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Welcome to Scikit-plots 101


📘 Docs, Examples Try/Install Scikit-plots :

Single line functions for detailed visualizations.

The quickest and easiest way to go from analysis...

Explore the full features of Scikit-plots: https://scikit-plots.github.io/dev/devel/index.html

⚠️ Partially support Python 3.8 3.9 without some packages in cexternals, externals due to externals lib dep (e.g., astropy.stats, arrat-api-compat, arrat-api-extra)

🐋 Scikit-plots Runtime Docker Images :

🐳 Explore on Docker Hub Pre-built Docker images for running scikit-plots on demand — with Python 3.11.

🔎 Run the latest scikit-plots container — with full or partial preinstallation — interactively:

## docker run -it --rm scikitplot/scikit-plots:latest
docker run -it --rm scikitplot/scikit-plots:latest -i -c "scikitplot -V"
## docker run -it scikitplot/scikit-plots:latest
docker run -it -v "$(pwd):/work/notebooks:delegated" -p 8891:8891 scikitplot/scikit-plots:latest

📥 User Installation :

🧠 Gotchas:

  • ⚠️ (Recommended): Use a Virtual Environmentt (like venv pipenv ) to Avoid Conflicts.
  • 🚫 Don't use conda base — it's prone to conflicts.
  • ✅ This avoids dependency issues and keeps your system stable.

📦 Anaconda , Conda , Miniconda , Miniforge , Mamba , Micromamba :

See Also: conda-environment-guidelines

## (conda, mamba or micromamba) Create New Env and install ``scikit-plots``
## Create a new environment and install Python 3.11 with IPython kernel support
# conda create -y -n py311 python=3.11 ipykernel
# mamba create --yes --name py311 python=3.11 ipykernel
micromamba create -y -n py311 python=3.11 ipykernel
## (conda, mamba or micromamba) Activate the environment
# conda activate py311
# mamba activate py311
micromamba activate py311
## (conda, mamba or micromamba) Deep Explore scikit-plots
# conda repoquery search -c conda-forge "scikit-plots=0.4.0" --json
# mamba repoquery search -c conda-forge "scikit-plots=0.4.0" --json
# micromamba repoquery search -c conda-forge "scikit-plots=0.4.0" --json
# micromamba repoquery search -c conda-forge "scikit-plots=0.4.0" --json --platform osx-64
micromamba repoquery search -c conda-forge "scikit-plots=0.4.0" --json \
  | jq -r '.result.pkgs[] | "\(.subdir)  \(.build)"'
## (conda, mamba or micromamba) Install scikit-plots
# conda install -y conda-forge::scikit-plots
# mamba install --yes --channel conda-forge scikit-plots
micromamba install -y -c conda-forge scikit-plots

# Cause numpy>=2.0.0 but support old numpy
# pip install numpy==1.26.4
## (conda, mamba or micromamba) Install newest compatible build scikit-plots
# conda update -y conda-forge::scikit-plots
# mamba update --yes --channel conda-forge scikit-plots
micromamba update -y -c conda-forge scikit-plots

# Cause numpy>=2.0.0 but support old numpy
# pip install numpy==1.26.4
## (conda, mamba or micromamba) Verify version and location scikit-plots
# conda list | grep scikit-plots
# mamba list | grep scikit-plots
micromamba list | grep scikit-plots
micromamba clean --index-cache -y
# or stronger
micromamba clean -a -y
## (conda, mamba or micromamba) Explore scikit-plots
# conda search conda-forge::scikit-plots
# mamba search --channel conda-forge scikit-plots
micromamba search -c conda-forge "scikit-plots=0.4.0"

(Optionally) 📦 UV install all dependencies:

## (Optionally) uv dep for Python 3.11
sh -c 'curl -LsSf https://astral.sh/uv/install.sh | sh'

(Optionally) 📦 Pipenv install all dependencies:

