bayesian methods) and how to evaluate the robustness of a tree using bootstrap.\n",
            "homepage": "http://bioinfo.genotoul.fr/index.php/events/methods-for-phylogenetic-trees-const…",
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            "name": "Infrastructure informatique distribuée de France Grilles: Grilles et Cloud",
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            "name": "Analyse de gènes différentiellement à partir de données RNAseq et sous l'environnement Galaxy",
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            "description": "La formation s’adresse à un public de biologistes et de bio-informaticiens désireux de faire leur premiers pas sous Galaxy et de maîtriser l’analyse d’expression différentielle de gènes à partir de données RNAseq.\nL'analyse d’expression différentielle des gènes entre deux conditions expérimentales est réalisée avec la suite d’outils DESeq que nous avons interfacé pour l’environnement Galaxy.  Cette formation alterne des présentations des méthodes, concepts et outils du RNAseq avec des tutoriels pratiques durant lesquels vous utiliserez les outils bio-informatiques du serveur Galaxy de la plate-forme eBio.\n",
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            "name": "Analyse de données métagénomiques 16S",
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            "description": "\n\n\n\n\n\n\n\nObjectifs\nCette formation est dédiée à l'analyse de données de type \"métagénomique amplicon\" issues des technolo-gies de séquençage 454 et Illumina. La formation couvre les grandes étapes d'un pipeline d'analyse bioinformatique sous Galaxy (FROGS) pour transformer les séquences en tables d'abondances puis présente des outils statistiques sous R (phyloseq) qui permettent de décrire et comparer les échantillons à partir de ces tables.\n\n \nProgramme\n\nJours 1 et 2 : Analyses Bioinformatiques sous Galaxy\nIntroduction générale\nBrefs rappels sur l'environnement Galaxy\nPrésentation des données issues des différentes technologies de séquençage\nPrétraitement des données\nClustering des séquences, construction des OTUs\nDétection de chimères\nAnnotation taxonomique\nFiltrage des données de comptages\nOutils de visualisation\nConstruction de workflow et configuration de FROGS\nLimite des données et des méthodes \nJour 3 et 4 :  Analyses Statistiques sous Rstudio\nIntroduction générale\nImport, manipulation et visualisation des données\nMesure de diversités : Unifrac, Bray-Curtis, etc.\nOrdination et réduction de dimension : MDS\nClustering et Heatmap\nComparaison d'échantillons : PERMANOVA, adonis\n▫ Introduction générale\n▫ Brefs rappels sur l'environnement Galaxy\n▫ Présentation des données issues des différentes technologies de séquençage ▫ Prétraitement des données\n▫ Clustering des séquences, construction des OTUs\n▫ Détection de chimères\n▫ Annotation taxonomique\n▫ Filtrage des données de comptages\n▫ Outils de visualisation\n▫ Construction de workflow et configuration de FROGS\n▫ Limite des données et des méthodes\n\n\n\n\n\nJour 3 : Analyses Statistiques sous Rstudio\n\n\t▫  Introduction générale\n\t\n\n\t▫  Import et manipulation des données\n\t\n\n\t▫  Mesure de diversités : Unifrac, Bray-Curtis, etc.\n\t\n\n\t▫  Ordination et réduction de dimension : MDS\n\t\n\n\t▫  Clustering et Heatmap\n\t\n\n\t▫  Comparaison d'échantillons : PERMANOVA, adonis \n\t\n\n\n\n\n\n\n\n\n",
            "homepage": "http://migale.jouy.inra.fr/",
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                "NGS Data Analysis",
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            "description": "This course continues the explanation on how to work on HPC Southgreen clusters. It is intended for experienced users, with the goals of improving LC user productivity and minimizing the obstacles. New notions and tools are presented such as job arrays, basic softwares installation,module environment and singularity. All these notions will be developped.",
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            "id": 68,
            "name": "Sequences alignment and phylogeny ",
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            "description": "This training session is organized by the bios4Biol CATI and the genotoul bioinfo platform and aims at initiating participants to molecular phylogenetics studies.\nYou will discover how to build a sequence dataset, to align sequences, to edit and refine the resulting alignment.\n",
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            "name": "Initiation à l’utilisation de la plateforme de bio-analyse Galaxy",
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            "description": "L’objectif est de se familiariser avec l’interface utilisateur de Galaxy. \r\n\r\nAprès une introduction à Galaxy, une session pratique sur la plateforme Galaxy couvrira comment :\r\n- Importer des données\r\n- Identifier des outils\r\n- Faire une analyse\r\n- Gérer un historique\r\n- Créer un workflow",
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            "logo_url": "https://mesocentre.uca.fr/medias/photo/logoaubi-2019minus_1553844844490-jpg?ID_FICHE=41175",
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                    "id": 126,
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            "learningOutcomes": "At the end of the tutorial, learners would be able to:\r\n- Assess short reads FASTQ quality using FASTQE 🧬😎 and FastQC\r\n- Assess long reads FASTQ quality using Nanoplot and PycoQC\r\n- Perform quality correction with Cutadapt (short reads)\r\n-  Summarise quality metrics MultiQC\r\n- Process single-end and paired-end data\r\n- Define what mapping is\r\n- Perform mapping of reads on a reference genome\r\n- Evaluate the mapping output",
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            "description": "This course offers an introduction to metabarcoding analyses at two different levels/steps: bioinformatics with FROGS pipeline in the Galaxy environment, biostatistics with PhyloSeq R package. This includes preprocessing, clustering and OTU picking, taxonomic assignation, estimation of diversity, visualization of statistics results.\r\nPrerequisites\r\nGalaxy, R knowledge\r\n\r\nProgram\r\nIntroduction to metagenomics and metabarcoding\r\nPre-processing, Clustering, taxonomic affiliation (FROGS)\r\nHandling and visualizing OTU table using PhyloSeq R package (PhyloSeq)\r\n\r\n\r\nLearning objectives\r\nManipulate tools available for metabarcoding analysis\r\nStudy sample diversity by using NGS and post-NGS analysis tools\r\nVisualize diversity metrics in metabarcoding approach​\r\n\r\n\r\nInstructors\r\nJulie Orjuela - julie.orjuela@ird.fr\r\nFlorentin Constancias - florentin.constancias@cirad.fr\r\nAlexis Dereeper - alexis.dereeper@ird.fr",
            "homepage": "https://southgreenplatform.github.io/trainings//metabarcoding/",
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            "name": "Introduction à l'analyse de données de métabarcoding 16S avec Galaxy",
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