We have hosted the application kubeflow pipelines in order to run this application in our online workstations with Wine or directly.


Quick description about kubeflow pipelines:

Kubeflow is a machine learning (ML) toolkit that is dedicated to making deployments of ML workflows on Kubernetes simple, portable, and scalable. A pipeline is a description of an ML workflow, including all of the components in the workflow and how they combine in the form of a graph. The pipeline includes the definition of the inputs (parameters) required to run the pipeline and the inputs and outputs of each component. A pipeline component is a self-contained set of user code, packaged as a Docker image, that performs one step in the pipeline. For example, a component can be responsible for data preprocessing, data transformation, model training, and so on.

Features:
  • Kubeflow pipelines are reusable end-to-end ML workflows built using the Kubeflow Pipelines SDK
  • End to end orchestration enabling and simplifying the orchestration of end to end machine learning pipelines
  • Easy experimentation making it easy for you to try numerous ideas and techniques, and manage your various trials/experiments.
  • Easy re-use enabling you to re-use components and pipelines to quickly cobble together end to end solutions, without having to re-build each time.
  • Documentation available
  • Install Kubeflow Pipelines from choices described in Installation Options for Kubeflow Pipelines
  • Kubeflow Pipelines Slack Channel
  • Kubeflow Pipelines Community Meeting


Programming Language: Python.
Categories:
Machine Learning

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