See Also: pipenv-environment-guidelines

## (Optionally) Pipenv dep for Python 3.11
# wget https://raw.githubusercontent.com/scikit-plots/scikit-plots/main/docker/env_pipenv/Pipfile
curl -O https://raw.githubusercontent.com/scikit-plots/scikit-plots/main/docker/env_pipenv/py311/Pipfile
curl -O https://raw.githubusercontent.com/scikit-plots/scikit-plots/main/docker/env_pipenv/py311/Pipfile.lock
pip install pipenv && pipenv install
## (Optionally) Pipenv Activate the environment
pipenv shell

📦 From PIP :

✅ The easiest way to set up scikit-plots is to install it using pip with the following command:

✅ Installation by pypi , pypi.anaconda.org or github :

- By pypi :

## Now Install scikit-plots (via pip, conda, or local source)
# pip index versions scikit-plots
pip install scikit-plots

## Cause numpy>=2.0.0 but support old numpy
# pip install numpy==1.26.4

- By pypi.anaconda.org ( with runtime deps ):

## (Optionally) Install the lost packages "Runtime dependencies" or use `pipenv`
## https://github.com/celik-muhammed/scikit-plots/tree/main/requirements
# wget https://raw.githubusercontent.com/scikit-plots/scikit-plots/main/requirements/default.txt
curl -O https://raw.githubusercontent.com/scikit-plots/scikit-plots/main/requirements/default.txt
pip install -r default.txt
## Try After Ensure all "Runtime dependencies" installed
pip install -U -i https://pypi.anaconda.org/scikit-plots-wheels-staging-nightly/simple scikit-plots

## Cause numpy>=2.0.0 but support old numpy
# pip install numpy==1.26.4

- By GitHub URLs :

✅ GitHub URLs @<branch> or @<tag> suffix or Archive URLs (releases/tags suffix) to specify a version

- by GitHub Branches: @<branch>
## pip install git+https://github.com/scikit-plots/scikit-plots.git#subdirectory=libs/skinny@<branches>
## If you want to install the latest version from GitHub
pip install git+https://github.com/scikit-plots/scikit-plots.git@main
## (Added C, Cpp, Fortran Support) Works with standard Python (CPython)
pip install git+https://github.com/scikit-plots/scikit-plots.git@maintenance/0.4.x
## (Works with PyPy interpreter) Works with standard Python (CPython)
pip install git+https://github.com/scikit-plots/scikit-plots.git@maintenance/0.3.x
pip install git+https://github.com/scikit-plots/scikit-plots.git@maintenance/0.3.7
- by GitHub Tags: @<tag>
## pip install git+https://github.com/scikit-plots/scikit-plots.git#subdirectory=libs/skinny@<tags>
## If you want to install one of archived version from GitHub
pip install git+https://github.com/scikit-plots/scikit-plots.git@v0.4.0
pip install git+https://github.com/scikit-plots/scikit-plots.git@v0.3.9rc3
pip install git+https://github.com/scikit-plots/scikit-plots.git@v0.3.7

📁 From Source Code (e.g., .zip, .tar.gz):

✅ Installation by Archive URLs (.tar.gz) or GIT Clone :

🐍 Pitfalls:

  • 📥 Archive (Gzipped Source Tarball .tar.gz) (e.g., GitHub Source Code Archive, PyPI Source Code Archive, pypi.anaconda Source Code Archive)
  • 💡 You can download GitHub Source Code Archives (.zip or .tar.gz) by specifying a branch, tag, or a specific commit ID.
  • 🛠️ After unzipping the GitHub Source Code Archive (similar to cloning), remember require to run git submodule update to initialize submodules, If Needed.
  • ↔️ Alternatively, PyPI Source Code Distribution (.tar.gz) are also available for direct installation via PyPI (sdist), if applicable.
  • ↔️ Alternatively, pypi.anaconda Source Code Distribution (.tar.gz) are also available for direct installation via pypi.anaconda (sdist), if applicable.
  • 🔄 Alternatively, (git clone ...) you can install scikit-plots directly from the GitHub Source Code Repository to access the latest updates.

