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scikit-learn

scikit-learn is a widely-used Python module for classic machine learning. It is built on top of SciPy.
Here are 4,963 public repositories matching this topic...
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Bug Report
Is the issue related to model conversion?
If the ONNX checker reports issues with this model then this is most probably related to the converter used to convert the original framework model to ONNX. Please create this bug in the appropriate converter's GitHub repo (pytorch, tensorflow-onnx, sklearn-onnx, keras-onnx, onnxmltools) to get the best help.
Describe the bug
T
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dask.data
In [12]: import dask.dataframe as dd, pandas as pd
In [13]: df = dd.from_pandas(pd.DataFrame({"A": [1, 2]}), npartitions=1)
In [14]: df.head()
/home/taugspurger/miniconda3/envs/stac-table/lib/python3.9/site-packages/dask/dataframe/core.py:6778: UserWarning: Insufficient elements for `head`. 5 elements requested, only 2 elements available. Try passing larger `npartiti
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- A better name date of birth column in our mock dataset would be
birthday
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Building the doc fails for example 40_advanced/example_single_configurations
on the current development branch
...
generating gallery for examples/40_advanced... [ 50%] example_debug_logging.py
Warning, treated as error:
/home/runner/work/auto-sklearn/auto-sklearn/examples/40_advanced/example_single_configu
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When using a dark theme, the black font is hard to read. The logo should be designed such that it's legible using both dark and light themes.
Interpret
Yes
When running TabularPredictor.fit(), I encounter a BrokenPipeError for some reason.
What is causing this?
Could it be due to OOM error?
Fitting model: XGBoost ...
-34.1179 = Validation root_mean_squared_error score
10.58s = Training runtime
0.03s = Validation runtime
Fitting model: NeuralNetMXNet ...
-34.2849 = Validation root_mean_squared_error score
43.63s =
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Add auto ML support
Description
We want to add support for auto ML. My suggestion is to use autokeras. I'm letting this open for newcomers who want to contribute to this project.
The parameters of the model need to be read from a yaml file (check utils.py in igel, there is a helper function to read a yaml or json file). These parameters will be used to construct and train a model. The results should be th
What's your use case?
In other words, what's your pain point?
Variable names and their icons are shown as vertical header. This
- is ugly,
- doesn't show the selection properly,
- doesn't allow sorting by variable names,
- doesn't allow selection by dragging across a range of variables (though one can drag across rows in the table itself),
- and possibly something else.
<img wi
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Created by David Cournapeau
Released January 05, 2010
Latest release 5 months ago
- Repository
- scikit-learn/scikit-learn
- Website
- scikit-learn.org
- Wikipedia
- Wikipedia