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Project description
AllenNLP integration for sklearn-pandas
allennlp-dataframe-mapper
is a Python library that provides AllenNLP integration for sklearn-pandas.
Installation
Installing the library and dependencies is simple using pip
.
$ pip allennlp-dataframe-mapper
Example
This library enables users to specify the in a jsonnet config file. Here is an example of the mapper for a famous iris dataset.
Config
allennlp-dataframe-mapper
is specified the transformations of the mapper in jsonnet
config file like following mapper_iris.jsonnet
:
{
"type": "default",
"features": [
[["sepal length (cm)"], null],
[["sepal width (cm)"], null],
[["petal length (cm)"], null],
[["petal width (cm)"], null],
[["species"], [{"type": "flatten"}, {"type": "label-encoder"}]],
],
"df_out": true,
}
Mapper
The mapper takes a param of transformations from the config file.
We can use the fit_transform
shortcut to both fit the mapper and see what transformed data.
from allennlp.common import Params
from allennlp_dataframe_mapper import DataFrameMapper
params = Params.from_file("mapper_iris.jsonnet")
mapper = DataFrameMapper.from_params(params=params)
print(mapper)
# DataFrameMapper(df_out=True,
# features=[(['sepal length (cm)'], None, {}),
# (['sepal width (cm)'], None, {}),
# (['petal length (cm)'], None, {}),
# (['petal width (cm)'], None, {}),
# (['species'], [FlattenTransformer(), LabelEncoder()], {})])
mapper.fit_transform(df)
License
MIT
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