- By Source Dist (.tar.gz) (with/without build deps )

## pip install package Installs wheel (.whl) if available, else source
## pip install --no-binary=package package # Forces source installation only the specified package
pip install --no-binary=scikit-plots scikit-plots
## pip install --no-binary=:all: package # Forces source installation for Package + all dependencies
## This forces scikit-plots and all its dependencies to be installed from source (from .tar.gz).
pip install --no-binary=:all: scikit-plots
## (Optionally) Install offline downloaded a source distribution (.tar.gz) of scikit-plots
## https://pypi.org/project/scikit-plots/#history
## pip install --require-hashes -r requirements.txt
## sha256sum scikit_plots-0.4.0.post7.tar.gz
## shasum -a 256 scikit_plots-0.4.0.post7.tar.gz
## Get-FileHash scikit_plots-0.4.0.post7.tar.gz -Algorithm SHA256
## scikit-plots==0.4.0.post7 --hash=sha256:<your-computed-hash-here>
# wget https://files.pythonhosted.org/packages/bd/a0/f0d8ee33124071f93c84eeae8aa729978ca5db9b34998437effd1ead344b/scikit_plots-0.4.0.post7.tar.gz
curl -O https://files.pythonhosted.org/packages/bd/a0/f0d8ee33124071f93c84eeae8aa729978ca5db9b34998437effd1ead344b/scikit_plots-0.4.0.post7.tar.gz
pip install ./scikit_plots-0.4.0.post7.tar.gz

- By GitHub Source Code: (with build deps )

✅ GitHub Source Code Archive URLs: (e.g., .zip, .tar.gz) (with build deps )

Source code archives are available at specific URLs for each repository. For example, consider the repository scikit-plots/scikit-plots .

✅ GitHub Source Code Repository Cloned: (with build deps )

## Forked repo: https://github.com/scikit-plots/scikit-plots.git
git clone https://github.com/YOUR-USER-NAME/scikit-plots.git
cd scikit-plots
## (if Necessary) Add safe directories for git
# bash docker/script/git_add_safe_dirs.sh
git config --global --add safe.directory '*'
## (Optionally) Git Submodules Clone/Download/Initialize Configs, Not Needed Every Time.
# git submodule update --init --recursive
## (Recommended) Ensure venv (e.g. conda, venv, pipenv)
# pip install -r ./requirements/all.txt
pip install -r ./requirements/build.txt
## Install the package in the current directory, ignore pip's cache,
## and show detailed logs of the installation process.
## If you have a local clone of the repository
pip install --no-cache-dir . -v

🧊🔧 Also possible to include optional deps with editable mode:

## (Optionally) Install the current package in editable mode,
## using the current environment for building, and ignore cached builds
pip install --no-cache-dir --no-build-isolation -e . -v
## (Optionally) Install the current package in editable mode,
## using the current environment for building, and ignore cached builds
## https://github.com/celik-muhammed/scikit-plots/tree/main/requirements
## For More in Doc: https://scikit-plots.github.io/dev/devel/guide_qu_contribute.html
python -m pip install --no-cache-dir --no-build-isolation -e .[build,dev,test,doc] -v
## https://github.com/celik-muhammed/scikit-plots/tree/main/requirements
## [cpu] refer tensorflow-cpu, transformers, tf-keras
## [gpu] refer Cupy tensorflow lib require NVIDIA CUDA support
pip install "scikit-plots[cpu]"

Sample Plots

plot_feature_importances.png plot_classifier_eval.png plot_classifier_eval.png
plot_roc.png plot_precision_recall.png
plot_pca_component_variance.png plot_pca_2d_projection.png
plot_elbow.png plot_silhouette.png
plot_cumulative_gain.png plot_lift.png
plot_learning_curve.png plot_calibration_curve.png

Scikit-plots is the result of an unartistic data scientist's dreadful realization that visualization is one of the most crucial components in the data science process, not just a mere afterthought.

