<?xml version="1.0" encoding="UTF-8"?><rss xmlns:dc="http://purl.org/dc/elements/1.1/" xmlns:content="http://purl.org/rss/1.0/modules/content/" xmlns:atom="http://www.w3.org/2005/Atom" version="2.0"><channel><title><![CDATA[jupyter conda]]></title><description><![CDATA[<p dir="auto"><a href="http://webcache.googleusercontent.com/search?q=cache:wK_gyEsIr0QJ:https://towardsdatascience.com/managing-jupyterlab-based-data-science-projects-using-conda-pip-cd2ee8521705&amp;hl=en&amp;gl=am&amp;strip=1&amp;vwsrc=0" rel="nofollow ugc">http://webcache.googleusercontent.com/search?q=cache:wK_gyEsIr0QJ:https://towardsdatascience.com/managing-jupyterlab-based-data-science-projects-using-conda-pip-cd2ee8521705&amp;hl=en&amp;gl=am&amp;strip=1&amp;vwsrc=0</a></p>
<p dir="auto">Examples of “project-based” JupyterLab installs<br />
As promised here are a few examples of the “project-based” approach that you can use as inspiration for your next data science project.</p>
<p dir="auto">JupyterLab + Scikit Learn + Dask: Environment for CPU-based data science projects that combines JupyterLab with Scikit-learn and Dask (and friends!). Includes some common JupyterLab extensions.<br />
JupyterLab + PyTorch: Standard environment for GPU-accelerated deep learning with JupyterLab and PyTorch. Includes GPU and deep learning specific JupyterLab extensions such as jupyterlab-nvdashboard and jupyterlab-tensorboard.<br />
JupyterLab + NVIDIA RAPIDS + BlazingSQL + Dask: More complex environment for GPU-accelerated machine learning with JupyterLab, NVIDIA RAPIDS, BlazingSQL, and Dask (and many friends!). Includes some common JupyterLab extensions as well as some GPU-specific ones such as jupyterlab-nvdashboard.</p>
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