Showing 4 open source projects for "docker-compose"

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    SageMaker Training Toolkit

    SageMaker Training Toolkit

    Train machine learning models within Docker containers

    Train machine learning models within a Docker container using Amazon SageMaker. Amazon SageMaker is a fully managed service for data science and machine learning (ML) workflows. You can use Amazon SageMaker to simplify the process of building, training, and deploying ML models. To train a model, you can include your training script and dependencies in a Docker container that runs your training code.
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  • 2
    AWS Deep Learning Containers

    AWS Deep Learning Containers

    A set of Docker images for training and serving models in TensorFlow

    AWS Deep Learning Containers (DLCs) are a set of Docker images for training and serving models in TensorFlow, TensorFlow 2, PyTorch, and MXNet. Deep Learning Containers provide optimized environments with TensorFlow and MXNet, Nvidia CUDA (for GPU instances), and Intel MKL (for CPU instances) libraries and are available in the Amazon Elastic Container Registry (Amazon ECR). The AWS DLCs are used in Amazon SageMaker as the default vehicles for your SageMaker jobs such as training, inference, transforms etc. ...
    Downloads: 1 This Week
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  • 3
    SageMaker Chainer Containers

    SageMaker Chainer Containers

    Docker container for running Chainer scripts to train and host Chainer

    SageMaker Chainer Containers is an open-source library for making the Chainer framework run on Amazon SageMaker. This repository also contains Dockerfiles which install this library, Chainer, and dependencies for building SageMaker Chainer images. Amazon SageMaker utilizes Docker containers to run all training jobs & inference endpoints. The Docker images are built from the Dockerfiles specified in Docker/. The Docker files are grouped based on Chainer version and separated based on Python version and processor type. The Docker images, used to run training & inference jobs, are built from both corresponding "base" and "final" Dockerfiles. ...
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  • 4
    OntoCASE

    OntoCASE

    Ontology CASE Tool - Cartographie des connaissances et ontologies

    OntoCASE est un outil d'ingénierie ontologique de construction d'ontologies OWL à partir d'un modèle semi-formel graphique en langage de Modélisation Par Objets Typés (MOT) développé par la firme Cotechnoe OntoCASE se compose de: 1) eLi, un éditeur de modèle semi-formel graphique qui permet de cartographier la connaissance en langage MOT 2) OntoForm, est un système expert qui permet de formaliser le modèle MOT en ontologie OWL, 3) OntoVal, est un système expert qui asiste le processus de validation d'une ontologie. Références: Thèse: http://www.cotechnoe.com/cartographier-les-connaissances-et-les-ontologies_articles/these_ontocase_michelheon.pdf L'approche OntoCASE: http://www.cotechnoe.com/cartographier-les-connaissances-et-les-ontologies_articles/GeCSO2012_OntoCASE_une_approche_d_elicitation_semi_formelle_graphique_et_son_outil.pdf
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