Gaining insights is simply a lot easier when you're looking at a colored heatmap of a confusion matrix complete with class labels rather than a single-line dump of numbers enclosed in brackets. Besides, if you ever need to present your results to someone (virtually any time anybody hires you to do data science), you show them visualizations, not a bunch of numbers in Excel.

That said, there are a number of visualizations that frequently pop up in machine learning. Scikit-plots is a humble attempt to provide aesthetically-challenged programmers (such as myself) the opportunity to generate quick and beautiful graphs and plots with as little boilerplate as possible.

Okay then, prove it. Show us an example.

Say we use Keras Classifier in multi-class classification and decide we want to visualize the results of a common classification metric, such as sklearn's classification report with a confusion matrix.

Let’s start with a basic example where we use a Keras classifier to evaluate the digits dataset provided by Scikit-learn.

# Before tf {'0':'All', '1':'Warnings+', '2':'Errors+', '3':'Fatal Only'} if any
import os; os.environ['TF_CPP_MIN_LOG_LEVEL'] = '3'
# Disable GPU and force TensorFlow to use CPU
import os; os.environ['CUDA_VISIBLE_DEVICES'] = ''
import tensorflow as tf
# Set TensorFlow's logging level to Fatal
import logging; tf.get_logger().setLevel(logging.CRITICAL)
import numpy as np
from sklearn.datasets import load_digits
from sklearn.model_selection import train_test_split

# Loading the dataset
X, y = load_digits(
  return_X_y=True,
)
# Split the dataset into training and validation sets
X_train, X_val, y_train, y_val = train_test_split(
  X, y, test_size=0.33, random_state=0
)
# Convert labels to one-hot encoding
Y_train = tf.keras.utils.to_categorical(y_train)
Y_val = tf.keras.utils.to_categorical(y_val)
# Define a simple TensorFlow model
tf.keras.backend.clear_session()
model = tf.keras.Sequential([
    # tf.keras.layers.Input(shape=(X_train.shape[1],)),  # Input (Functional API)
    tf.keras.layers.InputLayer(shape=(X_train.shape[1],)),
    tf.keras.layers.Dense(64, activation='relu'),
    tf.keras.layers.Dense(64, activation='relu'),
    tf.keras.layers.Dense(10, activation='softmax')
])
# Compile the model
model.compile(
  optimizer='adam',
  loss='categorical_crossentropy',
  metrics=['accuracy'],
)
# Train the model
model.fit(
    X_train, Y_train,
    batch_size=32,
    epochs=2,
    validation_data=(X_val, Y_val),
    verbose=0
)
# Predict probabilities on the validation set
y_probas = model.predict(X_val)
# Plot the data
import matplotlib.pyplot as plt
import scikitplot as sp
# sp.get_logger().setLevel(sp.logging.WARNING)  # sp.logging == sp.logger
sp.logger.setLevel(sp.logger.INFO)  # default WARNING
# Plot precision-recall curves
sp.metrics.plot_precision_recall(
  y_val, y_probas,
)
quick_start_tf.png

Pretty.

Maximum flexibility. Compatibility with non-scikit-learn objects.

Although Scikit-plot is loosely based around the scikit-learn interface, you don't actually need scikit-learn objects to use the available functions. As long as you provide the functions what they're asking for, they'll happily draw the plots for you.

The possibilities are endless.

Release Notes

See the changelog for a history of notable changes to scikit-plots.

Contributing to Scikit-plots

Reporting a bug? Suggesting a feature? Want to add your own plot to the library? Visit our.

The Scikit-plots Project is made both by and for its users, so we welcome and encourage contributions of many kinds. Our goal is to keep this a positive, inclusive, successful, and growing community that abides by the Scikit-plots Community Code of Conduct.

For guidance on contributing to or submitting feedback for the Scikit-plots Project, see the contributions page. For contributing code specifically, the developer docs have a guide with a quickstart. There's also a summary of contribution guidelines.

