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Description

Generate PMML for Various Models.

The Predictive Model Markup Language (PMML) is an XML-based language which provides a way for applications to define machine learning, statistical and data mining models and to share models between PMML compliant applications. More information about the PMML industry standard and the Data Mining Group can be found at <http://dmg.org/>. The generated PMML can be imported into any PMML consuming application, such as Zementis Predictive Analytics products. The package isofor (used for anomaly detection) can be installed with devtools::install_github("gravesee/isofor").

pmml

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Overview

Export various machine learning and statistical models to PMML and generate data transformations in PMML format.

For a description of the supported packages, see the vignette: Supported Packages and Additional Functions.

Installation

You can install the released version of pmml from CRAN with:

install.packages("pmml")

Example

library(pmml)

# Build an lm model
iris_lm <- lm(Sepal.Length ~ ., data=iris)

# Convert to pmml
iris_lm_pmml <- pmml(iris_lm)

# Write to file
# save_pmml(iris_lm_pmml,"iris_lm.pmml")

Please note that this project is released with a Contributor Code of Conduct. By contributing to this project, you agree to abide by its terms.

These tools are provided as-is and without warranty or support. They do not constitute part of the Software AG product suite. Users are free to use, fork and modify them, subject to the license agreement. While Software AG welcomes contributions, we cannot guarantee to include every contribution in the master project.

Metadata

Version

2.5.2

License

Unknown

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