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cuDF - GPU DataFrame Library
PyGraphistry is a Python library to quickly load, shape, embed, and explore big graphs with the GPU-accelerated Graphistry visual graph analyzer
BlazingSQL is a lightweight, GPU accelerated, SQL engine for Python. Built on RAPIDS cuDF.
Lightweight and extensible compatibility layer between dataframe libraries!
๐ Agile Data Preparation Workflows madeย easy with Pandas, Dask, cuDF, Dask-cuDF, Vaex and PySpark
GPU accelerated cross filtering with cuDF.
๐ A spreadsheet-like data preparation web app that works over Optimus (Pandas, Dask, cuDF, Dask-cuDF, Spark and Vaex)
๋จธ์ ๋ฌ๋/๋ฅ๋ฌ๋(PyTorch, TensorFlow) ์ ์ฉ ๋์ปค์ ๋๋ค. ํ๊ธ ํฐํธ, ํ๊ธ ์์ฐ์ด์ฒ๋ฆฌ ํจํค์ง(konlpy), ํํ์ ๋ถ์๊ธฐ, Timezone ๋ฑ์ ์ค์ ๋ฑ์ ์ถ๊ฐ ํ์์ต๋๋ค.
Rapid large-scale fractional differencing with NVIDIA RAPIDS and GPU to minimize memory loss while making a time series stationary. 6x-400x speed up over CPU implementation.
Awesome list of alternative dataframe libraries in Python.
For when your data won't fit in your dataframe
Lightweight, engine-agnostic dataframe validation
H.E.I.M.D.A.L.L looks at fleet telemetry and gives you natural-language insights. GPU data loading (cuDF), local LLM inference (Gemma 2), and production NIM on GKE. Open the notebooks, run cells, get answers! Quick start should not take longer than 10 minutes and the T4 path is completely free!
Rapidsai_Machine_learnring_on_GPU
Unlimited Data-Science Benchmarks for Numeric, Tabular and Graph Workloads
Python library to process and classify remote sensing imagery by means of GPUs and ML.
The Incredible RAPIDS: a curated list of tutorials, papers, projects, communities and more relating to RAPIDS.
Building NVIDIA's RAPIDS (cuDF, cuML...) in Arch Linux
A simple demo of cuDF which is a RAPIDS GPU-Accelerated Dataframe Library!
jiboia-gpu is a Python package to normalize and optimize DataFrames automatically efficiently using the Nvidia GPU in the RAPIDS ecosystem.
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