Developing with Codespaces

GitHub Codespaces is a cloud development environment using Visual Studio Code in your browser. This is a convenient way to start developing Scikit-plots, using our dev container configured with the required packages. For help, see the GitHub Codespaces docs.

Governance (Acknowledging) Process and Citing Guide Scikit-plots

🔎 See the Governance Process, Citation Guide and the CITATION.bib, CITATION.cff files.

Cite all versions?

You can cite all versions by using the DOI 10.5281/zenodo.13367000 to https://doi.org/10.5281/zenodo.13367000. This DOI represents all versions, and will always resolve to the latest one. Read more about doi.

✍️ Citation Style APA:

Supporting the Project (Upcoming)

Powered by NumFOCUS Donate

NumFOCUS, a 501(c)(3) nonprofit in the United States.

License

Scikit-plots is licensed under a 3-clause BSD style license - see the LICENSE file, and LICENSES files.

Release files for scikit-plots 0.4.0.post11

For a detailed explanation of source distributions (sdists) and built distributions (wheels), please see the package formats documentation.

Source distribution (sdist)

Source distribution for scikit-plots 0.4.0.post11
File Size Uploaded
scikit_plots-0.4.0.post11.tar.gz 63.1 MB Details

Built distributions (wheels)

Table of built distributions (wheels) for scikit-plots 0.4.0.post11
File
scikit_plots-0.4.0.post11-cp314-cp314-win_arm64.whl CPython 3.14 CPython 3.14 Windows ARM64 Details
scikit_plots-0.4.0.post11-cp314-cp314-win_amd64.whl CPython 3.14 CPython 3.14 Windows x86-64 Details
scikit_plots-0.4.0.post11-cp314-cp314-musllinux_1_2_x86_64.whl CPython 3.14 CPython 3.14 Linux musl 1.2+ x86-64 Details
scikit_plots-0.4.0.post11-cp314-cp314-musllinux_1_2_aarch64.whl CPython 3.14 CPython 3.14 Linux musl 1.2+ ARM64 Details
scikit_plots-0.4.0.post11-cp314-cp314-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl CPython 3.14 CPython 3.14 Linux glibc 2.27+ x86-64, Linux glibc 2.28+ x86-64 Details
scikit_plots-0.4.0.post11-cp314-cp314-manylinux_2_27_aarch64.manylinux_2_28_aarch64.whl CPython 3.14 CPython 3.14 Linux glibc 2.28+ ARM64, Linux glibc 2.27+ ARM64 Details
scikit_plots-0.4.0.post11-cp314-cp314-macosx_14_0_x86_64.whl CPython 3.14 CPython 3.14 macOS 14.0+ x86-64 Details
scikit_plots-0.4.0.post11-cp314-cp314-macosx_14_0_arm64.whl CPython 3.14 CPython 3.14 macOS 14.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp314-cp314-macosx_12_0_arm64.whl CPython 3.14 CPython 3.14 macOS 12.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp314-cp314-macosx_10_15_x86_64.whl CPython 3.14 CPython 3.14 macOS 10.15+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-win_arm64.whl CPython 3.13 CPython 3.13 free-threading Windows ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-win_amd64.whl CPython 3.13 CPython 3.13 free-threading Windows x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-musllinux_1_2_x86_64.whl CPython 3.13 CPython 3.13 free-threading Linux musl 1.2+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-musllinux_1_2_aarch64.whl CPython 3.13 CPython 3.13 free-threading Linux musl 1.2+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl CPython 3.13 CPython 3.13 free-threading Linux glibc 2.27+ x86-64, Linux glibc 2.28+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-manylinux_2_27_aarch64.manylinux_2_28_aarch64.whl CPython 3.13 CPython 3.13 free-threading Linux glibc 2.27+ ARM64, Linux glibc 2.28+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-macosx_14_0_x86_64.whl CPython 3.13 CPython 3.13 free-threading macOS 14.0+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-macosx_14_0_arm64.whl CPython 3.13 CPython 3.13 free-threading macOS 14.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-macosx_12_0_arm64.whl CPython 3.13 CPython 3.13 free-threading macOS 12.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313t-macosx_10_15_x86_64.whl CPython 3.13 CPython 3.13 free-threading macOS 10.15+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313-win_arm64.whl CPython 3.13 CPython 3.13 Windows ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313-win_amd64.whl CPython 3.13 CPython 3.13 Windows x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313-musllinux_1_2_x86_64.whl CPython 3.13 CPython 3.13 Linux musl 1.2+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313-musllinux_1_2_aarch64.whl CPython 3.13 CPython 3.13 Linux musl 1.2+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl CPython 3.13 CPython 3.13 Linux glibc 2.27+ x86-64, Linux glibc 2.28+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313-manylinux_2_27_aarch64.manylinux_2_28_aarch64.whl CPython 3.13 CPython 3.13 Linux glibc 2.28+ ARM64, Linux glibc 2.27+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313-macosx_14_0_x86_64.whl CPython 3.13 CPython 3.13 macOS 14.0+ x86-64 Details
scikit_plots-0.4.0.post11-cp313-cp313-macosx_14_0_arm64.whl CPython 3.13 CPython 3.13 macOS 14.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313-macosx_12_0_arm64.whl CPython 3.13 CPython 3.13 macOS 12.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp313-cp313-macosx_10_15_x86_64.whl CPython 3.13 CPython 3.13 macOS 10.15+ x86-64 Details
scikit_plots-0.4.0.post11-cp312-cp312-win_arm64.whl CPython 3.12 CPython 3.12 Windows ARM64 Details
scikit_plots-0.4.0.post11-cp312-cp312-win_amd64.whl CPython 3.12 CPython 3.12 Windows x86-64 Details
scikit_plots-0.4.0.post11-cp312-cp312-musllinux_1_2_x86_64.whl CPython 3.12 CPython 3.12 Linux musl 1.2+ x86-64 Details
scikit_plots-0.4.0.post11-cp312-cp312-musllinux_1_2_aarch64.whl CPython 3.12 CPython 3.12 Linux musl 1.2+ ARM64 Details
scikit_plots-0.4.0.post11-cp312-cp312-manylinux_2_27_x86_64.manylinux_2_28_x86_64.whl CPython 3.12 CPython 3.12 Linux glibc 2.28+ x86-64, Linux glibc 2.27+ x86-64 Details
scikit_plots-0.4.0.post11-cp312-cp312-manylinux_2_27_aarch64.manylinux_2_28_aarch64.whl CPython 3.12 CPython 3.12 Linux glibc 2.28+ ARM64, Linux glibc 2.27+ ARM64 Details
scikit_plots-0.4.0.post11-cp312-cp312-macosx_14_0_x86_64.whl CPython 3.12 CPython 3.12 macOS 14.0+ x86-64 Details
scikit_plots-0.4.0.post11-cp312-cp312-macosx_14_0_arm64.whl CPython 3.12 CPython 3.12 macOS 14.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp312-cp312-macosx_12_0_arm64.whl CPython 3.12 CPython 3.12 macOS 12.0+ ARM64 Details
scikit_plots-0.4.0.post11-cp312-cp312-macosx_10_15_x86_64.whl CPython 3.12 CPython 3.12 macOS 10.15+ x86-64 Details
scikit_plots-0.4.0.post11-cp311-cp311-win_arm64.whl CPython 3.11 CPython 3.11 Windows ARM64 Details
scikit_plots-0.4.0.post11-cp311-cp311-win_amd64.whl CPython 3.11 CPython 3.11 Windows x86-64 Details
scikit_plots-0.4.0.post11-cp311-cp311-musllinux_1_2_x86_64.whl CPython 3.11 CPython 3.11 Linux musl 1.2+ x86-64 Details
scikit_plots-0.4.0.post11-cp311-cp311-musllinux_1_2_aarch64.whl CPython 3.11 CPython 3.11 Linux musl 1.2+ ARM64 Details
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